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=Text=
=Text=
{{#Wiki_filter:hDuke                                                                   BRUCE HHAMILTON OrEnergy@                                                               Vice President McGuire Nuclear Station Duke Energy Corporation MG01 VP / 12700 Hagers Ferry Road Huntersville, NC 28078 704-875-5333 704-875-4809 fax bhhamilton@duke-energy.com January 7, 2009 U. S. Nuclear Regulatory Commission Document Control Desk Washington, D.C. 20555
{{#Wiki_filter:hDuke BRUCE H HAMILTON OrEnergy@
Vice President McGuire Nuclear Station Duke Energy Corporation MG01 VP / 12700 Hagers Ferry Road Huntersville, NC 28078 704-875-5333 704-875-4809 fax bhhamilton@duke-energy. com January 7, 2009 U. S. Nuclear Regulatory Commission Document Control Desk Washington, D.C. 20555


==Subject:==
==Subject:==
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The COLR was revised to include limits specific for completion of the Rod Cluster Control Assembly (RCCA) movement test for all shutdown banks and control banks A, B, and C for the remainder of cycle 20.
The COLR was revised to include limits specific for completion of the Rod Cluster Control Assembly (RCCA) movement test for all shutdown banks and control banks A, B, and C for the remainder of cycle 20.
Questions regarding this submittal should be directed to Kay Crane, McGuire Regulatory Compliance at (704) 875-4306.
Questions regarding this submittal should be directed to Kay Crane, McGuire Regulatory Compliance at (704) 875-4306.
Bruce H. Hamilton Attachment Aw l www. duke-energy.corn
Bruce H. Hamilton Attachment Aw l www. duke-energy. corn


U. S. Nuclear Regulatory Commission January 7, 2009 Page 2 cc:   Mr. John Stang, Project Manager U.S. Nuclear Regulatory Commission Office of Nuclear Reactor Regulation Washington, D.C. 20555 Mr. Luis A. Reyes Regional Administrator U. S. Nuclear Regulatory Commission, Region II Atlanta Federal Center 61 Forsyth St., SW, Suite 23T85 Atlanta, GA 30323 Mr. Joe Brady Senior Resident Inspector McGuire Nuclear Station
U. S. Nuclear Regulatory Commission January 7, 2009 Page 2 cc:
Mr. John Stang, Project Manager U.S. Nuclear Regulatory Commission Office of Nuclear Reactor Regulation Washington, D.C. 20555 Mr. Luis A. Reyes Regional Administrator U. S. Nuclear Regulatory Commission, Region II Atlanta Federal Center 61 Forsyth St., SW, Suite 23T85 Atlanta, GA 30323 Mr. Joe Brady Senior Resident Inspector McGuire Nuclear Station


MCEI-0400-207 Page 1 of 32 Revision I McGuire Unit 1 Cycle 20 Core Operating Limits Report Revision 1 December 2008 Calculation Number: MCC-1553.05-00-0489, Rev. 1 Duke Energy Date Prepared By:          WI-M &A4   CA-1 Checked By:
MCEI-0400-207 Page 1 of 32 Revision I McGuire Unit 1 Cycle 20 Core Operating Limits Report Revision 1 December 2008 Calculation Number: MCC-1553.05-00-0489, Rev. 1 Duke Energy Date WI-M
                                                                    /z4g Checked By:                                                     /2. h/ Ap (Sections 2.2 and 2.10  - 2.17)
&A4 CA-1 Prepared By:
Checked By:
Checked By:
Approved By:
Approved By:
QA Condition 1 The information presented in this report has been prepared and issued in accordance with McGuire Technical Specification 5.6.5.
(Sections 2.2 and 2.10 - 2.17)
/z4g
/2. h/ Ap QA Condition 1 The information presented in this report has been prepared and issued in accordance with McGuire Technical Specification 5.6.5.


MCEI-0400-207 Page 2 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report INSPECTION OF ENGINEERING INSTRUCTIONS Inspection Waived By:
MCEI-0400-207 Page 2 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report INSPECTION OF ENGINEERING INSTRUCTIONS x e V&w.*a Inspection Waived By:
(Sponsor) x e V&w.*aV-              Date:
(Sponsor)
CATAWBA CATAWBA Inspection Waived MCE (Mechanical & Civil)             El     Inspected By/Date:
Date:
RES (Electrical Only)                        Inspected By/Date:
CATAWBA V-CATAWBA MCE (Mechanical & Civil)
RES (Reactor)                        LI      Inspected By/Date:
RES (Electrical Only)
MOD                                  LI E]      Inspected By/Date:
RES (Reactor)
Other (                  )                  Inspected By/Date:
MOD Other (
OCONEE Inspection Waived MCE (Mechanical & Civil)             El     Inspected By/Date:
)
RES (Electrical Only)                El      Inspected By/Date:
Inspection Waived El E]
RES (Reactor)                        El      Inspected By/Date:
LI LI Inspected By/Date:
MOD                                  E]    Inspected By/Date:
Inspected By/Date:
Other (                    )          El    Inspected By/Date:
Inspected By/Date:
MCGUIRE, Inspection Waived MCE (Mechanical & Civil)                     Inspected By/Date:
Inspected By/Date:
RES (Electrical Only)                        Inspected By/Date:
Inspected By/Date:
RES (Reactor)                                Inspected By/Date:
OCONEE MCE (Mechanical & Civil)
MOD                                          Inspected By/Date:
RES (Electrical Only)
Other (                  )          El      Inspected By/Date:
RES (Reactor)
MOD Other (
)
Inspection Waived El El El E]
El Inspected By/Date:
Inspected By/Date:
Inspected By/Date:
Inspected By/Date:
Inspected By/Date:
: MCGUIRE, MCE (Mechanical & Civil)
RES (Electrical Only)
RES (Reactor)
MOD Other (
)
Inspection Waived El Inspected By/Date:
Inspected By/Date:
Inspected By/Date:
Inspected By/Date:
Inspected By/Date:


MCEI-0400-207 Page 3 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Implementation Instructions for Revision 1 Revision Description and PIP Tracking Revision 1 of the McGuire Unit 1 Cycle 20 COLR contains limits specific to the reload core and was revised to include limits specific for completion of the RCCA movement test for all shutdown banks and control banks A, B, and C for the remainder of McGuire Unit 1 Cycle 20.
MCEI-0400-207 Page 3 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Implementation Instructions for Revision 1 Revision Description and PIP Tracking Revision 1 of the McGuire Unit 1 Cycle 20 COLR contains limits specific to the reload core and was revised to include limits specific for completion of the RCCA movement test for all shutdown banks and control banks A, B, and C for the remainder of McGuire Unit 1 Cycle 20.
Line 55: Line 79:
Data files to be Implemented No data files are transmitted as part of this document.
Data files to be Implemented No data files are transmitted as part of this document.


MCEI-0400-207 Page 4 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report REVISION LOG Revision       Effective Date     Pages Affected             COLR 0            August 2008      1-32, Appendix A*     M IC20 COLR, Rev. 0 1         December 2008            1-32          M 1C20 COLR, Rev. 1
MCEI-0400-207 Page 4 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report REVISION LOG Revision Effective Date Pages Affected 1-32, Appendix A*
* Appendix A contains power distribution monitoring factors used in Technical Specification Surveillance. Appendix A is included only in the electronic COLR copy sent to the NRC.
0 August 2008 December 2008 COLR M I C20 COLR, Rev. 0 M 1 C20 COLR, Rev. 1 1
1-32
* Appendix A contains power distribution monitoring factors used in Technical Specification Surveillance.
Appendix A is included only in the electronic COLR copy sent to the NRC.


MCEI-0400-207 Page 5 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.0     Core Operating Limits Report This Core Operating Limits Report (COLR) has been prepared in accordance with the requirements of the Technical Specification 5.6.5. The Technical Specifications that reference the COLR are summarized below.
MCEI-0400-207 Page 5 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.0 Core Operating Limits Report This Core Operating Limits Report (COLR) has been prepared in accordance with the requirements of the Technical Specification 5.6.5. The Technical Specifications that reference the COLR are summarized below.
TS                                                                           COLR           El Number                Technical Specifications           COLR Parameter        Section      Page 1.1       Requirements for Operational Mode 6   Mode 6 Definition            2.1          9 2.1.1       Reactor Core Safety Limits            RCS Temperature and          2.2          9 Pressure Safety Limits 3.1.1       Shutdown Margin                        Shutdown Margin              2.3          9 3.1.3       Moderator Temperature Coefficient      MTC                          2.4        11 3.1.4       Rod Group Alignment Limits            Shutdown Margin              2.3          9 3.1.5       Shutdown Bank Insertion Limits        Shutdown Margin              2.3          9 3.1.5       Shutdown Bank Insertion Limits         Shutdown Bank Insertion       2.5        11 Limit 3.1.6       Control Bank Insertion Limits           Shutdown Margin              2.3          9 3.1.6       Control Bank Insertion Limits           Control Bank Insertion        2.6        15 Limit 3.1.8       Physics Test Exceptions                 Shutdown Margin              2.3          9 3.2.1       Heat Flux Hot Channel Factor           Fq, AFD, OTAT and            2.7        15 Penalty Factors 3.2.2       Nuclear Enthalpy Rise Hot Channel       FAH, AFD and                  2.8        20 Factor                                 Penalty Factors 3.2.3       Axial Flux Difference                   AFD                          2.9        21 3.3.1       Reactor Trip System Instrumentation     OTAT and OPAT                2.10        24 Setpoint                               Constants 3.4.1       RCS Pressure, Temperature and Flow     RCS Pressure,                2.11        26 limits for DNB                         Temperature and Flow 3.5.1       Accumulators                           Max and Min Boron Conc.      2.12        26 3.5.4       Refueling Water Storage Tank           Max and Min Boron Conc.      2.13        26 3.7.14       Spent Fuel Pool Boron Concentration     Min Boron Concentration      2.14        28 3.9.1       Refueling Operations - Boron            Min Boron Concentration      2.15        28 Concentration 5.6.5       Core Operating Limits Report (COLR)     Analytical Methods           1.1         6 The Selected Licensee Commitments that reference this report are listed below:
TS Number COLR Section El Page Technical Specifications 1.1 Requirements for Operational Mode 6 2.1.1 Reactor Core Safety Limits 3.1.1 3.1.3 3.1.4 3.1.5 3.1.5 Shutdown Margin Moderator Temperature Coefficient Rod Group Alignment Limits Shutdown Bank Insertion Limits Shutdown Bank Insertion Limits 3.1.6 Control Bank Insertion Limits 3.1.6 Control Bank Insertion Limits 3.1.8 Physics Test Exceptions 3.2.1 Heat Flux Hot Channel Factor 3.2.2 Nuclear Enthalpy Rise Hot Channel Factor 3.2.3 Axial Flux Difference 3.3.1 Reactor Trip System Instrumentation Setpoint 3.4.1 RCS Pressure, Temperature and Flow limits for DNB 3.5.1 Accumulators 3.5.4 Refueling Water Storage Tank 3.7.14 Spent Fuel Pool Boron Concentration 3.9.1 Refueling Operations - Boron Concentration 5.6.5 Core Operating Limits Report (COLR)
COLR            El SLC Number         Selected Licensing Commitment         COLR Parameter           Section        Pagte 16.9.14         Borated Water Source - Shutdown   Borated Water Volume and       2.16            29 Conc. for BAT/RWST 16.9.11         Borated Water Source - Operating   Borated Water Volume and       2.17            30 Conc. for BAT/RWST
COLR Parameter Mode 6 Definition RCS Temperature and Pressure Safety Limits Shutdown Margin MTC Shutdown Margin Shutdown Margin Shutdown Bank Insertion Limit Shutdown Margin Control Bank Insertion Limit Shutdown Margin Fq, AFD, OTAT and Penalty Factors FAH, AFD and Penalty Factors AFD OTAT and OPAT Constants RCS Pressure, Temperature and Flow Max and Min Boron Conc.
Max and Min Boron Conc.
Min Boron Concentration Min Boron Concentration Analytical Methods 2.1 2.2 2.3 2.4 2.3 2.3 2.5 2.3 2.6 2.3 2.7 9
9 9
11 9
9 11 9
15 9
15 2.8 20 2.9 2.10 2.11 2.12 2.13 2.14 2.15 1.1 21 24 26 26 26 28 28 6
The Selected Licensee Commitments that reference this report are listed below:
SLC Number Selected Licensing Commitment COLR Parameter 16.9.14 Borated Water Source - Shutdown Borated Water Volume and Conc. for BAT/RWST 16.9.11 Borated Water Source - Operating Borated Water Volume and Conc. for BAT/RWST COLR Section 2.16 2.17 El Pagte 29 30


