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A Design Method of an Automotive Wheel-Bearing Unit With Discrete Design Variables Using Genetic Algorithms

机译:基于遗传算法的离散设计变量汽车轮毂轴承设计方法

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In order to improve the efficiency of the design process and the quality of the resulting design, this study proposes a design method for determining design variables of an automotive wheel-bearing unit of double-row angular-contact ball bearing type by using a genetic algorithm. The desired performance of the wheel-bearing unit is to maximize system life while satisfying geometrical and operational constraints without enlarging mounting space. The design variables selected are number of balls, initial contact angle, standard ball diameter, pitch circle diameter, preload, distance between ball centers, and wheel offset, which must be selected at the preliminary design stage. The use of gradient-based optimization methods for the design of the unit is restricted because this design problem is characterized by the presence of discrete design variables such as the number of balls and standard ball diameter. Therefore, the design problem of rolling element bearings is a constrained discrete optimization problem. A genetic algorithm using real coding and dynamic mutation rate is used to efficiently find the optimum discrete design values. To effectively deal with the design constraints, a ranking method is suggested for constructing a fitness function in the genetic algorithm. A computer program is developed and applied to the design of a real wheel-bearing unit model to evaluate the proposed design method. Optimum design results demonstrate the effectiveness of the design method suggested in this study by showing that the system life of an optimally designed wheel-bearing unit is enhanced in comparison with that of the current design without any constraint violations. It is believed that the proposed methodology can be applied to other rolling element bearing design applications.
机译:为了提高设计过程的效率和设计结果的质量,本研究提出了一种利用遗传算法确定双列角接触球轴承型汽车轮毂轴承设计变量的设计方法。 。轮轴承单元的理想性能是在不增加安装空间的情况下,在满足几何和操作约束的同时,最大化系统寿命。选择的设计变量是滚珠数量,初始接触角,标准滚珠直径,节圆直径,预载,滚珠中心之间的距离和车轮偏移,这些必须在初步设计阶段选择。由于该设计问题的特征在于存在离散设计变量(例如,球的数量和标准球的直径),因此在单元设计中使用基于梯度的优化方法受到了限制。因此,滚动轴承的设计问题是受约束的离散优化问题。使用实际编码和动态突变率的遗传算法可有效地找到最佳离散设计值。为了有效应对设计约束,提出了一种在遗传算法中构造适应度函数的排序方法。开发了计算机程序,并将其应用于真实的轴承单元模型的设计,以评估所提出的设计方法。最佳设计结果通过显示与现有设计相比,没有任何约束违规的情况下,经过优化设计的车轮轴承单元的系统寿命得以延长,从而证明了本研究中建议的设计方法的有效性。可以相信,所提出的方法可以应用于其他滚动轴承设计应用。

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