ML20062K324

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Summary of 801030 Meeting W/Util & Bechtel Re Means by Which Power Cables in Containment Are Protected from Overcurrent. Draft Response to NRC Position 040.15 Encl
ML20062K324
Person / Time
Site: Farley Southern Nuclear icon.png
Issue date: 11/28/1980
From: Kintner L
Office of Nuclear Reactor Regulation
To:
Office of Nuclear Reactor Regulation
References
NUDOCS 8012120615
Download: ML20062K324 (54)


Text

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NUCLEAR REGULATORY COMMISSION E WASHINGTON, D. C. 20555 3.' E o,g ~ ~,~ C. n'2 Docket No. 50-364 APPLICANT: Alabama Power Company FACILITY: Joseph M. Farley Nuclear Plant, Unit 2

SUBJECT:

SUMMARY

OF OCTOBER 30, 1980 MEETING REGARDING REVIEW 0F OPERATING LICENSE APPLICATION The purpose of the meeting was to hear and discuss the means by which power cables in containment electrical presentation are protected from over current. The presentation was in response to a Request No. 040.15. trans-mitted by letter dated September 10, 1980. Enclosure 1 is a list of atten-dees. Enclosure 2 is the draft response to Request No. 040.15 that was discussed in the meeting. Staff said the draft response was well-prepared and acceptable for review.. Applicant plans to submit this response the week of November 10, 1980, with minor modifications as discussed in the meeting. ~ . E, l Lester L. Kintner, Project Manager Licensing Branch No. 2 Division of Licensing

Enclosures:

As stated cc: See next page THIS DOCUMENT CONTAINS POOR QUAUTl PAGES E 01212 0 hIk

r o Mr. F. L. Clayton, Jr., Senior Vice President Alabama Power Company Post Office Box 2641 Birmingham, Alabama 35291 cc: Mr. W. O. Whitt Executive Vice President Alabana Power Company Post Office Box 2641 Birmingham, Alabama 35291 Mr. Ruble A. Thomas Vice President Southern Company Services, Inc. Post Office Box 2625 Birmingham, Alabama 35202 i Mr. George F. Trowbridge Shaw, Pittman, Potts and Trowbridge 1800 M Street, N. W. Washington, D. C. 20036 Mr. W. Bradford NRC Resident Inspector P. O. Box 1814 Dothan, Alabama 36302 b l i ,1

ENCLOSURE 1 0CTOBER 30, 1980 MEETING ALABAMA POWER COMPANY - NRC OVERCURRENT PROTECTION R. Fitzpatrick Power Systems Branch, DSI, NRC

0. Chopra Power Systems Branch, DSI, NRC L. Kintner Licensing Branch No. 2, 00L, NRC H. Bell Bechtel J. Love Bechtel R. George Alabama Power Company
0. Kingsley Alabama Power Company K. McCracken Alabama Power Company T. Milton Southern Company Services i

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1 6 PROTECTION ANALYSIS FOR RESPONSE TO NRC STAFF POSITION 040.15 CONTAINMENT PENETRATION OVERCURRENT PROTECTION J. M. FARLEY NUCLEAR PLANT UNIT 2 3 1. The following categories of electrics.1 circuits penetrate the containment: A. Medium voltage power for Reactor Coolant Pump Motors: 39, 4.16 KV B. Low voltage power: 3 9, 600V, 480V and 208V C. Low voltage control power: 120V AC, 125V DC D. Lighting circuits: 480/277V AC E. Instrunentation circuits using electronic power supplies F. Instrumentation cirecits which generate their own signal (e.g., thermocouples) 2. Categories 1E and 1F above will not be discussed further because they are inherently self-limiting and of such low power to be of no concern. 3. For Category 1A, the power supply circuits to the Reactor Coolant Pump Motors, Table 1 and Figure 1 depict the primary and backup overcurrent protection devices provided by the existing plant design. As shown in Figure 1, adequate time-current coordination exists between the motor feeder breaker overcurrent protection and the bus supply breaker over-current protection to provide primary and backup overload and short circuit protection for the containment penetration conductors. In regard to NRC Staff Position 040.15B, the G. E. switchgear and the associated overcurrent relays are suitable for the service environment in the plant area where they are installed. However, the switchgear is non-Class IE and no scismic qualification data was obtained for this equipment. Other plants have utilized similar type switchgear in Class IE application, In regard to NRC Staff Position 040.15E, the external control power used for tripping both the primary and backup breakers is currently provided from the same 125V DC section of the 250V DC Turbine Building Battery. A modification will be made to provide 125V DC control power to the primary and backup breakers from different 125V DC sections of the Turbine Building Battery. The 125V DC control powe r cables for the backup breakers will be installed in conduit and be physically separated from the 125V DC control power cables for the primary breakers. 1

