Research Article
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Year 2025, Volume: 9 Issue: 4, 320 - 332
https://doi.org/10.30521/jes.1760027

Abstract

References

  • [1] Achariyaviriya, W, Wongsapai, W, Janpoom, K, Katongtung, T, Mona, Y, Tippayawong, N, Suttakul, P. Estimating Energy Consumption of Battery Electric Vehicles Using Vehicle Sensor Data and Machine Learning Approaches. Energies 2023; 16(17): 6351. DOI: 10.3390/en16176351
  • [2] Achariyaviriya, W, Wongsapai, W, Rinchumphu, D, Tippayawong, N, Tippayawong, KY, Suttakul, P. A comparative study of vehicle powertrain efficiency: Data-driven analyzing energy consumption and environmental impact. Transportation Engineering 2024; 18: 100286. DOI: 10.1016/j.treng.2024.100286
  • [3] Achariyaviriya, W, Suttakul, P, Fongsamootr, T, Mona, Y, Phuphisith, S, Tippayawong, KY. The social cost of carbon of different automotive powertrains: A comparative case study of Thailand. Energy Reports 2023; 9: 1144-1151. DOI: 10.1016/j.egyr.2023.03.035
  • [4] Suttakul, P, Fongsamootr, T, Wongsapai, W, Mona, Y, Poolsawat, K. Energy consumptions and CO2 emissions of different powertrains under real-world driving with various route characteristics. Energy Reports 2022; 8: 554-561. DOI: 10.1016/j.egyr.2022.05.216
  • [5] Janpoom, K, Suttakul, P, Achariyaviriya, W, Fongsamootr, T, Katongtung, T, Tippayawong, N. Investigating the influential factors in real-world energy consumption of battery electric vehicles. Energy Reports 2023; 9: 316-320. DOI: 10.1016/j.egyr.2023.10.012
  • [6] Jelti, F, Saadani, R. Energy efficiency analysis of heavy goods vehicles in road transportation: The case of Morocco. Case Studies on Transport Policy 2024; 17: DOI: 10.1016/j.cstp.2024.101260
  • [7] Gustafsson, M, Svensson, N, Eklund, M, Dahl Öberg, J, Vehabovic, A. Well-to-wheel greenhouse gas emissions of heavy-duty transports: Influence of electricity carbon intensity. Transportation Research Part D: Transport and Environment 2021; 93: DOI: 10.1016/j.trd.2021.102757
  • [8] Khanna, N, Lu, H, Fridley, D, Zhou, N. Near and long-term perspectives on strategies to decarbonize China's heavy-duty trucks through 2050. Sci Rep 2021; 11(1): 20414. DOI: 10.1038/s41598-021-99715-w
  • [9] Poolsawat, K, Wongsapai, W, Achariyaviriya, W, Tachajapong, W, Mona, Y, Wanison, R, Thawon, I, Suttakul, P. Cost-benefit analysis for transitioning Thailand’s passenger cars to electric drives. Journal of Energy Systems 2024; 8: 207-220. DOI: 10.30521/jes.1524048
  • [10] Suttakul, P, Wongsapai, W, Fongsamootr, T, Mona, Y, Poolsawat, K. Total cost of ownership of internal combustion engine and electric vehicles: A real-world comparison for the case of Thailand. Energy Reports 2022; 8: 545-553. DOI: 10.1016/j.egyr.2022.05.213
  • [11] Bhardwaj, S, Mostofi, H. Technical and Business Aspects of Battery Electric Trucks—A Systematic Review. Future Transportation 2022; 2(2): 382-401. DOI: 10.3390/futuretransp2020021
  • [12] Yeow, LW, Yan, Y, Cheah, L. Life cycle greenhouse gas emissions of alternative fuels and powertrains for medium-duty trucks: A Singapore case study. Transportation Research Part D: Transport and Environment 2022; 105: DOI: 10.1016/j.trd.2022.103258
  • [13] Dou, G, Ke, J, Liang, J, Wang, J, Li, J, Liu, Q, Hao, C. Analysis of the Actual Usage and Emission Reduction Potential of Electric Heavy-Duty Trucks: A Case Study of a Steel Plant. Atmosphere 2023; 14(10): DOI: 10.3390/atmos14101562
  • [14] Tanvir, S, Un-Noor, F, Boriboonsomsin, K, Gao, Z. Feasibility of Operating a Heavy-Duty Battery Electric Truck Fleet for Drayage Applications. Transportation Research Record: Journal of the Transportation Research Board 2020; 2675(1): 258-268. DOI: 10.1177/0361198120957325
  • [15] Zacharof, N, Bitsanis, E, Broekaert, S, Fontaras, G. Reducing CO2 Emissions of Hybrid Heavy-Duty Trucks and Buses: Paving the Transition to Low-Carbon Transport. Energies 2024; 17(2): DOI: 10.3390/en17020286
  • [16] Qiu, K, Ribberink, H, Entchev, E. Economic feasibility of electrified highways for heavy-duty electric trucks. Applied Energy 2022; 326: DOI: 10.1016/j.apenergy.2022.119935
  • [17] Achariyaviriya, W, Suttakul, P, Phuphisith, S, Mona, Y, Wanison, R, Phermkorn, P. Potential reductions of CO2 emissions from the transition to electric vehicles: Thailand’s scenarios towards 2030. Energy Reports 2023; 9: 124-130. DOI: 10.1016/j.egyr.2023.08.073
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  • [19] Krungthai COMPASS. Green Logistics. Bangkok: Krungthai Bank; 2022.
  • [20] Energy Policy and Planning Office (EPPO). Study and Survey of Energy Use in the Transportation Sector Project. Bangkok: Energy Policy and Planning Office; 2019.
  • [21] Office of Transport and Traffic Policy and Planning (OTP). The Study of Development Guidelines for Intercity Bus Transport System. Bangkok: Office of Transport and Traffic Policy and Planning; 2024.
  • [22] Department of Alternative Energy Development and Efficiency (DEDE). Energy Balance of Thailand 2022. Bangkok: DEDE; 2022.
  • [23] Intergovernmental Panel on Climate Change (IPCC). 2006 IPCC Guidelines for National Greenhouse Gas Inventories: Volume 2 – Energy. Geneva: IPCC; 2006.
  • [24]Thailand Greenhouse Gas Management Organization (TGO). Emission Factor from Electricity Generation/Consumption for Greenhouse Gas Mitigation Projects and Activities. Bangkok: TGO; 2025.
  • [25]Wang, R, Martinez, A, Allybokus, Z, Zeng, W, Obrecht, N, Moura, S. Electrifying Heavy-Duty Trucks: Battery-Swapping vs Fast Charging. IEEE Transactions on Smart Grid 2025; 16(5): 3989-4003: DOI: 10.1109/TSG.2025.3571819
  • [26]Bommenahalli, R, Chandran, D. Comparative Analysis of Megawatt Charging Systems Infrastructure for Heavy-Duty Electric Vehicles: North America, Europe, and China. Journal of Power and Energy Engineering 2025; 13(10): 10-23: DOI: 10.4236/jpee.2025.1310002
  • [27]International Energy Agency (IEA). Global EV Outlook 2021: Policies to Promote Electric Vehicle Deployment. Paris: International Energy Agency; 2021.
  • [28]Thananusak, T, Punnakitikashem, P, Tanthasith, S, Kongarchapatara, B. The Development of Electric Vehicle Charging Stations in Thailand: Policies, Players, and Key Issues (2015–2020). World Electric Vehicle Journal 2021; 12: 2: DOI: 10.3390/wevj12010002
  • [29]Boonraksa, T, Marungsri, B. Development of Fast Charging Station for Public Transport in Nakhon Ratchasima, Thailand. GMSARN International Journal 2019; 13: 36 – 44
  • [30]Land Transport Authority (LTA). Strengthening Singapore’s Electric Vehicle Ecosystem to Reduce Land Transport Emissions. Singapore: Land Transport Authority; 2025.