MCEI-0400-207 Page 6 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1     Analytical Methods The analytical methods used to determine core operating limits for parameters identified in Technical Specifications and previously reviewed and approved by the NRC as specified in Technical Specification 5.6.5 are as follows.
MCEI-0400-207 Page 6 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1 Analytical Methods The analytical methods used to determine core operating limits for parameters identified in Technical Specifications and previously reviewed and approved by the NRC as specified in Technical Specification 5.6.5 are as follows.
: 1. WCAP-9272-P-A, "Westinghouse Reload Safety Evaluation Methodology," (W Proprietary).
: 1. WCAP-9272-P-A, "Westinghouse Reload Safety Evaluation Methodology," (W Proprietary).
Revision 0 Report Date: July 1985 Not Used for M1C20
Revision 0 Report Date: July 1985 Not Used for M1C20
: 2. WCAP-10054-P-A, "Westinghouse Small Break ECCS Evaluation Model using the NOTRUMP Code, "(W Proprietary).
: 2. WCAP-10054-P-A, "Westinghouse Small Break ECCS Evaluation Model using the NOTRUMP Code, "(W Proprietary).
Revision 0 Report Date: August 1985
Revision 0 Report Date: August 1985
: 3. WCAP- 10266-P-A, "The 1981 Version Of Westinghouse Evaluation Model Using BASH CODE", (W_ Proprietary).
: 3.
WCAP-10266-P-A, "The 1981 Version Of Westinghouse Evaluation Model Using BASH CODE", (W_ Proprietary).
Revision 2 Report Date: March 1987 Not Used for M1C20
Revision 2 Report Date: March 1987 Not Used for M1C20
: 4. WCAP-12945-P-A, Volume I and Volumes 2-5, "Code Qualification Document for Best-Estimate Loss of Coolant Analysis," (_W Proprietary).
: 4. WCAP-12945-P-A, Volume I and Volumes 2-5, "Code Qualification Document for Best-Estimate Loss of Coolant Analysis," (_W Proprietary).
Revision: Volume 1 (Revision 2) and Volumes 2-5 (Revision 1)
Revision: Volume 1 (Revision 2) and Volumes 2-5 (Revision 1)
Report Date: March 1998
Report Date: March 1998
: 5. BAW-10168P-A, "B&W Loss-of-Coolant Accident Evaluation Model for Recirculating Steam Generator Plants," (B&W Proprietary).
: 5.
BAW-10168P-A, "B&W Loss-of-Coolant Accident Evaluation Model for Recirculating Steam Generator Plants," (B&W Proprietary).
Revision 1 SER Date: January 22, 1991 Revision 2 SER Dates: August 22, 1996 and November 26, 1996.
Revision 1 SER Date: January 22, 1991 Revision 2 SER Dates: August 22, 1996 and November 26, 1996.
Revision 3 SER Date: June 15, 1994.
Revision 3 SER Date: June 15, 1994.
Not Used for M1C20
Not Used for M1C20


t*l MCEI-0400-207 Page 7 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1       Analytical Methods (continued)
t*l MCEI-0400-207 Page 7 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1 Analytical Methods (continued)
: 6. DPC-NE-3000-PA, "Thermal-Hydraulic Transient Analysis Methodology," (DPC Proprietary).
: 6. DPC-NE-3000-PA, "Thermal-Hydraulic Transient Analysis Methodology," (DPC Proprietary).
Revision 3 SER Date: September 24, 2003
Revision 3 SER Date: September 24, 2003
: 7. DPC-NE-300 1-PA, "Multidimensional Reactor Transients and Safety Analysis Physics Parameter Methodology," (DPC Proprietary).
: 7.
DPC-NE-300 1-PA, "Multidimensional Reactor Transients and Safety Analysis Physics Parameter Methodology," (DPC Proprietary).
Revision 0 Report Date: November 1991 (Republished December 2000)
Revision 0 Report Date: November 1991 (Republished December 2000)
: 8. DPC-NE-3002-A, "FSAR Chapter 15 System Transient Analysis Methodology".
: 8.
DPC-NE-3002-A, "FSAR Chapter 15 System Transient Analysis Methodology".
Revision 4 SER Date: April 6, 2001
Revision 4 SER Date: April 6, 2001
: 9. DPC-NE-2004P-A, "Duke Power Company McGuire and Catawba Nuclear Stations Core Thermal-Hydraulic Methodology using VIPRE-01," (DPC Proprietary).
: 9. DPC-NE-2004P-A, "Duke Power Company McGuire and Catawba Nuclear Stations Core Thermal-Hydraulic Methodology using VIPRE-01," (DPC Proprietary).
Line 92: Line 132:
: 12. DPC-NE-2009-P-A, "Westinghouse Fuel Transition Report," (DPC Proprietary).
: 12. DPC-NE-2009-P-A, "Westinghouse Fuel Transition Report," (DPC Proprietary).
Revision 2 SER Date: December 18, 2002
Revision 2 SER Date: December 18, 2002
: 13. DPC-NE- 1004A, "Nuclear Design Methodology Using CASMO-3/SIMULATE-3P."
: 13. DPC-NE-1004A, "Nuclear Design Methodology Using CASMO-3/SIMULATE-3P."
Revision 1 SER Date: April 26, 1996 Not Used for M1C20
Revision 1 SER Date: April 26, 1996 Not Used for M1C20


MCEI-0400-207 Page 8 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1     Analytical Methods (continued)
MCEI-0400-207 Page 8 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1 Analytical Methods (continued)
: 14. DPC-NF-2010A, "Duke Power Company McGuire Nuclear Station Catawba Nuclear Station Nuclear Physics Methodology for Reload Design."
: 14. DPC-NF-2010A, "Duke Power Company McGuire Nuclear Station Catawba Nuclear Station Nuclear Physics Methodology for Reload Design."
Revision 2 SER Date: June 24, 2003
Revision 2 SER Date: June 24, 2003
Line 105: Line 145:
Revision 0 SER Date: August 20, 2004
Revision 0 SER Date: August 20, 2004


MCEI-0400-207 Page 9 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.0 Operating Limits The cycle-specific parameter limits for the specifications listed in section 1.0 are presented in the following subsections. These limits have been developed using NRC approved methodologies specified in Section 1.1.
MCEI-0400-207 Page 9 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.0 Operating Limits The cycle-specific parameter limits for the specifications listed in section 1.0 are presented in the following subsections. These limits have been developed using NRC approved methodologies specified in Section 1.1.
2.1 Requirements for Operational Mode 6 The following condition is required for operational mode 6.
2.1 Requirements for Operational Mode 6 The following condition is required for operational mode 6.
2.1.1 The Reactivity Condition requirement for operational mode 6 is that kff must be less than, or equal to 0.95.
2.1.1 The Reactivity Condition requirement for operational mode 6 is that kff must be less than, or equal to 0.95.
2.2 Reactor Core Safety Limits (TS 2.1.1) 2.2.1 The Reactor Core Safety Limits are shown in Figure 1.
2.2 Reactor Core Safety Limits (TS 2.1.1) 2.2.1 The Reactor Core Safety Limits are shown in Figure 1.
2.3   Shutdown Margin - SDM         (TS 3.1.1, TS 3.1.4, TS 3.1.5, TS 3.1.6 and TS 3.1.8) 2.3.1   For TS 3.1.1, SDM shall be> 1.3% AK/K in mode 2 with k-eff< 1.0 and in modes 3 and 4.
2.3 Shutdown Margin - SDM (TS 3.1.1, TS 3.1.4, TS 3.1.5, TS 3.1.6 and TS 3.1.8) 2.3.1 For TS 3.1.1, SDM shall be> 1.3% AK/K in mode 2 with k-eff< 1.0 and in modes 3 and 4.
2.3.2   For TS 3.1.1, SDM shall be > 1.0% AK/K in mode 5.
2.3.2 For TS 3.1.1, SDM shall be > 1.0% AK/K in mode 5.
2.3.3   For TS 3.1.4, SDM shall be > 1.3% AK/K in modes I and 2.
2.3.3 For TS 3.1.4, SDM shall be > 1.3% AK/K in modes I and 2.
2.3.4   For TS 3.1.5, SDM shall be > 1.3% AK/K in mode 1 and mode 2 with any control bank not fully inserted.
2.3.4 For TS 3.1.5, SDM shall be > 1.3% AK/K in mode 1 and mode 2 with any control bank not fully inserted.
2.3.5 For TS 3.1.6, SDM shall be > 1.3% AK/K in mode 1 and mode 2 with K-eff> 1.0.
2.3.5 For TS 3.1.6, SDM shall be > 1.3% AK/K in mode 1 and mode 2 with K-eff> 1.0.
2.3.6 For TS 3.1.8, SDM shall be > 1.3% AK/K in mode 2 during Physics Testing.
2.3.6 For TS 3.1.8, SDM shall be > 1.3% AK/K in mode 2 during Physics Testing.


MCEI-0400-207 Page 10 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 1 Reactor Core Safety Limits Four Loops in Operation 670 DO NOT OPERATE IN THIS AREA 660 640                                                   _____    ____      _
MCEI-0400-207 Page 10 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 1 Reactor Core Safety Limits Four Loops in Operation 670 DO NOT OPERATE IN THIS AREA 660 6590 640 2400 psBia 630 2280 p1s1ia C)620 610 600 590 ACCEPTABLE 580111 0.10 0.2 0.4 0.6 0.8 1.0 1.2 Fraction of Rated Thermal Power
2400 psBia 630 2280 p1s1ia 6590 C)620                                                 ____
610                                                 ____
600 590                                   ______
ACCEPTABLE 580111 0.10 0.2         0.4           0.6           0.8         1.0             1.2 Fraction of Rated Thermal Power


MCEI-0400-207 Page II of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.4   Moderator Temperature Coefficient - MTC (TS 3.1.3) 2.4.1   The Moderator Temperature Coefficient (MTC) Limits are:
MCEI-0400-207 Page II of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.4 Moderator Temperature Coefficient - MTC (TS 3.1.3) 2.4.1 The Moderator Temperature Coefficient (MTC) Limits are:
The MTC shall be less positive than the upper limits shown in Figure 2. The BOC, ARO, HZP MTC shall be less positive than 0.7E-04 AK/K/PF.
The MTC shall be less positive than the upper limits shown in Figure 2. The BOC, ARO, HZP MTC shall be less positive than 0.7E-04 AK/K/PF.
The EOC, ARO, RTP MTC shall be less negative than the -4.3E-04 AK/K/&deg;F lower MTC limit.
The EOC, ARO, RTP MTC shall be less negative than the -4.3E-04 AK/K/&deg;F lower MTC limit.
2.4.2   The 300 PPM MTC Surveillance Limit is:
2.4.2 The 300 PPM MTC Surveillance Limit is:
The measured 300 PPM ARO, equilibrium RTP MTC shall be less negative than or equal to -3.65E-04 AK/K/&deg;F.
The measured 300 PPM ARO, equilibrium RTP MTC shall be less negative than or equal to -3.65E-04 AK/K/&deg;F.
2.4.3   The 60 PPM MTC Surveillance Limit is:
2.4.3 The 60 PPM MTC Surveillance Limit is:
The 60 PPM ARO, equilibrium RTP MTC shall be less negative than or equal to
The 60 PPM ARO, equilibrium RTP MTC shall be less negative than or equal to
              -4.125E-04 AK/K/ 0 F.
-4.125E-04 AK/K/ 0F.
Where, BOC = Beginning of Cycle (Burnup corresponding to the most positive MTC.)
: Where, BOC = Beginning of Cycle (Burnup corresponding to the most positive MTC.)
EOC = End of Cycle ARO = All Rods Out HZP = Hot Zero Power RTP = Rated Thermal Power PPM = Parts per million (Boron) 2.5 Shutdown Bank Insertion Limit (TS 3.1.5) 2.5.1   Each shutdown bank shall be withdrawn to at least 222 steps except under the conditions listed in Section 2.5.2. Shutdown banks are withdrawn in sequence and with no overlap.
EOC = End of Cycle ARO = All Rods Out HZP = Hot Zero Power RTP = Rated Thermal Power PPM = Parts per million (Boron) 2.5 Shutdown Bank Insertion Limit (TS 3.1.5) 2.5.1 Each shutdown bank shall be withdrawn to at least 222 steps except under the conditions listed in Section 2.5.2. Shutdown banks are withdrawn in sequence and with no overlap.
2.5.2   Shutdown banks may be inserted to 219 steps withdrawn individually for up to 48 hours provided the plant was operated in steady state conditions near 100% FP prior to and during this exception.
2.5.2 Shutdown banks may be inserted to 219 steps withdrawn individually for up to 48 hours provided the plant was operated in steady state conditions near 100% FP prior to and during this exception.


MCEI-0400-207 Page 12 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 2 Moderator Temperature Coefficient Upper Limit Versus Power Level 1.0 0.9 0.8 U
MCEI-0400-207 Page 12 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 2 Moderator Temperature Coefficient Upper Limit Versus Power Level 1.0 U
0.7 C1    0.6 0.5
C1
    -0 0.4 0.3 0.2 0.1 0.0 0     10   20   30     40     50     60     70     80     90   100 Percent of Rated Thermal Power NOTE: Compliance with Technical Specification 3.1.3 may require rod withdrawal limits.
-0 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1 0.0 0
10 20 30 40 50 60 70 80 90 100 Percent of Rated Thermal Power NOTE: Compliance with Technical Specification 3.1.3 may require rod withdrawal limits.
Refer to OP/1/A/6100/22 Unit 1 Data Book for details.
Refer to OP/1/A/6100/22 Unit 1 Data Book for details.