4. Category 1B consists of low voltage power supply circuits to equipment loads inside the containment which are powered from 600V AC load centers, 600V AC motor control centers, 208V AC motor control centers, 600V AC distribution panels, and the 480V AC, 3 9 supplies to the H2 ^ recombiners. Each of these sub-categories will be discussed. separately ~ below. A. 600V AC Load Centers: Table 2 provides a tabulation of the loads inside the containment which are powered from 600V AC load centers. As shown on Figure 2, the existing load feeder breakers which pro-vide the primary overcurrent protection provide both short circuit and overload protection for the containment penetration conductors. However, the existing bus supply breakers are magnetic trip only breakers and as shown on Figure 2 do not provide thermal overload protection. Therefore, a modification will be made to provide MSCP fuses in series with each phase of the power cables for the loads in Table 2.4 The MSCP fuses will be located between the load center feeder breakers and the containment penetration conductors as shown on the single line on Figure 2. The MSCP fuses will pro-vide adequate backup overload and short circuit protection for the containment penetration conductors as shown on Figure 2. B. 600V AC Motor Control Centers: Table 3 provides a tabulation of the loads inside the containment which are powered from 600V AC Motor Control Centers (MCC's). As shown in Table 3, three sizes of containment penetration conductors are used for these loads (#4/0 AWG, #6 AWG and #2 AWG). Figure 3 shows the time-current coordination curves for the existing overcurrent protection devices associated with the #4/0 AWG pene-tration conductors. As shown in Figure 3, adequate time-current coordination exists between the 600V MCC breaker feeding the load and the 600V load center breaker which supplies the MCC to provide i } primary and backup overload and short circuit protection for the 44/0 containment penetration conductors. Figure 4 shows the time-current coordination curves for the existing overcurrent protection devices associated with the #6 AWG contain-l ment penetration conductors. As shown on Figure 4, the existing 600V MCC breakers and 0/L relays provide primary overcurrent protec-tion for both short citcuit and overload protection of the containment penetration conductors. However, the existing 600V load center

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s breakers which' supply the 600V MCC's do not provide adequate backup overcurrent protection. Therefore, a modification will be made to provide MSCP fuses in series with each phase of the power cables for the loads in Table 3 M ich use #6 AWG penettation con-ductors. The NSCP fuses will be located between the 600V MCC's and the containment penetration conductors as shown on the' single line on Figure 4'. The MSCP fuses will provide adequate backup overload and short circuit protection for the #6 AWG penetration conductors as shown on Figure 4 Figure 5 shows the time-current coordination curves for the existing overcurrent protection devices associated with the #2 AWG contain-ment penetration conductors. As shown on Figure 5, the existing 600V MCC breakers and 0/L relays provide adequate primary over-current protection for both short circuit and overload protection of the penetration conductors. However, the existing 600V load center breakers which supply the 600V HCC's do not provide adequate backup overcurrent protection. Therefore, a modification will be made to previde MSCP fuses in series with each phase of the power cables for the loads in Table 3 which use #2 AWG penetration conduc-The MSCP fuses will be located between the 600V MCC's and the l tors. containment penetration conductors as shown on the single line on Figure 5. The MSCP fuses will provide adequate backup overload and short circuit protection for the #2 AWG containment penetration conductors as shown on Figure 5. C. 208V Motor Control Centers: Table 4 provides a tabulation of the loads inside the containment which are powered from 208V MCC's. As showa on Figure 6, adequate primary and backup overload and short circuit protection is provided for the penetration conductors by the existing 208V MCC breakers / overload relays, and the 600V MCC breakers which supply the 208V MCC's. X C/u/p AA -/J ~ J Th,yp - /5fl. /-h M x4d a ~7J ~ TA ~ ed -y JJmA7 f 41p.f L. y l Th~ Lh ~<2/ A Sh*732 *d& Q. 3 i ~

8 B D. 600V AC Distribution Panels: Table 5 provides a tabulation of the pressurizer heater groups inside the containment which are powered from the 600V AC distribution panels. As shown on Figure 7, adequate primary and backup overload and short circuit. protection is provided for the penetration conductors by the distribution panel breakers and the 600V load center breakers which"iupply power to the distribution panels. l I E. 480V, 3 9 Supplies to H2 Recombiners: Table 6 provides a tabulation of the primary and backup overcurrent protection which exists for the containment penetration conductors associated with the H2 Recombiner power supplies. As shown on Figure 8, adequate primary and backup overcurrent protection is provided for short circuit and overload protection of the penetration conductors. 5. Category IC consists of low voltage control power supply circuits to 120V AC and 125V DC devices located inside the containment which originate from 120V AC or 125V DC distribution panels or control power cabinets located outside the containment. Subcategories of Category IC consist of power supplies to 125V DC and 120V AC solenoid valves, power supplies to the Control Rod Drive Mechanism (CRDM) and power supplies to the Rod Position Indication (RPI) system. Each of these subcategories will be discussed separately below. A. 125V DC and 120V AC Solenoid Power Supplies: Table 7 provides a list of the solenoid valves inside the containment which are powered from 125V DC and 120V AC distribution panels. Figure 9 shows the time-current coordination curves for the existing 3 Ampere fuses which providei primary overcurrent protection for the penetration conductors, and for the existing 30 Ampere breakers which provide backup overcurrent protection. As shown on Figure 9, adequate primary and backap short circuit and overload protection for the containment penetration conductors is provided by the existing fuses and breakers. 1 i l l 4

r B. CRDM Power Supply: Table 8 provides a tabulation of the CRon stationary gripper and lift control power cables which penetrate the containment. Each of these cables have adequate primary short circuit and overload protection provided by fuses located in the Rod Control Power Cabinets as shown on Figures 10 and 11. In addition, these cables are de-energized on a SIAS signal which will eliminate the possibility of a cable fault damaging the penetration conductors subsequent to a LOCA. C. Rod Position Indication (RPI) Distribution Panels: Table 9 and Figure 11A show the existing primary and backup overcurrent protec-tion devices for the RPI power supply penetration conductors. As shown on Figure 11A, adequate primary and backup short circuit and overload protection is provided for the containment penecration conductors. 5