Promoting battery-electric trucks through freight decarbonization policy in Thailand’s Eastern Economic Corridor

Year 2025, Volume: 9 Issue: 4, 320 - 332
https://doi.org/10.30521/jes.1760027

Abstract

The freight transport sector in Thailand’s Eastern Economic Corridor (EEC) is a major source of greenhouse gas (GHG) emissions due to its heavy dependence on diesel trucks. This study offers a scenario-based analysis of battery-electric truck (BET) deployment as a way to reduce emissions in the freight sector by 2030. Using official vehicle registration data, projected growth rates, and emission factors based on IPCC guidelines, three future scenarios are analyzed: A business-as-usual (BAU) case, a likely case assuming 30% BET adoption, and an extreme case assuming 50% adoption. Results show that emissions are expected to increase from 4.36 MtCO₂e to 5.17 MtCO₂e under the BAU scenario, while the probable and extreme BET scenarios could cut emissions to 3.62 and 2.58 MtCO₂e, respectively. The study also provides policy recommendations for each scenario, including financial incentives, investment in fast-charging infrastructure, zero-emission vehicle mandates, and grid integration strategies. These findings offer data-driven insights to support Thailand’s transition to low-carbon freight and highlight the EEC’s potential to serve as a model for sustainable logistics development across Southeast Asia.

