首页> 外文会议>EuroBrake Conference >ENHANCEMENT OF ENERGY EFFICIENCY, VEHICLE SAFETY AND RIDE COMFORT FOR ALL-WHEEL DRIVE FULL ELECTRIC VEHICLES
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ENHANCEMENT OF ENERGY EFFICIENCY, VEHICLE SAFETY AND RIDE COMFORT FOR ALL-WHEEL DRIVE FULL ELECTRIC VEHICLES

机译:增强能效,车辆安全和全轮驱动全电动汽车的速度舒适

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The optimal brake control in the case of a full electric vehicle must not only guarantee high brake performance but also aim at maximum possible level of energy regenerated during the manoeuvre. Targeting integrated electric vehicle control, the driving comfort should be also considered as a component requiring optimization. These factors have motivated the presented study and allowed to formulate the main objective: Development of optimal brake control strategy based on three criteria – brake performance, energy efficiency, and ride comfort. The research is subjected to a full electric passenger vehicle equipped with four in-wheel motors and an electro-hydraulic brake system. On the first stage of the research, the optimization procedure is proposed for the brake torque distribution. Three domains are chosen for the shaping of the corresponding optimization cost function: the brake performance is being estimated by deceleration tracking during the manoeuvre; the energy consumption is quantified through regenerative energy and tyre dissipation energy; the indicator for the ride comfort (in the case of straight-line braking) is the pitch angle. The verification of the developed brake control functions is carried out using the vehicle simulator in IPG CarMaker and hardware-in-the-loop platform with installed electro-hydraulic brake system. The straight-line braking manoeuvre has been investigated as the case study. The proposed technique allowed to reach an optimal brake force distribution with high level of brake energy recuperation and simultaneous keeping of required safety level. The pitch oscillations caused by the vehicle behaviour at emergency braking have been also reduced as compared with the brake manoeuvre without brake distribution/blending control. The experiments were done on the basis of model- and hardware-in-the-loop simulations. The characteristics of electric motors are deduced from experimental data. The real hardware components of the brake system are used including the hydraulic control unit. The controller is emulated in real-time mode using dSPACE tools. The results of the presented study have showed that an optimal brake control in the case of the electric vehicle allows to achieve a multilateral effect in reduction of the brake distance, increase of brake energy regeneration and improvement of the ride comfort at braking.
机译:在整个电动车辆的情况下最佳制动控制不仅可以保证高制动性能,而且还可以在机动过程中获得最大可能的能量水平。瞄准集成电动车辆控制,驾驶舒适性也应被认为是需要优化的组件。这些因素具有激励的研究,并允许制定主要目标:基于三个标准 - 制动性能,能效,乘坐舒适度,开发最佳制动控制策略。该研究经受配备有四个轮内电机和电动液压制动系统的全电动乘用车。在研究的第一阶段,提出了用于制动扭矩分布的优化过程。选择三个域以形成相应的优化成本函数的成形:在机动过程中通过减速跟踪估算制动性能;通过再生能量和轮胎耗散能量量化能量消耗;乘坐舒适度的指示(在直线制动的情况下)是俯仰角。开发制动控制功能的验证是使用IPG Carmaker的车辆模拟器和具有安装的电液制动系统的硬件载体平台进行的。作为案例研究,调查了直线制动机动。所提出的技术允许达到具有高水平制动能量恢复的最佳制动力分布,并同时保持所需的安全水平。与没有制动分配/混合控制的制动器机动相比,由紧急制动时的车辆行为引起的音调振荡也被降低。实验是基于模型和硬件型模拟进行的。从实验数据推导出电动机的特性。制动系统的真实硬件部件包括液压控制单元。使用DSPACE工具,控制器以实时模式模拟。所提出的研究的结果表明,在电动车辆的情况下,最佳制动控制允许在减少制动距离,制动能量再生的增加和制动时乘坐舒适性的增加,实现多边效果。

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