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首页> 外文期刊>Journal of Computing and Information Science in Engineering >Memory-Efficient Modeling and Slicing of Large-Scale Adaptive Lattice Structures
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Memory-Efficient Modeling and Slicing of Large-Scale Adaptive Lattice Structures

机译:内存高效的大规模自适应晶格结构的型号和切片

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Lattice structures have been widely used in various applications of additive manufacturing due to its superior physical properties. If modeled by triangular meshes, a lattice structure with huge number of struts would consume massive memory. This hinders the use of lattice structures in large-scale applications (e.g., to design the interior structure of a solid with spatially graded material properties). To solve this issue, we propose a memory-efficient method for the modeling and slicing of adaptive lattice structures. A lattice structure is represented by a weighted graph where the edge weights store the struts' radii. When slicing the structure, its solid model is locally evaluated through convolution surfaces in a streaming manner. As such, only limited memory is needed to generate the toolpaths of fabrication. Also, the use of convolution surfaces leads to natural blending at intersections of struts, which can avoid the stress concentration at these regions. We also present a computational framework for optimizing supporting structures and adapting lattice structures with prescribed density distributions. The presented methods have been validated by a series of case studies with large number (up to 100M) of struts to demonstrate its applicability to large-scale lattice structures.
机译:由于其优异的物理性质,晶格结构已被广泛应用于添加剂制造的各种应用。如果由三角网格建模,则具有大量支柱的格子结构将消耗大量内存。这阻碍了在大规模应用中使用晶格结构(例如,设计具有空间分级材料特性的固体的内部结构)。要解决此问题,我们提出了一种用于建模和切片的内存高效方法,适应格子结构。晶格结构由加权图表示,其中边缘权重存储支柱的半径。当切割结构时,其固体模型通过以流式方式通过卷积表面局部评估。因此,只需要有限的存储器来生成制造的刀具路径。而且,卷积表面的使用导致在支柱的交叉点处产生自然混合,这可以避免这些区域处的应力集中。我们还提出了一种用于优化支撑结构和调整具有规定密度分布的晶格结构的计算框架。通过大量(高达100米)支柱的一系列案例研究验证了所提出的方法,以证明其对大规模格子结构的适用性。

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