t Category 1D consists of 480/277V AC lighting circuits inside the contain-6. ment as shown on Table 10 which are powered from 600V AC to 480/277V AC lighting transformers located outside the containment. Figures 12 and 13 show the time-current coordination curves for the existing overcurrent protection provided on these circuits. As shown on Figure 12, adequate primary short circuit and overload protec-tion is provided for the containment penetration conductors by the existing 600V AC load center feeder breaker. However, as the 600V AC load center supply breaker is a magnetic trip only breaker, no backup overload protection is provided by the 600V load c.anter supply breaker. A modification will be made to add MSCP fuses between the 225 KVA As shown on Figure 12, lighting transformer and the penetration conductors. the MSCP fuses will provide adequate short and overload backup protection for the penetration conductors. l As shown on Figure 13, adequate primary and backup overload and short circuit protection is provided for the containment penetration conductors by the existing 600V AC MCC breaker and the 600V AC load center feeder breaker which supply power to the 75 KVA lighting transformer. NRC Staff Position 040.15B - All primary and backup overcurrent protection 7. devices discussed in Items 1 thru 6 above are suitable for operation in All MSCP the plant area service environments where they are installed. fuse cabinets which will be added to provide backup protection for both non-Class IE and Class IE circuits as discussed in Items 1 thru 6 above will be qualified to IEEE 323-74 and IEEE 344-75. 4 6

( CALCULATION SHEET Npt CALC. NO. REV.NO. O DATE CHECKED DATE f.* ORIGINATOR mo;ECr d. M. FxW GerW f M M e 2 ao. No. ~7&*)"7-Ao @/ PON M " sacEr No-sus;ECT i T h s \\_ E f. - 4, /4 kV MEDWM VouTME 2 3 4160 V AC PR.\\ MAR'T SACK-uP fol@ATl0N pro (6citON PRoffic.ficSJ CABLE 5if,6 5 S ERV i C E. mg DA04 D Act i 8eac4er Coolant .2. A D I AC 66 K T. A c 6'4B iooo McM 600oHP 7 NIII TD 4# Pump 2A (Ag. A,1G) g g a m mso ss Reacdor Coolant gg DB03 D BO I e I Ac.G(, k T. AC. 5"6 6 1000 McM (,000l# 10 Pump G.5 ( 2 416) pgry i g ig g, 4,9 ag io > Tn G.9 13 DCO3 bc o4 Recher (colonk 2C. OTAcosk I AC G36 gooo McM &ccc WP id f Pa m g a.c (Am4.is) 7'cMii' Wi2no4s

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4 l CALCULATION SHEET pH CA LC. NO. REV.NO. OR INATOR DATE CHECKED DATE 7 E B NO. PROJECT SHEET NO [ /gr-7 A SUSJECT 3 "T* h % \\ G 1 - 1200L A~J 12ovAc Sole sid.s 4 s PRtIV) ART *$'."uh g now<a naa pgafj p 'o s v.t c, SFR.y G FUSE e DtiTR PML gigg (g PEER 9:02. Eal;q Pat 'rc. osA) btSTE.Pu,2A 8 VLv (445 A') o A 3 Ames '[^ '"5 N 70 + I '2. y, to ~ PR22 Pun.7.elie( F6i(Tc-AsA) 04T2.Pu.:b si yta(444ty n 8 ^"f' '8 A #",'" + l'1 lo 32 1 c4down Linc.Tsd, PBS (Tc ow) D &r.9v. 2A 2 412-35 is VLV- (454) 3 Aup3 t{A i4 lA4tienon Line Tsc{, F 86(Tc-06A) DiaTE PNdA / t is

  • I2 36 VLV (460 3Amys 's,'," '""

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  • 1 Sf Rm+11.wl. VLV 3 Amp

[ 24 P8tg Ed TnMo Dm F5s(Tc-2s5) Dih. Pnl 2D 2s l 4aWP5 DM %K 3 Amps $'jff N 12 3f i 2e f tu,v, & y Fs',ctc4,o um. N on 27 25 wv(aise 36t5 'QtN" *11 3I l 2' Rc5 PRH Aud ?BS(fc 870 buit. Pat 2b co vtv(ad 3% tcq" #4 x =a ves;s ts%n 1,et Fmenn .wr.re. :n 15 A CM 194-IIl 3.7 32 VtV (fisu 3Aweg cu + tr F.MW o P.t,f FB2(fc-r73) Ostr.N. a 3' 8" *I I M $ NL(t1MA) 3 Angs Qig x cncit-reoww[a = w.v3 % nce '3 AT) 'S$ Nb %d7plvil(7tlaF5) 35

C p L CALCULATION SHEET CA LC. NO. REv.NO. Y DATE CHECKED DATE f MiGINATOR 1.h FMM Nwde PlaWIr-M 4 2. 758l'7 - to

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rROnct 9 b N kf-SHEET NO. 7 -- sued CT 1 A' TA 6LL~ 7 3 O

