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Prediction of residual stress distributions for single weld beads deposited on to SA5O8 steel including phase transformation effects

机译:预测沉积在SA5O8钢上的单个焊道的残余应力分布,包括相变效应

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The sensitivity of residual stress distributions in bainitic–martensitic steel welds to the transformation strains that arise when austenite decomposes on cooling has been assessed by examining the predictions of three models for a simple bead-on-plate configuration. These cover the following scenarios: case I, no phase transformations; case II, transformations with volume change effects only; case III, transformations with volume change effects and associated Greenwood–Johnson transformation plasticity. Austenite decomposition was predicted by implementing Kirkaldy’s reaction rate equations as a subroutine in the finite element code Sysweld, eliminating the need for a continuous cooling transformation diagram. Predicted residual stresses were then compared and rationalised alongside measurements obtained by neutron diffraction and the contour method. It was found that serious errors in predicting the location and magnitude of the peak stresses occurred if transformations were not included, while cases II and III gave similar results generally in agreement with the stress maps. Indeed, the trends in the experimental results were intermediate between cases II and III. Differences between the models and the potential for further improvements are discussed.
机译:贝氏体-马氏体钢焊缝中残余应力分布对奥氏体在冷却过程中分解时产生的相变应变的敏感性已通过检查三种模型对简单的珠上板结构的预测进行了评估。这些涵盖以下场景:案例I,无相位转换;情况二,仅具有体积变化效应的转化;案例三,具有体积变化效应的转化以及相关的格林伍德-约翰逊转化可塑性。通过在有限元代码Sysweld中将Kirkaldy的反应速率方程式作为子例程来实现,可以预测奥氏体的分解,从而无需连续冷却变换图。然后将预测的残余应力与中子衍射和轮廓法获得的测量结果进行比较并合理化。发现如果不包括转换,则在预测峰值应力的位置和大小时会出现严重错误,而案例II和III给出的结果大致与应力图一致。确实,实验结果的趋势介于案例II和III之间。讨论了模型之间的差异以及进一步改进的潜力。

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