基于液压-机械转矩控制的主动盘式制动器仿真

Patrik Bordovský, Sara Hamed Adibpoor, H. Murrenhoff, O. Reinertz
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摘要

液压盘式制动器具有功率密度高、结构紧凑、动力性能好等优点,广泛应用于火车和轻轨车辆。一般来说,有弹簧执行器和所谓的主动制动器。弹簧致动器通常用作有轨电车的安全功能,因为它们的机械弹簧产生必要的制动力,而不需要任何其他能量供应。相反,主动制动器的制动力与液压成正比。然而,产生的制动扭矩很少是闭环控制的一部分,并且通常对刹车片和盘之间的接触区中发生的几种干扰不采取抵消作用,其中出现了可变摩擦系数。因此,可能会出现制动抖动等现象,导致乘客的不安和制动性能的下降。在亚琛工业大学流体动力驱动与系统研究所进行的一项研究项目中,一种用于有轨电车的闭环主动盘式制动器正在开发中。研究发现,沿制动支撑杆施加的力可用于实际制动力矩的估计。因此,这个力被用作反馈信号。用液压机械支撑单元代替支撑杆,实现制动力矩的闭环控制。本文以新型主动盘式制动器为研究对象,提出在标准化制动器设计中嵌入液压机械支撑单元,以保证产生制动力矩的准确性和可重复性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of an Active Disc Brake with a Hydro-Mechanical Torque Control
Hydraulic disc brakes are used in trains and light rail vehicles due to their high power density, compact design, and good dynamic performance. In general, there are spring-applied actuators and so-called active brakes. The spring-applied actuators are commonly used as safety features in trams since their mechanical spring generates the necessary braking force without any other energy supply. In contrast, the braking force of the active brakes is proportional to the hydraulic pressure. However, the generated braking torque is seldom a part of a closed-loop control and no counteracting action is usually taken against the several disturbances acting in the contact zone between brake pads and disc, where a variable friction coefficient arises. Consequently, phenomena such as brake judder may occur, leading to passengers’ uneasiness and degradation of the braking performance. Within a research project conducted at the Institute for Fluid Power Drives and Systems at RWTH Aachen University, a closed-loop active disc brake for trams is under development. It has been found that the force exerted along the brake support pole is eligible for the estimation of the actual braking torque. Hence, this force is utilized as a feedback signal. By replacing the support pole with a hydro-mechanical supporting unit, a closed loop control of the braking torque can be realized. This paper focuses on the novel active disc brake and suggests the embedding of a hydro-mechanical supporting unit into the standardized brake design to ensure accuracy and repeatability of the generated braking torque.
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