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High-Precision Hydraulic Pressure Control Based on Linear Pressure-Drop Modulation in Valve Critical Equilibrium State

机译:阀临界平衡状态下基于线性压降调制的高精度液压控制

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摘要

High precision and fast response are of great significance for hydraulic pressure control in automotive braking systems. In this paper, a novel sliding mode control based high-precision hydraulic pressure feedback modulation is proposed. Dynamical models of the hydraulic brake system including valve dynamics are established. An open loop load pressure control based on the linear relationship between the pressure-drop and coil current in valve critical open equilibrium state is proposed, and also experimentally validated on a hardware-in-the-loop test rig. The control characteristics under different input pressures and varied coil currents are investigated. Moreover, the sensitivity of the proposed modulation on valve's key structure parameters and environmental temperatures are explored with some unexpected drawbacks. In order to achieve better robustness and precision, a sliding mode control based closed loop scheme is developed for the linear pressure-drop modulation. Comparative tests between this method and the existing methods are carried out. The results validate the effectiveness and superior performance of the proposed closed loop modulation method.
机译:高精度和快速响应对于汽车制动系统中的液压控制至关重要。本文提出了一种新型的基于滑模控制的高精度液压反馈调制方法。建立了液压制动系统的动力学模型,包括阀动力学。提出了一种基于阀临界开平衡状态下压降与线圈电流之间线性关系的开环负载压力控制方法,并在半实物试验台上进行了实验验证。研究了在不同输入压力和变化的线圈电流下的控制特性。此外,还探讨了提议的调制对阀门关键结构参数和环境温度的敏感性,但存在一些意想不到的缺点。为了获得更好的鲁棒性和精度,针对线性压降调制开发了基于滑模控制的闭环方案。对该方法与现有方法进行了比较测试。结果验证了所提出的闭环调制方法的有效性和优越的性能。

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