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Exploring the Energy Efficiency of Electric Vehicles with Driving Behavioral Data from a Field Test and Questionnaire

机译:利用来自现场测试和问卷调查的驾驶行为数据探索电动汽车的能源效率

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摘要

With increasing concerns about urban air quality and carbon emissions, electric vehicles (EVs) have gained popularity in megacities, especially in Europe and Asia. The energy consumption of EVs has subsequently caught researchers' attention. However, the exploration of energy consumption of EVs has largely focused on people's revealed driving behavior and rarely touched on their self-perception of driving styles. In this paper, we developed a more human-centric approach, aiming to investigate how the energy efficiency of EVs is shaped by the driving behavior and driving style in the urban scenario from field test data and driving style questionnaires (DSQs). Field tests were carried out on a designated route for a total of 13 drivers in the city of Beijing, where vehicle operation parameters were recorded under both congested and smooth traffic conditions. DSQs were collected from a larger pool of drivers including the field test drivers to be applied to driving style factor analysis. The results of a correlation analysis demonstrate the dynamic interaction between drivers' revealed behavior and stated driving style under different traffic conditions. We also proposed an energy consumption prediction model with the fusion of collected driving parameters and DSQ data and the result is promising. We hope that this study would draw inspiration for future research on people's transitioning driving behavior in an electric-mobility era.
机译:随着人们对城市空气质量和碳排放的担忧日益增加,电动汽车(EV)在大城市尤其是在欧洲和亚洲越来越受欢迎。电动汽车的能耗随后引起了研究人员的关注。然而,对电动汽车能耗的探索主要集中在人们揭示的驾驶行为上,很少涉及他们对驾驶风格的自我感知。在本文中,我们开发了一种以人为本的方法,旨在通过实地测试数据和驾驶风格调查表(DSQ)来研究电动汽车的能源效率如何受到城市场景中的驾驶行为和驾驶风格的影响。在指定的路线上对北京市内的13位驾驶员进行了现场测试,在拥挤和通畅的交通条件下记录了车辆的运行参数。 DSQ是从包括现场测试驱动程序在内的更大范围的驱动程序中收集的,这些驱动程序将应用于驾驶风格因子分析。相关分析的结果表明,在不同的交通状况下,驾驶员的显露行为与既定驾驶风格之间存在动态相互作用。我们还提出了一种能源消耗预测模型,该模型融合了收集的驾驶参数和DSQ数据,其结果是有希望的。我们希望这项研究能够为今后在电动汽车时代人们的过渡驾驶行为研究提供灵感。

著录项

  • 来源
    《Journal of Advanced Transportation》 |2018年第6期|1074817.1-1074817.14|共14页
  • 作者单位

    Tsinghua Univ Dept Civil Engn Beijing 100084 Peoples R China|Univ Oxford Sch Geog & Environm Transport Studies Unit Oxford England;

    Tsinghua Univ Dept Civil Engn Beijing 100084 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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