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Method for predicting risk of cracking during weld repair of heat resistant cast steels

机译:预测耐热铸钢焊接修复过程中开裂风险的方法

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Owing to their low ductility at room temperature, heat resistant cast austenitic stainless steels are very sensitive to weld cracking. Cracks are formed in brittle zones of the heterogeneous microstructure constituted by the carbide rich interdendritic spaces. In order to identify the operating factors affecting the cracking propensity of such steels during welding, a three step method, based on numerical simulation, is presented. First, the macroscopic temperature and stress fields are determined by a finite element calculation, considering a homogeneous material. In a second step, a localisation criterion is defined to identify critical zones, according to the macroscopic fields determined in the first step. Then, the heterogeneous microstructure of the cast steel is modelled in a 'representative cell', and the thermomechanical history of the critical zone previously identified is applied as boundary condition, in order to determine the local stress field. The cracking is then supposed to occur when the maximal principal stress in the interdendritic zone of the representative cell reaches the cleavage stress of the carbides, determined using SEM in situ tensile tests. This method is used to predict cracking during multipass weld repair of bulk samples, under various welding conditions. A comparison is carried out between experiment and simulation to validate the method.
机译:由于其在室温下的低延展性,耐热铸造奥氏体不锈钢对焊缝开裂非常敏感。裂纹在由碳化物丰富的枝晶间空间构成的异质微观结构的脆性区域中形成。为了确定影响这种钢在焊接过程中开裂倾向的操作因素,提出了一种基于数值模拟的三步法。首先,考虑到均质材料,通过有限元计算确定宏观温度和应力场。在第二步中,根据第一步中确定的宏观范围,定义定位标准以识别关键区域。然后,在“代表性单元”中对铸钢的异质组织进行建模,并将先前确定的关键区域的热机械历史记录用作边界条件,以确定局部应力场。然后,当使用SEM原位拉伸试验确定代表性晶胞的树突间区域中的最大主应力达到碳化物的劈裂应力时,就会发生裂纹。该方法用于预测在各种焊接条件下散装样品的多道次焊缝修复期间的开裂。在实验和仿真之间进行比较以验证该方法。

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