基于在线参数识别的列车电子气动制动系统热效应预测压力控制。

IF 6.3 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS ISA transactions Pub Date : 2024-07-04 DOI:10.1016/j.isatra.2024.06.023
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引用次数: 0

摘要

带 ON/OFF 电磁阀的电动气动制动系统因其优点和优越性已广泛应用于列车中。热效应对电动气动制动系统的不良影响导致阀门频繁切换,压力跟踪性能下降,有时甚至不稳定。本文提出了一种自适应模型预测控制方法,以解决温度不确定条件下的压力控制问题,该方法基于切换式无特征卡尔曼滤波器。首先,通过综合考虑电气制动系统的非线性、不连续动力学和热效应,为该系统推导出一个带有不确定温度参数的非线性开关动力学模型。在提出的系统模型上使用切换式无特征卡尔曼滤波器,准确估计温度参数,从而提高模型的准确性。基于修正后的系统模型和设计的自适应模型预测控制方法,改善了电-气制动系统的压力跟踪性能和阀门开关,并保证了其稳定性。对制动系统原型的仿真和实验证实了所提方法的性能有效性。
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Online parameter identification based predictive pressure control for train electro-pneumatic braking systems with thermal effect

The electro-pneumatic braking system with ON/OFF solenoid valves has been widely used in trains due to its advantages and superiority. The undesirable impact of the thermal effect on the electro-pneumatic braking system leads to frequent valve switching, degradation of the pressure tracking performance and sometimes instability. This article presents an adaptive model predictive control approach to solve the pressure control problem under temperature uncertainty based on a switched unscented Kalman filter. First, a nonlinear switched dynamical model with the uncertain temperature parameter is derived for the electro-pneumatic braking system by comprehensively integrating its nonlinear, discontinuous dynamics and thermal effect. Using a switched unscented Kalman filter on the presented model of the system, the temperature parameter is accurately estimated to improve the model’s accuracy. Based on the corrected system model and the designed adaptive model predictive control method, the pressure tracking performance and the valves’ switchings of the electro-pneumatic braking system are improved, and the stability is guaranteed. The simulations and the experiments conducted for a braking system prototype confirm the performance validity of the proposed method.

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来源期刊
ISA transactions
ISA transactions 工程技术-工程:综合
CiteScore
11.70
自引率
12.30%
发文量
824
审稿时长
4.4 months
期刊介绍: ISA Transactions serves as a platform for showcasing advancements in measurement and automation, catering to both industrial practitioners and applied researchers. It covers a wide array of topics within measurement, including sensors, signal processing, data analysis, and fault detection, supported by techniques such as artificial intelligence and communication systems. Automation topics encompass control strategies, modelling, system reliability, and maintenance, alongside optimization and human-machine interaction. The journal targets research and development professionals in control systems, process instrumentation, and automation from academia and industry.
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