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Model-based design validation for advanced energy management strategies for electrified hybrid power trains using innovative vehicle hardware in the loop (VHIL) approach

机译:基于模型的设计验证,使用创新的车辆硬件在环(VHIL)方法对电动混合动力总成的高级能源管理策略进行验证

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Hybridization of automotive powertrains by using more than one type of energy converter is considered as an important step towards reducing fuel consumption and air pollutants. Specifically, the development of energy efficient, highly complex, alternative drive-train systems, in which the interactions of different energy converters play an important role, requires new design methods and processes. This paper discusses the inclusion of an alternative hybrid power train into an existing vehicle platform for maximum energy efficiency. The new proposed integrated Vehicle Hardware In-the-loop (VHiL) and Model Based Design (MBD) approach is utilized to evaluate the energy efficiency of electrified powertrain. In VHiL, a complete chassis system becomes an integrated part of the vehicle test bed. A complete conventional Internal Combustion Engine (ICE) powered vehicle is tested in roller bench test for the integration of energy efficient hybrid electric power train modules in closed-loop, real-time, feedback configuration. A model that is a replica of the test vehicle is executed-in real-time- where all hybrid power train modules are included. While the VHiL platform is controlling the signal exchange between the test bed automation software and the vehicle on-board controller, the road load exerted on the driving wheels is manipulated in closed-loop real-time manner in order to reflect all hybrid driving modes including: All Electric Range (AER), Electric Power Assist (EPA) and blended Modes (BM). Upon successful implementation of VHiL, a comparative study between Rule Based (RB) energy management strategy (EMS) and Equivalent Consumption Minimization Strategy (ECMS) to Control Parallel Through-The-Road Hybrid Electric Vehicle (PTTR-HEV) is performed. The study shows that the actual fuel efficiency of the tested vehicle under both control strategies can be used in order to evaluate the effectiveness of energy conversion efficiency of the powertrain system. The fuel consumption of hybridized powertrain is compared with the conventional powertrain equipped in an actual vehicle to help comprehend the degree of efficiency attained by the hybridization. This process is developed in order to enable effective tuning/validation of advanced energy management strategies utilized in hybrid electric powertrain through an evaluation of a complete real chassis system subject to electric hybridization. The VHiL is considered as new evolution for the utilization of vehicle test bed as a predictive mechatronic platform for the development of energy efficient electrified propulsion systems and thus reduce cost and time. Published by Elsevier Ltd.
机译:通过使用不止一种类型的能量转换器,汽车动力总成混合动力被认为是减少燃料消耗和空气污染物的重要步骤。具体而言,要开发高效节能,高度复杂的替代传动系统,其中不同的能量转换器之间的相互作用将发挥重要作用,这需要新的设计方法和过程。本文讨论了将替代混合动力总成纳入现有车辆平台以实现最大能源效率的问题。新提出的集成式车辆硬件在环(VHiL)和基于模型的设计(MBD)方法用于评估电气化动力总成的能源效率。在VHiL中,完整的底盘系统成为车辆测试台的组成部分。完整的常规内燃发动机(ICE)动力车辆在路辗台架试验中进行了测试,以集成高效节能的混合动力总成模块,实现闭环,实时,反馈配置。实时执行作为测试车辆副本的模型,其中包括所有混合动力总成模块。当VHiL平台控制测试台自动化软件与车辆车载控制器之间的信号交换时,以闭环实时方式操纵施加在驱动轮上的道路负载,以反映所有混合动力驾驶模式,包括:所有电力范围(AER),电力辅助(EPA)和混合模式(BM)。成功实施VHiL后,将进行基于规则(RB)的能量管理策略(EMS)和等效能耗最小化策略(ECMS)的控制跨路混合动力电动汽车(PTTR-HEV)的对比研究。研究表明,在两种控制策略下,被测车辆的实际燃油效率都可用于评估动力总成系统能量转换效率的有效性。将混合动力总成的燃油消耗与实际车辆中配备的常规动力总成进行比较,以帮助理解混合动力所获得的效率。开发该过程的目的是通过评估受电动杂交影响的完整真实底盘系统,从而能够有效地调整/验证混合动力总成中使用的高级能源管理策略。 VHiL被认为是利用车辆试验台的新发展,它是开发节能电动推进系统的预测机电平台,从而降低了成本和时间。由Elsevier Ltd.发布

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