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Multi-Objective Topology Optimization of a Compliant Parallel Planar Mechanism under Combined Load Cases and Constraints

机译:组合工况和约束条件下柔性平行平面机构的多目标拓扑优化

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摘要

This paper focuses on a new type of configuration design of a compliant parallel mechanism (CPM) planar continuum structure and its characteristic analysis of vibration-inherent frequency for planar motion, which can suppress the impact of random vibration in ultra-precision positioning and manufacturing equipment and improve the inherent frequency response of the mechanism. Firstly, a vector-mapping isomorphism between the fully CPM and conventional isomorphic parallel mechanism was constructed with a kinematic differential Jacobian matrix. Then, the mathematical model of topology optimization was put forward considering the compromise programming on the static stiffness and mean vibration-inherent frequency of the mechanism as the design variable and the minimization of compliance as the objective function. A constraint of volume fraction was considered and multi-objective micro displacement mechanism topology optimization based on a prismatic-revolute-revolute (3-PRR) planar nano-positioning continuum structure was performed using the solid isotropic material with penalization (SIMP) technique, which combines the criteria of the optimization algorithm and the vector isomorphic mapping method. Multi-objective topology optimization of the continuum structure micro displacement mechanism was investigated and presented by optimizations with different initial rejection rates. The simulation results show that the stiffness and vibration suppression performance of the continuum structure were improved, whereas the positioning of differential kinematics characteristics of the 3-PRR micro displacement planar fully CPM and isomorphic prototype mechanism retain the same. The modal analysis also provides a rational configuration for the micro displacement mechanism dimensional design and its optimal modal parameters. The crossover oscillation in frequency response of the continuum structure was reduced and quickly converged in the optimization iterations. The performance of the optimized mechanism was verified by the experiments on a planar fully compliant micro displacement continuum structure based on Lead Zirconate Titanate (PZT) actuator.
机译:本文着重研究一种新型的顺应性并联机构(CPM)平面连续体结构的结构设计及其对平面运动固有振动频率的特性分析,它可以抑制随机振动对超精密定位和制造设备的影响并改善该机制的固有频率响应。首先,利用运动学的差分雅可比矩阵构造了完全CPM与常规同构并行机制之间的向量映射同构。然后,以结构的静态刚度和平均振动固有频率为设计变量,以柔度最小为目标函数,以折衷规划为基础,提出了拓扑优化的数学模型。考虑体积分数的约束,并使用带有惩罚性的固体各向同性材料(SIMP),基于棱柱形-旋转-旋转(3-PRR)平面纳米定位连续体结构进行了多目标微位移机制拓扑优化,结合了优化算法的标准和向量同构映射方法。研究了连续结构微位移机制的多目标拓扑优化方法,并提出了具有不同初始剔除率的优化方法。仿真结果表明,改进了连续体结构的刚度和减振性能,而3-PRR微位移平面完全CPM和同构原型机构的差分运动学特性定位却保持不变。模态分析还为微位移机构的尺寸设计及其最佳模态参数提供了合理的配置。连续体结构的频率响应中的交叉振荡得以减少,并在优化迭代中迅速收敛。通过在钛酸铅锆酸盐(PZT)致动器的平面完全顺从微位移连续结构上进行的实验,验证了优化机构的性能。

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