I MCEI-0400-207 Page 13 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 3 Control Bank Insertion Limits Versus Percent Rated Thermal Power Fully Withdrawn (Maximum = 231) 231 220 200 180 160 140
I MCEI-0400-207 Page 13 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 3 Control Bank Insertion Limits Versus Percent Rated Thermal Power Fully Withdrawn (Maximum = 231) 231 220 200 180 160 140
    = 120 0
= 120 0o 100 40 20 0
o 100 40 20 0
0 10 20 30 40 50 60 70 80 90 100 Percent of Rated Thermal Power The Rod Insertion Limits (RIL) for Control Bank D (CD), Control Bank C (CC), and Control Bank B (CB) can be calculated by:
0         10       20     30       40       50     60     70     80       90     100 Percent of Rated Thermal Power The Rod Insertion Limits (RIL) for Control Bank D (CD), Control Bank C (CC), and Control Bank B (CB) can be calculated by:
Bank CD R/L = 2.3(P)- 69 {30 < P* 100}
Bank CD R/L = 2.3(P)- 69 {30 < P* 100}
Bank CC R/L = 2.3(P)+ 47 {O<P <80}
Bank CC R/L = 2.3(P)+ 47 {O<P <80}
Bank CB R/L = 2.3(P) +163   {O<P <29.6}
Bank CB R/L = 2.3(P) +163 {O<P <29.6}
where P = %Rated Thermal Power NOTES: (1) Compliance with Technical Specification 3.1.3 may require rod withdrawal limits. Refer to OP/1/A/6100/22 Unit 1 Data Book for details.
where P = %Rated Thermal Power NOTES: (1) Compliance with Technical Specification 3.1.3 may require rod withdrawal limits. Refer to OP/1/A/6100/22 Unit 1 Data Book for details.
(2) Anytime any shutdown bank or control banks A, B, or C are inserted below 222 steps withdrawn, control bank D insertion is limited to > 200 steps withdrawn (see Sections 2.5.2 and 2.6.2)
(2) Anytime any shutdown bank or control banks A, B, or C are inserted below 222 steps withdrawn, control bank D insertion is limited to > 200 steps withdrawn (see Sections 2.5.2 and 2.6.2)


MCEI-0400-207 Page 14 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Table 1 RCCA Withdrawal Steps and Sequence Fully Withdrawn at 222 Steps                  Fully Withdrawn at 223 Steps Control Control Control Control            Control      Control  Control    Control Bank A Bank B Bank C BankD                   Bank A      Bank B    Bank C    Bank D 0 Start         0         0         0     0 Start           0       0           0 116       0 Start       0         0       116       0 Start     0          0 222 Stop         106         0         0   223 Stop        107      0           0 222          116     0 Start       0       223           116   0 Start       0 222      222 Stop      106        0       223       223 Stop   107         0 222          222        116    0 Start    223           223     116       0 Start 222          222    222 Stop      106      223           223   223 Stop       107 Fully Withdrawn at 224 Steps                  Fully Withdrawn at 225 Steps Control Control Control Control              Control      Control  Control    Control BankA BankB BankC BankD                    BankA        Bank B   Bank C     Bank D 0 Start           0         0         0     0 Start         0       0           0 116       0 Start       0         0       116         0 Start     0           0 224 Stop        108        0         0   225 Stop        109      0           0 224           116      0 Start      0       225          116   0 Start       0 224     224 Stop       108         0      225    ; 225 Stop    109          0 224           224       116   0 Start      225          225      116      0 Start 224         224     224 Stop     108       225          225  225 Stop      109 Fully Withdrawn at 226 Steps                 Fully Withdrawn at 227 Steps Control Control Control Control              Control       Control Control     Control BankA BankB BankC BankD                     BankA        BankB    BankC      BankfD 0 Start         0          0         0     0 Start          0        0          0 116 ,     0 Start       0         0        116        0 Start    0          0 2 26 Stop       110         0         0    227 Stop          II        0          0 226           116      0 Start      0        227          116   0 Start       0 226     226 Stop       110       0        227      227 Stop    111          0 226         226         116   0 Start      227          227      116      0 Start 226         226   226 Stop     110       227          227  227 Stop      11 Fully Withdrawn at 228 Steps                  Fully Withdrawn at 229 Steps Control Control Control Control              Control      Control  Control    Control Bank A Bank B Bank C Bank D                  Bank A        Bank B    Bank C    Bank D 0 Start           0         0         0      0 Start          0        0          0 116       0 Start       0         0       116"        0 Start    0          0 22 8 Stop       112         0        0    229 Stop          113      0           0 228           116      0 Start      0        229          116   0 Start       0 228     228 Stop       112         0        229      229 Stop    113          0 228         228       116     0 Start      229          229      116      0 Start 228           228   228 Stop     112       229          229  229 Stop      113 Fu Ily Withdrawn at 230 Steps                 Fully Withdrawn at 231 Steps Control Control Control Control               Control       Control Control    Control BankA         BankB BankC BankD'             Bank A       Bank B   Bank C     Bank D 0 Start           0         0         0     0 Start         0       0           0 116       0 Start       0         0       116         0 Start     0           0 23 0 Stop        114        0         0   231 Stop         115      0           0 230           116     0 Start       0       231            116   0 Start       0 230       230 Stop       114         0       231        231 Stop     115         0 230          230        116   0 Start     231           231       116   .0   Start 230          230    230 Stop      114      231           231   231 Stop       115
MCEI-0400-207 Page 14 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Table 1 RCCA Withdrawal Steps and Sequence Fully Withdrawn at 222 Steps Control Control Control Control Bank A Bank B Bank C BankD 0 Start 0
0 0
116 0 Start 0
0 222 Stop 106 0
0 222 116 0 Start 0
222 222 Stop 106 0
222 222 116 0 Start 222 222 222 Stop 106 Fully Withdrawn at 224 Steps Control Control Control Control BankA BankB BankC BankD Fully Withdrawn at 223 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0
0 0
116 0 Start 0
0 223 Stop 107 0
0 223 116 0 Start 0
223 223 Stop 107 0
223 223 116 0 Start 223 223 223 Stop 107 Fully Withdrawn at 225 Steps Control Control Control Control BankA Bank B Bank C Bank D 0 Start 0
0 0
116 0 Start 0
0 225 Stop 109 0
0 225 116 0 Start 0
225
; 225 Stop 109 0
225 225 116 0 Start 225 225 225 Stop 109 Fully Withdrawn at 227 Steps Control Control Control Control BankA BankB BankC BankfD 0 Start 0
0 0
116 0 Start 0
0 224 Stop 108 0
0 224 116 0 Start 0
224 224 Stop 108 0
224 224 116 0 Start 224 224 224 Stop 108 Fully Withdrawn at 226 Steps Control Control Control Control BankA BankB BankC BankD 0 Start 0
0 0
116,
0 Start 0
0 2 26 Stop 110 0
0 226 116 0 Start 0
226 226 Stop 110 0
226 226 116 0 Start 226 226 226 Stop 110 Fully Withdrawn at 228 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0
0 0
116 0 Start 0
0 2 28 Stop 112 0
0 228 116 0 Start 0
228 228 Stop 112 0
228 228 116 0 Start 228 228 228 Stop 112 Fu Ily Withdrawn at 230 Steps Control Control Control Control BankA BankB BankC BankD' 0 Start 0
0 0
116 0 Start 0
0 227 Stop II 0
0 227 116 0 Start 0
227 227 Stop 111 0
227 227 116 0 Start 227 227 227 Stop 11 Fully Withdrawn at 229 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0
0 0
116" 0 Start 0
0 229 Stop 113 0
0 229 116 0 Start 0
229 229 Stop 113 0
229 229 116 0 Start 229 229 229 Stop 113 0 Start 0
0 0
116 0 Start 0
0 2 3 0 Stop 114 0
0 230 116 0 Start 0
230 230 Stop 114 0
230 230 116 0 Start 230 230 230 Stop 114 Fully Withdrawn at 231 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0
0 0
116 0 Start 0
0 231 Stop 115 0
0 231 116 0 Start 0
231 231 Stop 115 0
231 231 116  
.0 Start 231 231 231 Stop 115


MCEI-0400-207 Page 15 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.6 Control Bank Insertion Limits (TS 3.1.6) 2.6.1   Control banks shall be within the insertion, sequence, and overlap limits shown in Figure 3 except under the conditions listed in Section 2.6.2. Specific control bank withdrawal and overlap limits as a function of the fully withdrawn position are shown in Table 1.
MCEI-0400-207 Page 15 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.6 Control Bank Insertion Limits (TS 3.1.6) 2.6.1 Control banks shall be within the insertion, sequence, and overlap limits shown in Figure 3 except under the conditions listed in Section 2.6.2. Specific control bank withdrawal and overlap limits as a function of the fully withdrawn position are shown in Table 1.
2.6.2   Control banks A, B, or C may be inserted to 219 steps withdrawn individually for up to 48 hours provided the plant was operated in steady state conditions near 100% FP prior to and during this exception.
2.6.2 Control banks A, B, or C may be inserted to 219 steps withdrawn individually for up to 48 hours provided the plant was operated in steady state conditions near 100% FP prior to and during this exception.
2.7 Heat Flux Hot Channel Factor - FQ(X,Y,Z) (TS 3.2.1) 2.7.1   FQ(X,Y,Z) steady-state limits are defined by the following relationships:
2.7 Heat Flux Hot Channel Factor - FQ(X,Y,Z) (TS 3.2.1) 2.7.1 FQ(X,Y,Z) steady-state limits are defined by the following relationships:
F RTh *K(Z)/P         for P > 0.5 F RTP *K(Z)/0.5       for P < 0.5 where, P = (Thermal Power)/(Rated Power)
F RTh *K(Z)/P for P > 0.5 F RTP *K(Z)/0.5 for P < 0.5
Note: The measured FQ(XY,Z) shall be increased by 3% to account for manufacturing tolerances and 5% to account for measurement uncertainty when comparing against LCO limits. The manufacturing tolerance and measurement uncertainty are implicitly included in the FQ surveillance limits as defined in COLR Sections .2.7.5 and 2.7.6.
: where, P = (Thermal Power)/(Rated Power)
T 2.7.2   -Q , =2.60 x K(BU)
Note: The measured FQ(XY,Z) shall be increased by 3% to account for manufacturing tolerances and 5% to account for measurement uncertainty when comparing against LCO limits. The manufacturing tolerance and measurement uncertainty are implicitly included in the FQ surveillance limits as defined in COLR Sections.2.7.5 and 2.7.6.
FR 2.7.3   K(Z) is the normalized FQ(X,Y,Z) as a function of core height. The K(Z) function for Westinghouse RFA fuel is provided in Figure 4.
2.7.2 FRT, =2.60 x K(BU)
2.7.4   K(BU) is the normalized FQ(X,Y,Z) as a function of burnup. K(BU) for Westinghouse RFA fuel is 1.0 for all burnups.
-Q 2.7.3 K(Z) is the normalized FQ(X,Y,Z) as a function of core height. The K(Z) function for Westinghouse RFA fuel is provided in Figure 4.
2.7.4 K(BU) is the normalized FQ(X,Y,Z) as a function of burnup. K(BU) for Westinghouse RFA fuel is 1.0 for all burnups.
The following parameters are required for core monitoring per the Surveillance Requirements of Technical Specification 3.2.1:
The following parameters are required for core monitoring per the Surveillance Requirements of Technical Specification 3.2.1:
D FL(X,Y,Z)OP = FQ(X,Y,Z)
D FL(X,Y,Z)OP = FQ(X,Y,Z)
Line 166: Line 266:
* TILT
* TILT


MCEI-0400-207 Page 16 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report where:                                             -
MCEI-0400-207 Page 16 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report where:
FJ (X,Y,Z)OP =     Cycle dependent maximum allowable design peaking factor that ensures that the FQ(X,Y,Z) LOCA limit will be preserved for operation within the LCO limits. F* (X,Y,Z)OP includes allowances for calculation and measurement uncertainties.
FJ (X,Y,Z)OP =
Fof(XYZ)      =  Design power distribution for FQ. FoD (X,Y,Z) is provided in Appendix A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.
Fof(XYZ)
MQ(X,Y,Z) =      Margin remaining in core location X,Y,Z to the LOCA limit in the transient power distribution. MQ(X,Y,Z) is provided in Appendix Table A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.
=
UMT   = Total Peak Measurement Uncertainty. (UMT = 1.05)
MQ(X,Y,Z) =
MT     Engineering Hot Channel Factor. (MT = 1.03)
Cycle dependent maximum allowable design peaking factor that ensures that the FQ(X,Y,Z) LOCA limit will be preserved for operation within the LCO limits. F* (X,Y,Z)OP includes allowances for calculation and measurement uncertainties.
TILT = Peaking penalty that accounts for the peaking increase from an allowable quadrant power tilt ratio of 1.02. (TILT = 1.035)
Design power distribution for FQ. FoD (X,Y,Z) is provided in Appendix A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.
Margin remaining in core location X,Y,Z to the LOCA limit in the transient power distribution. MQ(X,Y,Z) is provided in Appendix Table A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.
UMT =
Total Peak Measurement Uncertainty. (UMT = 1.05)
MT Engineering Hot Channel Factor. (MT = 1.03)
TILT =
Peaking penalty that accounts for the peaking increase from an allowable quadrant power tilt ratio of 1.02. (TILT = 1.035) 2.7.6 F(L RPS 2.. Q(X,Y,Z )
=
D FQ(X,Y,Z)
D FQ(X,Y,Z)
* Mc(X,Y,Z) 2.7.62 . .F(LQ(X ,Y ,Z)RPS =
* Mc(X,Y,Z)
UMT
UMT
* MT
* MT
* TILT where:
* TILT where:
F L(X,Y,Z)RPS       Cycle dependent maximum allowable design peaking factor that ensures that the FQ(X,Y,Z) Centerline Fuel Melt (CFM) limit will be preserved for operation within the LCO limits.
F L(X,Y,Z)RPS Cycle dependent maximum allowable design peaking factor that ensures that the FQ(X,Y,Z) Centerline Fuel Melt (CFM) limit will be preserved for operation within the LCO limits.
FQ(X,Y,Z)"s includes allowances for calculation and measurement uncertainties.
FQ(X,Y,Z)"s includes allowances for calculation and measurement uncertainties.
D FQ(X ,Y,Z)      Design power distributions for FQ. FQ(X,Y,Z) is provided in Appendix Table A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.
D Design power distributions for FQ. FQ(X,Y,Z) is provided in Appendix Table A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.
FQ(X,Y,Z)


MCEI-0400-207 Page 17 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Mc(X,Y,Z) =      Margin remaining to the CFM limit in core location X,Y,Z from the transient power distribution. Mc(X,Y,Z) is provided in Appendix Table A-2 for normal operating conditions and in Appendix Table A-5 for power escalation testing during initial startup operation.
McGuire Mc(X,Y,Z) =
UMT=        Total Peak Measurement Uncertainty (UMT = 1.05)
UMT=
MT=      Engineering Hot Channel Factor (MT = 1.03)
MT=
TILT =    Peaking penalty that accounts for the peaking increase for an allowable quadrant power tilt ratio of 1.02. (TILT = 1.035) 2.7.7 KSLOPE = 0.0725 where:
TILT =
KSLOPE is the adjustment to the K1 value from OTAT trip setpoint required to compensate for each 1% that Fo (X,Y,Z) exceeds FoL (X,Y,Z)RPS 2.7.8 FQ(X,Y,Z) penalty factors for Technical Specification Surveillance's 3.2.1.2 and 3.2.1.3 are provided in Table 2.
MCEI-0400-207 Page 17 of 32 Revision 1 1 Cycle 20 Core Operating Limits Report Margin remaining to the CFM limit in core location X,Y,Z from the transient power distribution. Mc(X,Y,Z) is provided in Appendix Table A-2 for normal operating conditions and in Appendix Table A-5 for power escalation testing during initial startup operation.
Total Peak Measurement Uncertainty (UMT = 1.05)
Engineering Hot Channel Factor (MT = 1.03)
Peaking penalty that accounts for the peaking increase for an allowable quadrant power tilt ratio of 1.02. (TILT = 1.035) 2.7.7 KSLOPE = 0.0725 where:
KSLOPE is the adjustment to the K1 value from OTAT trip setpoint required to compensate for each 1% that F o (X,Y,Z) exceeds F oL (X,Y,Z)RPS 2.7.8 FQ(X,Y,Z) penalty factors for Technical Specification Surveillance's 3.2.1.2 and 3.2.1.3 are provided in Table 2.


