晶体塑性建模捕捉冷喷材料的微观结构变化

Crystals Pub Date : 2024-03-30 DOI:10.3390/cryst14040329
Aulora Williams, YubRaj Paudel, S. Mujahid, Marc Pepi, Peter Czech, H. El Kadiri, H. Rhee
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引用次数: 0

摘要

在冷喷增材制造(CSAM)零件中,粉末颗粒的高速冲击会在板间边界产生高位错密度和亚晶粒结构区域。在进行微观结构和机械性能表征时,CSAM 铝 6061 的微观结构和机械性能显示出空间变化的不均匀性,影响了快速成型零件的整体响应。为改善颗粒结合、消除残余应力和提高机械性能,需要对压印样品进行后处理。在这项工作中,我们尝试利用粒度分布函数和粉末粒度信息来实现沿板间边界的粒度和小颗粒分布的影响,从而使用均值场粘塑性自洽(VPSC)模型准确预测冷喷材料的变形响应。在 VPSC 模型中加入板间边界项后,应力-应变响应与实验结果非常吻合,避免了因超细晶粒结构的霍尔-佩奇效应而产生的表面高应力。同样,晶粒分析的结果显示了晶粒尺寸、取向和板间机制的综合效应,捕捉到了单个晶粒所承受的应力和应变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Crystal Plasticity Modeling to Capture Microstructural Variations in Cold-Sprayed Materials
The high-velocity impact of powder particles in cold-spray additively manufactured (CSAM) parts creates intersplat boundaries with regions of high dislocation densities and sub-grain structures. Upon microstructure and mechanical characterization, CSAM Aluminum 6061 showed non-uniformity with spatial variation in the microstructure and mechanical properties, affecting the overall response of the additively manufactured parts. Post-processing treatments are conducted in as-printed samples to improve particle bonding, relieve residual stresses, and improve mechanical properties. In this work, we attempt to implement the effects of grain size and distribution of smaller grains along the intersplat boundaries using the grain size distribution function and powder size information to accurately predict the deformation response of cold-sprayed material using a mean-field viscoplastic self-consistent (VPSC) model. The incorporation of an intersplat boundary term in the VPSC model resulted in a stress–strain response closely matching the experimental findings, preventing the superficially high stresses observed due to Hall–Petch effects from ultra-fine-grain structures. Likewise, the results from the grain analysis showed the combined effects of grain size, orientation, and intersplat mechanisms that captured the stresses experienced and strain accommodated by individual grains.
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