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Optimization based method to develop representative driving cycle for real-world fuel consumption estimation

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  • Cui, Yuepeng
  • Xu, Hao
  • Zou, Fumin
  • Chen, Zhihui
  • Gong, Kuangmin

Abstract

The lack of representative driving cycles is cited as one of main reasons for the increasing gap between vehicle test cycle and real-world fuel consumptions. Many past studies employed random and semi-random methods for developing driving cycles, by which the driving cycles aligned with real world driving characteristics may not be obtained. Besides, most of the existing methodologies were proposed for relative long trajectories, and cannot handle short trajectories “chopped” for road segments. Therefore, a new Simulated Annealing (SA) based method is proposed, resulting in a speed-acceleration pattern better aligned with real-world driving characteristics. The speed-acceleration status transitions are directly derived from the sample snippets rather than idealized trip trajectories based on SA optimization. In a case study in Fujian Province, China, the SA-based method could stably converge to observed values as the number of iterations increases and it greatly reduces the error by up to 23% over traditional methods. Finally, the accuracy of fuel consumption estimation is improved by imposing restriction on the starting and ending speeds of driving cycles. The method could improve fuel consumption estimation and also provide a better understanding on regional driving pattern, it can be used as a valuable tool for supporting energy and climate policies.

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  • Cui, Yuepeng & Xu, Hao & Zou, Fumin & Chen, Zhihui & Gong, Kuangmin, 2021. "Optimization based method to develop representative driving cycle for real-world fuel consumption estimation," Energy, Elsevier, vol. 235(C).
  • Handle: RePEc:eee:energy:v:235:y:2021:i:c:s0360544221016820
    DOI: 10.1016/j.energy.2021.121434
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    as
    1. Rechkemmer, Sabrina Kathrin & Zang, Xiaoyun & Zhang, Weimin & Sawodny, Oliver, 2019. "Lifetime optimized charging strategy of Li-ion cells based on daily driving cycle of electric two-wheelers," Applied Energy, Elsevier, vol. 251(C), pages 1-1.
    2. Huo, Hong & Yao, Zhiliang & He, Kebin & Yu, Xin, 2011. "Fuel consumption rates of passenger cars in China: Labels versus real-world," Energy Policy, Elsevier, vol. 39(11), pages 7130-7135.
    3. ., 2020. "A European single market without tax harmonization," Chapters, in: Tax Tyranny, chapter 10, pages 145-162, Edward Elgar Publishing.
    4. Sierra, Jaime Cevallos, 2016. "Estimating road transport fuel consumption in Ecuador," Energy Policy, Elsevier, vol. 92(C), pages 359-368.
    5. Wang, Jinghui & Rakha, Hesham A., 2016. "Fuel consumption model for conventional diesel buses," Applied Energy, Elsevier, vol. 170(C), pages 394-402.
    6. Banzhaf, H. Spencer & Kasim, M. Taha, 2019. "Fuel consumption and gasoline prices: The role of assortative matching between households and automobiles," Journal of Environmental Economics and Management, Elsevier, vol. 95(C), pages 1-25.
    7. Mourad, M. & Mahmoud, Khaled R.M., 2018. "Performance investigation of passenger vehicle fueled by propanol/gasoline blend according to a city driving cycle," Energy, Elsevier, vol. 149(C), pages 741-749.
    8. Pavlovic, J. & Ciuffo, B. & Fontaras, G. & Valverde, V. & Marotta, A., 2018. "How much difference in type-approval CO2 emissions from passenger cars in Europe can be expected from changing to the new test procedure (NEDC vs. WLTP)?," Transportation Research Part A: Policy and Practice, Elsevier, vol. 111(C), pages 136-147.