MCEI-0400-207 Page 18 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Figure 4 K(Z), Normalized FQ(X,Y,Z) as a Function of Core Height for Westinghouse RFA Fuel 1.200 (0.0, 1.00)             (4.0, 1.00) 1.000                                                                (12.0, 0.9615)
MCEI-0400-207 Page 18 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Figure 4 K(Z), Normalized FQ(X,Y,Z) as a Function of Core Height for Westinghouse RFA Fuel 1.200 1.000 (0.0, 1.00)
T (4.0, 0.9615) 0.800 +
(4.0, 1.00)
T (12.0, 0.9615)
(4.0, 0.9615) 0.800 +
0.600 +
0.600 +
0.400 +
0.400 +
Core Height (ft)         K(Z) 0.0           1.000 0.200  -
0.200 -
                    <4           1.000
Core Height (ft)
                    >4           0.9615 12.0         0.9615 0.000 -                                                                 I 0.0               2.0           4.0             6.0       8.0 10.0           12.0 Core Height (ft)
K(Z) 0.0 1.000
<4 1.000
>4 0.9615 12.0 0.9615 0.000 -
0.0 2.0 4.0 6.0 Core Height (ft) 8.0 I
10.0 12.0


MCEI-0400-207 Page 19 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 2 FQ(X,Y,Z) and FAH(X,Y) Penalty Factors For Technical Specification Surveillance's 3.2.1.2, 3.2.1.3 and 3.2.2.2 Burnup                   FQ(X,Y,Z)               FAH(X,Y,Z)
MCEI-0400-207 Page 19 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 2 FQ(X,Y,Z) and FAH(X,Y) Penalty Factors For Technical Specification Surveillance's 3.2.1.2, 3.2.1.3 and 3.2.2.2 Burnup (EFPD) 0.
(EFPD)              Penalty Factor (%)        Penalty Factor (%)
4 12 25 50 75 100 125 150 175 200 225 250 275 300 325 350 375 400 425 440 465 483 498 513 FQ(X,Y,Z)
: 0.                      2.00                     2.00 4                        2.00                     2.00 12                        2.00                    2.00 25                        2.00                     2.00 50                        2.47                    2.00 75                        2.00                     2.00 100                        2.00                     2.00 125                        2.00                     2.00 150                        2.00                     2.00 175                        2.00                     2.00 200                        2.00                     2.00 225                        2.00                     2.00 250                        2.00                     2.00 275                        2.00                     2.00 300                        2.00                     2.00 325                        2.00                     2.00 350                        2.00                     2.00 375                        2.00                     2.00 400                        2.00                     2.00 425                        2.00                     2.00 440                        2.00                     2.00 465                        2.00                     2.00 483                        2.00                     2.00 498                        2.00                     2.00 513                        2.00                     2.00 Note:     Linear interpolation is adequate for intermediate cycle burnups. All cycle bumups outside of the range of the table shall use a 2% penalty factor for both FQ(X,Y,Z) and FAH(X,Y) for compliance with the Technical Specification Surveillances 3.2.1.2, 3.2.1.3 and 3.2.2.2.
Penalty Factor (%)
2.00 2.00 2.00 2.00 2.47 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 FAH(X,Y,Z)
Penalty Factor (%)
2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 Note:
Linear interpolation is adequate for intermediate cycle burnups. All cycle bumups outside of the range of the table shall use a 2% penalty factor for both FQ(X,Y,Z) and FAH(X,Y) for compliance with the Technical Specification Surveillances 3.2.1.2, 3.2.1.3 and 3.2.2.2.


MCEI-0400-207 Page 20 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.8 Nuclear Enthalpy Rise Hot Channel Factor - FMH(X,Y) (TS 3.2.2)
MCEI-0400-207 Page 20 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.8 Nuclear Enthalpy Rise Hot Channel Factor - FMH(X,Y) (TS 3.2.2)
The FAH steady-state limits referred to in Technical Specification 3.2.2 is defined by the following relationship.
The FAH steady-state limits referred to in Technical Specification 3.2.2 is defined by the following relationship.
2.8.1   F (X,Y)LCO= MARP(X,Y)*           1.0+         (1.0 P)]
2.8.1 F (X, Y)LCO= MARP(X,Y)*
1.0+
(1.0 P)]
where:
where:
FL (X, Y)LCO is defined as the steady-state, maximum allowed radial peak.
FL (X, Y)LCO is defined as the steady-state, maximum allowed radial peak.
FL (X, y)LCO includes allowances for calculation-measurement uncertainty.
FL (X, y)LCO includes allowances for calculation-measurement uncertainty.
MARP(X,Y) =         Cycle-specific operating limit Maximum Allowable Radial Peaks. MARP(X,Y) radial peaking limits are provided in Table 3.
MARP(X,Y) =
Thermal Power Rated Thermal Power RRH =Thermal Power reduction required to compensate for each 1% that the measured radial peak, F1H (X,Y), exceeds the limit. RRH also is used to scale the MARP limits as a function of power per the FaL (X, Y)LCO equation. (RRH = 3.34 (0.0 < P < 1.0))
Cycle-specific operating limit Maximum Allowable Radial Peaks. MARP(X,Y) radial peaking limits are provided in Table 3.
Thermal Power Rated Thermal Power RRH =Thermal Power reduction required to compensate for each 1% that the measured radial peak, F1H (X,Y), exceeds the limit. RRH also is used to scale the MARP limits as a function of power per the FaL (X, Y)LCO equation. (RRH = 3.34 (0.0 < P < 1.0))
The following parameters are required for core monitoring per the Surveillance requirements of Technical Specification 3.2.2.
The following parameters are required for core monitoring per the Surveillance requirements of Technical Specification 3.2.2.
UFRH(X, Y) x MI(X,Y) 2.8.2  FL (X,Y)suRv UMR x TILT where:
2.8.2 FL (X,Y)suRv UFRH(X, Y) x MI(X,Y)
FLL (XY)
UMR x TILT where:
(X~ysURV        Cycle dependent maximum allowable design peaking factor that ensures that the FAH(XY) limit will be preserved for operation within the LCO limits. FL (',')"       includes allowances for calculation-measurement uncertainty.
L (X~ysURV FL (XY)
Cycle dependent maximum allowable design peaking factor that ensures that the FAH(XY) limit will be preserved for operation within the LCO limits. FL (',')"
includes allowances for calculation-measurement uncertainty.


MCEI-0400-207 Page 21 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report D                                                         D FAH (X,Y)   = Design   radial power distribution for FAnH FAH (X,Y) is provided in Appendix Table A-3 for normal operation and in Appendix Table A-6 for power escalation testing during initial startup operation.
MCEI-0400-207 Page 21 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report D
MAH(XY)       The margin remaining in core location X,Y relative to the Operational DNB limits in the transient power distribution.
D FAH (X,Y) = Design radial power distribution for FAnH FAH (X,Y) is provided in Appendix Table A-3 for normal operation and in Appendix Table A-6 for power escalation testing during initial startup operation.
MAH(XY)
The margin remaining in core location X,Y relative to the Operational DNB limits in the transient power distribution.
MAH(X,Y) is provided in Appendix Table A-3 for normal operation and in Appendix Table A-6 for power escalation testing during initial startup operation.
MAH(X,Y) is provided in Appendix Table A-3 for normal operation and in Appendix Table A-6 for power escalation testing during initial startup operation.
UMR   = Uncertainty value for measured radial peaks. UMR is set to 1.0 since a factor of 1.04 is implicitly included in the variable MAH(Xy)"
UMR = Uncertainty value for measured radial peaks. UMR is set to 1.0 since a factor of 1.04 is implicitly included in the variable MAH(Xy)"
TILT = Peaking penalty that accounts for the peaking increase for an allowable quadrant power tilt ratio of 1.02, (TILT = 1.035).
TILT = Peaking penalty that accounts for the peaking increase for an allowable quadrant power tilt ratio of 1.02, (TILT = 1.035).
2.8.3 RRH =3.34 where:
2.8.3 RRH =3.34 where:
RRH = Thermal power reduction required to compensate for each 1% that the measured radial peak, F* (X,Y) exceeds its limit. (0 < P < 1.0) 2.8.4 TRH = 0.04 where:
RRH = Thermal power reduction required to compensate for each 1% that the measured radial peak, F* (X,Y) exceeds its limit. (0 < P < 1.0) 2.8.4 TRH = 0.04 where:
TRH =   Reduction in OTAT K1 setpoint required to compensate for each 1% that the measured radial peak, Fj (X,Y) exceeds its limit.
TRH =
2.8.5 FAH(XY) penalty factors for Technical Specification Surveillance 3.2.2.2 are provided in Table 2.
Reduction in OTAT K1 setpoint required to compensate for each 1% that the measured radial peak, Fj (X,Y) exceeds its limit.
2.9 Axial Flux Difference - AFD (TS 3.2.3) 2.9.1 The Axial FluxDifference (AFD) Limits are provided in Figure 5.
2.8.5 FAH(XY) penalty factors for Technical Specification Surveillance 3.2.2.2 are provided in Table 2.
2.9 Axial Flux Difference - AFD (TS 3.2.3) 2.9.1 The Axial FluxDifference (AFD) Limits are provided in Figure 5.


MCEI-0400-207 Page 22 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 3 Maximum Allowable Radial Peaks (MARPs)
MCEI-0400-207 Page 22 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 3 Maximum Allowable Radial Peaks (MARPs)
(Applicable for RFA Fuel)
(Applicable for RFA Fuel)
Core                                   Axial Peak Ht(ft.) 1.05 1.1     1.2   1.3     1.4     1.5     1.6 1.7   1.8   1.9   2.1     3.0     3.25 0.12   1.809 1.855 1.949 1,.995 1.974   2.107   2.050 2.009 1.933 1.863 1.778   1.315   1.246 1.2   1.810 1.854 1.940 1.995   1.974   2.107   2.019 1.978 1.901 1.831 1.785   1.301   1.224 2.4   1.809 1.853 1.931 1.978   1.974   2.074   1.995 1.952 1.876 1.805 1.732   1.463   1.462 3.6   1.810 1.851 1.920 1.964   1.974   2.050   1.966 1.926 1.852 1.786 1.700   1.468   1.387 4.8   1.810 1.851 1.906 1.945   1.974   2.006   1.944 1.923 1.854 1.784 1.671   1.299   1.258 6.0   1.810 1.851 1.892 1.921   1.946   1.934   1.880 1.863 1.802 1.747 1.671   1.329   1.260 7.2   1.807 1.844 1.872 1.893   1.887   1.872   1.809 1.787 1.733 1.681 1.598   1.287   1.220
Core Axial Peak Ht(ft.)
,8.4   1.807 1.832 1.845 1.857   1.816   1.795   1.736 1.709 1.654 1.601 1.513   1.218   1.158 9.6   1.807 1.810 1.809 1.791   1.738   1.718   1.657 1.635 1.581 1.530 1.444   1.143   1.091 10.8   1.798 1.787 1.761 1.716   1.654   1.632   1.574 1.557 1.509 1.462 1.383   1.101   1.047 11.4   1.789 1.765 1.725 1.665   1.606   1.583   1.529 1.510 1.464 1.422 1.346   1.067-   1.014
1.05 1.1 1.2 1.3 1.4 1.5 1.6 1.7 1.8 1.9 2.1 3.0 3.25 0.12 1.809 1.855 1.949 1,.995 1.974 2.107 2.050 2.009 1.933 1.863 1.778 1.315 1.246 1.2 1.810 1.854 1.940 1.995 1.974 2.107 2.019 1.978 1.901 1.831 1.785 1.301 1.224 2.4 1.809 1.853 1.931 1.978 1.974 2.074 1.995 1.952 1.876 1.805 1.732 1.463 1.462 3.6 1.810 1.851 1.920 1.964 1.974 2.050 1.966 1.926 1.852 1.786 1.700 1.468 1.387 4.8 1.810 1.851 1.906 1.945 1.974 2.006 1.944 1.923 1.854 1.784 1.671 1.299 1.258 6.0 1.810 1.851 1.892 1.921 1.946 1.934 1.880 1.863 1.802 1.747 1.671 1.329 1.260 7.2 1.807 1.844 1.872 1.893 1.887 1.872 1.809 1.787 1.733 1.681 1.598 1.287 1.220
,8.4 1.807 1.832 1.845 1.857 1.816 1.795 1.736 1.709 1.654 1.601 1.513 1.218 1.158 9.6 1.807 1.810 1.809 1.791 1.738 1.718 1.657 1.635 1.581 1.530 1.444 1.143 1.091 10.8 1.798 1.787 1.761 1.716 1.654 1.632 1.574 1.557 1.509 1.462 1.383 1.101 1.047 11.4 1.789 1.765 1.725 1.665 1.606 1.583 1.529 1.510 1.464 1.422 1.346 1.067-1.014


MCEI-0400-207 Page 23 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 5 Percent of Rated Thermal Power Versus Percent Axial Flux Difference Limits
MCEI-0400-207 Page 23 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 5 Percent of Rated Thermal Power Versus Percent Axial Flux Difference Limits S.
(-18, 100)                     (+10, 100)
W
                                                    ! IIII 90 +
(-18, 100)
Unacceptable Operation S.                                                  80 +
UAcceptable Operation
W UAcceptable Operation 70 +
(-36, 50)
! IIII 90 +
80 +
Unacceptable Operation
(+21, 50)
(+10, 100) 70 +
60 50 +
60 50 +
(-36, 50)                                                (+21, 50) 40 +
40 +
30 +
30 +
20 +
20 +
10 +/-
10 +/-
H1 i
H1 i
    -50       -40         -30   -20       -10           0     10       20       30       40       50 Axial Flux Difference (% Delta I)
-50  
-40  
-30  
-20  
-10 0
10 20 30 40 50 Axial Flux Difference (% Delta I)
NOTE: Compliance with Technical Specification 3.2.1 may require more restrictive AFD limits. Refer to OP/1/A/6100/22 Unit I Data Book of more details.
NOTE: Compliance with Technical Specification 3.2.1 may require more restrictive AFD limits. Refer to OP/1/A/6100/22 Unit I Data Book of more details.


