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Optimal Freewheeling Control of a Heavy-Duty Vehicle Using Mixed Integer Quadratic Programming

机译:使用混合整数二次编程的重型车辆的最佳续流控制

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Improving the powertrain control of heavy-duty vehicles can be an efficient way to reduce the fuel consumption and thereby reduce both the operating cost and the environmental impact. One way of doing so is by using information about the upcoming driving conditions, known as look-ahead information, in order to coast in gear or to use freewheeling. Controllers using such techniques today mainly exist for vehicles in highway driving. This paper therefore targets how such control can be applied to vehicles with more variations in their velocity. The driving mission of such a vehicle is here formulated as an optimal control problem. The control variables are the tractive force, the braking force, and a Boolean variable representing closed or open powertrain. The problem is solved by a model predictive controller, which at each iteration solves a mixed integer quadratic program. The fuel consumption is compared for four different control policies: a benchmark following the reference of the driving cycle, look-ahead control without freewheeling, freewheeling with the engine idling, and freewheeling with the engine turned off. Simulations on a driving cycle with a varying velocity profile show the potential of saving 11%, 19%, and 23% respectively for the control policies compared with the benchmark, in all cases without increasing the trip time.
机译:改善重型车辆的动力系控制可以是降低燃料消耗的有效方法,从而降低运营成本和环境影响。这样做的一种方法是通过使用关于即将到来的驾驶条件的信息,称为前瞻性信息,以便在齿轮上海岸或使用续流。今天使用这种技术的控制器主要存在于公路驾驶的车辆。因此,本文针对这种控制如何应用于其速度变化的车辆。此类车辆的驾驶使命在这里配制成最佳控制问题。控制变量是牵引力,制动力和布尔变量,代表闭合或打开动力系。该问题由模型预测控制器解决,每个迭代在每个迭代都解决了混合整数二次程序。将燃料消耗与四种不同的控制政策进行比较:驾驶循环参考后的基准测试,未经续流,未经续流,与发动机怠速的续流,以及发动机的续流。在不同速度配置文件的驾驶循环中模拟显示,在所有情况下,分别为控制策略节省11%,19%和23%的潜力,在所有情况下,在所有情况下都不会增加行程时间。

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