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12sybc P84f S1;RN\\C.E MM c.a stE t.cah REMAR% 7 DISTR. ?a g,geg ( g) e Accuts. fig SuffLY F62 (7(.08A) Dtst PNL 2A n ica cKrexR. 12 35 3 AMpb + VEN T ISOL, C KT Wl3 to AccuM. Nz SUPPLY FBG(TC 09A) OtsT. PHL. ZA 'S C NGNT IGOL. 3 AMPS cgTa 13 ACCuto. LIME fB'l(TC-08A) DrST PNL. 2A ,1 TFtr tSol. 3 pynp3 ISA 5"?$ II' E cT ( ACCutA. LINE FB6(TC-06A) OST PHL 2A 3 TEST ISOL. 3 AMPS c^ rib 5R 11 A CCU/4 f It i FE3 (TC-08A) Otsr. FNL 2A /2 35 itNC trol. 3 gigp3 tCgcgr Qki w A cc ute FILL. IB7(TC-OgA) Ct:7 FNL A ITA C KR i ** 3r LlHE ISC L. 3 Apfg ,o 3' ACCU M. t NJ EC. FB5(TC-09A) 'Dist. PNL 2A 11 TCST* UNE (Soc. 3 /WPS f EST I2 3 E' ps ATUtd.INJLC fB9(TCD@A)(DIST. PML2A CA CKY $4 l2 35 TEST UNE ISQL, 3 AMPS cKTJt13 u AccotA N, SUFttY FB2(TC-298) Orsr PHL 10 ?s I C C + VENT ISOL. 3At4f$ f T u ACCUIA. La N E FB4(TC-296) tt:7. fgi zc 21 TEST ISOL. 3 py4pg cf KR j2 3[ it a 29 ACCUM. F(LL. F53 (TC-298) OLST. All ZD fZ 33 so LINE ISOL. 3 ArtPS ' c^ $r Y R Mr014. INJECT. FB5(TC-296) Dis r P Nt. 2 D 8 12. 35 > TEST LINE ISoc. 3 AMP 5 '#^'fgf ( (y n RCP GEAL LEAK F88(r(-0C A) Onr, pyg, 2p I2 35 C'Ff iSoc. 3 NAPS tigr,BIR so as W *."PE C SV'S FBI (TC-298) O'Sr PNL 2D ISA CKT M i2 ?? crMT PORGE 3 AMPS CKT V 8 m iso c. c..., --,. m a m

U O CALCULATION SHEET t CALC. NO. REV.NO. O DATk CHECKED DATE RIGINATOR

  • N
  • b EM Mb 1 JOS NO.

PROJECT 3 CI ~7 SHEET NO M SUSJECT TA RLE 7 x 3 4 P R.)(V W Rf1' sect-PP s M.sdec60u w 904 e Nb LoAb R.EMAdLW S E RN/\\C.E MM DtSTR.. N! 6 Weir (W) a T"U E ME M t VST. PNL 2A e L E TOO'a)N Ot iFtCL F89(TC OCA) I SA CKr BAR I2 35 s y-A [ff.lNf,(l ? i Scl. VLV 3 pyp3 TH.G va t vi 901M NBAFP Otsr PM. 2C S V'S MuST Offt 2 ' O CA ~ ^ 3OF CKT aks 12 35 S V-A TO O F C.*. THE 3 AMPS cr349 yptyg, Sq A WG ASC DIST PNL 2A nn prowtonir ~Z.506DPSA ISA CKTB61. /z 3F SV-E cpurge suo 13 e0 WEN FCEDs. 3AM rKT # 23 ( , RCP S E A L t EA K F82(TC oCA) DtST. PNL 2A OfF (Sol.. 3 AtAp~c 15A C G Okt. I2 35 CYT w I 7 sr RCP SEAL LEAK FBt(TC-27B) DIST. PNL. 20 ISA CKY 8KS /2. 35~ OFF (SO L. [ 3 pptp3 cxr4tr 'e RCS ALTEtCHATE Tol(TC-06A) WT. PNL. 2 A 6A CU BM /2. 35 citMGING t l'.'E 3 p p,IS CKT F1/S 11 RCS NORMA L. F8t(TC-278) DIST PNL 2D IS/ Cr7 G ut 12 3T CHA RGitVG LINE 2 pp.qg Cera m 11 RCPC. VESSE L f87(TC-258) DIST PHt. 2D GA C 8W I2 35 as LCAlt Off ISX. 3 g4pS eyr 7 ,e PRER REL. TNK FB2(TC-258) Citr PMt. 20 TO RM W SOPFt.'l 3 pt.qs IS^ CVT Bd. I2 35 2s CfT R 7 RCP SEALS w79. F36(TC-276) DIST PNI. ZD ISA CKY BW /2 3,[ 11 BYPAGS ISOL 3 At/Fe CKr # /s-2, 2e EXCESS t LTDWN f65(rc-2.78) DIST. PNL 20 .[ TO Ver of fCDT 3AtG5 ISf K. Vf l: m I Tuv E A8E !w!O lit 00WN OR:nCE f8C(TC-06A) DIST PHL 2 At 12 35 S V-A 5jES I S O C.. 3 AMP 3 '5^g?Ej ( N GA t*P DIST INL LC Seru n 1 Mu 1605A=^ 3% CKT EkB l2 ?! SV-A oft,y rs orgs 13 \\ 3 PMPS C K Y tt Q rg y,nvt.5+A Hns AE1*ntbPWT N6AGC CES T P N L 2A 2&os 'D-A ITA CKT Bxt /2 35~ S V-8 QWTUL AWV a FM e4 Mrei 3 M M P,5 CKT' # 23

