插电式混合动力汽车从油井到车轮的能源使用、温室气体和标准排放分析与测量:EcoCAR 2案例研究

Katherine Bovee, G. Rizzoni, S. Midlam-Mohler, Matthew Yard, M. Yatsko
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引用次数: 2

摘要

本文详细分析了一款平行串联插电式混合动力汽车(PHEV)的能源使用、温室气体排放和标准排放,该汽车是作为EcoCAR 2竞赛的一部分而开发的。俄亥俄州立大学(OSU)的EcoCAR 2团队设计了一款可行驶67公里纯电动续航里程的并联串联汽车(PHEV),该汽车配备了l8.9千瓦时的锂离子电池组,通过l- 8升乙醇(E85)发动机和6速自动手动变速箱,可在串联和并联模式下扩展续航里程。该车还配备了两台8OkW的峰值电机,一台在前桥上,一台在后桥上,使车辆能够实现全电动四驱操作模式。俄勒冈州立大学的车辆旨在降低燃油消耗,其实用系数加权燃油经济性为5.19升/100公里汽油当量,同时满足美国环保署II级Bin 5排放标准。在为期三年的竞赛过程中,大约40名学生组成的俄亥俄州立大学团队设计、制造和测试了他们的并联串联PHEV。除了机械和电气制造工作外,该团队还使用软件在环(SIL)和硬件在环(HIL)技术开发了自己的发动机、变速器和监控控制器控制代码。在美国能源部、通用汽车公司、俄亥俄州立大学以及众多竞赛和当地赞助商的支持下,EcoCAR 2竞赛和俄亥俄州立大学团队的参与成为可能。本文的分析是基于EcoCAR2比赛之前、期间和之后收集的道路数据。俄勒冈州立大学的这辆车在比赛中获得了第一名,展示了一款功能齐全的插电式混合动力汽车,在燃油经济性、温室气体排放和标准排放方面取得了显著进步。本文阐述了Argonne国家实验室开发的分析方法在评估油井到车轮的能源和排放性能方面的应用,并将这些方法与美国环境保护署(EPA)和欧盟(EU)目前使用的程序进行了比较,以建立量产车辆的燃油经济性和排放标签。
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Well-to-wheel analysis and measurement of energy use and greenhouse gas and criteria emissions in a Plug-in Hybrid Vehicle: the EcoCAR 2 case study
This paper presents a detailed well-to-wheel analysis of energy use, greenhouse gas and criteria emissions for a prototype Parallel-Series Plug-in Hybrid Electric Vehicle (PHEV) developed as part of the EcoCAR 2 competition. The EcoCAR 2 team at the Ohio State University (OSU) has designed Parallel-Series Vehicle (PHEV) capable of 67 km all-electric range, which features a l8.9-kWh lithium-ion battery pack with range extending operation in both series and parallel modes made possible by a l.8-L ethanol (E85) engine and a 6-speed automated manual transmission. The vehicle also has two 8OkW peak electric machines, one on the front axle and one on the rear axle, that enable the vehicle to have an all-electric 4WD operating mode. The OSU vehicle is designed to reduce fuel consumption, with a utility factor-weighted fuel economy of 5.19 L/100km gasoline equivalent, while meeting the EPAs Tier II Bin 5 emissions standards. Over the course of the three year competition, the Ohio State team of approximately 40 students designed, built and tested their Parallel-Series PHEV. In addition to the mechanical and electrical fabrication work, the team also developed their own control code for the engine, transmission and supervisory controllers using Software-in-the-Loop (SIL) and Hardware-in-the-Loop (HIL) techniques. The EcoCAR 2 competition and the Ohio State teams participation in it were made possible through support from the U.S. Department of Energy, General Motors, The Ohio State University, and numerous competition and local sponsors. The analysis presented in this paper is based on road data collected before, during and after the EcoCAR2 competition. The OSU vehicle finished in first place in the competition, demonstrating a fully functional PHEV that achieved significant improvements in fuel economy, and in greenhouse gas and criteria emissions. This paper illustrates the application of analysis methods developed by Argonne National Laboratory to evaluate well-to-wheel energy and emissions performance, and compares these methods with the current procedures in use by the U.S. Environmental Protection Agency (EPA) and by the European Union (EU) to establish fuel economy and emissions labels for production vehicles.
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