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Synthesis and verification of motor-transmission shift controller for electric vehicles

机译:电动汽车变速器变速控制器的综合与验证

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Motor transmission-based drive systems are attractive for electric vehicles but, as the motor is directly connected to the transmission shaft which meshes with the gears, controlling gear shifts is challenging. In this paper, we present a methodology for synthesis and verification of open-loop optimal control of the electric motor in a motor-transmission drive system. The key steps in this methodology are (a) developing a continuous-time model of the trajectory of the sleeve during the meshing process based on appropriate coefficients of restitution, (b) discrete-time controller synthesis for finitely many initial states using model predictive control (MPC) and (c) verification of the synthesized controller for a higher-fidelity continuous time hybrid automaton model. First, we develop a model of the motor-transmission drive system as a continuous-time hybrid automaton (CHA) with uncertain initial states. Next, this model is transformed to a piece-wise affine (PWA) form for solving an optimal control problem using the multi-parametric toolbox (MPT). Finally, the delay bound for the synthesized controller is verified by computing a bounded time over-approximation of the reach set using an existing algorithm for deterministic linear hybrid automata. Our results show that on the average our synthesized controller can shorten the meshing duration by 71.05% and reduce impacts impulse by 85.72% compared to an existing controller and the sleeve can mesh with the gear within a desired time from every initial state.
机译:基于电动机传动的驱动系统对电动汽车具有吸引力,但是由于电动机直接连接至与齿轮啮合的传动轴,因此控制变速是一项挑战。在本文中,我们提出了一种用于电动机传动驱动系统中电动机开环最优控制的综合和验证的方法。该方法学中的关键步骤是(a)根据适当的恢复系数,在啮合过程中建立套筒轨迹的连续时间模型;(b)使用模型预测控制对有限多个初始状态进行离散时间控制器合成(MPC)和(c)验证高保真连续时间混合自动机模型的合成控制器。首先,我们开发了一种电动机传动系统的模型,该模型是具有不确定初始状态的连续时间混合自动机(CHA)。接下来,将此模型转换为分段仿射(PWA)形式,以使用多参数工具箱(MPT)解决最佳控制问题。最后,使用确定性线性混合自动机的现有算法,通过计算范围集的有界时间过逼近来验证合成控制器的延迟范围。我们的结果表明,与现有的控制器相比,平均而言,我们的合成控制器可将啮合时间缩短71.05%,并将冲击脉冲减少85.72%,并且套筒可在每个初始状态的期望时间内与齿轮啮合。

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