Zare Maryam, Sedaghati Ramin
Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, Montreal, QC, Canada.
J Sandw Struct Mater. 2024 Oct;26(7):1312-1340. doi: 10.1177/10996362241278231. Epub 2024 Aug 27.
In this study the optimum topology distribution of the magnetorheological elastomer (MRE) layer in an adaptive sandwich plate is investigated. The adaptive sandwich plate consists of an MR elastomer layer embedded between two thin elastic plates. A finite element model has been first formulated to derive the governing equations of motion. A design optimization methodology incorporating the developed finite element model has been subsequently developed to identify the optimum topology treatment of the MR layer to enhance the vibration control in wide-band frequency range. For this purpose, the dynamic compliance and density of each element are defined as the objective function and design variables in the optimization problem, respectively. The method of the solid isotropic material with penalization (SIMP), is extended for material properties interpolation leading to a new MRE-based penalization (MREP) model. Method of moving asymptotes (MMA) has been subsequently utilized to solve the optimization problem. The developed finite element model and design optimization method are first validated using benchmark problems. The proposed design optimization methodology is then effectively utilized to investigate the optimal topologies of the magnetorheological elastomer (MRE) core layer in MRE-based sandwich plates under various boundary and loading conditions. Results show the effectiveness of the proposed design optimization methodology for topology optimization of MRE-based sandwich panels to mitigate the vibration in wide range of frequencies.
在本研究中,对自适应夹层板中磁流变弹性体(MRE)层的最佳拓扑分布进行了研究。自适应夹层板由嵌入在两个薄弹性板之间的MR弹性体层组成。首先建立了有限元模型以推导运动控制方程。随后开发了一种结合所建立的有限元模型的设计优化方法,以确定MR层的最佳拓扑处理方式,从而在宽带频率范围内增强振动控制。为此,在优化问题中,将每个单元的动态柔度和密度分别定义为目标函数和设计变量。具有惩罚的实体各向同性材料方法(SIMP)被扩展用于材料属性插值,从而产生了一种新的基于MRE的惩罚(MREP)模型。随后采用移动渐近线方法(MMA)来求解优化问题。首先使用基准问题对所建立的有限元模型和设计优化方法进行验证。然后,所提出的设计优化方法被有效地用于研究在各种边界和载荷条件下基于MRE的夹层板中磁流变弹性体(MRE)芯层的最优拓扑结构。结果表明,所提出的设计优化方法对于基于MRE的夹层板的拓扑优化以减轻宽频范围内的振动是有效的。