Plate/shell topological optimization subjected to linear buckling constraints by adopting composite exponential filtering function

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Abstract

In this paper, a model of topology optimization with linear buckling constraints is established based on an independent and continuous mapping method to minimize the plate/shell structure weight. A composite exponential function (CEF) is selected as filtering functions for element weight, the element stiffness matrix and the element geometric stiffness matrix, which recognize the design variables, and to implement the changing process of design variables from “discrete” to “continuous” and back to “discrete”. The buckling constraints are approximated as explicit formulations based on the Taylor expansion and the filtering function. The optimization model is transformed to dual programming and solved by the dual sequence quadratic programming algorithm. Finally, three numerical examples with power function and CEF as filter function are analyzed and discussed to demonstrate the feasibility and efficiency of the proposed method.

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Ye, H. L., Wang, W. W., Chen, N., & Sui, Y. K. (2016). Plate/shell topological optimization subjected to linear buckling constraints by adopting composite exponential filtering function. Acta Mechanica Sinica/Lixue Xuebao, 32(4), 649–658. https://doi.org/10.1007/s10409-015-0531-5

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