Optimization Design of Vibration Reduction Structure of Driving Sprocket Based on Niche Adaptive Genetic Algorithm

Zhan Zhao, W. Meng, B. Yan, Tao Yang, Hong-wei Ren, Yuan Yuan
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Abstract

To improve the damping performance of driving sprocket of crawler construction vehicle, this paper replaces the tubular constraint ``double damping layer'' structure (TCDDS) with a ``damping layer + stand-off-layer'' structure, and the dynamics analysis of the structure is carried out under multiple working conditions. By analyzing the dynamic performance of the vibration damping structure under different working conditions, the optimal laying position of the damping layer and the stand-off-layer is discussed. Furthermore, under the condition that the total thickness of the tubular stand-off-layer sandwiched structure(TSSS) remains constant and both the stand-off- layer and damping layer do not exceed the allowable stress and strain, the energy loss ratio per unit period is taken as the optimization goal, and based on niche-adaptive genetic algorithm, the design variables(thickness of base layer, constraint layer, stand-off-layer and damping layer, material elastic modulus and loss factor of stand-off-layer and damping layer) are optimized by ANSYS and MATLAB. The optimization results show that the maximum displacement and stress of the damping layer and stand-off-layer of the structure after optimization are greatly reduced compared with those before optimization, the maximum strain increases from 15.35% to 22.55%, and the energy loss ratio increases from 0.2914 to 0.5418, which improves the vibration reduction effect of the structure. The theories and methods of this paper can provide a certain reference for the vibration damping design of heavy-duty crawler vehicles, and have a certain reference value for the application of genetic algorithm optimization in the structural design of construction vehicles.
基于小生境自适应遗传算法的驱动链轮减振结构优化设计
为提高履带式工程车辆驱动链轮的阻尼性能,本文将管状约束“双阻尼层”结构(TCDDS)替换为“阻尼层+隔层”结构,并对该结构进行了多工况下的动力学分析。通过分析不同工况下减震结构的动力性能,讨论了减震层和隔震层的最佳布置位置。在管状隔层夹层结构(TSSS)总厚度保持不变、隔层和阻尼层均不超过许用应力应变的情况下,以单位周期能量损失率为优化目标,基于小生境自适应遗传算法,将设计变量(基础层、约束层、隔层和阻尼层厚度)、利用ANSYS和MATLAB对隔层和阻尼层的材料弹性模量和损耗因子进行了优化。优化结果表明:优化后结构阻尼层和隔震层的最大位移和应力较优化前大幅减小,最大应变由15.35%提高到22.55%,能量损失率由0.2914提高到0.5418,结构的减振效果得到改善。本文的理论和方法可以为重型履带式车辆的减振设计提供一定的参考,对遗传算法优化在工程车辆结构设计中的应用具有一定的参考价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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