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首页> 外文期刊>Journal of Mechanical Science and Technology >Impact resistance performance and optimal design of a sandwich beam with a negative stiffness core
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Impact resistance performance and optimal design of a sandwich beam with a negative stiffness core

机译:负刚度芯夹层梁的抗冲击性能和最优设计

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Numerical analyses were carried out to investigate the response of a sandwich beam with a negative stiffness (NS) core under quasistatic compression and low-velocity impact at the center. By varying the thicknesses of face sheets and interlayers and the lengths of segments, a parametric study on the impact resistance of the sandwich beam is conducted. The maximal deflection of the top face sheet and the strain energy stored in the NS beam were recorded at the moment when the impactor's velocity decreased to zero. Based on the impact simulation, a multi-objective optimization problem on the beam configuration was set up to find out the most efficient anti-deformation design at the impact velocity of 2500 mm/s. To solve the problem with the surrogate model method, an optimal Latin hypercube sampling (OLHS) technique and a two-phase differential evolution (ToPDE) algorithm were utilized to generate calculation points in the design space, respectively. Then different surrogate models including the RSM model, the Kriging model and the RBF model, were compared to give the best approximation of the original problem. In the end, the genetic algorithm (GA) dealing with discrete optimization problems was employed to obtain the optimum solutions. Results indicate that different parts of the NS beam dominate the resistance to deformation under different levels of impact intensity. The largest portion of the strain energy is stored in the four curved plates. In the obtained optimization solution, the longest segment is near the two ends and the flat plates near the top are thicker, which is instructive to the beam design on improving impact resistance.
机译:进行了数值分析,以研究在Quasistatic压缩和中心的低速冲击下用负刚度(NS)芯的夹层光束的响应。通过改变面板和夹层的厚度和区段的长度,对夹层光束的抗冲击性进行参数研究。当冲击器的速度降至零时,在瞬间记录顶面片材和存储在NS波束中的应变能量的最大偏转。基于冲击模拟,建立了梁配置上的多目标优化问题,以找出2500 mm / s的冲击速度下最有效的抗变形设计。为了解决代理模型方法的问题,利用了最佳的拉丁超立体采样(OLHS)技术和两相差分演进(TOPDE)算法分别在设计空间中生成计算点。然后将包括RSM模型,Kriging模型和RBF模型的不同代理模型,以提供原始问题的最佳近似。最后,采用处理离散优化问题的遗传算法(GA)来获得最佳解决方案。结果表明,NS光束的不同部位在不同水平的冲击强度下占据了变形的阻力。应变能量的最大部分存储在四个弯曲板中。在所获得的优化溶液中,最长段靠近两端,顶部附近的平板较厚,这对梁设计提高了抗冲击性的梁设计。

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