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The potential of lightweight materials and advanced engines to reduce life cycle energy and greenhouse gas emissions for ICVs and EVs using design harmonization techniques.

机译:轻质材料和先进发动机利用设计协调技术降低ICV和EV的生命周期能量和温室气体排放的潜力。

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摘要

Lightweight materials and advanced combustion engines are being used with conventional and electrified vehicles to increase fuel economy, but such technologies may require more energy to produce and the impact of plug-in hybrid electric vehicles (PHEVs) is dependent on the electric grid. In this study, life cycle assessment (LCA) is used to evaluate the total energy and GHG emissions for baseline and lightweight internal combustion vehicles (ICVs), hybrid electric vehicles (HEVs) and PHEVs when they are operated with baseline and advanced gasoline and ethanol engines. Also, design harmonization techniques are developed to enable a comparison across diverse vehicle platforms by creating functionally equivalent conventional and hybrid vehicle models that account for increased structural support required for heavier, electrified powertrains. Lightweight vehicle models include primary and secondary mass reductions (including powertrain re-sizing) and are evaluated with body-in-white mass reduction scenarios with aluminum-intensive and advanced/high strength steel (A/HSS) designs. Advanced engine/fuel strategies are incorporated in the vehicle models with fuel economy maps, which were developed with a novel method to ensure combustion limits are not violated under boosted and dilute conditions for high compression ratio engines.;The harmonized vehicle models show that the structural mass required per kg of powertrain mass for electrified vehicles is 0.2--0.3 kg. As compared to lightweight materials, more significant life cycle improvements are achieved by using advanced gasoline and E85 engines, as fuel consumption is reduced up to 24%. As compared to A/HSS, more mass can be removed from the vehicle with aluminum, leading to greater fuel consumption and life cycle reductions. However, due to the higher energy and GHG emissions associated with aluminum production, more significant life cycle reductions occur for an equivalent decrease in vehicle mass with A/HSS. Also, life cycle impacts are reduced more for ICVs as compared to hybrid vehicles because fuel economy is most sensitive to mass for ICVs. Considering the same vehicle platform, the combination of lightweight materials and advanced engines yields the most life cycle energy and GHG reductions of the scenarios considered in this work, as the technologies provide complimentary results due to engine downsizing. The least life cycle energy and GHG emissions occur for the lightest weight hybrid vehicles using the downsized/turbocharged gasoline or E85 engine.
机译:轻质材料和先进的内燃机已与常规和电动车辆一起使用,以提高燃油经济性,但是此类技术可能需要更多的能量来生产,因此插电式混合动力电动汽车(PHEV)的影响取决于电网。在这项研究中,使用生命周期评估(LCA)来评估基准和轻型内燃汽车(ICV),混合动力汽车(HEV)和PHEV在使用基准汽油和高级汽油和乙醇运行时的总能量和温室气体排放量引擎。此外,还开发了设计协调技术,以通过创建功能上等效的常规和混合动力车辆模型来实现各种车辆平台之间的比较,从而解决了较重的电动化动力总成所需的结构支撑增加的问题。轻型车辆模型包括一次和二次质量降低(包括调整动力总成尺寸),并通过铝密集型和高级/高强度钢(A / HSS)设计在白车身质量降低场景下进行评估。先进的发动机/燃油策略已纳入具有燃油经济性图的车辆模型中,并通过一种新颖的方法开发以确保在高压缩比发动机的增压和稀薄条件下不会违反燃烧极限。电动汽车每千克动力总成所需的质量为0.2--0.3千克。与轻质材料相比,使用先进的汽油和E85发动机可以显着改善生命周期,因为燃油消耗最多降低了24%。与A / HSS相比,铝可以减轻车辆的重量,从而增加燃油消耗并缩短生命周期。但是,由于与铝生产相关的更高的能源和温室气体排放,与A / HSS相比,汽车质量的等效减少会导致生命周期的显着减少。而且,与混合动力汽车相比,ICV的生命周期影响减少得更多,因为燃油经济性对ICV的质量最为敏感。考虑到相同的车辆平台,轻量化的材料和先进的发动机相结合可产生最大的生命周期能量,并减少这项工作中所设想的温室气体排放,因为由于发动机的小型化,这些技术提供了互补的结果。使用减小尺寸/涡轮增压的汽油或E85发动机的重量最轻的混合动力汽车,生命周期能量和温室气体排放最少。

著录项

  • 作者

    Lewis, Anne Marie.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.;Natural Resource Management.;Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 172 p.
  • 总页数 172
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:41:11

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