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Application of multi-objective genetic algorithms to the mechatronic design of a four bar system with continuous and discrete variables

机译:多目标遗传算法在具有连续变量和离散变量的四杆系统机电设计中的应用

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This paper deals with a multi-objective optimization of a mechatronic system. The objective functions to minimize are the motor torque and the fluctuation of the system velocity. These goals are achieved by simultaneously finding the best motor in a list, to drive the system and the best distribution of the inertia of the mechanical system parts. This led us to formulate a global optimization problem where all the inertia parameters of the mechanism and the different motors are considered simultaneously. The problem is then presented as a multi-objective optimization one with continuous and discrete variables. A second generation Multi-Objective-Genetic Algorithm method, called Non-dominated Sorting GA-II (NSGA-II), was used to solve this problem. The obtained solutions form what is called a "Pareto front". They are analyzed for several different design conditions. We showed, in particular, that the proposed method, compared to electromechanical design strategy, proved to be more efficient in finding the optimal combination of the mechanical system and the driving motor besides minimizing the power consumption without the need of sophisticated controllers.
机译:本文涉及机电系统的多目标优化。最小化的目标功能是电动机转矩和系统速度的波动。这些目标是通过在列表中同时找到最佳电动机来驱动系统并以最佳方式分配机械系统零件的惯性来实现的。这导致我们提出了一个全局优化问题,其中同时考虑了机构和所有不同电机的所有惯性参数。然后将问题表示为具有连续变量和离散变量的多目标优化。第二代多目标遗传算法方法,称为非支配排序GA-II(NSGA-II),用于解决此问题。所获得的解形成所谓的“帕累托阵线”。针对几种不同的设计条件对它们进行了分析。我们特别表明,与机电设计策略相比,该方法被证明在寻找机械系统和驱动电机的最佳组合方面更为有效,而且无需使用复杂的控制器即可将功耗降至最低。

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