MCEI-0400-207 Page 24 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.10     Reactor Trip System Instrumentation Setpoints (TS 3.3.1) Table 3.3.1-1 2.10.1 Overtemperature AT Setpoint Parameter Values Parameter                                   Value Nominal Tavg at RTP                                                   T' < 585.10 F Nominal RCS Operating Pressure                                       P' = 2235 psig Overtemperature AT reactor trip setpoint                             K1 < 1.1978 Overtemperature AT reactor trip heatup setpoint                       K2 = 0.0334/ 0 F penalty, coefficient Overtemperature AT reactor trip depressurization                     K3 = 0.001601/psi setpoint penalty coefficient Time constants utilized in the lead-lag compensator                   zl > 8 sec.
MCEI-0400-207 Page 24 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.10 Reactor Trip System Instrumentation Setpoints (TS 3.3.1) Table 3.3.1-1 2.10.1 Overtemperature AT Setpoint Parameter Values Parameter Nominal Tavg at RTP Nominal RCS Operating Pressure Overtemperature AT reactor trip setpoint Overtemperature AT reactor trip heatup setpoint penalty, coefficient Overtemperature AT reactor trip depressurization setpoint penalty coefficient Time constants utilized in the lead-lag compensator for AT Time constant utilized in the lag compensator for AT Time constants utilized in the lead-lag compensator for Tavg Time constant utilized in the measured Tavg lag compensator fl(AI) "positive" breakpoint fl (AL) "negative" breakpoint fl (AI) "positive" slope fl (AI) "negative" slope Value T' < 585.10F P' = 2235 psig K1 < 1.1978 K2 = 0.0334/0F K3 = 0.001601/psi zl > 8 sec.
for AT                                                                 T2 < 3 sec.
T2 < 3 sec.
Time constant utilized in the lag compensator for AT                   T3 < 2 sec.
T3 < 2 sec.
Time constants utilized in the lead-lag compensator                   T4 > 28 sec.
T4 > 28 sec.
for Tavg                                                               r 5 < 4 sec.
r5 < 4 sec.
Time constant utilized in the measured Tavg lag                       E6 < 2 sec.
E6 < 2 sec.
compensator fl(AI) "positive" breakpoint                                           = 19.0 %AI fl (AL) "negative" breakpoint                                         = N/A*
= 19.0 %AI
fl (AI) "positive" slope                                               = 1.769 %AT0/ %A1 fl (AI) "negative" slope The fl (Al) negative breakpoints and slopes for OTAT are less restrictive than the OPAT f2(AI) negative breakpoint and slope. Therefore, during a transient which challenges the negative imbalance limits the OPAT f2(AI) limits will result in a reactor trip before the OTAT fl (Al) limits are reached. This makes implementation of an OTAT fl(Al) negative breakpoint and slope unnecessary.
= N/A*
= 1.769 %AT0/ %A1 The fl (Al) negative breakpoints and slopes for OTAT are less restrictive than the OPAT f2(AI) negative breakpoint and slope. Therefore, during a transient which challenges the negative imbalance limits the OPAT f2(AI) limits will result in a reactor trip before the OTAT fl (Al) limits are reached. This makes implementation of an OTAT fl(Al) negative breakpoint and slope unnecessary.


MCEI-0400-207
'I' MCEI-0400-207 Page 25 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.10.2 Overpower AT Setpoint Parameter Values Parameter Nominal Tavg at RTP Overpower AT reactor trip setpoint Overpower AT reactor trip Penalty Overpower AT reactor trip heatup setpoint penalty coefficient Time constants utilized in the lead-lag compensator for AT Time constant utilized in the lag compensator for AT Time constant utilized in the measured Tavg lag compensator Time constant utilized in the rate-lag controller for Tavg f2(AI) "positive" breakpoint f2(AI) "negative" breakpoint f2(AI) "positive" slope f2(AI) "negative" slope Value T" < 585.1&deg;F K4 < 1.0864 K5 = 0.02/1F for increasing Tavg K5 = 0.0 for decreasing Tavg K6 = 0.001179/'F for T > T" K6 = 0.0 for T<T" TI > 8 sec.
'I'                                                                              Page 25 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.10.2 Overpower AT Setpoint Parameter Values Parameter                 Value Nominal Tavg at RTP                       T" < 585.1&deg;F Overpower AT reactor trip setpoint        K4 < 1.0864 Overpower AT reactor trip Penalty          K5 = 0.02/1F for increasing Tavg K5 = 0.0 for decreasing Tavg Overpower AT reactor trip heatup          K6 = 0.001179/'F for T > T" setpoint penalty coefficient              K6 = 0.0 for T<T" Time constants utilized in the lead-lag    TI > 8 sec.
-r2 < 3 sec.
compensator for AT                        -r2 < 3 sec.
T3 < 2 sec.
Time constant utilized in the lag          T3 < 2 sec.
T6 < 2 sec.
compensator for AT Time constant utilized in the            T6 < 2 sec.
T7 > 5 sec.
measured Tavg lag compensator Time constant utilized in the rate-lag    T7 > 5 sec.
= 35.0 %AI
controller for Tavg f2 (AI) "positive" breakpoint              = 35.0 %AI f2(AI) "negative" breakpoint              =-35.0 %AI f2(AI) "positive" slope                    = 7.0 %ATo/%AI f2 (AI) "negative" slope                  =7.0 %ATo/%AI
=-35.0 %AI
= 7.0 %ATo/%AI
=7.0 %ATo/%AI


MCEI-0400-207 Page 26 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.11 RCS Pressure, Temperature and Flow Limits for DNB (TS 3.4.1) 2.11.1 The RCS pressure, temperature and flow limits for DNB are shown in Table 4.
MCEI-0400-207 Page 26 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.11 RCS Pressure, Temperature and Flow Limits for DNB (TS 3.4.1) 2.11.1 The RCS pressure, temperature and flow limits for DNB are shown in Table 4.
2.12 Accumulators (TS 3.5.1) 2.12.1 Boron concentration limits during mod es 1 and 2, and mode 3 with RCS pressure
2.12 Accumulators (TS 3.5.1) 2.12.1 Boron concentration limits during mod es 1 and 2, and mode 3 with RCS pressure
            >1000 psi:
>1000 psi:
Parameter                                 Limit Cold Leg Accumulator minimum boron concentration.             2,475 ppm Cold Leg Accumulator maximum boron concentration.             2,875 ppm 2.13 Refueling Water Storage Tank - RWST (TS 3.5.4) 2.13.1 Boron concentration limits during modes 1, 2, 3, and 4:
Parameter Cold Leg Accumulator minimum boron concentration.
Parameter                                 Limit Refueling Water Storage Tank minimum boron                     2,675 ppm concentration.
Cold Leg Accumulator maximum boron concentration.
Refueling Water Storage Tank maximum boron                     2,875 ppm concentration.
Limit 2,475 ppm 2,875 ppm 2.13 Refueling Water Storage Tank - RWST (TS 3.5.4) 2.13.1 Boron concentration limits during modes 1, 2, 3, and 4:
Parameter Refueling Water Storage Tank minimum boron concentration.
Refueling Water Storage Tank maximum boron concentration.
Limit 2,675 ppm 2,875 ppm


MCEI-0400-207 j
MCEI-0400-207 j
Page 27 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 4 Reactor Coolant System DNB Parameters No. Operable PARAMETER                       INDICATION       CHANNELS               LIMITS
Page 27 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 4 Reactor Coolant System DNB Parameters No. Operable PARAMETER INDICATION CHANNELS LIMITS
: 1. Indicated RCS Average Temperature         meter                   4         < 587.2 'F meter                   3         < 586.9 'F computer                 4         < 587.7 'F computer                 3         < 587.5 OF
: 1. Indicated RCS Average Temperature meter 4  
: 2. Indicated Pressurizer Pressure             meter                   4         > 2219.8 psig meter                   3         > 2222.1 psig computer                 4         > 2215.8 psig computer                 3         > 2217.5 psig
< 587.2 'F meter 3  
: 3. RCS Total Flow Rate                                                           > 390,000 gpm*
< 586.9 'F computer 4  
*Note: The RCS minimum coolant flow rate assumed in the licensing analyses for the M I C20 core is 388,000 gpm. However, the flow is set at 390,000 gpm, which is conservative
< 587.7 'F computer 3  
< 587.5 OF
: 2. Indicated Pressurizer Pressure meter 4  
> 2219.8 psig meter 3  
> 2222.1 psig computer 4  
> 2215.8 psig computer 3  
> 2217.5 psig
: 3. RCS Total Flow Rate  
> 390,000 gpm*
*Note: The RCS minimum coolant flow rate assumed in the licensing analyses for the M I C20 core is 388,000 gpm. However, the flow is set at 390,000 gpm, which is conservative


MCEI-0400-207 Page 28 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.14 Spent Fuel Pool Boron Concentration (TS 3.7.14) 2.14.1 Minimum boron concentration limit for the spent fuel pool. Applicable when fuel assemblies are stored in the spent fuel pool.
MCEI-0400-207 Page 28 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.14 Spent Fuel Pool Boron Concentration (TS 3.7.14) 2.14.1 Minimum boron concentration limit for the spent fuel pool. Applicable when fuel assemblies are stored in the spent fuel pool.
Parameter                                 Limit Spent fuel pool minimum boron concentration.                   2,675 ppm 2.15 Refueling Operations - Boron Concentration (TS 3.9.1) 2.15.1 Minimum boron concentration limit for the filled portions of the Reactor Coolant System, refueling canal, and refueling cavity for mode 6 conditions. The minimum boron concentration limit and plant refueling procedures ensure that the Keff of the core will remain within the mode 6 reactivity requirement of Keff <
Parameter Limit Spent fuel pool minimum boron concentration.
2,675 ppm 2.15 Refueling Operations - Boron Concentration (TS 3.9.1) 2.15.1 Minimum boron concentration limit for the filled portions of the Reactor Coolant System, refueling canal, and refueling cavity for mode 6 conditions. The minimum boron concentration limit and plant refueling procedures ensure that the Keff of the core will remain within the mode 6 reactivity requirement of Keff <
0.95.
0.95.
Parameter                                 Limit Minimum Boron concentration of the Reactor Coolant             2,675 ppm System, the refueling canal, and the refueling cavity.
Parameter Limit Minimum Boron concentration of the Reactor Coolant System, the refueling canal, and the refueling cavity.
2,675 ppm


MCEI-0400-207 Page 29 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.16 Borated Water Source - Shutdown (SLC 16.9.14) 2.16.1 Volume and boron concentrations for the Boric Acid Tank (BAT) and the Refueling Water Storage Tank (RWST) during mode 4 with any RCS cold leg temperature < 300 'F and modes 5 and 6.
MCEI-0400-207 Page 29 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.16 Borated Water Source - Shutdown (SLC 16.9.14) 2.16.1 Volume and boron concentrations for the Boric Acid Tank (BAT) and the Refueling Water Storage Tank (RWST) during mode 4 with any RCS cold leg temperature < 300 'F and modes 5 and 6.
Parameter                             Limit Boric Acid Tank minimum contained borated           10,599 gallons water volume                                          13.6% Level Note: When cycle bumup is > 455 EFPD, Figure 6 may be used to determine the required BAT minimum level.
Parameter Limit Boric Acid Tank minimum contained borated water volume 10,599 gallons 13.6% Level Note: When cycle bumup is > 455 EFPD, Figure 6 may be used to determine the required BAT minimum level.
Boric Acid Tank minimum boron concentration             7,000 ppm Boric Acid Tank minimum water volume                 2,300 gallons required to maintain SDM at 7,000 ppm Refueling Water Storage Tank minimum                 47,700 gallons contained borated water volume                           41 inches Refueling Water Storage Tank minimum boron             2,675 ppm concentration Refueling Water Storage Tank minimum water             8,200 gallons volume required to maintain SDM at 2,675 ppm
Boric Acid Tank minimum boron concentration Boric Acid Tank minimum water volume required to maintain SDM at 7,000 ppm Refueling Water Storage Tank minimum contained borated water volume Refueling Water Storage Tank minimum boron concentration Refueling Water Storage Tank minimum water volume required to maintain SDM at 2,675 ppm 7,000 ppm 2,300 gallons 47,700 gallons 41 inches 2,675 ppm 8,200 gallons