^- O l O. CALCULATION SHEET CALC. seO. REV.NO. O U-- DATE CHECKED DATE ) ORIGINATOR N 'b E S ". N 4Af kb 41 JOS NO. PROJECT ~ SUSJECT n SP4EET NO. M #[ __ i." _. 8 b T ACLE 7 I 3 t* 4 4 NT N s ppenAR.T Ptsdec604 oc o lE V b C.- NT5 MRW l 7 MNYN YM " - g, g THERE AFE TWO e LETDOWN ORIflCE F%(TC-CCA) DIST. PNL 2A IA f 2. 35 SV-A yQglf t,S O L. 3 pyp3 ,6Kf g THl3 VAL YE. ,o NBAFP PtST PHl. LC BOTH S V'S MUST ~~ 180CW 30A OT 8xR ~ 12 ~ 35 SV-A oPEN To CPcN l ss 3 AMPS ckra 9 7r,g vptve,sy.g i NGAsC. OLST PML 2A HAS RERRVM NT \\ 1s'oco-A esA exr era iz 3s sv-8 coNrnot. ANO ss power FEEDC. 3 A M PS CKr k 23 0 s ACCUM. TECT FB((TCMA) OtST PNt. 2A CTNE' 'tSOL VLV: ^3 'Agp3 GA OCT M /2 35 se egy g f3 n P.CP C0 M P. FB vCTC-388) MGY PHL SD ^ CkT

  • I 2-3T

'c00 L - 3 AMPS CKT E 11, ,a to EtCESS LCTDvVN FBl(TC 09n) DIST. PNI. 2A l 12 35 H)c Co0L OtSC. 3 AMPS CGkR m FAN CIST tWL 2E 21 SG2A BLO WDd wN WL2ME-8) **^ cKraEn g2 3g 3 AMP 3 CKYMS n n .T Q 2 8 FAM Desi put i.E

  1. 2 3#

Cx sYR ^ m sLowoowA/ 3MS FAL-MT PNL 26 ] m SG2c -- (14LERQk& 30 A CeCT BKQ 5 St.0 W C0WN 3 AMP $ Cxras ^ m FAC OST PNL 16 n SG 2A RbWMwN 2%*) 30GQBRt i2 3C g m FA6 pisr PNL ZE i-i.5528 3 fp*g#m 9OAfKT MiL 3$ ~ = d hTOWwWN ~ m ( SQ2 C Fhe OST PNL LE IE-35 l= m 85)W[X)wN 3 d.v CKT63 V m CYCS LETDWN

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~ -~-- m-_ O O -CALCULATION SHEET cAtc.wo. nev. wo. O DATE CMGCKED DArE WtIGINATOR ,1.w mw be-e pt.a ww + 2. m7- = sun.cr 9db Mk mee rT m o _ f Tk OLE 7 ' =~~ ~~ 8't6T NG pg.sp m a.y ndereu M a = 7 ' 12&V bc. PnWrf e Distit.. T9L [ef SG2A FC MT. PHL 28 e BLOWDOWH -(NBl122A-A) 30A CKYsyn lz 3g 3 ArtPs cKTw5 SG28 F8 OtST. PNLzg (N0&INi*b SOA CKI h*R ~~t2. ' ~ ~ 35 s, 8 LO WLETWN^ 3 AMPS cKrsS SG2C FA D S7 *'s. Z e (#8(222AA) 30A CCracR 11 35 u gewgy 3 A;~CS CKrN S ( SG2A IN8L2702A-A)OttT. ML k FK 30A crTa I 2. E T5 LOWDOWN-- 3 AMPS CKT W r w SG28 F3 OtST. FWL ze n M W A) m M &KR p2; 35 8t.DWOOWN 3 AMPS CK7 9 5 Sqzc FM oest. PNL 28 8~L b W D O W N -- (NBL'002kk So A cxT &A 12 35 n 1 AMPS Ctr# T FAK ast.Put21 SG2A 2' [NSLEMB*B)kM CKI BKR (2 35 a Bt.oWMWH 3AMos cKrp r FA,7 MSr. PWL 1L a SG2B ~ (NSL2ML8'R) ach CKYGKR I2 35' 8LOWOOWN sus cere r G$2C FAM DLSr PML 22 a WH 12 3[ 80iW%WN NMW "" r W f Ct 2 A"'S PtWss trM. FAs posC PNL.ZE n

"l*E 4MPLER'" (MOL2M-8) SOA CKY M i2 jf 3 4tPS CKY at S m PpllGss. UQ.

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O O T CALCULATION SHEET CALC.NO. RE V. NO. + DATE CHECKED DATE OmaGINATOR bO

  • D b*b EM N

48f bd U1 JOS NO. PROJECT 7 SHEET NO SUSJECT 1 ~ T A AL E 7 = 4 l O't6T M r. s pppu,gy MWec60u o 12EV bC P846 MRW 7 Dt M' R. Y N L. s S G '2 B F/3I90A [($r fNI. z( 2M CR 6% (2 35 MFSS2 0AA3 Atc ) 8tDWON SANTLER f ct<T E C si SG28 WiBo orsi; puc ac Mr SAMPtLR-yr .A) 20A BtR I2 35 is SG2C F/3/9/A Asr FNC 2c t 3A Ctr SVR I2 35 BtDWDtl SAb ftER (HF5S2C07A A) m rc

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(: SG 2C F/3t8f5 VST PNL 2c GibWOM SAMPLER (urse2.c?Af '2M Ckr ers i2 55-a se g sury (g7 g g n ACCuM. TAUK 2A F/31G2 DIST. (N:. 2C 2M. CFT En lg ,g SArnfLER (MFSS287A A' 3AWs CKTnt se AccuM TAMK 28 f/5tC3 otsr PNL x S/MPLER (NF$$2607Af 20P CKf8 ~ /2 3[ 3AMif CKYW6 21 ActvM T/!:K 3C F/st s y pr$r. eta. tC SAMPL ER (NTS$2CO7bA} 2M CKT Gi C l2 35 3 AtAFS crT WG a n REAC. CDOCANT F/3IOI M T PHt.2 F HOT L T G (NFS

