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Non-parametric shape optimization method for natural vibration design of stiffened shells

机译:加筋壳体自然振动设计的非参数形状优化方法

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摘要

In this paper, we newly present an effective shape optimization method for natural vibration design of stiffened thin-walled or shell structures. Both the stiffeners and their basic structures are optimized by solving two kinds of optimization problems. The first is a specified eigenvalue maximization problem subject to a volume constraint, and the second is its reciprocal volume minimization problem subject to a specified eigenvalue constraint. The boundary shapes of a thin-walled structure are determined under the condition where the stiffeners and the basic structure are movable in the in-plane direction to their surface. Both problems are formulated as distributed-parameter shape optimization problems, and the shape gradient functions are derived using the material derivative method and the adjoint variable method. The optimal free-boundary shapes are determined by applying the derived shape gradient function to the H~1 gradient method for shells, which is a parameter-free shape optimization method proposed by one of the authors. Several design examples are presented to validate the proposed method and demonstrate its practical usages.
机译:在本文中,我们新近提出了一种有效的形状优化方法,用于加劲薄壁或壳结构的自然振动设计。通过解决两种优化问题来优化加劲肋及其基本结构。第一个是受体积约束的指定特征值最大化问题,第二个是受特定特征值约束的相应的最小体积问题。薄壁结构的边界形状是在加劲肋和基础结构可沿面内方向移动到其表面的条件下确定的。将这两个问题都公式化为分布参数形状优化问题,并使用材料导数方法和伴随变量方法导出形状梯度函数。最优自由边界形状是通过将导出的形状梯度函数应用于壳体的H〜1梯度方法来确定的,这是作者之一提出的无参数形状优化方法。给出了几个设计实例,以验证所提出的方法并证明其实际用法。

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