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基于拥堵工况辨识的车辆自动变速器换挡控制

         

摘要

针对拥堵工况下车辆自动变速器频繁换挡的问题,选取车辆平均车速、平均节气门开度和采样时间内制动踏板作动次数为评价因子,建立T-S模糊神经网络进行拥堵工况辨识,提出基于拥堵工况辨识的车辆自动变速器分层修正控制策略;将车辆自动变速控制分为上层辨识决策层与下层换挡执行层,上层采用T-S模糊神经网络进行拥堵工况辨识与换挡修正决策;下层接收上层修正控制指令执行换挡修正.仿真与实车试验结果表明:采用T-S模糊神经网络可准确识别拥堵工况,基于拥堵工况辨识的车辆自动变速分层修正控制策略可有效避免拥堵工况时频繁换挡,减少换挡执行部件和制动系统的磨损.%In view of the undesirable frequent shifting of vehicle automatic transmission under congestion conditions,a T-S fuzzy neural network is set up to identity congestion conditions and a hierarchical correction control strategy for automatic transmission based on congestion condition identification is proposed with the average vehicle speed,the average throttle opening,and the average times of brake pedal actuation in sampling period selected as e-valuation factors. The vehicle automatic transmission control is divided into two layers:the upper layer for identifica-tion and decision-making while the lower layer for shifting execution. The upper layer adopts T-S fuzzy neural net-work to identify congestion conditions and make decisions of shift correction,while the lower layer executes correc-ted shift according to control instructions from the upper layer. The results of simulation and real vehicle test show that using T-S fuzzy neural network can accurately identify congestion conditions, and the hierarchical correction control strategy based on congestion conditions identification can effectively avoid frequent shifting in congestion con-ditions,and hence reduce the wear of shift actuation components and brake system.

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