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A New Self-Contained Electro-Hydraulic Brake System

机译:一种新型的独立式电液制动系统

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摘要

The automotive brake system plays a significant role not only in the deceleration and stopping process, but also in many stability control strategies. To overcome the limitations of conventional brake systems and to improve vehicle control strategies such as traction control, and differential braking, a new generation of brake systems called the brake-by-wire system has been introduced to the vehicle industry. This generation of brake systems combines electrical, mechanical and, in some cases, hydraulic components. Although different types of brake-by-wire mechanisms have been developed in the past two decades, there still exist demands for further improvement and developing new brake mechanisms in the automotive industry due to the ever increasing demand for better safety and performance.This research proposes a novel brake-by-wire system based on cam actuation. This system is a combination of electrical, mechanical and hydraulic components. The unique feature of the cam actuation brake system proposed in this research is that the characteristics of the motor torque amplification can be optimized by careful design of the cam shape. The compactness and self-contained characteristic of the design allow the brake system to be installed on each wheel enabling fully independent control of each wheel for better stability control. Moreover, the cam actuated brake has a fail-safe advantage by keeping the direct connection between the driver and the brake calipers in case of any system failure.In this work, different subsystems of the brake system and their components are explained, the dynamic model of the system is found and the design parameters are optimized. Specifically, the optimal design problem has been formulated by taking the geometry of the cam as the optimization variable and the open-loop response time of the brake system as the objective function to be minimized. The solution to this problem is then obtained by the multi-layer design optimization process using the genetic algorithm (GA). Various control algorithms are applied to the developed cam actuated brake system to investigate their performance in terms of tracking a desired braking pressure.
机译:汽车制动系统不仅在减速和停止过程中,而且在许多稳定性控制策略中都起着重要作用。为了克服常规制动系统的局限性并改善诸如牵引力控制和差速制动之类的车辆控制策略,已将新一代制动系统称为线控制动系统引入了车辆行业。新一代的制动系统结合了电气,机械和某些情况下的液压组件。尽管在过去的二十年中已经开发出了各种类型的线控刹车机构,但由于对更好的安全性和性能的不断增长的需求,汽车行业仍然存在进一步改进和开发新的刹车机构的需求。一种基于凸轮驱动的新型线控制动系统。该系统是电气,机械和液压组件的组合。这项研究提出的凸轮致动制动系统的独特之处在于,可以通过精心设计凸轮形状来优化电动机扭矩放大的特性。设计的紧凑性和独立性使制动系统可以安装在每个车轮上,从而可以完全独立地控制每个车轮,从而实现更好的稳定性控制。此外,在任何系统出现故障的情况下,凸轮致动制动器都可通过保持驾驶员与制动钳之间的直接连接而具有故障保护的优势。在这项工作中,将说明制动系统的不同子系统及其组件,并建立动态模型。找到系统的零件并优化设计参数。具体地,通过将​​凸轮的几何形状作为最优化变量并且将制动系统的开环响应时间作为要最小化的目标函数来提出最优设计问题。然后通过使用遗传算法(GA)的多层设计优化过程来获得此问题的解决方案。将各种控制算法应用于已开发的凸轮致动制动系统,以研究其在跟踪所需制动压力方面的性能。

著录项

  • 作者

    Durali Laaleh;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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