&#xfd;!-'J&#xfd; r MCEI-0400-207 Page 30 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.17 Borated Water Source - Operating (SLC 16.9.11) 2.17.1 Volume and boron concentrations for the Boric Acid Tank (BAT) and the Refueling Water Storage Tank (RWST) during modes 1, 2, 3, and mode 4 with all RCS cold leg temperatures > 300'F.
&#xfd;!-' J&#xfd; r
Parameter                             Limit Boric Acid Tank minimum contained borated           22,049 gallons water volume                                          38.0% Level Note: When cycle burnup is > 455 EFPD, Figure 6 may be used to determine the required BAT minimum level.
MCEI-0400-207 Page 30 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.17 Borated Water Source - Operating (SLC 16.9.11) 2.17.1 Volume and boron concentrations for the Boric Acid Tank (BAT) and the Refueling Water Storage Tank (RWST) during modes 1, 2, 3, and mode 4 with all RCS cold leg temperatures > 300'F.
Boric Acid Tank minimum boron concentration             7,000 ppm Boric Acid Tank minimum water volume                 13,750 gallons required to maintain SDM at 7,000 ppm Refueling Water Storage Tank minimum                 96,607 gallons contained borated water volume                         103.6 inches Refueling Water Storage Tank minimum boron             2,675 ppm concentration Refueling Water Storage Tank maximum boron             2875 ppm concentration (TS 3.5.4)
Parameter Limit Boric Acid Tank minimum contained borated water volume 22,049 gallons 38.0% Level Note: When cycle burnup is > 455 EFPD, Figure 6 may be used to determine the required BAT minimum level.
Refueling Water Storage Tank minimum water           57,107 gallons volume required to maintain SDM at 2,675 ppm
Boric Acid Tank minimum boron concentration Boric Acid Tank minimum water volume required to maintain SDM at 7,000 ppm Refueling Water Storage Tank minimum contained borated water volume Refueling Water Storage Tank minimum boron concentration Refueling Water Storage Tank maximum boron concentration (TS 3.5.4)
Refueling Water Storage Tank minimum water volume required to maintain SDM at 2,675 ppm 7,000 ppm 13,750 gallons 96,607 gallons 103.6 inches 2,675 ppm 2875 ppm 57,107 gallons


MCEI-0400-207 Page 31 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Figure 6 Boric Acid Storage Tank Indicated Level Versus RCS Boron Concentration (Valid When Cycle Burnup is > 455 EFPD)
MCEI-0400-207 Page 31 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Figure 6 Boric Acid Storage Tank Indicated Level Versus RCS Boron Concentration (Valid When Cycle Burnup is > 455 EFPD)
This figure includes additional volumes listed in SLC 16.9.14 and 16.9.11 40.0 Q) 25.0 (D
This figure includes additional volumes listed in SLC 16.9.14 and 16.9.11 40.0 Q) 25.0 (D
-j 15.0 to 0   200   400   600 800 1000 1200 1400   1600 1800 2000 2200 2400   2600   2800 RCS Boron Concentration (ppmb)
-j 15.0 to 0
200 400 600 800 1000 1200 1400 1600 1800 2000 2200 2400 2600 2800 RCS Boron Concentration (ppmb)


MCEI-0400-207 Page 32 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report NOTE: Appendix A contains power distribution monitoring factors used in Technical Specification Surveillance. This data was generated in the McGuire 1 Cycle 20 Maneuvering Analysis calculation file, MCC-1553.05-00-0481. Due to the size of the monitoring factor data, Appendix A is controlled electronically within Duke and is not included in the Duke internal copies of the COLR. The Plant Nuclear Engineering Section will control this information via computer, file(s) and should be contacted if there is a need to access this information.
MCEI-0400-207 Page 32 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report NOTE: Appendix A contains power distribution monitoring factors used in Technical Specification Surveillance. This data was generated in the McGuire 1 Cycle 20 Maneuvering Analysis calculation file, MCC-1553.05-00-0481. Due to the size of the monitoring factor data, Appendix A is controlled electronically within Duke and is not included in the Duke internal copies of the COLR. The Plant Nuclear Engineering Section will control this information via computer, file(s) and should be contacted if there is a need to access this information.
Appendix A is included in the COLR copy transmitted to the NRC.}}
Appendix A is included in the COLR copy transmitted to the NRC.}}

Latest revision as of 13:37, 14 January 2025

Submittal of Core Operating Limits Report, Cycle 20, Revision 1
ML090220199
Person / Time
Site: McGuire Duke Energy icon.png
Issue date: 01/07/2009
From: Brandi Hamilton
Duke Energy Carolinas
To:
Document Control Desk, Office of Nuclear Reactor Regulation
References
Download: ML090220199 (34)


Text

hDuke BRUCE H HAMILTON OrEnergy@

Vice President McGuire Nuclear Station Duke Energy Corporation MG01 VP / 12700 Hagers Ferry Road Huntersville, NC 28078 704-875-5333 704-875-4809 fax bhhamilton@duke-energy. com January 7, 2009 U. S. Nuclear Regulatory Commission Document Control Desk Washington, D.C. 20555

Subject:

Duke Energy Carolinas, LLC (Duke)

McGuire Nuclear Station Docket Nos. 50-369 Unit 1, Cycle 20, Revision 1 Core Operating Limits Report Pursuant to McGuire Technical Specification (TS) 5.6.5.d, please find enclosed Revision 1 of the McGuire Unit 1 Cycle 20 Core Operating Limits Report (COLR).

The COLR was revised to include limits specific for completion of the Rod Cluster Control Assembly (RCCA) movement test for all shutdown banks and control banks A, B, and C for the remainder of cycle 20.

Questions regarding this submittal should be directed to Kay Crane, McGuire Regulatory Compliance at (704) 875-4306.

Bruce H. Hamilton Attachment Aw l www. duke-energy. corn

U. S. Nuclear Regulatory Commission January 7, 2009 Page 2 cc:

Mr. John Stang, Project Manager U.S. Nuclear Regulatory Commission Office of Nuclear Reactor Regulation Washington, D.C. 20555 Mr. Luis A. Reyes Regional Administrator U. S. Nuclear Regulatory Commission, Region II Atlanta Federal Center 61 Forsyth St., SW, Suite 23T85 Atlanta, GA 30323 Mr. Joe Brady Senior Resident Inspector McGuire Nuclear Station

MCEI-0400-207 Page 1 of 32 Revision I McGuire Unit 1 Cycle 20 Core Operating Limits Report Revision 1 December 2008 Calculation Number: MCC-1553.05-00-0489, Rev. 1 Duke Energy Date WI-M

&A4 CA-1 Prepared By:

Checked By:

Checked By:

Approved By:

(Sections 2.2 and 2.10 - 2.17)

/z4g

/2. h/ Ap QA Condition 1 The information presented in this report has been prepared and issued in accordance with McGuire Technical Specification 5.6.5.

MCEI-0400-207 Page 2 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report INSPECTION OF ENGINEERING INSTRUCTIONS x e V&w.*a Inspection Waived By:

(Sponsor)

Date:

CATAWBA V-CATAWBA MCE (Mechanical & Civil)

RES (Electrical Only)

RES (Reactor)

MOD Other (

)

Inspection Waived El E]

LI LI Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

OCONEE MCE (Mechanical & Civil)

RES (Electrical Only)

RES (Reactor)

MOD Other (

)

Inspection Waived El El El E]

El Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

MCGUIRE, MCE (Mechanical & Civil)

RES (Electrical Only)

RES (Reactor)

MOD Other (

)

Inspection Waived El Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

Inspected By/Date:

MCEI-0400-207 Page 3 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Implementation Instructions for Revision 1 Revision Description and PIP Tracking Revision 1 of the McGuire Unit 1 Cycle 20 COLR contains limits specific to the reload core and was revised to include limits specific for completion of the RCCA movement test for all shutdown banks and control banks A, B, and C for the remainder of McGuire Unit 1 Cycle 20.

Revision 1 was initiated by PIP #M-08-01203, CA#6.

Implementation Schedule Revision 1 may become effective immediately but must become effective prior to 1/15/2009.

This date is the expected date for the next scheduled quarterly RCCA movement test via PIP #M-08-01203, CA#6. The McGuire Unit 1 Cycle 20 COLR will cease to be effective during No MODE between Cycle 20 and 21.

Data files to be Implemented No data files are transmitted as part of this document.

MCEI-0400-207 Page 4 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report REVISION LOG Revision Effective Date Pages Affected 1-32, Appendix A*

0 August 2008 December 2008 COLR M I C20 COLR, Rev. 0 M 1 C20 COLR, Rev. 1 1

1-32

  • Appendix A contains power distribution monitoring factors used in Technical Specification Surveillance.

Appendix A is included only in the electronic COLR copy sent to the NRC.

MCEI-0400-207 Page 5 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.0 Core Operating Limits Report This Core Operating Limits Report (COLR) has been prepared in accordance with the requirements of the Technical Specification 5.6.5. The Technical Specifications that reference the COLR are summarized below.

TS Number COLR Section El Page Technical Specifications 1.1 Requirements for Operational Mode 6 2.1.1 Reactor Core Safety Limits 3.1.1 3.1.3 3.1.4 3.1.5 3.1.5 Shutdown Margin Moderator Temperature Coefficient Rod Group Alignment Limits Shutdown Bank Insertion Limits Shutdown Bank Insertion Limits 3.1.6 Control Bank Insertion Limits 3.1.6 Control Bank Insertion Limits 3.1.8 Physics Test Exceptions 3.2.1 Heat Flux Hot Channel Factor 3.2.2 Nuclear Enthalpy Rise Hot Channel Factor 3.2.3 Axial Flux Difference 3.3.1 Reactor Trip System Instrumentation Setpoint 3.4.1 RCS Pressure, Temperature and Flow limits for DNB 3.5.1 Accumulators 3.5.4 Refueling Water Storage Tank 3.7.14 Spent Fuel Pool Boron Concentration 3.9.1 Refueling Operations - Boron Concentration 5.6.5 Core Operating Limits Report (COLR)

COLR Parameter Mode 6 Definition RCS Temperature and Pressure Safety Limits Shutdown Margin MTC Shutdown Margin Shutdown Margin Shutdown Bank Insertion Limit Shutdown Margin Control Bank Insertion Limit Shutdown Margin Fq, AFD, OTAT and Penalty Factors FAH, AFD and Penalty Factors AFD OTAT and OPAT Constants RCS Pressure, Temperature and Flow Max and Min Boron Conc.

Max and Min Boron Conc.

Min Boron Concentration Min Boron Concentration Analytical Methods 2.1 2.2 2.3 2.4 2.3 2.3 2.5 2.3 2.6 2.3 2.7 9

9 9

11 9

9 11 9

15 9

15 2.8 20 2.9 2.10 2.11 2.12 2.13 2.14 2.15 1.1 21 24 26 26 26 28 28 6

The Selected Licensee Commitments that reference this report are listed below:

SLC Number Selected Licensing Commitment COLR Parameter 16.9.14 Borated Water Source - Shutdown Borated Water Volume and Conc. for BAT/RWST 16.9.11 Borated Water Source - Operating Borated Water Volume and Conc. for BAT/RWST COLR Section 2.16 2.17 El Pagte 29 30

MCEI-0400-207 Page 6 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1 Analytical Methods The analytical methods used to determine core operating limits for parameters identified in Technical Specifications and previously reviewed and approved by the NRC as specified in Technical Specification 5.6.5 are as follows.

1. WCAP-9272-P-A, "Westinghouse Reload Safety Evaluation Methodology," (W Proprietary).

Revision 0 Report Date: July 1985 Not Used for M1C20

2. WCAP-10054-P-A, "Westinghouse Small Break ECCS Evaluation Model using the NOTRUMP Code, "(W Proprietary).

Revision 0 Report Date: August 1985

3.

WCAP-10266-P-A, "The 1981 Version Of Westinghouse Evaluation Model Using BASH CODE", (W_ Proprietary).

Revision 2 Report Date: March 1987 Not Used for M1C20

4. WCAP-12945-P-A, Volume I and Volumes 2-5, "Code Qualification Document for Best-Estimate Loss of Coolant Analysis," (_W Proprietary).

Revision: Volume 1 (Revision 2) and Volumes 2-5 (Revision 1)

Report Date: March 1998

5.

BAW-10168P-A, "B&W Loss-of-Coolant Accident Evaluation Model for Recirculating Steam Generator Plants," (B&W Proprietary).

Revision 1 SER Date: January 22, 1991 Revision 2 SER Dates: August 22, 1996 and November 26, 1996.

Revision 3 SER Date: June 15, 1994.

Not Used for M1C20

t*l MCEI-0400-207 Page 7 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1 Analytical Methods (continued)

6. DPC-NE-3000-PA, "Thermal-Hydraulic Transient Analysis Methodology," (DPC Proprietary).

Revision 3 SER Date: September 24, 2003

7.

DPC-NE-300 1-PA, "Multidimensional Reactor Transients and Safety Analysis Physics Parameter Methodology," (DPC Proprietary).

Revision 0 Report Date: November 1991 (Republished December 2000)

8.

DPC-NE-3002-A, "FSAR Chapter 15 System Transient Analysis Methodology".

Revision 4 SER Date: April 6, 2001

9. DPC-NE-2004P-A, "Duke Power Company McGuire and Catawba Nuclear Stations Core Thermal-Hydraulic Methodology using VIPRE-01," (DPC Proprietary).

Revision 1 SER Date: February 20, 1997

10. DPC-NE-2005P-A, "Thermal Hydraulic Statistical Core Design Methodology;" (DPC Proprietary).

Revision 3 SER Date: September 16, 2002

11. DPC-NE-2008P-A, "Fuel Mechanical Reload Analysis Methodology Using TACO3," (DPC Proprietary).

Revision 0 SER Date: April 3, 1995 Not Used for M1C20

12. DPC-NE-2009-P-A, "Westinghouse Fuel Transition Report," (DPC Proprietary).

Revision 2 SER Date: December 18, 2002

13. DPC-NE-1004A, "Nuclear Design Methodology Using CASMO-3/SIMULATE-3P."

Revision 1 SER Date: April 26, 1996 Not Used for M1C20

MCEI-0400-207 Page 8 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 1.1 Analytical Methods (continued)

14. DPC-NF-2010A, "Duke Power Company McGuire Nuclear Station Catawba Nuclear Station Nuclear Physics Methodology for Reload Design."

