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Optimum balancing of slider-crank mechanism using equimomental system of point-masses

机译:使用点质量的平衡系统的滑块曲柄机构的最佳平衡

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An optimization technique for dynamic balancing of planar mechanisms is presented in this paper. The shaking forces and shaking moments developed due to inertia forces in mechanisms are minimized using the genetic algorithm (GA). The inertial properties of rigid links of mechanism are represented by dynamically equivalent systems of point-masses. The shaking force and shaking moment are then evaluated in terms of the point-mass parameters and presented as the objective function for the proposed optimization problem. Using the point-mass parameters as design variables, the solution of this optimization problem optimizes the mass distribution of each link. The results obtained by using genetic algorithm are found better than the conventional optimization algorithm results. The masses and inertias of the optimized links are computed from the optimized design variables. The effectiveness of the proposed methodology is shown by applying it to a problem of slider-crank planar mechanism available in the literature.
机译:本文介绍了平面机构动态平衡的优化技术。使用遗传算法(GA)最小化由于机构惯性力而产生的摇动力和振动矩。机构的刚性连杆的惯性性质由动态等同的点质量系统表示。然后根据点质量参数评估摇动力和摇动力矩,并作为所提出的优化问题的目标函数呈现。使用点质量参数作为设计变量,该优化问题的解决方案优化了每个链路的质量分布。通过使用遗传算法获得的结果比传统的优化算法结果更好。优化链路的质量和惯性从优化的设计变量计算。通过将其应用于文献中可用的滑块曲柄平面机制的问题来示出所提出的方法的有效性。

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