考虑固有频率约束的静止流固耦合问题拓扑优化,实现涡流诱导振动衰减

IF 3.5 3区 工程技术 Q1 MATHEMATICS, APPLIED
L.O. Siqueira , K.E.S. Silva , E.C.N. Silva , R. Picelli
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引用次数: 0

摘要

将拓扑优化应用于流固耦合问题具有挑战性,因为实际工程应用中的物理现象通常是瞬态和强耦合的。这导致前向问题和邻接问题的求解成本很高,而这正是拓扑优化方法的计算瓶颈。因此,本文提出了一种在稳态下制定拓扑优化问题,并在瞬态下进行后处理和验证的方法。其目的是设计一种刚度较高的结构,降低瞬态流体涡流引起的振动影响。为此,要在固有频率约束(无任何体积约束)下求解顺应性最小化问题。该问题采用 TOBS-GT(带几何修剪的二元结构拓扑优化)方法来解决。为了观察结构周围的涡流佘散,我们进行了瞬态模拟,考虑了层流状态下的不可压缩流体流动和结构的大位移。在拓扑优化时,流体流动处于稳定状态,结构建模时考虑小位移,即单向耦合分析。有限元法用于求解控制方程,并获得顺应性和固有频率函数的直接/联合敏感性。在这种方法中,结构的固有频率偏离了流体流动的涡流甩动频率,从而避免了共振。数值示例表明,所提出的方法可有效用于设计 FSI 问题中的二维结构,降低流动诱导振动的影响,减弱结构分析点的位移水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Topology optimization of stationary fluid–structure interaction problems considering a natural frequency constraint for vortex-induced vibrations attenuation

Topology optimization applied to fluid–structure interaction problems is challenging because the physical phenomenon in real engineering applications is usually transient and strongly coupled. This leads to costly solutions for the forward and adjoint problems, the computational bottleneck of the topology optimization method. Thus, this paper proposes a topology optimization problem formulated in the steady state with post-processing and verification in the transient state. The objective is to design a stiff structure with lower effects of vibrations induced by the transient fluid vortices. For that, the compliance minimization problem is solved subject to a natural frequency constraint (without any volume constraint). The TOBS-GT (Topology Optimization of Binary Structures with geometry trimming) method is used to solve the problem. To observe the vortex-shedding around the structure, a transient simulation is performed considering an incompressible fluid flow under a laminar regime and the structure subject to large displacements. For topology optimization, the fluid flow is at a steady state and the structure is modeled considering small displacements, i.e., a one-way coupled analysis. The finite element method is used to solve the governing equations and obtain the direct/adjoint sensitivities for the compliance and natural frequency functions. In this approach, the natural frequency of the structure is shifted away from the fluid flow vortex-shedding frequency, avoiding resonance. Numerical examples show that the proposed method can be effectively applied to design 2D structures in FSI problems with lower effects of Flow-Induced Vibration, attenuating the levels of displacement at the analyzed points of the structure.

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来源期刊
CiteScore
4.80
自引率
3.20%
发文量
92
审稿时长
27 days
期刊介绍: The aim of this journal is to provide ideas and information involving the use of the finite element method and its variants, both in scientific inquiry and in professional practice. The scope is intentionally broad, encompassing use of the finite element method in engineering as well as the pure and applied sciences. The emphasis of the journal will be the development and use of numerical procedures to solve practical problems, although contributions relating to the mathematical and theoretical foundations and computer implementation of numerical methods are likewise welcomed. Review articles presenting unbiased and comprehensive reviews of state-of-the-art topics will also be accommodated.
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