Revision 2 SER Date: June 24, 2003

15. DPC-NE-201 IPA, "Duke Power Company Nuclear Design Methodology for Core Operating.

Limits of Westinghouse Reactors," (DPC Proprietary).

Revision 1 SER Date: October 1, 2002

16. DPC-NE-1005-P-A, "Nuclear Design Methodology Using CASMO-4 / SIMULATE-3 MOX,"

(DPC Proprietary).

Revision 0 SER Date: August 20, 2004

MCEI-0400-207 Page 9 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.0 Operating Limits The cycle-specific parameter limits for the specifications listed in section 1.0 are presented in the following subsections. These limits have been developed using NRC approved methodologies specified in Section 1.1.

2.1 Requirements for Operational Mode 6 The following condition is required for operational mode 6.

2.1.1 The Reactivity Condition requirement for operational mode 6 is that kff must be less than, or equal to 0.95.

2.2 Reactor Core Safety Limits (TS 2.1.1) 2.2.1 The Reactor Core Safety Limits are shown in Figure 1.

2.3 Shutdown Margin - SDM (TS 3.1.1, TS 3.1.4, TS 3.1.5, TS 3.1.6 and TS 3.1.8) 2.3.1 For TS 3.1.1, SDM shall be> 1.3% AK/K in mode 2 with k-eff< 1.0 and in modes 3 and 4.

2.3.2 For TS 3.1.1, SDM shall be > 1.0% AK/K in mode 5.

2.3.3 For TS 3.1.4, SDM shall be > 1.3% AK/K in modes I and 2.

2.3.4 For TS 3.1.5, SDM shall be > 1.3% AK/K in mode 1 and mode 2 with any control bank not fully inserted.

2.3.5 For TS 3.1.6, SDM shall be > 1.3% AK/K in mode 1 and mode 2 with K-eff> 1.0.

2.3.6 For TS 3.1.8, SDM shall be > 1.3% AK/K in mode 2 during Physics Testing.

MCEI-0400-207 Page 10 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 1 Reactor Core Safety Limits Four Loops in Operation 670 DO NOT OPERATE IN THIS AREA 660 6590 640 2400 psBia 630 2280 p1s1ia C)620 610 600 590 ACCEPTABLE 580111 0.10 0.2 0.4 0.6 0.8 1.0 1.2 Fraction of Rated Thermal Power

MCEI-0400-207 Page II of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.4 Moderator Temperature Coefficient - MTC (TS 3.1.3) 2.4.1 The Moderator Temperature Coefficient (MTC) Limits are:

The MTC shall be less positive than the upper limits shown in Figure 2. The BOC, ARO, HZP MTC shall be less positive than 0.7E-04 AK/K/PF.

The EOC, ARO, RTP MTC shall be less negative than the -4.3E-04 AK/K/°F lower MTC limit.

2.4.2 The 300 PPM MTC Surveillance Limit is:

The measured 300 PPM ARO, equilibrium RTP MTC shall be less negative than or equal to -3.65E-04 AK/K/°F.

2.4.3 The 60 PPM MTC Surveillance Limit is:

The 60 PPM ARO, equilibrium RTP MTC shall be less negative than or equal to

-4.125E-04 AK/K/ 0F.

Where, BOC = Beginning of Cycle (Burnup corresponding to the most positive MTC.)

EOC = End of Cycle ARO = All Rods Out HZP = Hot Zero Power RTP = Rated Thermal Power PPM = Parts per million (Boron) 2.5 Shutdown Bank Insertion Limit (TS 3.1.5) 2.5.1 Each shutdown bank shall be withdrawn to at least 222 steps except under the conditions listed in Section 2.5.2. Shutdown banks are withdrawn in sequence and with no overlap.

2.5.2 Shutdown banks may be inserted to 219 steps withdrawn individually for up to 48 hours5.555556e-4 days <br />0.0133 hours <br />7.936508e-5 weeks <br />1.8264e-5 months <br /> provided the plant was operated in steady state conditions near 100% FP prior to and during this exception.

MCEI-0400-207 Page 12 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 2 Moderator Temperature Coefficient Upper Limit Versus Power Level 1.0 U

C1

-0 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1 0.0 0

10 20 30 40 50 60 70 80 90 100 Percent of Rated Thermal Power NOTE: Compliance with Technical Specification 3.1.3 may require rod withdrawal limits.

Refer to OP/1/A/6100/22 Unit 1 Data Book for details.

I MCEI-0400-207 Page 13 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 3 Control Bank Insertion Limits Versus Percent Rated Thermal Power Fully Withdrawn (Maximum = 231) 231 220 200 180 160 140

= 120 0o 100 40 20 0

0 10 20 30 40 50 60 70 80 90 100 Percent of Rated Thermal Power The Rod Insertion Limits (RIL) for Control Bank D (CD), Control Bank C (CC), and Control Bank B (CB) can be calculated by:

Bank CD R/L = 2.3(P)- 69 {30 < P* 100}

Bank CC R/L = 2.3(P)+ 47 {O<P <80}

Bank CB R/L = 2.3(P) +163 {O<P <29.6}

where P = %Rated Thermal Power NOTES: (1) Compliance with Technical Specification 3.1.3 may require rod withdrawal limits. Refer to OP/1/A/6100/22 Unit 1 Data Book for details.

(2) Anytime any shutdown bank or control banks A, B, or C are inserted below 222 steps withdrawn, control bank D insertion is limited to > 200 steps withdrawn (see Sections 2.5.2 and 2.6.2)

MCEI-0400-207 Page 14 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Table 1 RCCA Withdrawal Steps and Sequence Fully Withdrawn at 222 Steps Control Control Control Control Bank A Bank B Bank C BankD 0 Start 0

0 0

116 0 Start 0

0 222 Stop 106 0

0 222 116 0 Start 0

222 222 Stop 106 0

222 222 116 0 Start 222 222 222 Stop 106 Fully Withdrawn at 224 Steps Control Control Control Control BankA BankB BankC BankD Fully Withdrawn at 223 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0

0 0

116 0 Start 0

0 223 Stop 107 0

0 223 116 0 Start 0

223 223 Stop 107 0

223 223 116 0 Start 223 223 223 Stop 107 Fully Withdrawn at 225 Steps Control Control Control Control BankA Bank B Bank C Bank D 0 Start 0

0 0

116 0 Start 0

0 225 Stop 109 0

0 225 116 0 Start 0

225

225 Stop 109 0

225 225 116 0 Start 225 225 225 Stop 109 Fully Withdrawn at 227 Steps Control Control Control Control BankA BankB BankC BankfD 0 Start 0

0 0

116 0 Start 0

0 224 Stop 108 0

0 224 116 0 Start 0

224 224 Stop 108 0

224 224 116 0 Start 224 224 224 Stop 108 Fully Withdrawn at 226 Steps Control Control Control Control BankA BankB BankC BankD 0 Start 0

0 0

116,

0 Start 0

0 2 26 Stop 110 0

0 226 116 0 Start 0

226 226 Stop 110 0

226 226 116 0 Start 226 226 226 Stop 110 Fully Withdrawn at 228 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0

0 0

116 0 Start 0

0 2 28 Stop 112 0

0 228 116 0 Start 0

228 228 Stop 112 0

228 228 116 0 Start 228 228 228 Stop 112 Fu Ily Withdrawn at 230 Steps Control Control Control Control BankA BankB BankC BankD' 0 Start 0

0 0

116 0 Start 0

0 227 Stop II 0

0 227 116 0 Start 0

227 227 Stop 111 0

227 227 116 0 Start 227 227 227 Stop 11 Fully Withdrawn at 229 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0

0 0

116" 0 Start 0

0 229 Stop 113 0

0 229 116 0 Start 0

229 229 Stop 113 0

229 229 116 0 Start 229 229 229 Stop 113 0 Start 0

0 0

116 0 Start 0

0 2 3 0 Stop 114 0

0 230 116 0 Start 0

230 230 Stop 114 0

230 230 116 0 Start 230 230 230 Stop 114 Fully Withdrawn at 231 Steps Control Control Control Control Bank A Bank B Bank C Bank D 0 Start 0

0 0

116 0 Start 0

0 231 Stop 115 0

0 231 116 0 Start 0

231 231 Stop 115 0

231 231 116

.0 Start 231 231 231 Stop 115

MCEI-0400-207 Page 15 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.6 Control Bank Insertion Limits (TS 3.1.6) 2.6.1 Control banks shall be within the insertion, sequence, and overlap limits shown in Figure 3 except under the conditions listed in Section 2.6.2. Specific control bank withdrawal and overlap limits as a function of the fully withdrawn position are shown in Table 1.

2.6.2 Control banks A, B, or C may be inserted to 219 steps withdrawn individually for up to 48 hours5.555556e-4 days <br />0.0133 hours <br />7.936508e-5 weeks <br />1.8264e-5 months <br /> provided the plant was operated in steady state conditions near 100% FP prior to and during this exception.

2.7 Heat Flux Hot Channel Factor - FQ(X,Y,Z) (TS 3.2.1) 2.7.1 FQ(X,Y,Z) steady-state limits are defined by the following relationships:

F RTh *K(Z)/P for P > 0.5 F RTP *K(Z)/0.5 for P < 0.5

where, P = (Thermal Power)/(Rated Power)

Note: The measured FQ(XY,Z) shall be increased by 3% to account for manufacturing tolerances and 5% to account for measurement uncertainty when comparing against LCO limits. The manufacturing tolerance and measurement uncertainty are implicitly included in the FQ surveillance limits as defined in COLR Sections.2.7.5 and 2.7.6.

2.7.2 FRT, =2.60 x K(BU)

-Q 2.7.3 K(Z) is the normalized FQ(X,Y,Z) as a function of core height. The K(Z) function for Westinghouse RFA fuel is provided in Figure 4.

2.7.4 K(BU) is the normalized FQ(X,Y,Z) as a function of burnup. K(BU) for Westinghouse RFA fuel is 1.0 for all burnups.

The following parameters are required for core monitoring per the Surveillance Requirements of Technical Specification 3.2.1:

D FL(X,Y,Z)OP = FQ(X,Y,Z)

  • MQ(X,Y,Z)

UMT

  • TILT

MCEI-0400-207 Page 16 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report where:

FJ (X,Y,Z)OP =

Fof(XYZ)

=

MQ(X,Y,Z) =

Cycle dependent maximum allowable design peaking factor that ensures that the FQ(X,Y,Z) LOCA limit will be preserved for operation within the LCO limits. F* (X,Y,Z)OP includes allowances for calculation and measurement uncertainties.

Design power distribution for FQ. FoD (X,Y,Z) is provided in Appendix A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.

Margin remaining in core location X,Y,Z to the LOCA limit in the transient power distribution. MQ(X,Y,Z) is provided in Appendix Table A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.

UMT =

Total Peak Measurement Uncertainty. (UMT = 1.05)

MT Engineering Hot Channel Factor. (MT = 1.03)

TILT =

Peaking penalty that accounts for the peaking increase from an allowable quadrant power tilt ratio of 1.02. (TILT = 1.035) 2.7.6 F(L RPS 2.. Q(X,Y,Z )

=

D FQ(X,Y,Z)

  • Mc(X,Y,Z)

UMT

  • TILT where:

F L(X,Y,Z)RPS Cycle dependent maximum allowable design peaking factor that ensures that the FQ(X,Y,Z) Centerline Fuel Melt (CFM) limit will be preserved for operation within the LCO limits.

FQ(X,Y,Z)"s includes allowances for calculation and measurement uncertainties.

D Design power distributions for FQ. FQ(X,Y,Z) is provided in Appendix Table A-I for normal operating conditions and in Appendix Table A-4 for power escalation testing during initial startup operation.

FQ(X,Y,Z)

McGuire Mc(X,Y,Z) =

UMT=

MT=

TILT =

MCEI-0400-207 Page 17 of 32 Revision 1 1 Cycle 20 Core Operating Limits Report Margin remaining to the CFM limit in core location X,Y,Z from the transient power distribution. Mc(X,Y,Z) is provided in Appendix Table A-2 for normal operating conditions and in Appendix Table A-5 for power escalation testing during initial startup operation.

Total Peak Measurement Uncertainty (UMT = 1.05)

Engineering Hot Channel Factor (MT = 1.03)

Peaking penalty that accounts for the peaking increase for an allowable quadrant power tilt ratio of 1.02. (TILT = 1.035) 2.7.7 KSLOPE = 0.0725 where:

KSLOPE is the adjustment to the K1 value from OTAT trip setpoint required to compensate for each 1% that F o (X,Y,Z) exceeds F oL (X,Y,Z)RPS 2.7.8 FQ(X,Y,Z) penalty factors for Technical Specification Surveillance's 3.2.1.2 and 3.2.1.3 are provided in Table 2.

MCEI-0400-207 Page 18 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Figure 4 K(Z), Normalized FQ(X,Y,Z) as a Function of Core Height for Westinghouse RFA Fuel 1.200 1.000 (0.0, 1.00)

(4.0, 1.00)

T (12.0, 0.9615)

(4.0, 0.9615) 0.800 +

0.600 +

0.400 +

0.200 -

Core Height (ft)

K(Z) 0.0 1.000

<4 1.000

>4 0.9615 12.0 0.9615 0.000 -

0.0 2.0 4.0 6.0 Core Height (ft) 8.0 I

10.0 12.0

MCEI-0400-207 Page 19 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 2 FQ(X,Y,Z) and FAH(X,Y) Penalty Factors For Technical Specification Surveillance's 3.2.1.2, 3.2.1.3 and 3.2.2.2 Burnup (EFPD) 0.

