论文标题

故障行为和与故障域的处理图,用于热压缩粉末冶金NI超合金

Failure behaviors and processing maps with failure domains for hot compression of a powder metallurgy Ni-based superalloy

论文作者

Chi, Zonglin, Ren, Shuai, Qiao, Jingbo, Qu, Jinglong, Yang, Chengbin, Xie, Zhuanye, Chen, Wei, Zhang, Hua, Jiang, Liang, Chen, Shuying, Meng, Fanchao

论文摘要

处理图是指导超合金的热机械加工(TMP)的关键。但是,传统的加工图无法划定故障,这是超级合金TMP期间要关注的重要因素。本研究采用等温热压缩实验和有限元分析(FEA),研究了基于预测的故障阈值,研究了基于失败域的粉末冶金(p/m)Ni的超合金和构造的处理图。在FEA中采用了微机械Gurson-Tvergaard-Needleman(GTN)损伤模型,以模拟超级合金的腔内驱动的晶间断裂。在1050〜1155 C和0.001〜1 S-1的范围内考虑变形温度和应变速率。 FEA的结果表明,最大拉伸应力位于样品的外芽表面,这会导致失败引发并随后传播到纵向裂纹中,与实验一致。进一步证明,故障是应变控制的,临界故障应变对所考虑的应变率范围几乎不敏感,而在三阶多项式中随着温度的升高而增加。最后,配制了一个优化的处理窗口,以使其对超合金的热变形,以便在避免流动不稳定性和故障的同时,必须进行良好的热功能性。本研究直接洞悉了基于P/M Ni的超合金的故障行为,并详细介绍了一种模拟策略,以描绘超合金TMP的优化参数空间。

Processing maps are key to guiding the thermo-mechanical processing (TMP) of superalloys. However, traditional processing maps are incapable of delimiting failure, which is an essential factor to be concerned about during the TMP of superalloys. Employing isothermal hot compression experiments and finite element analysis (FEA), the present study examined the failure behaviors of a powder metallurgy (P/M) Ni-based superalloy and constructed processing maps with failure domains based on the predicted failure threshold. The micromechanical Gurson-Tvergaard-Needleman (GTN) damage model was employed in the FEA to model the cavity-driven intergranular fracture of the superalloy. Deformation temperature and strain rate were considered in the range of 1050 ~ 1150 C and 0.001 ~ 1 s-1, respectively. The FEA results reveal that the maximum tensile stress locates at the outer budging surfaces of the samples, which causes failure initiation and subsequent propagation into longitudinal cracks, being consistent with the experiments. It is further demonstrated that the failure is strain-controlled and the critical failure strain remains nearly insensitive to the range of strain rates considered while increasing with the increase of temperature in a third-order polynomial. Finally, an optimized processing window for hot deformation of the superalloy is formulated to warrant good hot workability while avoiding flow instability and failure. The present study offers direct insights into the failure behaviors of P/M Ni-based superalloys and details a modeling strategy to delineate optimized parametric spaces for the TMP of superalloys.

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