Fatigue Life Analysis of Hydrogen Production Reactor Welds Under Thermal-mechanical-chemical Coupling

Yu Liu, Hongtao Gu, Bin Zhao, Zhiyi Leng, J. Yin, Shengfang Zhang
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Abstract

Hydrogen production reactor are subject to performance degradation problems in the complex environment of high temperature, high pressure and exposed to hydrogen atmosphere. The welds, being weak parts, are susceptible to fatigue damage under the influence of loads such as temperature, pressure and hydrogen penetration. In this paper, we focus on the fatigue life analysis of welds in hydrogen production reactor, taking into account the complex working conditions of thermal-mechanical-chemical coupling. Based on the Fe-safe fatigue analysis software, the stress variation of the welds under multi-field coupling was used as a cyclic load and the fatigue life was predicted using the stress-life method. Respectively, the fatigue life variation law of the weld region was studied at different temperatures, pressures, and hydrogen penetration conditions. The results show that the lowest fatigue life of the welds are concentrated in the vicinity of the fusion zone, with hydrogen penetration and temperature variations having a larger impact on the fatigue life, followed by pressure.
热-机-化耦合条件下制氢反应堆焊缝的疲劳寿命分析
制氢反应器在高温、高压和暴露于氢气环境的复杂环境中会出现性能退化问题。焊缝作为薄弱部件,在温度、压力和氢渗透等载荷的影响下很容易发生疲劳破坏。考虑到热-机械-化学耦合的复杂工况,本文重点研究了制氢反应器中焊缝的疲劳寿命分析。基于 Fe-safe 疲劳分析软件,将多场耦合下焊缝的应力变化作为循环载荷,采用应力-寿命法预测疲劳寿命。分别研究了不同温度、压力和氢渗透条件下焊缝区域的疲劳寿命变化规律。结果表明,焊缝的最低疲劳寿命集中在熔合区附近,氢渗透和温度变化对疲劳寿命的影响较大,其次是压力。
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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