Supporting Institution

This work is partially supported by Chiang Mai University, Thailand, CMU Proactive Researcher.

Thanks

The authors would like to thank all relevant agencies for providing information on data collection and technology details.

References

  • [1] Achariyaviriya, W, Wongsapai, W, Janpoom, K, Katongtung, T, Mona, Y, Tippayawong, N, Suttakul, P. Estimating Energy Consumption of Battery Electric Vehicles Using Vehicle Sensor Data and Machine Learning Approaches. Energies 2023; 16(17): 6351. DOI: 10.3390/en16176351
  • [2] Achariyaviriya, W, Wongsapai, W, Rinchumphu, D, Tippayawong, N, Tippayawong, KY, Suttakul, P. A comparative study of vehicle powertrain efficiency: Data-driven analyzing energy consumption and environmental impact. Transportation Engineering 2024; 18: 100286. DOI: 10.1016/j.treng.2024.100286
  • [3] Achariyaviriya, W, Suttakul, P, Fongsamootr, T, Mona, Y, Phuphisith, S, Tippayawong, KY. The social cost of carbon of different automotive powertrains: A comparative case study of Thailand. Energy Reports 2023; 9: 1144-1151. DOI: 10.1016/j.egyr.2023.03.035
  • [4] Suttakul, P, Fongsamootr, T, Wongsapai, W, Mona, Y, Poolsawat, K. Energy consumptions and CO2 emissions of different powertrains under real-world driving with various route characteristics. Energy Reports 2022; 8: 554-561. DOI: 10.1016/j.egyr.2022.05.216
  • [5] Janpoom, K, Suttakul, P, Achariyaviriya, W, Fongsamootr, T, Katongtung, T, Tippayawong, N. Investigating the influential factors in real-world energy consumption of battery electric vehicles. Energy Reports 2023; 9: 316-320. DOI: 10.1016/j.egyr.2023.10.012
  • [6] Jelti, F, Saadani, R. Energy efficiency analysis of heavy goods vehicles in road transportation: The case of Morocco. Case Studies on Transport Policy 2024; 17: DOI: 10.1016/j.cstp.2024.101260
  • [7] Gustafsson, M, Svensson, N, Eklund, M, Dahl Öberg, J, Vehabovic, A. Well-to-wheel greenhouse gas emissions of heavy-duty transports: Influence of electricity carbon intensity. Transportation Research Part D: Transport and Environment 2021; 93: DOI: 10.1016/j.trd.2021.102757
  • [8] Khanna, N, Lu, H, Fridley, D, Zhou, N. Near and long-term perspectives on strategies to decarbonize China's heavy-duty trucks through 2050. Sci Rep 2021; 11(1): 20414. DOI: 10.1038/s41598-021-99715-w
  • [9] Poolsawat, K, Wongsapai, W, Achariyaviriya, W, Tachajapong, W, Mona, Y, Wanison, R, Thawon, I, Suttakul, P. Cost-benefit analysis for transitioning Thailand’s passenger cars to electric drives. Journal of Energy Systems 2024; 8: 207-220. DOI: 10.30521/jes.1524048
  • [10] Suttakul, P, Wongsapai, W, Fongsamootr, T, Mona, Y, Poolsawat, K. Total cost of ownership of internal combustion engine and electric vehicles: A real-world comparison for the case of Thailand. Energy Reports 2022; 8: 545-553. DOI: 10.1016/j.egyr.2022.05.213
  • [11] Bhardwaj, S, Mostofi, H. Technical and Business Aspects of Battery Electric Trucks—A Systematic Review. Future Transportation 2022; 2(2): 382-401. DOI: 10.3390/futuretransp2020021
  • [12] Yeow, LW, Yan, Y, Cheah, L. Life cycle greenhouse gas emissions of alternative fuels and powertrains for medium-duty trucks: A Singapore case study. Transportation Research Part D: Transport and Environment 2022; 105: DOI: 10.1016/j.trd.2022.103258
  • [13] Dou, G, Ke, J, Liang, J, Wang, J, Li, J, Liu, Q, Hao, C. Analysis of the Actual Usage and Emission Reduction Potential of Electric Heavy-Duty Trucks: A Case Study of a Steel Plant. Atmosphere 2023; 14(10): DOI: 10.3390/atmos14101562
  • [14] Tanvir, S, Un-Noor, F, Boriboonsomsin, K, Gao, Z. Feasibility of Operating a Heavy-Duty Battery Electric Truck Fleet for Drayage Applications. Transportation Research Record: Journal of the Transportation Research Board 2020; 2675(1): 258-268. DOI: 10.1177/0361198120957325
