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首页> 外文期刊>International Journal of Fatigue >A through-process, thermomechanical model for predicting welding-induced microstructure evolution and post-weld high-temperature fatigue response
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A through-process, thermomechanical model for predicting welding-induced microstructure evolution and post-weld high-temperature fatigue response

机译:贯穿过程的热力学模型,用于预测焊接引起的微观结构演变和焊后高温疲劳响应

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摘要

This paper is concerned with the development of a modelling framework to predict the effects of welding and post-weld heat treatment on thermo-mechanical performance of welded material, as a step towards a design tool for industry. A dislocation mechanics, through-process finite element model, incorporating thermal, microstructural and mechanical effects is presented, for predicting thermo-mechanical fatigue of welds. The model is applied to multi-pass gas tungsten arc welding of 9Cr martensitic steel. The predicted high-temperature low-cycle fatigue performance of cross-weld samples is comparatively assessed for a range of different post-weld heat treatment durations. It is shown that longer post-weld heat-treatment (PWHT) durations increase the predicted number of cycles to failure and that Vickers hardness gradient across the heat-affected zone can be used as an indicator of fatigue life.
机译:本文关注于建模框架的开发,以预测焊接和焊后热处理对焊接材料的热机械性能的影响,作为迈向工业设计工具的一步。提出了一种结合热,微观结构和机械效应的位错力学全过程有限元模型,用于预测焊缝的热机械疲劳。该模型适用于9Cr马氏体钢的多道气体钨极电弧焊。对于一系列不同的焊后热处理持续时间,比较评估了交叉焊接样品的预测高温低周疲劳性能。结果表明,较长的焊后热处理(PWHT)持续时间增加了预计的故障循环次数,并且整个热影响区的维氏硬度梯度可以用作疲劳寿命的指标。

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