有机开孔多孔结构建模

Lihao Tian, Lin Lu, Weikai Chen, Yang Xia, Charlie C. L. Wang, Wenping Wang
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引用次数: 9

摘要

开孔多孔结构在自然界中普遍存在,在实际应用中得到了广泛的应用。增材制造可以制造具有复杂内部结构的形状;然而,在文献中缺少一种用于表示和模拟有机形状的一般多孔结构的计算方法。在本文中,我们提出了一种新的方法来模拟孔隙率和孔隙各向异性由用户指定或由应用规定的有机和开孔多孔结构。我们将每个孔隙表示为转换后的高斯核,其各向异性由张量场定义。多孔结构被建模为高斯核组合的水平表面。我们利用各向异性粒子系统来分布与输入张量场有关的高斯核。然后,通过遵循输入指定的各向异性,从粒子系统中生成多孔结构。我们使用morse - small配合物来识别核的拓扑结构并加强孔隙连通性。由此产生的多孔结构可以很容易地控制使用一组参数。我们在一组三维模型上演示了我们的方法,这些模型的张量场要么是预先设计的,要么是从力学分析中得到的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Organic Open-cell Porous Structure Modeling
Open-cell porous structures are ubiquitous in nature and have been widely employed in practical applications. Additive manufacturing has enabled the fabrication of shapes with intricate interior structures; however, a computational method for representing and modeling general porous structures in organic shapes is missing in the literature. In this paper, we present a novel method for modeling organic and open-cell porous structures with porosities and pore anisotropies specified by users or stipulated by applications. We represent each pore as a transformed Gaussian kernel whose anisotropy is defined by a tensor field. The porous structure is modeled as a level surface of combined Gaussian kernels. We utilize an anisotropic particle system to distribute the Gaussian kernels concerning the input tensor field. The porous structure is then generated from the particle system by following the anisotropy specified by the input. We employ Morse-Smale complexes to identify the topological structure of the kernels and enforce pore connectivity. The resulting porous structure can be easily controlled using a set of parameters. We demonstrate our method on a set of 3D models whose tensor field is either predesigned or obtained from the mechanical analysis.
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