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An energy-based method for interface connectivity of incompatible microstructures through parametric modeling

机译:一种基于能量的方法,用于通过参数建模的微观结构的界面连接

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With recent developments in topology optimization and additive manufacturing technology, it is now possible to fabricate architected materials with spatially varying microstructures. However, in designing these microstructures, the absence of proper interface connectivity can cause reduced effectiveness or even failure. We present a method for ensuring smooth interface connectivity for orthotropic microstructures through supershape-based parametric modeling. A microstructure can be reproduced by deleting the non-material regions, or voids, from a fully solid material domain. The proposed algorithm utilizes this void based representation to fuse two incompatible microstructures. Each of the voids of the input designs is detected and expressed using a superformula based implicit equation. To connect the two incompatible microstructures, a transition zone of intermediate microstructures are generated by morphing the voids of one structure to another. The morphing operation is posed as an optimization problem, which tries to minimize the difference between the two microstructures by altering their supershape parameters. An exact match at the interface of the intermediate microstructures is attained by putting restrictions on the shape of the voids that are neighboring each other. To prevent sharp changes in structural properties during morphing, homogenized total strain energy of the generated microstructure is constrained so that the properties are within a specified range from its previous microstructure in the sequence. Ancillary constraints on attainable volume fraction as well as on overlap of voids are also prescribed for controlling the optimization process. Several examples are provided to demonstrate the applicability of the void morphing method to find intermediate microstructures in the design space under these constraints. The proposed algorithm is a post-processing approach, therefore it is versatile and applicable to a wide variety of results since it requires the optimization problem to be formulated only at the interface region. (C) 2020 Elsevier B.V. All rights reserved.
机译:随着近期拓扑优化和添加剂制造技术的开发,现在可以用空间不同的微观结构制造架构材料。然而,在设计这些微观结构时,没有适当的接口连接可能会导致效果降低甚至失败。我们介绍了一种通过基于Superhape的参数化模拟来确保用于正交显微结构的平滑界面连接。可以通过从完全固体材料结构域删除非物质区域或空隙来再现微结构。所提出的算法利用基于空隙的表示来熔断两个不兼容的微结构。使用基于卓密的隐式方程检测并表达输入设计的每个空隙。为了连接两个不兼容的微结构,通过将一个结构的空隙变为另一个结构的空隙来产生中间微结构的过渡区。变形操作被构成为优化问题,这试图通过改变它们的超海展示参数来最小化两个微结构之间的差异。通过限制彼此相邻的空隙的形状来实现在中间微结构的界面处的精确匹配。为了防止在变形过程中结构特性的急剧性变化,产生的微结构的均质总应变能受约束,使得性质在其先前的序列中的微观结构的指定范围内。还规定了可达到的体积分数以及空隙重叠的辅助约束,用于控制优化过程。提供了几个例子以证明空隙变形方法在这些约束下在设计空间中找到中间微观结构。该算法是一种后处理方法,因此它是多功能的并且适用于各种各样的结果,因为它需要仅在界面区域处配方的优化问题。 (c)2020 Elsevier B.v.保留所有权利。

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