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Efficiency of an off-road heavy-duty series hybrid drive based on a modified world harmonized transient cycle

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Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
As electric drives slowly replace passenger cars and light special vehicles, electric drives in the heavy-duty road sector have started to emerge. As for off-road vehicles, there is some effort to reduce the amount of fossil fuel used. In this study, the series hybrid application for a heavy-duty tractor is investigated. Work conditions are described using modified worldwide transient vehicle cycle to evaluate the efficiency of an energy management system applied, as well as the overall vehicle performance and efficiency. As a result, in some test scenarios, smaller-than-expected energy outputs were identified and new ways to improve energy management were found.
Słowa kluczowe
Czasopismo
Rocznik
Strony
187--195
Opis fizyczny
Bibliogr. 12 poz.
Twórcy
  • Kaunas University of Technology; Studentų 56, 51424, Kaunas, Lithuania
  • Kaunas University of Technology; Studentų 56, 51424, Kaunas, Lithuania
  • Vilnius Gediminas Technical University; J. Basanavičius 28, 03224, Vilnius, Lithuania
Bibliografia
  • 1. Anwar, S. & Zia, M. & Rashid, M. & Zarazua, G. & Enevoldsen, P. Towards the Knowledge Development for Ferries Electrification in Maritime Sector. Energies. 2020. Vol. 13. No. 24. Paper No. 6506.
  • 2. Zhang, F. & Obeid, E. & Bou Nader, W. & Zoughaib, A. & Luo, X. Well-to-Wheel analysis of natural gas fuel for hybrid truck applications. Energy Conversion and Management. 2021. Vol. 240. Paper No. 114271.
  • 3. Xie, S. & Peng, J. & He, H. Plug-In Hybrid Electric Bus Energy Management Based on Stochastic Model Predictive Control. Energy Procedia. 2017. Vol. 105. P. 2672-2677.
  • 4. Krawiec, K. Vehicle Cycle Hierarchization Model to Determine the Order of Battery Electric Bus Deployment in Public Transport. Transport Problems. 2021. Vol. 16. No. 1. P. 99-112.
  • 5. Chung, J.W. & Lee, B.H. & Lee, S.W. & Kim, D.J. & Park, J.Y. & Goo, Y.M. Study on Analysis of Real Road Driving Characteristics of Heavy-Duty Gas Delivery Tractor. International Journal of Automotive Technology. 2021. Vol. 22. No. 6. P. 1735-1742.
  • 6. Development of a Worldwide Harmonised Heavy-duty Engine Emissions Test Cycle. Final Report. 42nd GRPE. April 2001.
  • 7. Agreement Concerning the Establishing of Global Technical Regulations for Wheeled Vehicles, Equipment and Parts Which Can be Fitted and/or Be Used on Wheeled Vehicles. Global Technical Regulation. Geneva, November 2004.
  • 8. Fontaras, G. & Grigoratos, T. & Savvidis, D. & Anagnostopoulos, K. & Luz, R. & Rexeis, M. & Hausberger, S. An experimental evaluation of the methodology proposed for the monitoring and certification of CO2 emissions from heavy-duty vehicles in Europe. Energy. 2016. Vol. 102. P. 354-364.
  • 9. Widodo, N.P. & Kramadibrata, S. & Rohman, A. & Wicaksana, Y. & Hermawan, F. Rolling Resistance study of gravelly sand material on laboratory scale. In: Mining Engineering. Bandung, 2009.
  • 10. Johri, R. & Filipi, Z. Optimal energy management of a series hybrid vehicle with combined fuel economy and low-emission objectives. Journal of Automobile Engineering. 2014. Vol. 228. No. 12. P. 1424-1439.
  • 11. Łukasik, Z. & Kozyra, J. & Kuśmińska-Fijałkowska, A. Reduction of CO2 Through Application of a High-Performance Alternator. Transport Problems. 2021. Vol. 16. No. 2. P. 179-188.
  • 12. Wahyudi, D.T. & Khaerudini, D.S. design of anti-slip shoes for 12 ton palm oil truck wheels. Sinergi. 2020. Vol. 24. No. 3. P. 213-222.
Uwagi
PL
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-67a3510d-c633-4de0-baf3-0c764b01a732
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