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Robust Analysis and Optimization Design of Double Front Axle Steering System

机译:双前轴转向系统的鲁棒性分析和优化设计

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摘要

Existing multi-axle steering system designs generally use the deterministic optimization method without considering the uncertainties during the design process; therefore an actual steering movement may deviate from the ideal movement calculated by some mathematical models. In order to make design results have less sensitive to the uncertainties in the design process, some uncertainties need be taken into account at the early design stage. This paper proposes a robust optimization design method for a double front axle steering system (DFASS) of heavy trucks based on Monte Carlo method. The DFASS consists of two trapezoidal steering mechanisms (TSM) and one rocker system, and the optimization objectives of DFASS include the minimum mean value and variance of the maximum turning angle error of the TSM and rocker system. In addition, the robust optimization model includes 13 design variables which are all geometry parameters of DFASS and represented by normal distribution. Through the orthogonal experiment, we obtain the important factors affecting optimization objectives and build the response surface models of optimization objective. Based on the response surfaces, robustness design of DFASS is performed. By simulating analysis, the improved robustness of DFASS based on robust design method is approved.
机译:现有的多轴转向系统设计通常使用确定性优化方法,而不考虑设计过程中的不确定性。因此实际的转向运动可能会偏离一些数学模型计算出的理想运动。为了使设计结果对设计过程中的不确定性较不敏感,在设计初期就需要考虑一些不确定性。提出了一种基于蒙特卡洛方法的重型卡车双前轴转向系统(DFASS)的鲁棒优化设计方法。 DFASS由两个梯形转向机构(TSM)和一个翘板系统组成,并且DFASS的优化目标包括TSM和翘板系统的最小平均值和最大转角误差的方差。此外,鲁棒优化模型包括13个设计变量,这些变量都是DFASS的几何参数,并由正态分布表示。通过正交试验,获得影响优化目标的重要因素,建立优化目标的响应面模型。基于响应面,执行DFASS的鲁棒性设计。通过仿真分析,证明了基于稳健设计方法的改进的DFASS稳健性。

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