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首页> 外文期刊>Procedia Manufacturing >Residual Stress Modelling and Experimental Analyses of Ti6Al4V ELI Additive Manufactured by Laser Engineered Net Shaping
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Residual Stress Modelling and Experimental Analyses of Ti6Al4V ELI Additive Manufactured by Laser Engineered Net Shaping

机译:激光工程网整形生产Ti6Al4V ELI添加剂的残余应力建模和实验分析

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This paper focus on the experimental analyses and modelling of the residual stresses build up during laser additive manufacturing by Laser Engineered Net Shaping. Currently, additive manufactured parts employ heat treatment for the reduction of internal stresses, but then additional advantages are also possible from heat treatment. The experimental analyses focus on stress relieving heat treatment temperatures to reduce the residual stresses during laser processing of LENS Ti6Al4V ELI specimens. LENS parts out of Ti6Al4V ELI will illustrate the mechanical property possibilities resulting from the selected stress relieving heat treatments in this study. The primary aim of heat treatment in this case of Ti6Al4V ELI is the reduction of internal stresses. Due to the mechanical behaviour of Ti6Al4V as built additive manufactured parts, the heat treatment seems to be necessary to increase the mechanical behaviour, such as the fatigue performance and the breaking elongation. Optical Microscope, Scanning Electron Microscope and Vickers hardness test was employed to carry out detailed study of the resulting microstructures and Hardness. The model by COMSOL Multiphysics was employed to predict the residual stresses of as built LENS Ti6Al4V ELI and to better understand the residual stresses amounts in the Ti6Al4V ELI alloy that need to be minimized by heat stress relieving heat treatment methods. The results included the β-phase that formed in the stress relieving heat treatment process that was transformed to martensite α during the cooling process and a fine basket-weave structure emerged. The microhardness of LENS Ti6Al4V ELI alloy gradually decreased with increasing stress relieving heat treatment temperature. The computed model revealed the maximum stress of 1.78x109MPa, the Model strongly recommended the LENS process parameters suitable to obtain Ti6Al4V ELI samples with minimal residual stresses and a further possible method to alleviate the attained residual stresses in the model to the desired elasticity.
机译:本文着重于通过激光工程网成形在激光增材制造过程中累积的残余应力的实验分析和建模。目前,增材制造的零件采用热处理来降低内部应力,但是热处理也可能带来其他好处。实验分析的重点是消除应力的热处理温度,以减少对LENS Ti6Al4V ELI标本进行激光加工时的残余应力。 Ti6Al4V ELI中的LENS零件将说明此研究中所选的应力消除热处理产生的机械性能可能性。在这种情况下,Ti6Al4V ELI的热处理的主要目的是减少内部应力。由于Ti6Al4V作为增材制造的零件的机械性能,似乎需要进行热处理以提高机械性能,例如疲劳性能和断裂伸长率。用光学显微镜,扫描电子显微镜和维氏硬度试验对所得的显微组织和硬度进行了详细的研究。使用COMSOL Multiphysics的模型来预测已建成的LENS Ti6Al4V ELI的残余应力,并更好地了解Ti6Al4V ELI合金中的残余应力量,这些残余应力量需要通过缓解热应力的热处理方法来减小。结果包括在应力消除热处理过程中形成的β相,该β相在冷却过程中转变为马氏体α,并出现了精细的网状组织。随着应力释放热处理温度的升高,LENS Ti6Al4V ELI合金的显微硬度逐渐降低。计算模型显示最大应力为1.78x109MPa,该模型强烈推荐适合于以最小残余应力获得Ti6Al4V ELI样品的LENS工艺参数,以及将模型中获得的残余应力减轻至所需弹性的另一种可能方法。

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