隔振
人工神经网络
操纵器(设备)
振动
计算机科学
分离(微生物学)
控制理论(社会学)
控制工程
工程类
人工智能
机器人
物理
声学
生物
生物信息学
控制(管理)
作者
Yuchen Zhang,Liang Li,Dingguo Zhang,Wei‐Hsin Liao,Xian Guo
标识
DOI:10.1016/j.cja.2024.02.001
摘要
Segmented Active Constrained Layer Damping (SACLD) is an intelligent vibration-damping structure, which could be applied to the sectors of aviation, aerospace, and transportation engineering to reduce the vibration of flexible structures. Moreover, machine learning technology is widely used in the engineering field because of its efficient multi-objective optimization. The dynamic simulation of a rotational segmental flexible manipulator system is presented, in which enhanced active constrained layer damping is carried out, and the neural network model of Genetic Algorithm-Back Propagation (GA-BP) algorithm is investigated. Vibration suppression and structural optimization of the SACLD manipulator model are studied based on vibration mode and damping prediction. The modal responses of the SACLD manipulator model at rest and rotation are obtained. In addition, the four model indices are optimized using the GA-BP neural network: axial incision size, axial incision position, circumferential incision size, and circumferential incision position. Finally, the best model for vibration suppression is obtained.
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