ML19337B440: Difference between revisions
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{{#Wiki_filter:. - _ . - . | {{#Wiki_filter:. - _ . - . | ||
O . | O . | ||
STRUCTURAL MODELING REFINEME'lT M | STRUCTURAL MODELING REFINEME'lT M | ||
DEVELOPMENT OF IMPROVED ANALYTICAL CROCEDURES (0BJECTIVE #2) | DEVELOPMENT OF IMPROVED ANALYTICAL CROCEDURES (0BJECTIVE #2) l l | ||
l l | |||
THIS DOCUMENT CONTAINS POOR QUAllTY PAGES l | THIS DOCUMENT CONTAINS POOR QUAllTY PAGES l | ||
8010020f//e4 | 8010020f//e4 | ||
o . | o . | ||
I BURP:S NJU HOL. INC. . | I BURP:S NJU HOL. INC. . | ||
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BUltNS AND itOt., INC. | BUltNS AND itOt., INC. | ||
ree nuwen s CH< | ree nuwen s CH< | ||
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,be.e.v.td f=3 _ _ . .. C44C. No | ,be.e.v.td f=3 _ _ . .. C44C. No | ||
-s ._ . Sheet Qnt. on Sne.:t _ | -s ._ . Sheet Qnt. on Sne.:t _ | ||
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Hya m y.umic !cibo.S | |||
k | k | ||
STRUCTURAL MODELING/ ANALYTICAL PROCEDURES | STRUCTURAL MODELING/ ANALYTICAL PROCEDURES | ||
==SUMMARY== | ==SUMMARY== | ||
AXISYMEETRIC WATER-STRUCTURE-SOIL COUPLED SYSTEM ASSUMED. | AXISYMEETRIC WATER-STRUCTURE-SOIL COUPLED SYSTEM ASSUMED. | ||
o REASONABLE ASSUMPTION SINCE MAJOR STRUCTURAL COMPONENTS ARE AXISYMMETRIC, ARBITRARY (NON-AXISYMMETRIC) LOADING HANDLED THROUGH DECOMPOSITION TO FOURIER HARMONICS. | o REASONABLE ASSUMPTION SINCE MAJOR STRUCTURAL COMPONENTS ARE AXISYMMETRIC, ARBITRARY (NON-AXISYMMETRIC) LOADING HANDLED THROUGH DECOMPOSITION TO FOURIER HARMONICS. | ||
FINITE ELEMENT METHOD OF ANALYSIS USED. FINITE ELEMENTS UTILIZED: | FINITE ELEMENT METHOD OF ANALYSIS USED. FINITE ELEMENTS UTILIZED: | ||
- AXI-SYMMETRIC SHELL ELEMENTS | - AXI-SYMMETRIC SHELL ELEMENTS AXI-SYMMETRIC SOLID ELEMENTS THREE-DIMENSIONAL FLUID ELEMENTS SOLUTION OBTAINED IN FREQUENCY DOMAIN o MORE EFFICIENT / ECONOMICAL FOR THIS TYPE OF PROBLEM. l l | ||
AXI-SYMMETRIC SOLID ELEMENTS | |||
THREE-DIMENSIONAL FLUID ELEMENTS SOLUTION OBTAINED IN FREQUENCY DOMAIN o MORE EFFICIENT / ECONOMICAL FOR THIS TYPE OF PROBLEM. l l | |||
A MODIFIED VERSION OF ASHD-2 COMPUTER CODE WAS USED. i l | A MODIFIED VERSION OF ASHD-2 COMPUTER CODE WAS USED. i l | ||
LINEAR PROPERTIES ASSUMED FOR ALL THREE SYSTEM COMP 0ENTS: j | LINEAR PROPERTIES ASSUMED FOR ALL THREE SYSTEM COMP 0ENTS: j WATER (INCOMPRESSIBLE, INVISCID), STRUCTURE AND S0ll. | ||
WATER (INCOMPRESSIBLE, INVISCID), STRUCTURE AND S0ll. | |||
o ASSUMPTION VALIDATED BY CAORSO/TOKAI-2 TEST RESULTS. | o ASSUMPTION VALIDATED BY CAORSO/TOKAI-2 TEST RESULTS. | ||
STRUCTURAL DAMPING CONSIDERED HYSTERETIC. | STRUCTURAL DAMPING CONSIDERED HYSTERETIC. | ||
