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Multi-objective optimal design of magnetorheological engine mount based on an improved non-dominated sorting genetic algorithm

机译:基于改进非支配排序遗传算法的磁流变发动机悬架多目标优化设计

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A novel flow-mode magneto-rheological (MR) engine mount integrated a diaphragm de-coupler and the spoiler plate is designed and developed to isolate engine and the transmission from the chassis in a wide frequency range and overcome the stiffness in high frequency. A lumped parameter model of the MR engine mount in single degree of freedom system is further developed based on bond graph method to predict the performance of the MR engine mount accurately. The optimization mathematical model is established to minimize the total of force transmissibility over several frequency ranges addressed. In this mathematical model, the lumped parameters are considered as design variables. The maximum of force transmissibility and the corresponding frequency in low frequency range as well as individual lumped parameter are limited as constraints. The multiple interval sensitivity analysis method is developed to select the optimized variables and improve the efficiency of optimization process. An improved non-dominated sorting genetic algorithm (NSGA-Ⅱ) is used to solve the multi-objective optimization problem. The synthesized distance between the individual in Pareto set and the individual in possible set in engineering is defined and calculated. A set of real design parameters is thus obtained by the internal relationship between the optimal lumped parameters and practical design parameters for the MR engine mount. The program flowchart for the improved non-dominated sorting genetic algorithm (NSGA-Ⅱ) is given. The obtained results demonstrate the effectiveness of the proposed optimization approach in minimizing the total of force transmissibility over several frequency ranges addressed.
机译:一种新的流动模式磁流变(MR)发动机安装集成了隔膜脱耦合器和扰流板,设计和开发并在宽频范围内隔离发动机和从底盘的传动系物,并克服高频的刚度。基于粘合图方法进一步开发了单一自由度系统中MR发动机安装座的一大块参数模型,以预测最精确的MR发动机安装座的性能。建立了优化数学模型,以最小化若干频率范围内的力传递性的总量。在该数学模型中,集总参数被视为设计变量。低频范围内的力传递性和相应频率以及单独的总数参数的最大值被限制为约束。开发了多个间隔灵敏度分析方法以选择优化的变量并提高优化过程的效率。改进的非主导分类遗传算法(NSGA-Ⅱ)用于解决多目标优化问题。定义和计算在帕累托集中的个体之间的合成距离和在工程中可能设置的个体。因此,通过最佳集总参数与MR发动机安装件的实际设计参数之间的内部关系获得了一组真实设计参数。给出了改进的非主导分类遗传算法(NSGA-Ⅱ)的程序流程图。所获得的结果证明了所提出的优化方法在最小化所解决的几个频率范围内最小化力传递性的总体型。

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