首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Full-scale testing of a novel slip control braking system for heavy vehicles
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Full-scale testing of a novel slip control braking system for heavy vehicles

机译:新型重型车辆防滑控制制动系统的全面测试

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This paper summarises the measured emergency braking performance of a tri-axle heavy goods vehicle semitrailer fitted with a novel pneumatic slip control braking system developed by the Cambridge Vehicle Dynamics Consortium. Straight-line braking tests were carried out from 40km/h in order to compare a commercially electro-pneumatic available anti-lock braking system and the Cambridge Vehicle Dynamics Consortium system, which has bi-stable valves coupled with a sliding-mode slip controller. On average, the Cambridge Vehicle Dynamics Consortium system reduced the stopping distance and the air use by 15% and 22% respectively compared with those for the conventional anti-lock braking system. The most significant improvements were seen on a wet basalt-tile surface (with similar friction properties to ice) where the stopping distance and the air use were improved by 17% and 30% respectively. A third performance metric, namely the mean absolute slip error, is introduced to quantify the ability of each braking system to track a wheel slip demand. Using this metric, the bi-stable valve system is shown to improve the wheel slip demand tracking by 62% compared with that of the conventional anti-lock braking system. This improvement potentially allows more accurate control of the wheel forces during extreme manoeuvres, providing scope for the future development of advanced stability control systems.
机译:本文总结了三轴重型货车半挂车的实测紧急制动性能,该半挂车装有由Cambridge Vehicle Dynamics Consortium开发的新型气动滑移控制制动系统。为了比较市售的电动气动防抱死制动系统和具有双稳态阀和滑模打滑控制器的剑桥车辆动力学协会系统,从40 km / h进行了直线制动测试。与传统的防抱死制动系统相比,剑桥车辆动力学协会系统平均将停车距离和空气消耗量分别减少了15%和22%。在湿的玄武岩-瓷砖表面(具有与冰类似的摩擦特性)上看到了最显着的改进,在该表面上,制动距离和空气使用量分别提高了17%和30%。引入了第三种性能度量,即平均绝对滑动误差,以量化每个制动系统跟踪车轮滑动需求的能力。与传统的防抱死制动系统相比,采用这种度量标准的双稳态气门嘴系统可将轮滑需求跟踪提高62%。这种改进潜在地允许在极端操作期间更精确地控制车轮力,从而为高级稳定性控制系统的未来发展提供了空间。

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