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O O CALCULATION SHEET t CALC.NO. REV.NO. bM DATE CHECKED DATE WilGINATOR 7~ N 'b E MA Mb 1 JDS NO. PROJECT 7I SHEET NO,, SUSJECT t .7 T A6LE ? 4 M6T NG ppp%R.9 s pggfec(@b oc e 12sv bc, PnEr MRW 7 DtWR. YNI. s F 06T. PNL 2C Gyrg/3103gy-p) e PR2R LtQuiD 2.0^ M 12 3[ SAMPLER ,a PRtR t.tQUtD F/3tcy QST PNL 2C ~3?A~MFt ER ~ (MF!5L'7AA 20^ ekt en i2 55 ts 3 /1?!' [KY9 C a P CA C. tic T L f 6 Ff3765 9tsr INL 2C S/iMflE C (NisS2607k$*20A Ctr BVC I ?5 ss 3 mrs crrgg C -.. KCAC Cf VITV .' M AC DLST PM Cooti!16 (NGBZCO,yg) go,2{7 ggg i2 35 120 V f ( i V, c 3P.. CVrg 2 sr REAC, Cp viry FF Ac usr rin. C00LtMG (6/6Zy#) 2? a 12. 35 (20V AC SV 19 20 21 22 23 3e 25 35 27 f 3 3 e' 3 36 as O

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TOTAL PROTECTION 1 I.T E s combination starters with Motor Short Circuo .v s.4,. 3 -( h, # *= -.9,. p., , 7,{ f;;g * ' Protectors (MSCPs)* or High Fault Circuit Protectors 4 ...- #1 7 O (HFCPs)* proside more overturrent protection then ans - e. .a f. g.1 other des.ce available They bnns to the motor branch ? ( f.{ ' e. i(g-circuit the first system engineere_d to proside total i ...e.'1, L. '. .( L, g.; 3. g'. ;- .e overcurrent protection MSCPs. used with fusible type l

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combination starters. and HFGPs. used with circuit I .s o { ;, , _;.. n 7.- i breaker type combination starters, clear faults % y(%.. <..t .t up to 100 000 amperes . l g,- i MSCPs are used in place of fuses and are preciseh 1 4 . 7, - : e. coordinated with the starter s heaters HFCPs are used J. - 4.: ~ in conjunction with circuit breakers and are preciseh . p(g;'j..].,2.,.; - ~ g'*g .e l coordinated with them and with the starter s heaters y .+ y e The heaters and circuit breakers provide protection Y,.'- ) i. v.d '.' ; ; -a ~ ' 7 Ad .... _ : i ...;.,... $. 'l ',.? %.l against lower level overcurrents. The MSCPs and i HFCPs take oser where these other devices leas e off Combination starter with Motor Short Circuit Protectors {s +- ;) "' ~ and protect against the higher levels of current The result is compicte. uninterrupted protectmn from y T. "N. , - i) fullload motor current all the way up to 100 000 -D '. f.,. [f, amperes et 600 V AC This total protection means that -" 15 the devices guard against all damage to heaters relavs } 2 i? -.i contacts and all other starter elements Es en if the os er-1 '~ , ; f5,

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  1. - 4" % '.i current is caused by damage within the motor itsalf

' l.h5g MSCPs and HFCPs greatly limit the motor damase .h ;:.. 1 . ~ " .... y w. 3,.. MSCP combination starters are available in NEM A J. 3 ', c/f . # N,'.,'L - sizes 0 through 5 HFCP combination starters are as ail ' 9:A ,' ~ .i 1.; able in NEM A sizes o through 4 Both are UL listed and j . ).3, include patented circuitry to prevent a blown energs j g>b " ( pg g 1-limiter from causing single phasing yg,. 1, ., ffi y f. ,). .. 3

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  • patent pending r.,

q. ..s.- Combination starter with High Fault Circuit Protectors. 1 m A + 'g.,, - " '.h 4 l ,., -4 w :. >.. , n=_ y.- p -. >~ y &,,...* *L 6..$ '.y' t '. [N ~9 t w &' _. - : l .~. :. f. .' l.

