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ANTI-LOCK BRAKING CONTROL BASED ON BEARING LOAD SENSING

机译:基于轴承负荷感测的防锁制动控制

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Research objective: Anti-lock braking algorithms use either/both wheel deceleration and wheel slip to obtain a stable limit cycle around the friction peak to guarantee vehicle steerability and to minimize braking distance. However, both control variables pose several well-known issues regarding ABS control. The usage of wheel loads, for instance estimated based on bearing deformation, could provide a solution to these control variable related difficulties. In this paper, a wheel load based method to control wheel slip is presented and implemented in a novel Anti-lock Braking algorithm. Due to the fundamentally different approach to tackle the issue, numerous well known pitfalls of traditional Anti-lock Braking Systems can be avoided. Methodology: A mathematical derivation of the quarter car model provides the conditions in which wheel load measurement allows for determination of the derivative of wheel slip. Based on this theory, a novel ABS algorithm is proposed. It consists of two operational phases to control the wheel slip derivative and a phase switching mechanism, all based solely on wheel loads. Furthermore a methodology of wheel load estimation based on bearing deformation measurement is proposed. Finally, an experimental on-road investigation of the load estimation and proposed algorithm is carried out using an instrumented test vehicle. Results: An on-road investigation with a test vehicle demonstrates the accuracy of wheel load estimation based on bearing deformation. The estimated loads are used in a novel ABS algorithm to demonstrate the feasibility and advantages of load based ABS control. Limitations of this study: Only straight-line braking is considered as the method of load estimation is currently unable to provide the required bandwidth on estimation of loads when steering. What does the paper offer that is new in the field: Current research in the field of ABS algorithms is primarily focused on wheel slip and/or wheel deceleration control. The presented study investigates a fundamentally different approach by the use of a novel sensor. Conclusion: Based on a mathematical derivation a novel load-based ABS algorithm is proposed. Furthermore a methodology of load sensing by the use of instrumented bearings is presented. The performance of both load sensing and the Anti-lock braking algorithm has been checked via experimental testing using an instrumented test vehicle.
机译:研究目的:防锁制动算法使用/两轮减速和车轮滑动,以获得围绕摩擦峰的稳定极限循环,以保证车辆排序性并最大限度地减少制动距离。然而,控制变量都构成了有关ABS控制的几个众所周知的问题。车轮载荷的使用,例如基于轴承变形的估计,可以为这些控制变量提供相关困难。本文以一种新的防锁制动算法提出和实现了一种控制轮滑的车轮载荷方法。由于基本上不同的解决问题的方法,可以避免传统防抱死制动系统的许多公知的缺陷。方法论:四分之一车型的数学推导器提供了轮式负荷测量允许确定车轮滑动衍生的条件。基于该理论,提出了一种新型ABS算法。它由两个操作阶段组成,用于控制车轮滑动导数和相位切换机构,全部基于车轮载荷。此外,提出了一种基于轴承变形测量的车轮负荷估计方法。最后,使用仪表测试车辆进行负载估计和所提出的算法的实验路面研究。结果:使用测试车辆的一路调查显示了基于轴承变形的轮载估计的准确性。估计的负载用于新型ABS算法,以证明基于负载的ABS控制的可行性和优点。本研究的局限性:仅考虑直线制动作为负载估计的方法目前无法在转向时提供关于载荷估计的所需带宽。本领域新的纸质提议是什么:ABS算法领域的当前研究主要集中在轮滑和/或轮减速控制上。本研究通过使用新型传感器来调查基本不同的方法。结论:基于数学推导,提出了一种基于新的负载基ABS算法。此外,提出了通过使用仪表轴承的负荷感测的方法。通过使用仪表测试车辆通过实验测试检查了负荷感测和防锁制动算法的性能。

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