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Macro-architectured cellular materials: Properties, characteristic modes, and prediction methods

机译:宏架构蜂窝材料:特性,特征模式和预测方法

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摘要

Macro-architectured cellular (MAC) material is defined as a class of engineered materials having configurable cells of relatively large (i.e., visible) size that can be architecturally designed to achieve various desired material properties. Two types of novel MAC materials, negative Poisson's ratio material and biomimetic tendon reinforced material, were introduced in this study. To estimate the effective material properties for structural analyses and to optimally design such materials, a set of suitable homogenization methods was developed that provided an effective means for the multiscale modeling of MAC materials. First, a strain-based homogenization method was developed using an approach that separated the strain field into a homogenized strain field and a strain variation field in the local cellular domain superposed on the homogenized strain field. The principle of virtual displacements for the relationship between the strain variation field and the homogenized strain field was then used to condense the strain variation field onto the homogenized strain field. The new method was then extended to a stress-based homogenization process based on the principle of virtual forces and further applied to address the discrete systems represented by the beam or frame structures of the aforementioned MAC materials. The characteristic modes and the stress recovery process used to predict the stress distribution inside the cellular domain and thus determine the material strengths and failures at the local level are also discussed.
机译:宏架构蜂窝(MAC)材料被定义为一类工程材料,具有相对较大(即可见)尺寸的可配置单元,这些单元可以进行体系结构设计以实现各种所需的材料特性。本研究介绍了两种新型的MAC材料:负泊松比材料和仿生肌腱增强材料。为了估计用于结构分析的有效材料特性并优化设计此类材料,开发了一套合适的均质化方法,为MAC材料的多尺度建模提供了有效的手段。首先,使用一种将应变场分为均质化应变场和叠加在均质化应变场上的局部细胞域中的应变变化场的方法,开发了基于应变的均质化方法。然后使用应变位移场和均质应变场之间关系的虚拟位移原理将应变变化场凝聚到均质应变场上。然后,根据虚拟力原理将新方法扩展到基于应力的均匀化过程,并进一步应用于解决上述MAC材料的梁或框架结构所代表的离散系统。还讨论了用于预测单元域内部应力分布并由此确定局部材料强度和破坏的特征模式和应力恢复过程。

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