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V Quick CIrre;t I;t:rruptirn MSCPs and HFCPs are special types cf en:rgy limiting fuse like devices. Typical single and dual element fuses are designed to protect against overloads as well as C /q hort circuit 9 As a result, compromises must be made !d / tis is not necessary. Their purpose is to protect against O ONE-TIME 'n V the design of these devices. In MSCPs and H cps M short circuits only.This allowed I T E to design them O CLASS K-5 with extremely short fault clearing time. Di E CLASS J High leve fault cleanng with an MSCP or HFCP is hr E] MSCP or virtually instantaneous. These devices limit let-through g energy and peak let through current to a fractior, of the d", HFCP let throughs experienced with Class i fuses selected according to NEC article 430. PEAK LET-THROUGH LET-THROUGH CURRENT l' T (O U Protection Where It Counts Most E!ements Work Together Extending protection up to 100.000 amperes is important in MSCP combination starters, the devices are with today's higher available fault currents. But just as coordinated so that the MSCP will be inoperative in important, or even more so is the complete motor the overload relay's normal operating range. At less branch circuit protection in the range from locked rotor than 13 times full load motor current, the MSCP current up to 10.000. 20.000 or 30.000 amperes. begins to provide protection and continues it up to This is where most motor branch circuit overcurrents 100.000 amperes at 600 V AC. occur. This is where most damage is done.This is where In HFCP combination starters, the overload relay MSCPs and HFCPs save the most dollars,in terms of protects the circuit in its normal range from fullload both equipment repairs and extended downtime. motor current up to 13 times that value.The instantaneous-trip breaker provides protection from Coordination-The Kev just below that point up to the upper limit of its Section 430-52 of the 1971 National Electrical Ccde heater-protecting capability. From this point up to recognizes the MSCP and HFCP principle to give 100.000 amperes at 600 V AC, the HFCP provides (7 mmplete protection to motor branch circuits when protection. ('^ ~I ad in coordination with the other protection With both types of combination starters, each type .ements in a combination starter. Coordination of an of protective device becomes active for the range MSCP with the overload heaters, and coordination of where its advantages are maximum. At the same time an HFCP with the instantaneous trip circuit breaker there is no gap in protection and no nuisance is absolutmy essential. blowing or tripping. This coordination is the heart of the " total protection" system that 1-T-E has developed. Each size of MSCP is designed specifically for operation with properly coordinated heaters. The same is true for HFCPs and the heaters and circuit breakers used with them. This coordination is so important that all of the combination starter elements-starter, heaters, switch or circuit breaker and MSCP or HFCP-must be tested together. Factory-prepared charts desigt. ate the proper heaters, breakers and MSCPs or HFCPs to be used together to obtain total protection for each application. p) MSCPs are listed and identified not by current level that \\ they are designed for but simply by a letter designation v as a measure against improper applications. HFCPs are designated by the current ratings of the circuit breakers for which they are designed. ( l v 3 J

i Asti-Sirgli Ph eing l I T E's MSCPs and HFCPs have diferent types of g i systems which prevent causing single phasing. When i one of these devices blows. it provides for very quick cutoff of operating current in all three phases. An MSCP ias a TRICCERs which extends from its casing when it blows. This provides two advantages. it indicates wFich phase has sustained the fault. And. more important. It operates an auxiliary contact which opens all three phases by dropping out the starter. i This TRICCER feature is an I-T E exclusive. l

  • 4 2 J.9 l

E E I i ) Each HFCP contains an indicator which protrudes to I I signal which one has blown. Single phasing from a blown HFCP is prevented by a circuit within the blown 5 5 limiter. This circuit trips the breaker when a fault 1 l occurs in any phase. g g . n-E - E -- r m e ~ ~ T MSCPs contain TRICCERS which protrude and operate = = an auxiliary contact to open all three phases, preventing g O O O a blown MSCP from causing single phasing. %rg'* is is

)

j l o o o N ansce oeneano A".EsYc'ontaet [4r 4 T1 T2 T3 HFCP Combination Starter Circuit y a Can't Void Protection MSCP holders are designed so that they will not accept j standard fuses. Six different holder sizes are used for l q the six starter sizes. O through 5. Each specific holder is i I ) ) designed for use with a certain size starter. it will accept i d % 4 "C 7C C any of the various MSCP sizes intended fo-that starter. i l but not those for larger starter sizes. And it will accept devices designed for smaller sizes. j If a misapplication should be made, combining the i o o o !argest size MSCP for a certain starter size with the '8 '8 l lowest rated heater any starter damage that micht l MSCP Combination Starter Circuit result during a short circuit is minimal. HFCP holders, which will not accept fuses. have When an HFCP blows, the circuit breaker is tripped rejection keys for each size circuit breaker. They are through a circuit designed for this specific purpose. The designed so that only the correct size HFCP can be HFCP limits let-through current immediately and the inserted. Rejection keys in the HFCPs prevent insertion circuit breaker opens all three phases in less than of HFCPs larger or smaller than the proper ones one cycle. for a given breaker. 4

c Wide Selection of Combination Starters i ' E MSCP and HFCP combination starters are built combination starters are available in NEMA sizes i ound the dependable Class A20 starter. All of the o through 4. in NEMA 1. 4.12. 7 and 9 enclosures. All of .nstallation and mamtenance advantages of this starter. these modern enclosures, except explosion-proof types. proven by extensive experience, are retained. MSCP have flange mounted disconnect handles 1 hat maintam combination starters are available in NEMA sizes control of the switch or circuit breaker even when 0 through 5. In NEMA 1. 4 and 12 enclosures. HFCP the door is open. i I T E STARTERS SIMPLIFY ( INSTALLATION I The starter components in MSCP and HFCP combina- ~ tion starters give the user the ultimate in design. ease of maintenance and dependability for mi!! ions of operations. Check these features for cutting installation, f g g[4 j \\ inspection and maintenance time and for broad i j applicability.

