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Topological shape optimization design of continuum structures via an effective level set method

机译:有效水平集方法的连续体结构拓扑形状优化设计

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This paper proposes a new level set method for topological shape optimization of continuum structure using radial basis function (RBF) and discrete wavelet transform (DWT). The boundary of the structure is implicitly represented as the zero level set of a higher-dimensional level set function. The interpolation of the implicit surface using RBF is introduced to decouple the spatial and temporal dependence of the level set function. In doing so, the Hamilton-Jacobi partial differential equation (PDE) that defines the motion of the level set function is transformed into an explicit parametric form, without requiring the direct solution of the complicated PDE using the finite difference method. Therefore, many more efficient gradient-based optimization algorithms can be applied to solve the optimization problem, via updating the expansion coefficients of the interpolant and then evolving the level set function and the boundary. Furthermore, the DWT is employed to handle the full matrix arising from the globally supported RBF interpolation. Several high stiffness but lightweight designs with smooth and clear structural boundaries are optimized and presented. The numerical results show that the proposed method can remarkably increase the efficiency in the topology optimization design of both the 2D and 3D structures.
机译:提出了一种基于径向基函数(RBF)和离散小波变换(DWT)的连续体结构拓扑形状优化的新的水平集方法。结构的边界隐式表示为高维级别集函数的零级别集。引入了使用RBF对隐式表面进行插值的功能,以消除水平集函数的时空依赖性。这样做时,将定义水平集函数的运动的汉密尔顿-雅各比偏微分方程(PDE)转换为显式参数形式,而无需使用有限差分法直接求解复杂的PDE。因此,可以通过更新插值器的展开系数,然后对水平集函数和边界进行演化,将许多更有效的基于梯度的优化算法应用于解决优化问题。此外,DWT用于处理由全局支持的RBF插值产生的完整矩阵。优化并提出了几种高刚度但轻巧的设计,具有平滑清晰的结构边界。数值结果表明,该方法可以显着提高2D和3D结构的拓扑优化设计效率。

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