,Analysis of SBLOCA on CPR1000 with a passive system

来源 :Nuclear Science and Techniques | 被引量 : 0次 | 上传用户:lijingbo1985
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Since the Fukushima accident in 2011,more and more attention has been paid to nuclear reactor safety.A number of evolutionary passive systems have been developed to enhance the inherent safety of reactors.This paper presents a passive safety system applied on CPR1000,which is a traditional generation II+ reactor.The passive components selected are as follows:(1) the reactor makeup tanks(RMTs);(2) the advanced accumulators(A-ACCs);(3) the passive emergency feedwater system(PEFS);(4)the passive depressurization system(PDS);(5) the incontainment refueling water storage tank(IRWST).The model of the coolant system and the passive systems was established by utilizing a system code(RELAP5/MOD3.3).The SBLOCA(small-break loss of coolant) was analyzed to test the passive safety systems.When the SBLOCA occurred,the RMTs were initiated.The water in the RMTs was then injected into the pressure vessel.The RMTs’ low water level triggered the PDS,which depressurized the coolant system drastically.As the pressure of the coolant system decreased,the A-ACCs and the IRWST were put to work to prevent the uncovering of the core.The results show that,after the small-break loss-of-coolant accident,the passive systems can prevent uncovering of the core and guarantee the safety of the plant. Since the Fukushima accident in 2011, more and more attention has been paid to nuclear reactor safety. A number of evolutionary passive systems have been to enhance the inherent safety of reactors. This paper presents a passive safety system applied on CPR1000, which is a (2) the advanced accumulators (A-ACCs); (3) the passive emergency feedwater system (PEFS); (4) (5) the incontainment refueling water storage tank (IRWST). The model of the coolant system and the passive systems was established by utilizing a system code (RELAP5 / MOD3.3). The SBLOCA ( small-break loss of coolant was was analyzed to test the passive safety systems. WHERE the SBLOCA occurred, the RMTs were initiated. The water in the RMTs was injected into the pressure vessel. The RMTs’ low water level triggered the PDS, which depressurized the coolant system drastically. As t he pressure of the coolant system decreased, the A-ACCs and the IRWST were put to work to prevent the uncovering of the core. The results show that, after the small-break loss-of-coolant accident, the passive systems can prevent uncovering of the core and guarantee the safety of the plant.
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