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Prediction and Control of Response Time of the Semitrailer Air Braking System

机译:半拖车空气制动系统响应时间的预测与控制

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The response time of the air braking system is the main parameter affecting the longitudinal braking distance of vehicles. In this article, in order to predict and control the response time of the braking system of semitrailers, an AMESim model of the semitrailer braking system involving the relay emergency valve (REV) and chambers was established on the basis of analyzing systematically the working characteristics of the braking system in different braking stages: feedback braking, relay braking, and emergency braking. A semitrailer braking test bench including the brake test circuit and data acquisition system was built to verify the model with typical maneuver. For further evaluating the semitrailer braking response time, an experiment under different control pressures was carried out. Experimental results revealed the necessity of controlling the response time. As a result, a braking pressure compensation system was designed through adding intake and exhaust solenoid valves to the original braking system. A proportional-integral-derivative (PID) control strategy optimized by genetic algorithm (GA) was adopted to generate pulse width modulation (PWM) signals applied to the solenoid valves for regulating dynamically the braking chamber pressure and response time. Co-simulation results based on AMESim and Simulink demonstrated the response time was reduced to 0.352 s and steady-state error was within 1.8%, which showed that the braking pressure compensation system and control strategy could shorten the braking response time effectively while maintaining high steady-state accuracy.
机译:空气制动系统的响应时间是影响车辆纵向制动距离的主要参数。在本文中,为了预测和控制Semitrailers制动系统的响应时间,基于系统地分析工作特性制动系统在不同的制动阶段:反馈制动,继电器制动和紧急制动。建立了一个半拖车制动测试台,包括制动测试电路和数据采集系统,以验证典型机动的模型。为了进一步评估半拖车制动响应时间,进行了不同控制压力下的实验。实验结果表明,控制响应时间的必要性。结果,通过将进气和排气电磁阀添加到原制补偿系统来设计制动压力补偿系统。采用遗传算法(GA)优化的比例 - 积分衍生物(PID)控制策略来产生施加到电磁阀的脉冲宽度调制(PWM)信号,用于动态地调节制动室压力和响应时间。基于Amesim和Simulink的共同仿真结果证明了响应时间减少到0.352秒,稳态误差在1.8%以内,显示制动压力补偿系统和控制策略可以有效地缩短制动响应时间,同时保持高稳定 - 准确性。

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