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Investigation of balancing problem for a planar mechanism using genetic algorithm

机译:基于遗传算法的平面机构平衡问题研究

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In this study, optimal balancing of a planar articulated mechanism is investigated to minimize the shaking force and moment fluctuations. Balancing of a four-bar mechanism is formulated as an optimization problem. On the other hand, an objective function based on the sub-components of shaking force and moment is constituted, and design variables consisting of kinematic and dynamic parameters are defined. Genetic algorithm is used to solve the optimization problem under the appropriate constraints. By using commercial simulation software, optimized values of design variables are also tested to evaluate the effectiveness of the proposed optimization process. This work provides a practical method for reducing the shaking force and moment fluctuations. The results show that both the structure of objective function and particularly the selection of weighting factors have a crucial role to obtain the optimum values of design parameters. By adjusting the value of weighting factor according to the relative sensitivity of the related term, there is a certain decrease at the shaking force and moment fluctuations. Moreover, these arrangements also decrease the initiative of mechanism designer on choosing the values of weighting factors.
机译:在这项研究中,研究了平面铰接机构的最佳平衡,以最大程度地减小振动力和力矩波动。四杆机构的平衡被公式化为优化问题。另一方面,基于振动力和力矩的子分量构造了目标函数,并定义了由运动学和动态参数组成的设计变量。遗传算法用于在适当约束下解决优化问题。通过使用商用仿真软件,还对设计变量的优化值进行了测试,以评估所提出优化过程的有效性。这项工作提供了减少振动力和力矩波动的实用方法。结果表明,目标函数的结构,尤其是权重因子的选择,对于获得设计参数的最佳值都起着至关重要的作用。通过根据相关项的相对灵敏度调整加权因子的值,可以在一定程度上降低振动力和力矩波动。此外,这些安排还降低了机制设计者选择权重因子值的积极性。

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