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道路运输能源与排放趋势。

Trends in onroad transportation energy and emissions.

作者信息

Frey H Christopher

机构信息

a Department of Civil, Construction, and Environmental Engineering , North Carolina State University, Raleigh, North Carolina, USA.

出版信息

J Air Waste Manag Assoc. 2018 Jun;68(6):514-563. doi: 10.1080/10962247.2018.1454357.

Abstract

UNLABELLED

Globally, 1.3 billion on-road vehicles consume 79 quadrillion BTU of energy, mostly gasoline and diesel fuels, emit 5.7 gigatonnes of CO, and emit other pollutants to which approximately 200,000 annual premature deaths are attributed. Improved vehicle energy efficiency and emission controls have helped offset growth in vehicle activity. New technologies are diffusing into the vehicle fleet in response to fuel efficiency and emission standards. Empirical assessment of vehicle emissions is challenging because of myriad fuels and technologies, intervehicle variability, multiple emission processes, variability in operating conditions, and varying capabilities of measurement methods. Fuel economy and emissions regulations have been effective in reducing total emissions of key pollutants. Real-world fuel use and emissions are consistent with official values in the United States but not in Europe or countries that adopt European standards. Portable emission measurements systems, which uncovered a recent emissions cheating scandal, have a key role in regulatory programs to ensure conformity between "real driving emissions" and emission standards. The global vehicle fleet will experience tremendous growth, especially in Asia. Although existing data and modeling tools are useful, they are often based on convenience samples, small sample sizes, large variability, and unquantified uncertainty. Vehicles emit precursors to several important secondary pollutants, including ozone and secondary organic aerosols, which requires a multipollutant emissions and air quality management strategy. Gasoline and diesel are likely to persist as key energy sources to mid-century. Adoption of electric vehicles is not a panacea with regard to greenhouse gas emissions unless coupled with policies to change the power generation mix. Depending on how they are actually implemented and used, autonomous vehicles could lead to very large reductions or increases in energy consumption. Numerous other trends are addressed with regard to technology, emissions controls, vehicle operations, emission measurements, impacts on exposure, and impacts on public health.

IMPLICATIONS

Without specific policies to the contrary, fossil fuels are likely to continue to be the major source of on-road vehicle energy consumption. Fuel economy and emission standards are generally effective in achieving reductions per unit of vehicle activity. However, the number of vehicles and miles traveled will increase. Total energy use and emissions depend on factors such as fuels, technologies, land use, demographics, economics, road design, vehicle operation, societal values, and others that affect demand for transportation, mode choice, energy use, and emissions. Thus, there are many opportunities to influence future trends in vehicle energy use and emissions.

摘要

未标注

在全球范围内,13亿辆上路行驶的车辆消耗79千兆英热单位的能源,其中大部分是汽油和柴油燃料,排放57亿吨一氧化碳,并排放其他污染物,每年约有20万人过早死亡归因于此。车辆能源效率和排放控制的改善有助于抵消车辆活动的增长。新技术因燃油效率和排放标准而正在向整个车辆群体扩散。由于燃料和技术种类繁多、车辆之间存在差异、多种排放过程、运行条件的变化以及测量方法的不同能力,对车辆排放进行实证评估具有挑战性。燃油经济性和排放法规在减少关键污染物的总排放量方面一直很有效。美国实际的燃料使用和排放与官方数据一致,但在欧洲或采用欧洲标准的国家并非如此。便携式排放测量系统在监管计划中发挥着关键作用,该系统揭露了最近的排放作弊丑闻,以确保“实际行驶排放”与排放标准一致。全球车辆群体将经历巨大增长,尤其是在亚洲。尽管现有数据和建模工具很有用,但它们往往基于便利样本、样本量小、变异性大以及未量化的不确定性。车辆排放几种重要二次污染物的前体,包括臭氧和二次有机气溶胶,这需要采取多污染物排放和空气质量管理策略。汽油和柴油可能会持续成为到本世纪中叶的主要能源。除非与改变发电结构的政策相结合,否则采用电动汽车并非解决温室气体排放问题的万灵药。根据自动驾驶车辆的实际实施和使用方式,它们可能会导致能源消耗大幅减少或增加。文中还讨论了有关技术、排放控制、车辆运行、排放测量、对暴露的影响以及对公众健康的影响等众多其他趋势。

启示

如果没有相反的具体政策,化石燃料可能会继续成为上路行驶车辆能源消耗的主要来源。燃油经济性和排放标准通常在实现单位车辆活动的减排方面有效。然而,车辆数量和行驶里程将会增加。总能源使用和排放取决于燃料、技术、土地利用、人口统计学、经济、道路设计、车辆运行、社会价值观以及其他影响交通需求、出行方式选择、能源使用和排放的因素。因此,有许多机会可以影响车辆能源使用和排放的未来趋势。

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