ExaAM: Metal additive manufacturing simulation at the fidelity of the microstructure

工作流程 过程(计算) 水准点(测量) 计算机科学 表征(材料科学) 机械工程 拓扑优化 微观结构 忠诚 Exascale计算 财产(哲学) 有限元法 材料科学 纳米技术 超级计算机 工程类 并行计算 结构工程 电信 哲学 冶金 操作系统 地理 认识论 数据库 大地测量学
作者
John Turner,J. Belak,Nathan R. Barton,Matthew Bement,Neil Carlson,Robert Carson,Stephen DeWitt,Jean‐Luc Fattebert,N.E. Hodge,Zechariah Jibben,Wayne E. King,Lyle E. Levine,Christopher K. Newman,Alex Plotkowski,Balasubramaniam Radhakrishnan,Samuel Temple Reeve,Matt Rolchigo,Adrian S. Sabau,Stuart Slattery,Benjamin Stump
出处
期刊:International Journal of High Performance Computing Applications [SAGE]
卷期号:36 (1): 13-39 被引量:34
标识
DOI:10.1177/10943420211042558
摘要

Additive manufacturing (AM), or 3D printing, of metals is transforming the fabrication of components, in part by dramatically expanding the design space, allowing optimization of shape and topology. However, although the physical processes involved in AM are similar to those of welding, a field with decades of experimental, modeling, simulation, and characterization experience, qualification of AM parts remains a challenge. The availability of exascale computational systems, particularly when combined with data-driven approaches such as machine learning, enables topology and shape optimization as well as accelerated qualification by providing process-aware, locally accurate microstructure and mechanical property models. We describe the physics components comprising the Exascale Additive Manufacturing simulation environment and report progress using highly resolved melt pool simulations to inform part-scale finite element thermomechanics simulations, drive microstructure evolution, and determine constitutive mechanical property relationships based on those microstructures using polycrystal plasticity. We report on implementation of these components for exascale computing architectures, as well as the multi-stage simulation workflow that provides a unique high-fidelity model of process–structure–property relationships for AM parts. In addition, we discuss verification and validation through collaboration with efforts such as AM-Bench, a set of benchmark test problems under development by a team led by the National Institute of Standards and Technology.
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