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Linear and nonlinear topology optimization design with projection-based ground structure method (P-GSM)

机译:基于投影的地面结构方法(P-GSM)线性和非线性拓扑优化设计

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摘要

A new topology optimization scheme called the projection-based ground structure method (P-GSM) is proposed for linear and nonlinear topology optimization designs. For linear design, compared to traditional GSM which are limited to designing slender members, the P-GSM can effectively resolve this limitation and generate functionally graded lattice structures. For additive manufacturing-oriented design, the manufacturing abilities are the key factors to constrain the feasible design space, for example, minimum length and geometry complexity. Conventional density-based method, where each element works as a variable, always results in complex geometry with large number of small intricate features, while these small features are often not manufacturable even by 3D printing and lose its geometric accuracy after postprocessing. The proposed P-GSM is an effective method for controlling geometric complexity and minimum length for optimal design, while it is capable of designing self-supporting structures naturally. In optimization progress, some bars may be disconnected from each other (floating in the air). For buckling-induced design, this issue becomes critical due to severe mesh distortion in the void space caused by disconnection between members, while P-GSM has ability to overcome this issue. To demonstrate the effectiveness of proposed method, three different design problems ranging from compliance optimization to buckling-induced mechanism design are presented and discussed in details.
机译:提出了一种新的拓扑优化方案,用于线性和非线性拓扑优化设计。对于线性设计,与传统的GSM相比,该GSM限于设计纤细构件,P-GSM可以有效地解决该限制并产生功能梯度的晶格结构。对于加性制造的设计,制造能力是限制可行设计空间的关键因素,例如,最小长度和几何复杂性。传统的基于密度的方法,其中每个元素用作变量,始终导致具有大量小复杂功能的复杂几何形状,而这些小功能甚至通常不能通过3D打印造成的,并且在后处理后失去其几何精度。所提出的P-GSM是用于控制几何复杂度和最小长度的有效方法,以实现最佳设计,同时它能够自然地设计自支撑结构。在优化进展中,一些条可以彼此断开(在空中浮动)。对于屈曲诱导的设计,由于成员之间断开导致的空白空间中的严重网格失真,此问题变得至关重要,而P-GSM具有克服此问题的能力。为了证明所提出的方法的有效性,提出并详细讨论了三种不同的设计问题,从屈曲诱导的机制设计中呈现并讨论。

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