    9. Gong, Huiming & Zou, Yuan & Yang, Qingkai & Fan, Jie & Sun, Fengchun & Goehlich, Dietmar, 2018. "Generation of a driving cycle for battery electric vehicles:A case study of Beijing," Energy, Elsevier, vol. 150(C), pages 901-912.
    10. ., 2020. "European Union," Chapters, in: Evolutionary Spatial Economics, chapter 33, pages 596-631, Edward Elgar Publishing.
    11. Wang, Hewu & Zhang, Xiaobin & Ouyang, Minggao, 2015. "Energy consumption of electric vehicles based on real-world driving patterns: A case study of Beijing," Applied Energy, Elsevier, vol. 157(C), pages 710-719.
    12. Wang, Sinan & Chen, Kangda & Zhao, Fuquan & Hao, Han, 2019. "Technology pathways for complying with Corporate Average Fuel Consumption regulations up to 2030: A case study of China," Applied Energy, Elsevier, vol. 241(C), pages 257-277.
    13. Luin, Blaž & Petelin, Stojan & Al-Mansour, Fouad, 2019. "Microsimulation of electric vehicle energy consumption," Energy, Elsevier, vol. 174(C), pages 24-32.
    14. Tu, Wei & Santi, Paolo & Zhao, Tianhong & He, Xiaoyi & Li, Qingquan & Dong, Lei & Wallington, Timothy J. & Ratti, Carlo, 2019. "Acceptability, energy consumption, and costs of electric vehicle for ride-hailing drivers in Beijing," Applied Energy, Elsevier, vol. 250(C), pages 147-160.
    15. Zhang, Shaojun & Wu, Ye & Liu, Huan & Huang, Ruikun & Un, Puikei & Zhou, Yu & Fu, Lixin & Hao, Jiming, 2014. "Real-world fuel consumption and CO2 (carbon dioxide) emissions by driving conditions for light-duty passenger vehicles in China," Energy, Elsevier, vol. 69(C), pages 247-257.
    16. Thomas, Bill, 2004. "Congressional Budget Office," World Trade Review, Cambridge University Press, vol. 3(2), pages 267-276, July.
    17. ., 2020. "Tensions and struggles in Europe-level science," Chapters, in: Science Evaluation and Status Creation, chapter 3, pages 32-50, Edward Elgar Publishing.
    18. ., 2020. "The European Union and transnational corporations," Chapters, in: Evolutionary Spatial Economics, chapter 25, pages 546-551, Edward Elgar Publishing.
    19. Hongwen, He & Jinquan, Guo & Jiankun, Peng & Huachun, Tan & Chao, Sun, 2018. "Real-time global driving cycle construction and the application to economy driving pro system in plug-in hybrid electric vehicles," Energy, Elsevier, vol. 152(C), pages 95-107.
    20. Brady, John & O’Mahony, Margaret, 2016. "Development of a driving cycle to evaluate the energy economy of electric vehicles in urban areas," Applied Energy, Elsevier, vol. 177(C), pages 165-178.
    21. Ali Ashtari & Eric Bibeau & Soheil Shahidinejad, 2014. "Using Large Driving Record Samples and a Stochastic Approach for Real-World Driving Cycle Construction: Winnipeg Driving Cycle," Transportation Science, INFORMS, vol. 48(2), pages 170-183, May.
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    1. Cui, Yuepeng & Zou, Fumin & Xu, Hao & Chen, Zhihui & Gong, Kuangmin, 2022. "A novel optimization-based method to develop representative driving cycle in various driving conditions," Energy, Elsevier, vol. 247(C).
    2. Carlos Santos-Iglesia & Pablo Fernández-Arias & Álvaro Antón-Sancho & Diego Vergara, 2022. "Energy Consumption of the Urban Transport Fleet in UNESCO World Heritage Sites: A Case Study of Ávila (Spain)," Sustainability, MDPI, vol. 14(9), pages 1-19, May.
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    5. Weinan He & Lei Duan & Zhuoyuan Zhang & Xu Zhao & Ying Cheng, 2022. "Analysis of the Characteristics of Real-World Emission Factors and VSP Distributions—A Case Study in Beijing," Sustainability, MDPI, vol. 14(18), pages 1-14, September.

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