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Effect of Steering System Compliance on Steered Axle Tire Wear

机译:转向系统依从性对转向轴轮胎磨损的影响

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Subject paper focuses primarily on non uniform tire wear problem of front steered wheels in a pickup model. Cause and effect analysis complemented with field vehicle investigations helped to identify some of the critical design areas. Investigation revealed that steering geometry of the vehicle is undergoing huge variations in dynamic condition as compared to initial static setting. Factors contributing to this behavior are identified and subsequently worked upon followed by a detailed simulation study in order to reproduce the field failures on test vehicles. Similar evaluation with modified steering design package is conducted and results are compared for assessing the improvements achieved. In usual practice, it is considered enough if Steering Geometry parameters are set in static condition and ensured to lie within design specifications. However, during investigation it was noticed that in dynamic condition, excessive load variations on steering linkages and parts of suspension may result in disturbing the wheel alignment significantly enough to move these parametric values beyond their specification limits. Present study takes into account all such factors that contribute to this effect. However, special deliberation has been made to Ackermann steering geometry variations due to steering system deflection losses during the study. Ackermann Steering Geometry plays a vital role in ensuring steered wheels to demonstrate uniform tire wear by defining a relationship between front inside tire and front outside tire while vehicle negotiates a curve. Results of this study propose desirable Ackermann Error trend and suitable steering characteristics that lead to uniform tire wear. A steering axle duty cycle (used during the study) has also been proposed for accelerated front tire wear simulation testing of the test vehicles. Attempt has been made to achieve a similar tire wear on the test vehicles as obtained in field vehicles. The analysis helps to develop an understanding that dynamic geometric variations in the steering system may also significantly affect tire life of the steered wheels.
机译:主题论文主要侧重于前面的非均匀的轮胎磨损问题​​,在皮卡模式转向车轮。因果分析辅之以帮助确定一些关键设计领域的现场调查车辆。调查发现相比于初始静态设置的车辆是转向几何正经历着动态条件巨大变化。造成这种现象的因素被识别,并随后在后面详细的模拟研究,以重现上测试车辆的现场故障工作。与修正转向设计包同样的评价中进行和结果用于评估实现的改进比较。在通常的做法,它被认为是不够的,如果转向几何参数是在静止状态设置和设计规范内确保撒谎。然而,调查期间,注意到在动态条件下,上转向联动装置和悬挂的部分过大的负荷的变化会导致干扰车轮定位显著足够移动这些参数值超出其技术指标。本研究中考虑了造成这种影响所有这些因素。然而,特殊的审议已经取得了阿克曼转向几何形状的变化,由于在研究过程中转向系统偏转损失。阿克曼转向几何在确保转向轮由在车辆协商一个曲线限定前部内,轮胎和前外侧轮胎之间的关系表现出均匀的轮胎磨损至关重要的作用。这项研究结果提出希望阿克曼错误趋势,并导致均匀的轮胎磨损适当的转向特性。转向轴占空比(在研究过程中使用的),也已经提出了用于该测试车辆加速前轮胎磨损模拟测试。已经尝试在外地车辆获得的,以实现对测试车辆的类似轮胎磨损。分析有助于发展的理解,在转向系统的动态几何形状的变化也可能会影响显著轮胎寿命的转向车轮。

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