o ADVANTAGEOUS FOR USE IN SYSTEMS WITH DIFFERENT ELEMENT DAMPING VALUES; FREQUENCY INDEPENDENT. | o ADVANTAGEOUS FOR USE IN SYSTEMS WITH DIFFERENT ELEMENT DAMPING VALUES; FREQUENCY INDEPENDENT. | ||
; | ; | ||
REFINED MODELING OF STRUCTURAL COMPONENTS CONSTITUTING THE SUPPRESSION CHAMBER NtiiED BOUNDARY WAS IMPLEMENTED USING SOLID FINITE ELEMENTS. | REFINED MODELING OF STRUCTURAL COMPONENTS CONSTITUTING THE SUPPRESSION CHAMBER NtiiED BOUNDARY WAS IMPLEMENTED USING SOLID FINITE ELEMENTS. | ||
IMPROVED ANALYTICAL PROCEDURES ADEQUATE FOR SUCH APPLICATIONS WERE DEVELOPED. | IMPROVED ANALYTICAL PROCEDURES ADEQUATE FOR SUCH APPLICATIONS WERE DEVELOPED. | ||
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RESULTS OBTAINED COMPARE ADEQUATELY WITH MEASURED BUILDING RESPONSES AT CA0RSO. | RESULTS OBTAINED COMPARE ADEQUATELY WITH MEASURED BUILDING RESPONSES AT CA0RSO. | ||
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Line 375: | Line 197: | ||
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43 | 43 | ||
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li d 1 N N NCPWEllSUFFLT N CACRSC REACOR 3C;;;;;G U"- | |||
N N NCPWEllSUFFLT N CACRSC REACOR 3C;;;;;G U"- | |||
m 7%w n 2 .v3RCVIO .v.CCEL 7,1 | m 7%w n 2 .v3RCVIO .v.CCEL 7,1 | ||
3 - | 3 - | ||
i h LEGEND Wf CONVENTIONAL MODEL | |||
i | |||
h LEGEND Wf CONVENTIONAL MODEL | |||
'p d .8 | 'p d .8 | ||
-- IMPROVED MODEL . | -- IMPROVED MODEL . | ||
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' %. oo 2'o. oo u'o. oo s'o. on n'o. oo n'20. oo ihn.on FREQUENCY (112 ) | |||
' %. oo 2'o. oo u'o. oo s'o. on n'o. oo | |||
n'20. oo ihn.on FREQUENCY (112 ) | |||
ioo.on iso.ooj | ioo.on iso.ooj | ||
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l | |||
WNP-2 REACTOR BUILDING RESPONSE TO SRV DISCHARGE LOADS 1 | WNP-2 REACTOR BUILDING RESPONSE TO SRV DISCHARGE LOADS 1 | ||
l | l | ||
MATHEFATICAL MODEL 1 | MATHEFATICAL MODEL 1 | ||
l l | l l | ||
Line 482: | Line 259: | ||
l | l | ||
i l | |||
l 4 | |||
SRV DISCHARGE EVENTS / LOAD CASES | |||
i | |||
l | |||
; | ; | ||
o SINGLE VALVE DISCHARGE CASE (INNER AND OUTER) 1 o TWO VALVES DISCHARGE CASE i | o SINGLE VALVE DISCHARGE CASE (INNER AND OUTER) 1 o TWO VALVES DISCHARGE CASE i | ||
o ADS VALVES DISCHARGE CASE i o ALL VALVES DISCHARGE CASE AXISYMMETRIC LOADING CONDITION NEARLY SYMMETRIC LOADING CONDITION I | |||
o ADS VALVES DISCHARGE CASE i o ALL VALVES DISCHARGE CASE | |||
AXISYMMETRIC LOADING CONDITION | |||
NEARLY SYMMETRIC LOADING CONDITION | |||
I | |||
a i | |||
a | CALCULATED RESPONSES (ALL RESPONSES SHOWN CORRESPOND TO A FAXIMUM PRESSURE AMPLITUDE OF +1. pst. TO OBTAIN REAL/ DESIGN LEVEL i' | ||
i | |||
CALCULATED RESPONSES | |||
(ALL RESPONSES SHOWN CORRESPOND TO A FAXIMUM PRESSURE AMPLITUDE OF +1. pst. TO OBTAIN REAL/ DESIGN LEVEL i' | |||
