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The UW EcoCAR2 Vehicle Development Process and Vehicle Level Torque Control Strategy Documentation.

机译:UW EcoCAR2车辆开发过程和车辆液位扭矩控制策略文档。

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摘要

The transportation sector accounts for 28% of total US energy consumption, and 93% of this energy comes from petroleum resources (Energy Information Administration, 2014). If the effect of energy use for the transportation industry go unchecked, the associated emissions represent one of the biggest threats to our global environment. To reduce energy consumption used by transportation simply by traveling less or shipping less goods would hinder commerce and slow economic growth. It becomes important then to find an engineering solution to the environmental impacts of personal transportation in order to allow commerce and economic growth to continue uninhibited.;The EcoCAR2 competition is a three year long collegiate level automotive engineering competition in which fifteen universities across North America to reduce the environmental impact of personal automobiles without sacrificing the consumer acceptability of the vehicle (Argonne National Labratories, 2014). It is the first competition of its kind designed to create automotive technology that can penetrate the mass market and have significant and lasting environmental impact reductions. The technical goals allow for modifications to the power train of the vehicle and control strategy innovations to reduce greenhouse gas emissions, criteria emissions, petroleum energy consumption, and total energy consumption.;The phrase "electrified vehicle" includes mild Hybrid Electric Vehicle (HEV), strong HEV, Plug-in Hybrid Electric Vehicle (PHEV), and fully electric vehicles (EV). These types of vehicle powertrains are one technology that can potentially improve upon all of the technical goals of EcoCAR2. The stronger the electrification of a vehicle, the better the improvement upon the competition's four main technical goals. However, with stronger electrification typically comes higher cost and increased emissions, both mostly due to the high voltage battery pack that is typically a NiMh (small capacity) or lithium chemistry. There are very few additional technologies that universally improve upon all of these criteria without causing detrimental effects on consumer acceptability.;Hybrid vehicles consist of two or more torque producing components, typically an electric motor and a petroleum internal combustion engine. The driver interface for hybrid vehicles, however, still only has a single accelerator pedal. There is a need for a supervisory control strategy that controls the torque output of each component. This supervisory control strategy is responsible for commanding the vehicle drivetrain as a system to match the driver's intended torque demand, while optimizing to minimize emissions and energy consumption.;This thesis outlines the vehicle development process utilized by the University of Washington EcoCAR2 team over all three years of the EcoCAR2 competition. The UWEC2 team came up with a Parallel Through the Road (PTTR) PHEV that can operate as an EV for the first 50 miles after being charged off of the grid. This very heavy reliance on grid electricity for propulsion addresses all four of the primary technical goals of the competition. Once the battery pack is depleted, the vehicle will turn on a 1.7L turbo diesel engine operating on B20 to drive the vehicle as a HEV for the following 350 miles in a charge-sustaining fashion. Biodiesel will reduce the criteria emissions and petroleum energy consumption of the charge-sustaining mode. These modes of operation combined with several other advantages of the PTTR architecture provide a very good baseline for the UWEC2 team to compete at year three competition of EcoCAR2.
机译:运输业占美国总能源消耗的28%,其中93%的能源来自石油资源(能源信息署,2014)。如果不控制能源对运输业的影响,相关的排放将成为对我们全球环境的最大威胁之一。仅通过减少旅行或运输较少的货物来减少运输所消耗的能源,将阻碍商业发展并减缓经济增长。因此,重要的是找到一种解决个人运输对环境影响的工程解决方案,以使商业和经济增长不受阻碍地继续进行。EcoCAR2竞赛是一项为期三年的大学水平的汽车工程竞赛,北美15所大学降低私人汽车对环境的影响,同时又不影响消费者对汽车的接受度(Argonne National Labratories,2014)。这是同类竞争中的第一项竞赛,旨在创造可渗透大众市场并显着持久减少环境影响的汽车技术。技术目标允许修改车辆的动力总成和控制策略的创新,以减少温室气体排放,标准排放,石油能源消耗和总能源消耗。短语“电动汽车”包括轻度混合动力汽车(HEV) ,强劲的混合动力汽车,插电式混合动力汽车(PHEV)和全电动汽车(EV)。这些类型的车辆动力总成是可以潜在地改善EcoCAR2的所有技术目标的一项技术。车辆的电气化能力越强,对竞赛的四个主要技术目标的改进就越好。但是,随着电气化程度的提高,通常会导致成本增加和排放增加,这两者都主要归因于通常为NiMh(小容量)或锂化学物质的高压电池组。很少有其他技术能够普遍提高所有这些标准,而又不会对消费者的可接受性造成不利影响。混合动力汽车由两个或多个产生扭矩的组件组成,通常是电动机和石油内燃机。但是,用于混合动力车辆的驾驶员界面仍然只有一个加速踏板。需要一种用于控制每个组件的扭矩输出的监督控制策略。这种监督控制策略负责命令车辆传动系统作为一个系统,以匹配驾驶员的预期扭矩需求,同时进行优化以最大程度地减少排放和能耗。本文概述了华盛顿大学EcoCAR2团队在这三个方面所采用的车辆开发过程年的EcoCAR2竞赛。 UWEC2团队提出了“平行通过公路(PTTR)” PHEV,该电动车在从电网中充电后的前50英里内可作为EV使用。对电网电力的高度依赖解决了竞争的所有四个主要技术目标。电池组耗尽后,车辆将开启在B20上运行的1.7L涡轮增压柴油发动机,以HEV形式持续保持充电350英里的里程,以驱动HEV。生物柴油将减少维持电荷模式的标准排放量和石油能源消耗。这些操作模式与PTTR架构的其他几个优点相结合,为UWEC2团队在EcoCAR2的第三年竞赛中提供了很好的基线。

著录项

  • 作者

    Fayer, Trevor.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Engineering Automotive.
  • 学位 Masters
  • 年度 2014
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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