首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part L, Journal of Materials: Design and Application >Experimental and computational analysis of additively manufactured tensile specimens: Assessment of localized-cooling rate and ductile fracture using the Gurson-Tvergaard-Needleman damage model
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Experimental and computational analysis of additively manufactured tensile specimens: Assessment of localized-cooling rate and ductile fracture using the Gurson-Tvergaard-Needleman damage model

机译:含有橡皮布造型型拉伸试样的实验性和计算分析:使用Gurson-Tvergaard-Courtleman损伤模型评估局部冷却速率和延展性骨折

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摘要

The present contribution addresses the micromechanical and thermal analysis of directed energy deposition-manufactured, stainless steel 316L components by utilizing experimental and numerical analyses. It has been established that a combination of controlling process parameters, manufacturing environment and microstructural anisotropies could adversely affect the quality of as-deposited parts. Among other factors, the shape, size, and distribution of the microvoids and porosities could, to some extent, have deteriorating effects on the mechanical properties of the additively manufactured components. In this work, the micromechanically motivated Gurson–Tvergaard–Needleman damage model is utilized and the performance of the model is evaluated by observing the damage accumulation in the loaded additively manufactured specimens. By relying to the laboratory-based material data and fractographic imagery from nonstandard tensile testing on fabricated samples in different building directions, numerical model predictions are found to be in a good agreement with the experimental observations. Furthermore, by resorting to the finite element software capabilities, the thermal analyses are carried out on the manufactured cube component and the influence of the process parameters on the temperature distribution is revealed.
机译:本贡献通过利用实验和数值分析解决了定向能量沉积制造的,不锈钢316L组分的微机械和热分析。已经确定,控制过程参数,制造环境和微观结构各向异性的组合可能会对沉积的部分的质量产生不利影响。在其他因素中,微长孔和孔隙率的形状,尺寸和分布可以在一定程度上具有对加成制造部件的机械性能的影响。在这项工作中,利用了微机械动机的Gurson-Tvergaard-CandleMeman损伤模型,通过观察加载的加载制造标本中的损伤积累来评估模型的性能。通过依靠基于实验室的材料数据和来自非标准拉伸测试的非标准拉伸测试,在不同建筑方向上的制造样品中,发现数值模型预测与实验观察结果良好。此外,通过借助有限元软件能力,在制造的立方体分量上进行热分析,并揭示了工艺参数对温度分布的影响。

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