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Multi-Criteria Kinematic Optimization of a Front Multi-Link Suspension Mechanism using DOE Screening and Regression Model

机译:使用DOE筛选和回归模型的前多连杆悬架机制的多标准运动学优化

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This paper approaches the multi-criteria kinematic optimization of a front multi-link suspension mechanism. The optimization purpose is to minimize the variations of the wheel track, wheelbase, castor angle, and induced deflection angle, the monitored values being the root mean squares during simulation. The locations of the joints by which the guiding links/arms are connected to the adjacent parts are used as independent variables in the optimization process. The investigation strategy is based on a design of experiments technique - DOE Screening, obtaining the appropriate regression model. The goodness-of-fit has been verified by computing the variance in the predicted results versus the real data, the probability that the fitted model has no useful terms, and the significance of the regression. The study is performed by using the multi-body system environment ADAMS of MSC Software.
机译:本文接近了前多连杆悬架机构的多标准运动优化。优化目的是最小化车轮轨道,轴距,脚轮角度和诱导偏转角的变化,监测值是在模拟期间的根均线。引导链路/臂连接到相邻部件的接头的位置用作优化过程中的独立变量。调查策略基于实验技术的设计 - DOE筛选,获得适当的回归模型。通过计算预测结果与实际数据的方差,拟合模型没有有用术语的概率以及回归的重要性,验证了拟合的常规。该研究是通过使用MSC软件的多体系系统环境亚当进行的。

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