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混合动力商用车AMT挡位自学习控制技术优化
Optimization on Self-Learning Control Technology for AMT Shifting Position of Hybrid Commercial Vehicle
【摘要】 在混合动力商用车电控机械式自动变速器(AMT)系统中,因制造、装配、磨损、更换等导致变速器各挡位置存在差异及变化,引起选换挡成功率降低甚至工作异常,需通过AMT挡位自学习解决此问题。针对AMT静态时各挡位位置自学习控制策略提出了优化,主要包括挡位学习顺序和再次进挡学习策略,通过自整定PID技术进行自适应参数优化。经过试验验证,提高了自学习成功率、合格率、效率和一致性。
【Abstract】 In the automated mechanical transmisson(AMT) system of hybrid commercial vehicle, affected by manufacturing, assembly, abration and parts replacement, the shifting position would be different or changed, thus, the shifting would have a low success rate or even cannot work normally. It was necessary to use the AMT shifting position self-learning technology to solve this problem. This paper showed the optimization of the AMT shifting position self-learning technology, including changing the order of shifting position learning, shifting-again strategy and PID control technology based on self-tuning parameters. Proved by experiments the optimization can increase the success rate, the pass rate, accuracy and consistency of shifting position.
【Key words】 automated mechanical transmisson(AMT); self-learning control; optimization; self-adaptive; PID control based on self-tuning parameters;
- 【文献出处】 汽车工程学报 ,Chinese Journal of Automotive Engineering , 编辑部邮箱 ,2013年01期
- 【分类号】U463.212
- 【被引频次】10
- 【下载频次】288