首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Designing and testing an advanced pneumatic braking system for heavy vehicles
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Designing and testing an advanced pneumatic braking system for heavy vehicles

机译:设计和测试重型车辆​​的先进气动制动系统

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Heavy goods vehicles exhibit poor braking performance in emergency situations when compared to other vehicles. Part of the problem is caused by sluggish pneumatic brake actuators, which limit the control bandwidth of their antilock braking systems. In addition, heuristic control algorithms are used that do not achieve the maximum braking force throughout the stop. In this article, a novel braking system is introduced for pneumatically braked heavy goods vehicles. The conventional brake actuators are improved by placing high-bandwidth, binary-actuated valves directly on the brake chambers. A made-for-purpose valve is described. It achieves a switching delay of 3-4 ms in tests, which is an order of magnitude faster than solenoids in conventional anti-lock braking systems. The heuristic braking control algorithms are replaced with a wheel slip regulator based on sliding mode control. The combined actuator and slip controller are shown to reduce stopping distances on smooth and rough, high friction (μ = 0.9) surfaces by 10% and 27% respectively in hardware-in-the-loop tests compared with conventional ABS. On smooth and rough, low friction (μ = 0.2) surfaces, stopping distances are reduced by 23% and 25%, respectively. Moreover, the overall air reservoir size required on a heavy goods vehicle is governed by its air usage during an anti-lock braking stop on a low friction, smooth surface. The 37% reduction in air usage observed in hardware-in-the-loop tests on this surface therefore represents the potential reduction in reservoir size that could be achieved by the new system.
机译:与其他车辆相比,重型货车在紧急情况下的制动性能较差。问题的部分原因是气动制动执行器性能不佳,限制了其防抱死制动系统的控制带宽。此外,使用了启发式控制算法,该算法在整个停止过程中均未达到最大制动力。在本文中,介绍了一种用于气动制动重型货车的新型制动系统。通过将高带宽,二进制驱动的阀直接放置在制动腔上,可以改善常规的制动执行器。描述了一种专用阀。在测试中,它可实现3-4毫秒的切换延迟,这比常规防抱死制动系统中的螺线管快一个数量级。启发式制动控制算法已被基于滑模控制的车轮打滑调节器所取代。与传统的ABS相比,在硬件在环测试中,组合的执行器和滑动控制器可将光滑和粗糙,高摩擦(μ= 0.9)表面上的停止距离分别减少10%和27%。在光滑和粗糙,低摩擦(μ= 0.2)的表面上,停止距离分别减少了23%和25%。此外,重型货车所需的总储气罐尺寸由低摩擦,光滑表面上的防抱死制动时的空气使用量决定。因此,在该表面的硬件在环测试中观察到的空气使用量减少了37%,这表示新系统可以实现潜在的油箱尺寸减小。

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