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Topology optimization considering overhang constraints: Eliminating sacrificial support material in additive manufacturing through design

机译:考虑悬空约束的拓扑优化:通过设计消除增材制造中的牺牲支撑材料

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摘要

Additively manufactured components often require temporary support material to prevent the component from collapsing or warping during fabrication. Whether these support materials are removed chemically as in the case of many polymer additive manufacturing processes, or mechanically as in the case of (for example) Direct Metal Laser Sintering, the use of sacrificial material increases total material usage, build time, and time required in post-fabrication treatments. The goal of this work is to embed a minimum allowable self-supporting angle within the topology optimization framework such that designed components and structures may be manufactured without the use of support material. This is achieved through a series of projection operations that combine a local projection to enforce minimum length scale requirements and a support region projection to ensure a feature is adequately supported from below. The magnitude of the self-supporting angle is process dependent and is thus an input variable provided by the manufacturing or design engineer. The algorithm is demonstrated on standard minimum compliance topology optimization problems and solutions are shown to satisfy minimum length scale, overhang angle, and volume constraints, and are shown to be dependent on the allowable magnitudes of these constraints.
机译:增材制造的部件通常需要临时支撑材料,以防止部件在制造过程中塌陷或翘曲。无论是在许多聚合物增材制造过程中以化学方式去除这些支撑材料,还是在(例如)直接金属激光烧结中以机械方式去除这些支撑材料,牺牲材料的使用都会增加材料的总使用量,制造时间和所需时间在后加工处理中。这项工作的目标是在拓扑优化框架中嵌入最小允许的自支撑角度,以便可以在不使用支撑材料的情况下制造设计的组件和结构。这是通过一系列投影操作实现的,这些操作结合了局部投影(以强制执行最小长度比例尺要求)和支撑区域投影,以确保从下方充分支撑要素。自支撑角的大小取决于过程,因此是制造或设计工程师提供的输入变量。该算法在标准的最小顺应性拓扑优化问题上得到了证明,并且解决方案显示出满足最小长度比例,悬垂角度和体积约束,并且显示出取决于这些约束的允许大小。

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