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STRESS AND DISTORTION SIMULATION OF ADDITIVE MANUFACTURING PROCESS BY HIGH PERFORMANCE COMPUTING

机译:高性能计算的增材制造过程应力与变形模拟

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Numerical simulation is an efficient way to better understand the thermal and mechanical evolution during metal additive manufacturing (AM) and to design and optimize the process. However, with today's computational tools, pass-bypass thermal-mechanical numerical simulation of the metal AM process is extremely time-consuming. In this study, a new finite element code recently developed in house at Oak Ridge National Lab was used for additive manufacturing simulation. Our new code effectively utilizes GPU based high-performance computers to allow for realistic simulation of the transient thermal and mechanical response of materials during additive manufacturing. A benchmark study on a cylinder model by powder bed selective laser melting was carried out and distortion profile was compared to the experimental measurements. The accuracy and efficiency of the code was also demonstrated by analyzing a wire and arc additive manufacturing (WAAM) model which consists of a base plate and four deposited layers.
机译:数值模拟是一种有效的方法,可以更好地理解金属增材制造(AM)过程中的热和机械演化,并设计和优化该过程。但是,使用当今的计算工具,金属增材制造过程的旁路热机械数值模拟非常耗时。在这项研究中,最近在橡树岭国家实验室内部开发的一种新的有限元代码用于增材制造仿真。我们的新代码有效利用了基于GPU的高性能计算机,可以对增材制造过程中材料的瞬态热和机械响应进行逼真的仿真。通过粉末床选择性激光熔化对圆柱模型进行了基准研究,并将变形轮廓与实验测量值进行了比较。通过分析由基板和四个沉积层组成的线材和电弧增材制造(WAAM)模型,还演示了代码的准确性和效率。

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