  • [15] Zacharof, N, Bitsanis, E, Broekaert, S, Fontaras, G. Reducing CO2 Emissions of Hybrid Heavy-Duty Trucks and Buses: Paving the Transition to Low-Carbon Transport. Energies 2024; 17(2): DOI: 10.3390/en17020286
  • [16] Qiu, K, Ribberink, H, Entchev, E. Economic feasibility of electrified highways for heavy-duty electric trucks. Applied Energy 2022; 326: DOI: 10.1016/j.apenergy.2022.119935
  • [17] Achariyaviriya, W, Suttakul, P, Phuphisith, S, Mona, Y, Wanison, R, Phermkorn, P. Potential reductions of CO2 emissions from the transition to electric vehicles: Thailand’s scenarios towards 2030. Energy Reports 2023; 9: 124-130. DOI: 10.1016/j.egyr.2023.08.073
  • [18] Economic Corridor Office of Thailand (EEC). Excellent Hub for Aircraft Manufacturing and Maintenance. Bangkok: Eastern Economic Corridor Office of Thailand; 2017.
  • [19] Krungthai COMPASS. Green Logistics. Bangkok: Krungthai Bank; 2022.
  • [20] Energy Policy and Planning Office (EPPO). Study and Survey of Energy Use in the Transportation Sector Project. Bangkok: Energy Policy and Planning Office; 2019.
  • [21] Office of Transport and Traffic Policy and Planning (OTP). The Study of Development Guidelines for Intercity Bus Transport System. Bangkok: Office of Transport and Traffic Policy and Planning; 2024.
  • [22] Department of Alternative Energy Development and Efficiency (DEDE). Energy Balance of Thailand 2022. Bangkok: DEDE; 2022.
  • [23] Intergovernmental Panel on Climate Change (IPCC). 2006 IPCC Guidelines for National Greenhouse Gas Inventories: Volume 2 – Energy. Geneva: IPCC; 2006.
  • [24]Thailand Greenhouse Gas Management Organization (TGO). Emission Factor from Electricity Generation/Consumption for Greenhouse Gas Mitigation Projects and Activities. Bangkok: TGO; 2025.
  • [25]Wang, R, Martinez, A, Allybokus, Z, Zeng, W, Obrecht, N, Moura, S. Electrifying Heavy-Duty Trucks: Battery-Swapping vs Fast Charging. IEEE Transactions on Smart Grid 2025; 16(5): 3989-4003: DOI: 10.1109/TSG.2025.3571819
  • [26]Bommenahalli, R, Chandran, D. Comparative Analysis of Megawatt Charging Systems Infrastructure for Heavy-Duty Electric Vehicles: North America, Europe, and China. Journal of Power and Energy Engineering 2025; 13(10): 10-23: DOI: 10.4236/jpee.2025.1310002
  • [27]International Energy Agency (IEA). Global EV Outlook 2021: Policies to Promote Electric Vehicle Deployment. Paris: International Energy Agency; 2021.
  • [28]Thananusak, T, Punnakitikashem, P, Tanthasith, S, Kongarchapatara, B. The Development of Electric Vehicle Charging Stations in Thailand: Policies, Players, and Key Issues (2015–2020). World Electric Vehicle Journal 2021; 12: 2: DOI: 10.3390/wevj12010002
  • [29]Boonraksa, T, Marungsri, B. Development of Fast Charging Station for Public Transport in Nakhon Ratchasima, Thailand. GMSARN International Journal 2019; 13: 36 – 44
  • [30]Land Transport Authority (LTA). Strengthening Singapore’s Electric Vehicle Ecosystem to Reduce Land Transport Emissions. Singapore: Land Transport Authority; 2025.
There are 30 citations in total.

Details

Primary Language English
Subjects Energy
Journal Section Research Article
Authors

Witsarut Duangchinda 0009-0004-0156-1915

Pantip Kayee 0009-0003-8789-7577

Suvit Toraninpanich 0009-0009-0898-8504

Itthidet Thawon 0000-0002-2502-8339

Kanistha Dechkoch 0009-0002-6150-6518

Wongkot Wongsapai 0000-0002-2273-5177

Witsarut Achariyaviriya 0000-0002-1832-0761

Pana Suttakul 0000-0002-2946-8921

Early Pub Date December 6, 2025
Publication Date December 14, 2025
Submission Date August 10, 2025
Acceptance Date November 25, 2025
Published in Issue Year 2025 Volume: 9 Issue: 4

Cite

Vancouver Duangchinda W, Kayee P, Toraninpanich S, Thawon I, Dechkoch K, Wongsapai W, et al. Promoting battery-electric trucks through freight decarbonization policy in Thailand’s Eastern Economic Corridor. Journal of Energy Systems. 2025;9(4):320-32.

Journal of Energy Systems is licensed under CC BY-NC 4.0