  1. W #p STRAIGHT THROUCH WIRING. No wiring errors b

M or wasted time. The LINE comes in at the top.. the r g. c k LOAD terminals are at the bottom. i F CONNECTIONS ARE UP FRONT where you can easily see and reach them. Installation,inspectiori. [ general maintenance and replacement take less time g and cost less money. 4 MOUNTING VERSATILITY is another advanced r' I-T E motor control feature. The starter can be installed In any position in the vertical plane. This means more g freedom, whatever your application needs. I T.E's r horizontal magnet design obsoletes gravity dropout. l AUXILIARY INTERLOCK provides one normally 2' open or normally closed contact or both (allindependent circuits). Up to three interlock blocks can be furnished without increasing outline dimensions or adding special insulating barriers. NO TOOLS REQUIRED to inspect contacts. The cover cap snaps off to expose all contacts. A safety interlock feature prevents contacts from closing with cover ) cap 06. EASY CONTACT REPLACEMENT. You don't need 7 L-to disconnect a single wire or remove any accessory. ( (; Movable contacts. held by spring-loaded clips, slip straight out. The stationary contacts are each held by one screw. All contacts are symmetrical on each starter size and will fit in any position. COIL is encapsulated in hot molded insulating i compound to eliminate moisture and mechanical failure. Wired connections aren't necessary, owing to built-in contacts. Forget broken coil leads and insulation wear. PLUG.IN OVERLOAD RELAYS are a real boon to the man on the job. Fast installation. No wiring errors.The third overload relay is furnished as standard with no increase in starter dimensions. IDENTICAL BASIC STRUCTURE. You needn t contend with different problems in different starter i A sizes. I T-E's total design approach makes starters ( g identical, sizes 0 5. l 5

4 N I T E TIME TESTED DISCONNECT } SWITCHES

  • DOUBLE-BREAK ACTION... QUICK MAKE, N.,. -;...,,;, Y. % p, ei,,,., f %g. f..g 9,J' QUICK BREAK p2..,

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  • SILVER PLATED CURRENT-CARRYING

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  • DEAD FRONT SAFETY WITH ISOLATED te..

n/. , - f:M ; ', a. Q3.. ~ CONTACTS AND SHIELDED CURRENT CARRYING i . [.;.,. j PARTS MSCPs mount in holders on the disconnect switch with visible contacts but not visible arcs. Window openings . ENCLOSED ARC CHAMBERS FOR MAXIMUM in the switch front show the double-break contacts SAFETY. LONGER CONTACT LIFE. W when the switch is open, and a red "ON" flag when the LESS MAINTENANCE switch is closed. Closing of contacts and arcing take place safely inside are chambers. All exposed current-carrying parts, including the MSCP holders, are dead when the switch is open. Auxiliary electricalinterlocks are available for switch mounting when an external control source is brought into the starter enclosure, s 3 6

l I=T E INSTANTANEOUS ( TRIP CIRCUIT 3REAKERS

  • INSTANTANEOUS TRIPPING UNDER SHORT CIRCUIT CONDITIONS WITHOUT NUISANCE l

p-TRIPPING 1 <.y,

  • REC ED TERMINALS FOR DEAD FRONT i
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I iI ~ l 'L:[-I NORMALLY OPEN OR CLOSED SHUNT TRIP OR I I UNDERVOLTAGE DEVICES 4 3 (

  • CONVENIENT BREAKER TRIP ADIUSTMENT-THREE DIALS ON FRONT OF BREAKER 7.
  • TRIP FREE MECHANISM PREVENTS CONTACTS O'

^^ l The ETI magnetic instantaneous trip circuit breaker yERC T ( can be adjusted to eliminate tripping from motor rting currents. But it still prosides split-second ., eration (less than one cycle) when dangerous overcurrents occur. HFCPs mount in holders below the ETI breaker.They are installed easily from the front. and attach to the load side of the breaker. y i ( l 4 -n.

MSCP COMBINATION STARTERS 3 Ctess A42 Cornbination Starters--Reversin;, Class Ada Consbination Starters--Non Reversing .e. ) ~}, . y .pm- -.:' 'g,,.jn.,,.- + .z. '. t- . _.. " * ~..%.-:

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\\HOW TO SELECT HEATERS AND MSCPs' -~or total circuit protection. first select the correct heater for proper selection The heater tables will also show iement Nameplate full load motor current is the most what MSCP to use MSCPs are desmnated by a letter l important information for heater selection Size of corresponding to a heater size for each starter Three starter and ambient conditions are also necessar) data MSCPs are required for each in combination starter HEATER SELECTION TABLES %: *r w % :,. ' [ ; ; ' +.r n g ;. % g ; y ;.; ) ' r* = i h t- - % ~ l e;p.Q .4, h}g k.[g'hf$ ,(;,f.,, , : j.'g . [. ' i [ l ', s.

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MEETING

SUMMARY

DISTRIBUTION Docket File D. Muller NRC PDR R. Ballard Local PDR W. Regan g j.} NSIC D. Ross (J n TIC P. Check [' g ( _ TERA: R. Satterfield P= NRR Reading

0. Parr N$$'

ly CU LB #2 File F. Rosa gQig q s H. Denton W. Butler 9 la .g! E. Case W,. Kreger ~5 2;is D. Eisenhut R. Houston M y R. Purple T. Murphy $(8 d B. J. Youngblood L. Rubenstein A. Schwencer T. Speis F. Miraglia W. Johnston J. Miller J. Stolz G. Lainas S. Hanauer R. Vollmer W. Gamill J. P. Knight F. Schroeder R. Bosnak D. Skovholt F. Schauer M. Ernst R. E. Jackson R. Baer Projectfianager,/.- /f t :r,. C. Berlinger Licensing Assistant MService K. Kniel Attorney, OELD G. Knighton I&E (3) A. Thadani ACRS (16) D. Tondi R. Tedesco D. Vassallo G. Lear J. Kramer V. Noonan P. Collins S. Pawlicki D. Ziemann V. Benaroya Z. Rosztoczy W. Haass NRC

Participants:

Others: BCC: Applicant & Service List .}}