首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Effects of phase transition temperature and preheating on residual stress in multi-pass & multi-layer laser metal deposition
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Effects of phase transition temperature and preheating on residual stress in multi-pass & multi-layer laser metal deposition

机译:相转变温度对多通和多层激光金属沉积中残余应力的影响

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摘要

To investigate the influences of phase transition temperature and preheating on the residual stress of multi-layer and multi-pass laser metal deposition (LMD), the multi-layer and multi-pass LMD, with and without preheating, were performed using five kinds of alloy with different phase transition features, and their residual stresses were measured using the hole drilling method. A finite-element (FE) model incorporating the phase transition was developed based on experimentally obtained physical property data. The results demonstrated that the low-temperature solid phase transition has a tensile stress relaxation effect, which leads to the formation of a compressive stress area. This relaxation effect was observed to decrease with the increase of the phase transition temperature. The high-temperature solid phase transition has no significant tensile stress relaxation effect during the multi-layer and multi-pass LMD process, which is different from the single track LMD. when the solid phase transition temperature is low, the preheating can improve the uniformity of the stress field only to a certain extent. However, when the preheating increases the lowest temperature of the thermal cycle and makes it higher than the starting point temperature of the solid phase transition, the tensile stress relaxation effect of the solid phase transition can be brought into full play. (C) 2019 Elsevier B.V. All rights reserved.
机译:为了研究相转变温度和预热对多层和多通激光金属沉积(LMD)的残余应力的影响,使用五种使用和不预热的多层和多通量LMD,具有和不预热的使用孔钻法测量具有不同相变特征的合金及其残余应力。基于实验获得的物理性质数据开发了包含相位转变的有限元(FE)模型。结果表明,低温固相转变具有拉伸应力松弛效果,这导致形成压缩应力区域。观察到这种弛豫效果随着相变温度的增加而降低。高温固相转变在多层和多遍LMD过程中没有显着的拉伸应力松弛效果,其与单轨道LMD不同。当固相转变温度低时,预热可以仅在一定程度上提高应力场的均匀性。然而,当预热增加热循环的最低温度并且使其高于固相转变的起始点温度时,可以充分发挥固相转变的拉伸应力松弛效果。 (c)2019 Elsevier B.v.保留所有权利。

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