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Topology optimization of continuum structures under hybrid additive-subtractive manufacturing constraints

机译:混合添加剂 - 减法制造制约因素下连续结构的拓扑优化

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摘要

Additive manufacturing (AM) makes it possible to fabricate complicated parts that are otherwise difficult to manufacture by subtractive machining. However, such parts often require temporary support material to prevent the component from collapsing or warping during fabrication. The support material results in increased material consumption, manufacturing time, and clean-up costs. The surface precision and dimensional accuracy of the workpieces from AM are far from the engineering requirement due to layer upon layer manufacturing. Subtractive machining (SM), by contrast, can fabricate parts to satisfy the requirements of surface precision and dimensional accuracy. Nevertheless, the components need to be relatively uncomplicated for subtractive manufacturing. Thus, hybrid additive-subtractive manufacturing (HASM) is gaining increasing attention in order to take advantages of both processes. There is little research on the topological design methodology for this hybrid manufacturing technology. To address this issue, a method based on geometry approach for topology optimization of continuum structure is proposed in this paper. Both additive manufacturing and subtractive machining constraints are simultaneously considered in each topology optimization iteration. The topology optimization is performed by the bi-directional evolutionary structural optimization (BESO) method. The effectiveness of the proposed method is demonstrated by several 3D compliance minimization problems.
机译:添加剂制造(AM)使得可以制造通过减肥加工难以制造的复杂部件。然而,这种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。支撑材料导致材料消耗,制造时间和清理成本增加。由于层制造上的层,从AM的工件的表面精度和尺寸精度远远远非从工程要求。相比之下,减肥加工(SM)可以制造零件以满足表面精度和尺寸精度的要求。然而,组件需要相对简单地对减色制造。因此,混合添加剂 - 减法制造(HASM)在增加两个过程的优点以增加越来越长。对该混合动力车制造技术的拓扑设计方法几乎没有研究。为了解决这个问题,本文提出了一种基于拓扑结构的几何方法的方法。在每个拓扑优化迭代中同时考虑添加剂制造和减法加工约束。拓扑优化由双向进化结构优化(BESO)方法执行。所提出的方法的有效性由几种3D顺从最小化问题证明。

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