RESPONSES MULTIPLY RESULTS SHOWN BY +11.20.) i | RESPONSES MULTIPLY RESULTS SHOWN BY +11.20.) i | ||
; . | ; . | ||
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N G I).88313336 ca 'a on 'o cd | |||
NN NC N N N 'IZ2TICE RIS?cNsz A; RP'I SU??CRT w n. EAR P1n:n 30. 2 C 'IE'v'IS .W? 3.3a | |||
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Line 633: | Line 330: | ||
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.Gi* (3) NGil.S'313006 d | .Gi* (3) NGil.S'313006 d | ||
NN NO ?WE3L SWFLI M '7ERTICAL RISPCNSI A; apy 3(;ppeg; N m inc.m so. 2 ' ALL VALVES - SF? 3,35 | NN NO ?WE3L SWFLI M '7ERTICAL RISPCNSI A; apy 3(;ppeg; N m inc.m so. 2 ' ALL VALVES - SF? 3,35 | ||
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cc .p | cc .p | ||
'CC ' E cs a oc'a os 't oc 't as <c | 'CC ' E cs a oc'a os 't oc 't as <c | ||
.0 t = (3) N 0 I _10'd :.,l e' J -u N N N SY3 TEM HCR *0N*A, ars;cnSZ AT R?V SU??CR*' ** | |||
.0 t = (3) N 0 I _10'd :.,l e' J -u | |||
N N N SY3 TEM HCR *0N*A, ars;cnSZ AT R?V SU??CR*' ** | |||
M P E"ECT 30. 2 S*NGI.Z 7A!,'/Z ( m;Z3) _ *m- ~- S.4a | M P E"ECT 30. 2 S*NGI.Z 7A!,'/Z ( m;Z3) _ *m- ~- S.4a | ||
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Line 753: | Line 395: | ||
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1 WN NC PmER sayLT sTs:sn sca;;;g;A;,, 3337C382 C E?V SU??CR"^ | 1 WN NC PmER sayLT sTs:sn sca;;;g;A;,, 3337C382 C E?V SU??CR"^ | ||
M P E*ECT 100. 2 SIMOIE 7)L VI '(!!CIR[ - $?? g , ,g 3 | M P E*ECT 100. 2 SIMOIE 7)L VI '(!!CIR[ - $?? g , ,g 3 | ||
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Line 810: | Line 428: | ||
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w r e e u C | w r e e u C | ||
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co s | |||
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M PET E 2 S OC2 VMVI (CCTIR) .9? 3.4c | M PET E 2 S OC2 VMVI (CCTIR) .9? 3.4c | ||
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c i e o | c i e o | ||
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e ch a cc a os ': ca 's ca 's ch 'c cc 'c z GI= (3) NG ilS'd373J J S dASEDIGTCiG PCELZ PCWER SUFFL7 ST3 tdt # | |||
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3CR*3CNTAI RESPCNSI AT 2?V SU??CRT | 3CR*3CNTAI RESPCNSI AT 2?V SU??CRT | ||
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Mark 11 Pressure Suppression Containment ZONEI ZONE 11 Z O N E lil WASHINGTON PUBLIC POWER SUPPLY SYSTEM FIGURE ZONES OF STRUCTURAL RESPONSE NUCLEAR PROJECT NO. 2 8.9 | |||
Mark 11 Pressure Suppression Containment ZONEI | |||
ZONE 11 Z O N E lil WASHINGTON PUBLIC POWER SUPPLY SYSTEM FIGURE ZONES OF STRUCTURAL RESPONSE NUCLEAR PROJECT NO. 2 8.9 | |||
M REFERENCE 8.5 | M REFERENCE 8.5 | ||
, , , - . - REFERENCE 8.6 1.o I I i ! i | , , , - . - REFERENCE 8.6 1.o I I i ! i | ||