4 12 25 50 75 100 125 150 175 200 225 250 275 300 325 350 375 400 425 440 465 483 498 513 FQ(X,Y,Z)

Penalty Factor (%)

2.00 2.00 2.00 2.00 2.47 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 FAH(X,Y,Z)

Penalty Factor (%)

2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 2.00 Note:

Linear interpolation is adequate for intermediate cycle burnups. All cycle bumups outside of the range of the table shall use a 2% penalty factor for both FQ(X,Y,Z) and FAH(X,Y) for compliance with the Technical Specification Surveillances 3.2.1.2, 3.2.1.3 and 3.2.2.2.

MCEI-0400-207 Page 20 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.8 Nuclear Enthalpy Rise Hot Channel Factor - FMH(X,Y) (TS 3.2.2)

The FAH steady-state limits referred to in Technical Specification 3.2.2 is defined by the following relationship.

2.8.1 F (X, Y)LCO= MARP(X,Y)*

1.0+

(1.0 P)]

where:

FL (X, Y)LCO is defined as the steady-state, maximum allowed radial peak.

FL (X, y)LCO includes allowances for calculation-measurement uncertainty.

MARP(X,Y) =

Cycle-specific operating limit Maximum Allowable Radial Peaks. MARP(X,Y) radial peaking limits are provided in Table 3.

Thermal Power Rated Thermal Power RRH =Thermal Power reduction required to compensate for each 1% that the measured radial peak, F1H (X,Y), exceeds the limit. RRH also is used to scale the MARP limits as a function of power per the FaL (X, Y)LCO equation. (RRH = 3.34 (0.0 < P < 1.0))

The following parameters are required for core monitoring per the Surveillance requirements of Technical Specification 3.2.2.

2.8.2 FL (X,Y)suRv UFRH(X, Y) x MI(X,Y)

UMR x TILT where:

L (X~ysURV FL (XY)

Cycle dependent maximum allowable design peaking factor that ensures that the FAH(XY) limit will be preserved for operation within the LCO limits. FL (',')"

includes allowances for calculation-measurement uncertainty.

MCEI-0400-207 Page 21 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report D

D FAH (X,Y) = Design radial power distribution for FAnH FAH (X,Y) is provided in Appendix Table A-3 for normal operation and in Appendix Table A-6 for power escalation testing during initial startup operation.

MAH(XY)

The margin remaining in core location X,Y relative to the Operational DNB limits in the transient power distribution.

MAH(X,Y) is provided in Appendix Table A-3 for normal operation and in Appendix Table A-6 for power escalation testing during initial startup operation.

UMR = Uncertainty value for measured radial peaks. UMR is set to 1.0 since a factor of 1.04 is implicitly included in the variable MAH(Xy)"

TILT = Peaking penalty that accounts for the peaking increase for an allowable quadrant power tilt ratio of 1.02, (TILT = 1.035).

2.8.3 RRH =3.34 where:

RRH = Thermal power reduction required to compensate for each 1% that the measured radial peak, F* (X,Y) exceeds its limit. (0 < P < 1.0) 2.8.4 TRH = 0.04 where:

TRH =

Reduction in OTAT K1 setpoint required to compensate for each 1% that the measured radial peak, Fj (X,Y) exceeds its limit.

2.8.5 FAH(XY) penalty factors for Technical Specification Surveillance 3.2.2.2 are provided in Table 2.

2.9 Axial Flux Difference - AFD (TS 3.2.3) 2.9.1 The Axial FluxDifference (AFD) Limits are provided in Figure 5.

MCEI-0400-207 Page 22 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 3 Maximum Allowable Radial Peaks (MARPs)

(Applicable for RFA Fuel)

Core Axial Peak Ht(ft.)

1.05 1.1 1.2 1.3 1.4 1.5 1.6 1.7 1.8 1.9 2.1 3.0 3.25 0.12 1.809 1.855 1.949 1,.995 1.974 2.107 2.050 2.009 1.933 1.863 1.778 1.315 1.246 1.2 1.810 1.854 1.940 1.995 1.974 2.107 2.019 1.978 1.901 1.831 1.785 1.301 1.224 2.4 1.809 1.853 1.931 1.978 1.974 2.074 1.995 1.952 1.876 1.805 1.732 1.463 1.462 3.6 1.810 1.851 1.920 1.964 1.974 2.050 1.966 1.926 1.852 1.786 1.700 1.468 1.387 4.8 1.810 1.851 1.906 1.945 1.974 2.006 1.944 1.923 1.854 1.784 1.671 1.299 1.258 6.0 1.810 1.851 1.892 1.921 1.946 1.934 1.880 1.863 1.802 1.747 1.671 1.329 1.260 7.2 1.807 1.844 1.872 1.893 1.887 1.872 1.809 1.787 1.733 1.681 1.598 1.287 1.220

,8.4 1.807 1.832 1.845 1.857 1.816 1.795 1.736 1.709 1.654 1.601 1.513 1.218 1.158 9.6 1.807 1.810 1.809 1.791 1.738 1.718 1.657 1.635 1.581 1.530 1.444 1.143 1.091 10.8 1.798 1.787 1.761 1.716 1.654 1.632 1.574 1.557 1.509 1.462 1.383 1.101 1.047 11.4 1.789 1.765 1.725 1.665 1.606 1.583 1.529 1.510 1.464 1.422 1.346 1.067-1.014

MCEI-0400-207 Page 23 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Figure 5 Percent of Rated Thermal Power Versus Percent Axial Flux Difference Limits S.

W

(-18, 100)

UAcceptable Operation

(-36, 50)

! IIII 90 +

80 +

Unacceptable Operation

(+21, 50)

(+10, 100) 70 +

60 50 +

40 +

30 +

20 +

10 +/-

H1 i

-50

-40

-30

-20

-10 0

10 20 30 40 50 Axial Flux Difference (% Delta I)

NOTE: Compliance with Technical Specification 3.2.1 may require more restrictive AFD limits. Refer to OP/1/A/6100/22 Unit I Data Book of more details.

MCEI-0400-207 Page 24 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.10 Reactor Trip System Instrumentation Setpoints (TS 3.3.1) Table 3.3.1-1 2.10.1 Overtemperature AT Setpoint Parameter Values Parameter Nominal Tavg at RTP Nominal RCS Operating Pressure Overtemperature AT reactor trip setpoint Overtemperature AT reactor trip heatup setpoint penalty, coefficient Overtemperature AT reactor trip depressurization setpoint penalty coefficient Time constants utilized in the lead-lag compensator for AT Time constant utilized in the lag compensator for AT Time constants utilized in the lead-lag compensator for Tavg Time constant utilized in the measured Tavg lag compensator fl(AI) "positive" breakpoint fl (AL) "negative" breakpoint fl (AI) "positive" slope fl (AI) "negative" slope Value T' < 585.10F P' = 2235 psig K1 < 1.1978 K2 = 0.0334/0F K3 = 0.001601/psi zl > 8 sec.

T2 < 3 sec.

T3 < 2 sec.

T4 > 28 sec.

r5 < 4 sec.

E6 < 2 sec.

= 19.0 %AI

= N/A*

= 1.769 %AT0/ %A1 The fl (Al) negative breakpoints and slopes for OTAT are less restrictive than the OPAT f2(AI) negative breakpoint and slope. Therefore, during a transient which challenges the negative imbalance limits the OPAT f2(AI) limits will result in a reactor trip before the OTAT fl (Al) limits are reached. This makes implementation of an OTAT fl(Al) negative breakpoint and slope unnecessary.

'I' MCEI-0400-207 Page 25 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.10.2 Overpower AT Setpoint Parameter Values Parameter Nominal Tavg at RTP Overpower AT reactor trip setpoint Overpower AT reactor trip Penalty Overpower AT reactor trip heatup setpoint penalty coefficient Time constants utilized in the lead-lag compensator for AT Time constant utilized in the lag compensator for AT Time constant utilized in the measured Tavg lag compensator Time constant utilized in the rate-lag controller for Tavg f2(AI) "positive" breakpoint f2(AI) "negative" breakpoint f2(AI) "positive" slope f2(AI) "negative" slope Value T" < 585.1°F K4 < 1.0864 K5 = 0.02/1F for increasing Tavg K5 = 0.0 for decreasing Tavg K6 = 0.001179/'F for T > T" K6 = 0.0 for T<T" TI > 8 sec.

-r2 < 3 sec.

T3 < 2 sec.

T6 < 2 sec.

T7 > 5 sec.

= 35.0 %AI

=-35.0 %AI

= 7.0 %ATo/%AI

=7.0 %ATo/%AI

MCEI-0400-207 Page 26 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.11 RCS Pressure, Temperature and Flow Limits for DNB (TS 3.4.1) 2.11.1 The RCS pressure, temperature and flow limits for DNB are shown in Table 4.

2.12 Accumulators (TS 3.5.1) 2.12.1 Boron concentration limits during mod es 1 and 2, and mode 3 with RCS pressure

>1000 psi:

Parameter Cold Leg Accumulator minimum boron concentration.

Cold Leg Accumulator maximum boron concentration.

Limit 2,475 ppm 2,875 ppm 2.13 Refueling Water Storage Tank - RWST (TS 3.5.4) 2.13.1 Boron concentration limits during modes 1, 2, 3, and 4:

Parameter Refueling Water Storage Tank minimum boron concentration.

Refueling Water Storage Tank maximum boron concentration.

Limit 2,675 ppm 2,875 ppm

MCEI-0400-207 j

Page 27 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report Table 4 Reactor Coolant System DNB Parameters No. Operable PARAMETER INDICATION CHANNELS LIMITS

1. Indicated RCS Average Temperature meter 4

< 587.2 'F meter 3

< 586.9 'F computer 4

< 587.7 'F computer 3

< 587.5 OF

2. Indicated Pressurizer Pressure meter 4

> 2219.8 psig meter 3

> 2222.1 psig computer 4

> 2215.8 psig computer 3

> 2217.5 psig

3. RCS Total Flow Rate

> 390,000 gpm*

  • Note: The RCS minimum coolant flow rate assumed in the licensing analyses for the M I C20 core is 388,000 gpm. However, the flow is set at 390,000 gpm, which is conservative

MCEI-0400-207 Page 28 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.14 Spent Fuel Pool Boron Concentration (TS 3.7.14) 2.14.1 Minimum boron concentration limit for the spent fuel pool. Applicable when fuel assemblies are stored in the spent fuel pool.

Parameter Limit Spent fuel pool minimum boron concentration.

2,675 ppm 2.15 Refueling Operations - Boron Concentration (TS 3.9.1) 2.15.1 Minimum boron concentration limit for the filled portions of the Reactor Coolant System, refueling canal, and refueling cavity for mode 6 conditions. The minimum boron concentration limit and plant refueling procedures ensure that the Keff of the core will remain within the mode 6 reactivity requirement of Keff <

0.95.

Parameter Limit Minimum Boron concentration of the Reactor Coolant System, the refueling canal, and the refueling cavity.

2,675 ppm

MCEI-0400-207 Page 29 of 32 Revision 1 McGuire 1 Cycle 20 Core Operating Limits Report 2.16 Borated Water Source - Shutdown (SLC 16.9.14) 2.16.1 Volume and boron concentrations for the Boric Acid Tank (BAT) and the Refueling Water Storage Tank (RWST) during mode 4 with any RCS cold leg temperature < 300 'F and modes 5 and 6.

Parameter Limit Boric Acid Tank minimum contained borated water volume 10,599 gallons 13.6% Level Note: When cycle bumup is > 455 EFPD, Figure 6 may be used to determine the required BAT minimum level.

Boric Acid Tank minimum boron concentration Boric Acid Tank minimum water volume required to maintain SDM at 7,000 ppm Refueling Water Storage Tank minimum contained borated water volume Refueling Water Storage Tank minimum boron concentration Refueling Water Storage Tank minimum water volume required to maintain SDM at 2,675 ppm 7,000 ppm 2,300 gallons 47,700 gallons 41 inches 2,675 ppm 8,200 gallons

ý!-' Jý r

MCEI-0400-207 Page 30 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report 2.17 Borated Water Source - Operating (SLC 16.9.11) 2.17.1 Volume and boron concentrations for the Boric Acid Tank (BAT) and the Refueling Water Storage Tank (RWST) during modes 1, 2, 3, and mode 4 with all RCS cold leg temperatures > 300'F.

Parameter Limit Boric Acid Tank minimum contained borated water volume 22,049 gallons 38.0% Level Note: When cycle burnup is > 455 EFPD, Figure 6 may be used to determine the required BAT minimum level.

Boric Acid Tank minimum boron concentration Boric Acid Tank minimum water volume required to maintain SDM at 7,000 ppm Refueling Water Storage Tank minimum contained borated water volume Refueling Water Storage Tank minimum boron concentration Refueling Water Storage Tank maximum boron concentration (TS 3.5.4)

Refueling Water Storage Tank minimum water volume required to maintain SDM at 2,675 ppm 7,000 ppm 13,750 gallons 96,607 gallons 103.6 inches 2,675 ppm 2875 ppm 57,107 gallons

MCEI-0400-207 Page 31 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report Figure 6 Boric Acid Storage Tank Indicated Level Versus RCS Boron Concentration (Valid When Cycle Burnup is > 455 EFPD)

This figure includes additional volumes listed in SLC 16.9.14 and 16.9.11 40.0 Q) 25.0 (D

-j 15.0 to 0

200 400 600 800 1000 1200 1400 1600 1800 2000 2200 2400 2600 2800 RCS Boron Concentration (ppmb)

MCEI-0400-207 Page 32 of 32 Revision I McGuire 1 Cycle 20 Core Operating Limits Report NOTE: Appendix A contains power distribution monitoring factors used in Technical Specification Surveillance. This data was generated in the McGuire 1 Cycle 20 Maneuvering Analysis calculation file, MCC-1553.05-00-0481. Due to the size of the monitoring factor data, Appendix A is controlled electronically within Duke and is not included in the Duke internal copies of the COLR. The Plant Nuclear Engineering Section will control this information via computer, file(s) and should be contacted if there is a need to access this information.

Appendix A is included in the COLR copy transmitted to the NRC.