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Self-supporting interior structures modeling for buoyancy optimization of computational fabrication

机译:自支撑内部结构浮力优化计算制造的建模

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摘要

Interior structures including lattice, porous, or cellular structures have been widely used in geometric design for 3D printing. It can not only reduce the weight of objects but also adjust the physical properties, such as stress, balance, and center of mass. In this work, we present a novel method for buoyant equilibrium and optimization of the material distribution inside an object, such that the 3D printed object satisfies prescribed constraints of mass properties. In particular, we introduce a mathematical method to describe the internal structure compactly, and prove that this compact formulation generates density-variable lattice structures to control the mass properties precisely. Additionally, this internal structure has shown itself to be capable of self-supporting in 3D printing processing. We demonstrate the effectiveness of our mathematically based method for generating interior patterns in the applications of optimizing shapes that stably float in liquids, and in improving mechanical stiffness.
机译:包括晶格,多孔或蜂窝结构的内部结构已广泛用于3D打印的几何设计。它不仅可以减少物体的重量,还可以调整物理性质,例如压力,平衡和质量中心。在这项工作中,我们提出了一种新颖的浮力平衡和物体材料分布优化的方法,使得3D印刷物体满足质量特性的规定约束。特别地,我们介绍了一种紧凑地描述内部结构的数学方法,并证明该紧凑型配方产生密度变形晶格结构以精确地控制质量性质。另外,这种内部结构已经显示为能够在3D打印处理中自支撑。我们展示了我们数学上基于方法的有效性,用于在优化液体中稳定地浮动的形状的应用中产生内部图案,以及改善机械刚度。

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