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6 | 6 | ||
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o.1 'Nl / ID' -v/ | |||
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s OF HUMAN i TOLERANCE | s OF HUMAN i TOLERANCE | ||
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. I s lo so 100 35g,(ce) | . I s lo so 100 35g,(ce) | ||
FREQUENCY OF V!BRATION, e.p . | FREQUENCY OF V!BRATION, e.p . | ||
WASHINCTCN PUBLIC PCWER SUPPLY SYSTEM VEMION TOLEPANCE ODSERVATIONS NUCLEAR PROJECT NO. O g , c)tCfLP MYA* | |||
WASHINCTCN PUBLIC PCWER SUPPLY SYSTEM | |||
VEMION TOLEPANCE ODSERVATIONS NUCLEAR PROJECT NO. O g , c)tCfLP MYA* | |||
i _ | i _ | ||
N REFERENCE 3.5 | N REFERENCE 3.5 | ||
,,--- REFERENCE 8.6 l | ,,--- REFERENCE 8.6 l | ||
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FREQUE! ICY OF VIBRATIOrte eps-WASIIINGTCN PUBLIC PCWER SUPPLY SYSM FIm VIDRATION TOLEMNCE CDSERVATICNS NUCII.AR PRCJECT NO. vs. cAcRGo CATA | |||
FREQUE! ICY OF VIBRATIOrte eps- | |||
WASIIINGTCN PUBLIC PCWER SUPPLY SYSM FIm VIDRATION TOLEMNCE CDSERVATICNS NUCII.AR PRCJECT NO. vs. cAcRGo CATA | |||
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WASitINCTCN PUSLIC PCWER SUPPLY SYSTEM FIan 11I",, RATION TOLED,%NCE OBSERVATIONS NUCI. EAR P E'EC'T NC. 2 4 , @ gCo Wk | WASitINCTCN PUSLIC PCWER SUPPLY SYSTEM FIan 11I",, RATION TOLED,%NCE OBSERVATIONS NUCI. EAR P E'EC'T NC. 2 4 , @ gCo Wk | ||
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1 5 10 50 100 AI3E h 6) | 1 5 10 50 100 AI3E h 6) | ||
FREQUENCY OF VIBRATION, eps. | FREQUENCY OF VIBRATION, eps. | ||
WASHINCTCN PUDLIC PCWER SUPPLY SYSM I* | WASHINCTCN PUDLIC PCWER SUPPLY SYSM I* | ||
VICRATION TOLERANCE OBSERVATIONS NUCII.AR PR^4 CT NO. 2 g, p 4 | VICRATION TOLERANCE OBSERVATIONS NUCII.AR PR^4 CT NO. 2 g, p 4 l | ||
l | |||
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CONCLUSIONS-AN IMPROVED SRV DISCHARGE LOAD DEFINITION WAS DEVELOPED USING CAORSO IN-PLANT SRV TEST RESULTS. THIS DEFINITION (AS WELL AS CAORSO DATA) IS CONFIRMED BY TOKAI-2 IN-PLANT SRV TESTS. | CONCLUSIONS-AN IMPROVED SRV DISCHARGE LOAD DEFINITION WAS DEVELOPED USING CAORSO IN-PLANT SRV TEST RESULTS. THIS DEFINITION (AS WELL AS CAORSO DATA) IS CONFIRMED BY TOKAI-2 IN-PLANT SRV TESTS. | ||
STRUCTURAL MODELING AND ANALYTICAL PROCEDURES ADEQUATE FOR CALCULATING RESPONSES OF A MARK II CONTAINMENT STRUCTURE SUBJECTED TO SRV DISCHARGE LOADS HAVE BEEN DEVELOPED. WHEN THE IMPROVED LOAD IS APPLIED TO THE CA0RSO CONTAINMENT THE CALCULATED RESPONSES ARE COMPARABLE TO TEST RESULTS. WHEN THE IMPROVED LOAD IS APPLIED TO WNP-2 ITS STEEL CONTAINMENT PREDICTED RESPONSE IS COMPARABLE TO TOKAI-2 STEEL CONTAINMENT MEASURED RESPONSE. | |||
