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A multiobjective topology optimization approach for cost and time minimization in additive manufacturing

机译:一种多目标拓扑优化方法,用于添加制造中的成本和时间最小化

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摘要

The ever-present drive for increasingly high-performance designs realized on shorter timelines has fostered the need for computational design generation tools such as topology optimization. However, topology optimization has always posed the challenge of generating difficult, if not impossible to manufacture designs. The recent proliferation of additive manufacturing technologies provides a solution to this challenge. The integration of these technologies undoubtedly has the potential for significant impact in the world of mechanical design and engineering. This work presents a new methodology which mathematically considers additive manufacturing cost and build time alongside the structural performance of a component during the topology optimization procedure. Two geometric factors, namely, the surface area and support volume required for the design, are found to correlate to cost and build time and are controlled through the topology optimization procedure. A novel methodology to consider each of these factors dynamically during the topology optimization procedure is presented. The methodology, based largely on the use of the spatial gradient of the density field, is developed in such a way that it does not leverage the finite element discretization scheme. This work investigates a problem that has not yet been explored in the literature: direct minimization of support material volume in density-based topology optimization. The entire methodology is formulated in a smooth and differentiable manner, and the sensitivity expressions required by gradient based optimization solvers are presented. A series of example problems are provided to demonstrate the efficacy of the proposed methodology.
机译:在较短的时间表中实现了越来越高的性能设计的普遍驱动器促进了对拓扑优化等计算设计生成工具的需求。然而,拓扑优化一直构成了产生困难的挑战,如果不是不可能制造设计。最近的添加剂制造技术的增殖为这一挑战提供了解决方案。这些技术的整合无疑具有对机械设计和工程世界的重大影响潜力。这项工作提出了一种新的方法,其数学上考虑了拓扑优化过程中组件的结构性能和构建时间。发现设计所需的两个几何因素,即设计所需的表面积和支撑体积,与成本和构建时间相关,并通过拓扑优化过程来控制。提出了一种新的方法,以在拓扑优化过程中动态地考虑每个这些因素。基于利用密度场的空间梯度的方法,以使得它不利用有限元离散方案的方式开发。这项工作调查了文献中尚未探索的问题:直接最小化了基于密度的拓扑优化中的支持材料体积。整个方法以平滑且可视的方式配制,并呈现梯度基于优化溶剂所需的灵敏度表达。提供了一系列示例问题以证明所提出的方法的功效。

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