常压常温下功率斜坡试验的可行性研究

IF 0.4 Q4 NUCLEAR SCIENCE & TECHNOLOGY
Xiangyu Wei, Wenhua Zhang, Yingchun Zhao
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引用次数: 0

摘要

球团-包壳力学相互作用是反应堆功率变化过程中重要的物理现象,是一种涉及应力、应变和材料辐照特性的多现象燃料棒失效机制。为了避免PCMI引起的故障,国际组织在过去几十年中进行了大量的功率斜坡试验。在高温高压回路中进行典型的功率斜坡测试需要严格的测试能力和较高的测试成本。熔覆层的应力和应变是影响熔覆现象的关键参数,通常作为熔覆层应力和应变的评价指标。如果能够模拟常压和常温环境下基本辐照功率水平下球团与包层的接触状态,即球团与包层之间的间隙,那么在相同的环境下也可以模拟后续功率斜坡试验中包层的高应力应变状态,从而降低试验成本和试验回路要求。因此,利用燃料棒性能分析程序RoPE,对动力斜坡试验棒设计中的初始球团与包壳间隙和燃料密度等因素进行敏感性分析。通过调整试验棒的制造参数和冷却剂条件,可以模拟常温常压试验环境下熔覆层的高应力应变状态。灵敏度分析为在常压和常温回路中进行功率斜坡试验提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Feasibility Study on Power Ramp Test Under Atmospheric Pressure and Ordinary Temperature
Pellet-to-cladding mechanical interaction is an important physical phenomenon during reactor power change as well as a multi-phenomenal fuel rod failure mechanism involving stress, strain and material irradiation properties. In order to avoid the failure caused by PCMI, a large number of power ramp tests have been carried out by international organizations over the past decades. The typical way of power ramp test in a high temperature and pressure loop requires stringent test capabilities and high test costs. The key parameters of the PCMI phenomena are stress and strain of cladding, which are generally chosen as the evaluation indicators of PCMI. If it is possible to simulate the pellet-to-cladding contact state, i.e. the gap between pellet and cladding under basic irradiation power level in atmospheric pressure and ordinary temperature environment, then the high stress and strain state of the cladding during the subsequent power ramp test could also be simulated in the same environment, which means lower test costs and test loop requirements. Therefore, a sensitivity analysis using the fuel rod performance analysis code RoPE, was carried out on factors such as initial pellet-to-cladding gap and fuel densification in the power ramp test rod design. By adapting the manufacturing parameters of the test rod and coolant conditions, the high stress and strain state of the cladding could be simulated in the test environment at normal temperature and pressure. The sensitivity analysis provides a theoretical basis for conducting power ramp tests in an atmospheric pressure and ordinary temperature loop.
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来源期刊
CiteScore
0.80
自引率
25.00%
发文量
35
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