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Model Based Control of Synchronizers for Reducing Impacts during Sleeve to Gear Engagement

机译:基于模型的同步器控制,用于减少套筒齿轮接线的影响

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This paper presents a model based control strategy aimed to reduce noise and wear during gearshifts in conventional and hybrid Dual Clutch Transmissions (DCT and DCTH) and Automated Manual Transmissions (AMT). The control strategy is based on a newly developed dog teeth position sensor layout at China Euro Vehicle Technology AB (CEVT), a detailed simulation model for gear engagement and already existing speed sensors in the transmission. The details of dog teeth position sensor and simulation model are also presented in this paper. During gear shifting, noise is generated because of impacts between the sleeve teeth and the idler gear dog teeth after speed synchronization. Besides noise, these impacts are also responsible for delaying the completion of shift and contribute to wear in the dog teeth, hence reducing the lifespan of the transmission. The simulation model for gear engagement can simulate these impacts. Based on the simulation model and optimal control theory, an ideal dog teeth position trajectory is formulated that avoids the impact between sleeve and idler gear dog teeth, before the start of torque ramp up. The open loop strategy then controls the synchronization torque in the beginning of speed synchronization in such a way that the dog teeth position during shift follows the ideal dog teeth position trajectory. Since the control strategy is based on optimal control theory, its effect on speed synchronization time is minimal. The control strategy is designed in such a way that it can easily be applied in the existing transmission control software. By applying the control strategy on the simulation model, it is shown that the impacts during gear engagement are reduced.
机译:本文提出了一种基于模型的控制策略,旨在在传统和混合型双离合变速器(DCT和DCTH)和自动手动变速器(AMT)换档过程中的噪音和磨损减少。控制策略是基于中国欧元车技术AB(CEVT)的新开发的狗齿位置传感器布局,该齿轮接合的详细仿真模型以及现有的变速器中的速度传感器。本文还提出了狗齿位置传感器和仿真模型的细节。在换档期间,由于速度同步后套筒齿和惰轮狗齿之间的冲击产生噪音。除了噪音之外,这些影响也负责延迟转变完成并有助于在狗牙齿中磨损,从而减少了变速器的寿命。齿轮接合的仿真模型可以模拟这些影响。基于仿真模型和最优控制理论,配制了理想的狗齿位置轨迹,避免了旋转速度开始前的套筒和惰轮爪齿之间的冲击。然后,开环策略在速度同步开始时控制同步扭矩,使得在换档期间的狗齿位置遵循理想的狗齿位置轨迹。由于控制策略基于最佳控制理论,因此其对速度同步时间的影响是最小的。控制策略以这样的方式设计,即它可以很容易地应用于现有的传输控制软件中。通过在仿真模型上应用控制策略,示出了齿轮接合期间的冲击。

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