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Determining Elastic Constants of Material Using Optimization Method and Vibration Test

机译:用优化方法和振动试验确定材料的弹性常数

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This paper proposes an inverse method to obtain the elastic properties of material. The sum of the squared differences between the experimental resonance frequencies and calculated resonance frequencies from the finite element method is chosen as the objective function. The proposed method presents an optimization method, Hybrid Genetic /Simulated Annealing algorithm, to determine the elastic properties. When the objective function reaches its minimum value, its corresponding design variables are the elastic constants of the material. The inverse method is applied to determine the elastic constants of aluminum plate, Glass/PP laminate, and double coated steel plate .The results indicate that for few elastic constants as an aluminum plate, Hybrid Genetic /Simulated Annealing algorithm has no apparent improvement, but more calculation time in comparison method. While simulated annealing while for Glass/PP laminate and double coated steel plate with more elastic constants, Hybrid Genetic /Simulated Annealing algorithm is superior to the traditional simulated annealing method.
机译:本文提出了一种反演方法来获得材料的弹性特性。选择实验共振频率与通过有限元法计算出的共振频率之间的平方差之和作为目标函数。所提出的方法提出了一种优化方法,即混合遗传/模拟退火算法,来确定弹性特性。当目标函数达到最小值时,其相应的设计变量是材料的弹性常数。应用逆方法确定了铝板,玻璃/ PP层压板和双面涂层钢板的弹性常数。结果表明,对于作为铝板的弹性常数很少,混合遗传/模拟退火算法没有明显的改进,但是比较方法需要更多的计算时间。对于玻璃/ PP层压板和具有更大弹性常数的双层钢板进行模拟退火时,混合遗传/模拟退火算法优于传统的模拟退火方法。

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