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A level-set based continuous scanning path optimization method for reducing residual stress and deformation in metal additive manufacturing

机译:基于水平集的连续扫描路径优化方法,用于减少金属增材制造中的残余应力和变形

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Thermal residual stress and distortion inherent in metal melting and solidification process is the main cause of build failure in metal additive manufacturing (AM) techniques such as laser powder bed fusion and directed energy deposition. To ensure build quality against residual stress/distortion, it is desirable to tailor the scanning path for a given geometry that needs to be built. Since the local deformation introduced by the moving heat source is anisotropic due to non-uniform heat transfer and mechanical constraints, the scanning path can affect residual stress within a part significantly. Aiming at thermal residual stress/distortion mitigation, this paper presents a novel level set-based scanning path optimization method. The method is developed to enable layer-wise continuous scanning path optimization for geometrically well-defined parts. To make the optimization efficient, a fast process simulation method called the inherent strain method is employed to simulate the thermal residual strain. Full sensitivity analysis for the formulated compliance- and stress-minimization problems is provided, where a novel strategy called the adaptive level set adjustment (ALSA) is proposed to remedy the deficiency of ignoring the non-implementable sensitivity terms. The effectiveness of the proposed continuous scanning path optimization method and ALSA strategy has been proved by a few numerical examples. Finally, the concurrent design scenario for simultaneous scanning path and structural optimization is investigated to demonstrate the further residual stress reduction. (C) 2019 Elsevier B.V. All rights reserved.
机译:金属熔化和固化过程中固有的热残余应力和变形是金属增材制造(AM)技术(例如激光粉末床熔合和定向能量沉积)中制造失败的主要原因。为了确保抗残余应力/变形的建造质量,期望针对需要建造的给定几何形状定制扫描路径。由于不均匀的热传递和机械约束,由移动的热源引入的局部变形是各向异性的,因此扫描路径会显着影响零件内的残余应力。针对热残余应力/变形的缓解,本文提出了一种基于水平集的新型扫描路径优化方法。开发该方法的目的是为几何定义明确的零件启用逐层连续扫描路径优化。为了使优化有效,采用了一种称为固有应变方法的快速过程模拟方法来模拟热残余应变。提供了针对制定的法规遵从性和压力最小化问题的全面灵敏度分析,其中提出了一种称为自适应水平集调整(ALSA)的新策略,以弥补忽略无法执行的灵敏度项的不足。几个数值例子证明了所提出的连续扫描路径优化方法和ALSA策略的有效性。最后,研究了同时进行扫描路径和结构优化的并发设计方案,以证明进一步降低了残余应力。 (C)2019 Elsevier B.V.保留所有权利。

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