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首页> 外文期刊>Materials Science and Engineering >Investigating the effect of grain structure on compressive response of open-cell metal foam using high-fidelity crystal-plasticity modeling
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Investigating the effect of grain structure on compressive response of open-cell metal foam using high-fidelity crystal-plasticity modeling

机译:用高保真晶体塑性建模研究晶粒结构对开放式金属泡沫压缩响应的影响

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The mechanical response of open-cell metallic foams depends strongly on their hierarchical structure, which ranges from the grain scale, to the scale of individual struts, to the scale of the bulk foam. The objective of this study is to investigate the effect of grain structure on the compressive mechanical response of open-cell metallic foam using a crystal-plasticity finite-element-based framework. Multiple polycrystalline instantiations (overlaid on a foam volume derived from X-ray tomography) are simulated to quantify the grain-size effect on crushing response of investment-cast aluminum foam. The high-fidelity numerical framework captures the deformation mechanisms across multiple length scales and is able to predict the inhomogeneous grain-to-continuum compressive response in the foams. Also, by incorporating grain-boundary strengthening and free-surface softening mechanisms, the current framework accounts simultaneously for the Hall-Petch effect in polycrystalline alloys and the effect of unconstrained slip-based deformation at the strut free surfaces. The crystal-plasticity simulations explicitly account for the effect of grain structure and surface conditions (oxidized or non-oxidized) and provide new insights into the mechanical behavior of open-cell metallic foams. Results show that the relationship between grain size and plateau stress in the foams follows a Hall-Petch-like trend provided there is at least one complete grain along the strut length and approximately one grain through the strut thickness; below this threshold, the effective plateau stress of the foam tends to saturate. In the presence of an oxidation layer, when the dislocations are blocked at the strut boundaries, the effect of grain structure on plateau stress is less pronounced than when an oxidation layer is absent. It is also shown that by accounting for grain size and surface condition through the parameters σ_y and C_4, the accuracy and generalizability of the well-established Gibson-Ashby model for plastic collapse strength can be significantly enhanced.
机译:开孔金属泡沫的机械响应在其层级结构上依赖于其层级结构,该结构从晶粒量表到块状泡沫的等级。本研究的目的是探讨谷粒结构对使用晶体塑性有限元框架的开放式金属泡沫压缩机械响应的影响。模拟多个多晶实例(覆盖在X射线断层扫描的泡沫体积上),以量化对投资铸铝泡沫的破碎响应的晶粒尺寸效应。高保真数值框架捕获多个长度尺度的变形机制,并且能够预测泡沫中的不均匀谷物对连续压缩响应。而且,通过掺入晶界强化和自由表面软化机制,目前的框架同时占据了多晶合金中的霍尔 - 胶合作用以及在支柱自由表面处的无约束滑动变形的影响。晶体塑性模拟明确地解释了晶粒结构和表面条件(氧化或非氧化)的影响,并为开放细胞金属泡沫的机械行为提供了新的见解。结果表明,泡沫中的晶粒尺寸和平台应力之间的关系遵循一个霍尔 - 竖起的趋势,条件是沿着支柱长度的至少一个完整的晶粒,通过支柱厚度大约一个颗粒;低于该阈值,泡沫的有效平台应力趋于饱和。在氧化层的存在下,当位错在支柱边界处被阻断时,晶粒结构对平台应力的影响比不存在氧化层时的显着显着。还表明,通过参数σ_y和c_4算用于晶粒尺寸和表面条件,可以显着提高塑料坍塌强度良好的Gibson-ashby模型的准确性和普遍性。

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