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Designs and Optimizations of Active and Semi-Active Non-linear Suspension Systems for a Terrain Vehicle

机译:越野车主动和半主动非线性悬架系统的设计与优化

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This paper introduces a design and optimization procedure for active and semi-active non-linear suspension systems regarding terrain vehicles. The objective of this approach is the ability to quickly analyze vehicles' suspension performances resulting from passive, active, or semi-active systems. The vehicle is represented by a mathematical model regarding a quarter of it, and equations for motion are derived and solved by using MATLAB/Simulink. In order to verify the reliability of the derived computer program, a comparison is made with one of the comprehensive commercial software packages. The decision parameters of the active damping device are optimized by using the Hooke-Jeeves method, which is based on non-linear programming. The usefulness of the treated active and semi-active systems on a concrete terrain vehicle is presented and compared with the presented passive systems by analyzing the vehicle's body acceleration, velocity, displacement, and vertical tire force, namely those aspects that directly influence driving comfort and safety.
机译:本文介绍了针对地形车辆的主动和半主动非线性悬架系统的设计和优化程序。这种方法的目的是能够快速分析由被动,主动或半主动系统产生的车辆悬架性能。车辆用一个数学模型表示,占其四分之一,然后使用MATLAB / Simulink导出并求解运动方程。为了验证导出的计算机程序的可靠性,将其与一种全面的商业软件包进行了比较。主动阻尼装置的决策参数通过基于非线性编程的Hooke-Jeeves方法进行优化。通过分析车辆的车身加速度,速度,排量和垂直轮胎力,即直接影响驾驶舒适性和稳定性的方面,介绍了经过处理的主动和半主动系统在混凝土地形车辆上的有用性,并与提出的被动系统进行了比较。安全。

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