STRUCTURAL MODELING AND ANALYTICAL PROCEDURES ADEQUATE FOR CALCULATING RESPONSES OF A MARK II CONTAINMENT STRUCTURE SUBJECTED TO SRV DISCHARGE LOADS HAVE BEEN DEVELOPED. WHEN THE IMPROVED LOAD IS APPLIED TO THE CA0RSO CONTAINMENT THE CALCULATED RESPONSES ARE COMPARABLE TO TEST | |||
RESULTS. WHEN THE IMPROVED LOAD IS APPLIED TO WNP-2 ITS STEEL CONTAINMENT PREDICTED RESPONSE IS COMPARABLE TO | |||
TOKAI-2 STEEL CONTAINMENT MEASURED RESPONSE | |||
FINITE RESPONSES TO SRV DISCHARGE LOADS WERE RECORDED (AND ARE PREDICTED) IN THE WETWELL AREk ATTENUATED RESPONSES IN THE DRYWELL AREA AND NEGLIGIBLE RESPONSES OUTSIDE THE PRIMARY CONTAINMENT. | FINITE RESPONSES TO SRV DISCHARGE LOADS WERE RECORDED (AND ARE PREDICTED) IN THE WETWELL AREk ATTENUATED RESPONSES IN THE DRYWELL AREA AND NEGLIGIBLE RESPONSES OUTSIDE THE PRIMARY CONTAINMENT. | ||
I}} | I}} |
Revision as of 13:22, 31 January 2020
ML19337B440 | |
Person / Time | |
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Site: | Columbia |
Issue date: | 09/18/1980 |
From: | BURNS & ROE CO. |
To: | |
Shared Package | |
ML19337B432 | List: |
References | |
NUDOCS 8010020411 | |
Download: ML19337B440 (33) | |
Text
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STRUCTURAL MODELING REFINEME'lT M
DEVELOPMENT OF IMPROVED ANALYTICAL CROCEDURES (0BJECTIVE #2) l l
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STRUCTURAL MODELING/ ANALYTICAL PROCEDURES
SUMMARY
AXISYMEETRIC WATER-STRUCTURE-SOIL COUPLED SYSTEM ASSUMED.
o REASONABLE ASSUMPTION SINCE MAJOR STRUCTURAL COMPONENTS ARE AXISYMMETRIC, ARBITRARY (NON-AXISYMMETRIC) LOADING HANDLED THROUGH DECOMPOSITION TO FOURIER HARMONICS.
FINITE ELEMENT METHOD OF ANALYSIS USED. FINITE ELEMENTS UTILIZED:
- AXI-SYMMETRIC SHELL ELEMENTS AXI-SYMMETRIC SOLID ELEMENTS THREE-DIMENSIONAL FLUID ELEMENTS SOLUTION OBTAINED IN FREQUENCY DOMAIN o MORE EFFICIENT / ECONOMICAL FOR THIS TYPE OF PROBLEM. l l
A MODIFIED VERSION OF ASHD-2 COMPUTER CODE WAS USED. i l
LINEAR PROPERTIES ASSUMED FOR ALL THREE SYSTEM COMP 0ENTS: j WATER (INCOMPRESSIBLE, INVISCID), STRUCTURE AND S0ll.
o ASSUMPTION VALIDATED BY CAORSO/TOKAI-2 TEST RESULTS.
STRUCTURAL DAMPING CONSIDERED HYSTERETIC.
o ADVANTAGEOUS FOR USE IN SYSTEMS WITH DIFFERENT ELEMENT DAMPING VALUES; FREQUENCY INDEPENDENT.
REFINED MODELING OF STRUCTURAL COMPONENTS CONSTITUTING THE SUPPRESSION CHAMBER NtiiED BOUNDARY WAS IMPLEMENTED USING SOLID FINITE ELEMENTS.
IMPROVED ANALYTICAL PROCEDURES ADEQUATE FOR SUCH APPLICATIONS WERE DEVELOPED.
RESULTS OBTAINED WERE DIFFERENT FROM THOSE OBTAINED ;
ANALYZING THE ORIGINAL MODEL.
RESULTS OBTAINED COMPARE ADEQUATELY WITH MEASURED BUILDING RESPONSES AT CA0RSO.
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RESPONSES MULTIPLY RESULTS SHOWN BY +11.20.) i
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