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Development of effective thermal conductivity models for Reserve Shutdown Control fuel block of prismatic HTGR for hydrogen production

机译:开发用于制氢的棱柱形HTGR的储备关闭控制燃料块的有效导热系数模型

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A hydrogen production system coupled to High Temperature Gas-cooled nuclear Reactor (HTGR) is considered to be one of the most promising ways for massive hydrogen production. For the reliability of the coupled system, the safety analysis on the HTGR is to be conducted by a system-scale analysis code. The system-scale analysis code adopts an effective thermal conductivity (ETC) model for a fuel block due to its complex geometry containing large number of coolant holes and nuclear fuel rods. The ETC of the fuel block is crucial to calculate the heat transfer inside the reactor core and prediction of thermal distribution over the reactor core is the most significant for the safety analysis of HTGR. Therefore, the verification of the ETC model that contributes to the prediction is essential. This ETC model based on Maxwell's theory shows an inaccurate prediction when the configuration of the composite materials is not homogeneous. Since the geometry of Reserve Shutdown Control (RSC) fuel block of HTGR is not homogeneous due to a large RSC hole, the ETC model for RSC fuel block should be developed to improve the accuracy and reliability of the reactor system analysis code. In this study, the two ETC models for the RSC fuel block have been developed by the thermal network modeling. Computational fluid dynamic simulations with a real geometry were performed to evaluate the accuracy of the ETC models for the RSC fuel block. The comparative result between CFD analysis and the ETC model shows that the newly developed model predicts the effective thermal conductivity of RSC fuel block more accurately than the previous model. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:与高温气冷核反应堆(HTGR)耦合的制氢系统被认为是大规模制氢的最有希望的方法之一。为了提高耦合系统的可靠性,应通过系统级分析代码对HTGR进行安全性分析。系统级分析代码对燃料块采用有效导热系数(ETC)模型,因为其复杂的几何结构包含大量冷却液孔和核燃料棒。燃料块的ETC对于计算反应堆堆芯内部的传热至关重要,而预测反应堆堆芯上的热分布对HTGR的安全性分析最为重要。因此,对有助于预测的ETC模型的验证至关重要。当复合材料的构型不均匀时,基于麦克斯韦理论的ETC模型显示了不准确的预测。由于HTGR的储备孔关闭,HTGR的储备停车控制(RSC)燃料块的几何形状不均匀,因此应开发RSC燃料块的ETC模型,以提高反应堆系统分析代码的准确性和可靠性。在这项研究中,通过热网络模型开发了RSC燃料块的两个ETC模型。进行了具有真实几何形状的计算流体动力学模拟,以评估RSC燃料块ETC模型的准确性。 CFD分析和ETC模型之间的比较结果表明,新开发的模型比以前的模型更准确地预测了RSC燃料块的有效导热系数。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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