严重事故中熔芯熔体-射流破碎行为多相粒子法的发展

Zidi Wang, Y. Iwasawa, T. Sugiyama
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引用次数: 1

摘要

在假设的轻水反应堆(LWR)核电站的严重事故中,从反应堆容器中释放的熔融堆芯有可能与安全壳中的水接触。在这种所谓的燃料-冷却剂相互作用(fci)过程中,熔体射流将破裂成碎片,这是蒸汽爆炸的重要因素之一,对安全壳的完整性构成潜在威胁。粒子法利用拉格朗日描述和无网格框架,可以直接、方便地捕获大变形界面。为了研究熔体喷射在凝固过程中的破裂,本文提出了一种具有任意高阶格式的多相粒子方法。此外,提出了一种界面粒子移动方案来抑制不同相之间的非自然粒子穿透。首先通过显式计算和隐式计算验证了不同阶次下的收敛速度。然后,对两种材料进行了瞬态热传导,得到了较好的结果。在此基础上,以上升气泡为基准,验证了变形和崩塌模型的可行性。与以往报道的结果相比,指出了清晰界面的改进。研究了两种重要的多相不稳定性,即瑞利-泰勒不稳定性和开尔文-亥姆霍兹不稳定性,因为它们在熔体喷射破裂过程中起着重要作用。目前的研究结果表明,所建立的颗粒法能够分析带传热的熔体射流破碎。
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Development of a Multiphase Particle Method for Melt-Jet Breakup Behavior of Molten Core in Severe Accident
In a hypothetical severe accident in a light water reactor (LWR) nuclear power plant, there is a possibility that molten core released from the reactor vessel gets in contact with water in the containment vessel. In this so-called fuel-coolant interactions (FCIs) process, the melt jet will breakup into fragments, which is one of the important factors for a steam explosion, as a potential threat to the integrity of the containment vessel. The particle method could directly and easily capture the large deformed interfaces by particle motions, benefiting from its Lagrangian description and meshless framework. In order to investigate the melt-jet breakup with solidification processes, a multiphase particle method with arbitrary high order scheme is presented in this study. In addition, an interfacial particle shifting scheme is developed to suppress the unnatural particle penetration between different phases. The convergence rate with different order is firstly confirmed by a verification test in terms of both explicit and implicit calculations. Then, a transient heat conduction between two materials is carried out and quite good results are obtained. After that, a rising bubble benchmark is performed to show the feasibility of modelling for deformation and collapse. Improvements of clear interface are indicated compared with previous reported results. Two important multiphase instabilities, namely the Rayleigh-Taylor instability and the Kelvin-Helmholtz instability, are studied since they play important roles during the melt-jet breakup. The results achieved so far indicate that the developed particle method is capable to analyze the melt-jet breakup with heat transfer.
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