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Design and Simulation of an Integrated Steering System for All-purpose Sport Utility Vehicles (SUVs) – Case for Toyota

机译:通用运动型多功能车(SUV)的集成转向系统的设计和仿真–丰田的案例

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Sport Utility Vehicles (SUVs) have the largest (and growing) global market share for passenger cars, despite having a generally higher rollover propensity, lower maneuverability and poorer fuel economy than other passenger vehicle segments. These are consequences of longer wheelbase, wider track and higher center of gravity. Stability and agility depend heavily on steering systems. This paper involves the design and simulation of an integrated steering system for SUVs, case for Toyota. In the spirit of Kaizen, the paper explores possible improvements on SUV handling characteristics in an energy-efficient manner. A detailed literature review investigated the existing systems on the Toyota Fortuner AN160 as the benchmark vehicle for the research, as well as systems on vehicles with related steering and suspension geometries. Inspired by the remarkable stability of cheetahs in high-speed maneuvers, cheetah dynamics (biomimicry) were translated to the desired solution as four-wheel steering (4WS). Consulting with Toyota Zimbabwe, concepts were generated and detailed designs for the rear-wheel steering axle geometry and its actuation were done as the first design phase. A novel system to combine Toyota’s Variable Gear Ratio Steering (VGRS) system with Electric Power Steering (EPS) on a single electric motor was also conceptualized and detailed design shall be carried out for this system as the second design phase, with exhaustive experimentation. Theoretical design of the axle assembly parts was confirmed by static simulations for design correction and weight optimization. Finally, costing, sustainability and impact analyses of the design were carried out. Three key outcomes of this paper are improved vehicle handling, sustainable steering system development and better compliance with the next major step in automobile evolution – autonomous driving.
机译:尽管越野车比其他乘用车细分市场普遍具有更高的侧翻倾向,较低的可操纵性和较差的燃油经济性,但它在乘用车领域的全球市场份额最大(并且在不断增长)。这些是轴距更长,履带更宽,重心更高的结果。稳定性和敏捷性在很大程度上取决于转向系统。本文涉及用于SUV的综合转向系统(以丰田为例)的设计和仿真。本着Kaizen的精神,本文探索了以节能方式改善SUV操纵特性的方法。详细的文献综述调查了作为研究基准车的丰田Fortuner AN160上的现有系统,以及具有相关转向和悬架几何形状的车辆上的系统。受到猎豹在高速机动中出色稳定性的启发,猎豹动力学(仿生学)被转化为四轮转向(4WS)所需的解决方案。在第一个设计阶段,咨询了丰田津巴布韦,产生了概念,并完成了后轮转向轴几何形状及其致动的详细设计。还构想了一种将丰田可变齿轮比转向(VGRS)系统与电动转向(EPS)结合在单个电动机上的新颖系统,并将对该系统作为第二设计阶段进行详尽的设计,并进行详尽的试验。车桥总成零件的理论设计已通过静态仿真确认,以进行设计校正和重量优化。最后,进行了设计的成本,可持续性和影响分析。本文的三个主要成果是改进的车辆操纵性能,可持续的转向系统开发以及更好地符合汽车发展的下一个主要步骤–自动驾驶。

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