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Solidification Crack Evolution in High-Strength Steel Welding Using the Extended Finite Element Method

机译:使用延长有限元法测固高强度钢焊接的凝固裂纹演化

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摘要

High-strength steel suffers from an increasing susceptibility to solidification cracking in welding due to increasing carbon equivalents. However, the cracking mechanism is not fully clear for a confidently completely crack-free welding process. To present a full, direct knowledge of fracture behavior in high-strength steel welding, a three-dimensional (3-D) modeling method is developed using the extended finite element method (XFEM). The XFEM model and fracture loads are linked with the full model and the output of the thermo-mechanical finite element method (TM-FEM), respectively. Solidification cracks in welds are predicted to initiate at the upper tip at the current cross-section, propagate upward to and then through the upper weld surface, thereby propagating the lower crack tip down to the bottom until the final failure. This behavior indicates that solidification cracking is preferred on the upper weld surface, which has higher weld stress introduced by thermal contraction and solidification shrinkage. The modeling results show good agreement with the solidification crack fractography and in situ observations. Further XFEM results show that the initial defects that exhibit higher susceptibility to solidification cracking are those that are vertical to the weld plate plane, open to the current cross-section and concentratedly distributed compared to tilted, closed and dispersedly distributed ones, respectively.
机译:由于碳当量增加,高强度钢对焊接的凝固裂缝的升高性越来越敏感。然而,裂化机构对于自信地完全无裂缝的焊接工艺并不完全清楚。为了在高强度钢焊接中呈现完整的裂缝行为的直接知识,使用延长的有限元方法(XFEM)开发了一种三维(3-D)建模方法。 XFEM模型和断裂载荷分别与全模型和热机械有限元方法(TM-FEM)的输出相关联。预测焊缝中的凝固裂缝以在电流横截面的上尖端处引发,向上传播到然后通过上焊接表面传播,从而将下裂纹尖端向下传播到底部直到最终失效。该行为表明,上焊接表面优选凝固裂纹,其具有通过热收缩和凝固收缩引入的较高的焊接应力。建模结果与凝固裂缝断裂和原位观察表现出良好的一致性。此外,XFEM结果表明,初始缺陷表现出更高的凝固裂缝易感性的缺陷是垂直于焊接板平面的那些,与电流横截面开放,并分别与倾斜,闭合和分散的分布的分布相比浓缩分布。

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