Study on the Shaking Dynamic Response of Steam Generator LOCA

Qian Huang, Xiaofei Yu, Huan-huan Qi, N. Jiang, Feng-chun Cai, Zhipeng Feng
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Abstract

Dynamic response research of steam generator loss of coolant accident (SG LOCA) is essential for the reliability and safety consideration. According to the differences of LOCA loading phenomena, two types of LOCA loads affect the SG: rarefaction wave travels through the primary fluid in the U-tubes, and the SG shakes due to reactor coolant loop(RCL) motions transmitted by the primary loop piping, former loading phenomena evaluation is called SG rarefaction analysis while latter is called shaking analysis. This paper place particular emphasis on shaking analysis. At present, the published literatures about LOCA mainly focus on RCL LOCA, reactor LOCA and fuel assembly LOCA, few reports concentrate on shaking dynamic response analysis of SG LOCA. Both Westinghouse and AREVA’s methods according to their research reports are to decouple the SG from the RCL: This method results in low computational efficiency as RCL LOCA and SG LOCA are evaluated separately and the decoupling error is uncertainty, meanwhile, in the vicinity of the nodes where the displacements are imposed, distorted reaction forces are usually found. Through reasonable simplification and equivalence, a detailed nonlinear FEM model of steam generator (SG) of a China 3rd generation nuclear power plant (NPP) is established, this model is then connected with the reactor coolant loop (RCL) to carry out the SG LOCA shaking dynamic response analysis. By calculation, the maximum absolute stresses of SG heat transfer tube bundle and its variation with tube diameter and upper supports reacting forces are obtained. In order to study the effect of SG decoupling from the RCL on shaking dynamic response, a comparative study of decoupling /coupling methods is conducted. Results shows that SG decoupling has a significant impact on the calculation result, the calculation method of coupling is more closer to the real situation and worthy to recommended. Related analytical procedures and calculation results lay the foundation for future SG shaking dynamic analysis and SG design of subsequent power plants.
蒸汽发生器LOCA振动动力响应研究
蒸汽发生器失冷剂事故的动态响应研究是考虑其可靠性和安全性的必要条件。根据LOCA加载现象的不同,两种类型的LOCA载荷对SG产生影响:稀薄波在u型管中穿过一次流体,以及SG由于主回路管道传递的反应堆冷却剂环(RCL)运动而产生振动,前者加载现象的评价称为SG稀薄分析,后者称为振动分析。本文特别强调了振动分析。目前已发表的关于LOCA的文献主要集中在RCL LOCA、反应堆LOCA和燃料组件LOCA上,很少有关于SG LOCA振动动力响应分析的报道。根据Westinghouse和AREVA的研究报告,他们的方法都是将SG与RCL解耦,这种方法计算效率低,因为RCL LOCA和SG LOCA是分开评估的,解耦误差是不确定的,同时在施加位移的节点附近,通常会发现扭曲的反作用力。通过合理的简化和等效,建立了中国第三代核电站蒸汽发生器(SG)的详细非线性有限元模型,并将该模型与反应堆冷却剂回路(RCL)连接,进行了SG LOCA振动动态响应分析。通过计算,得到了SG传热管束的最大绝对应力及其随管径和上支反力的变化规律。为了研究SG与RCL解耦对振动动力响应的影响,对不同解耦/耦合方法进行了对比研究。结果表明,SG解耦对计算结果有显著影响,耦合计算方法更接近实际情况,值得推荐。相关的分析方法和计算结果为后续电厂SG振动动力分析和SG设计奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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