Open Access
Issue
E3S Web Conf.
Volume 705, 2026
Advances in Renewable Energy & Electric Vehicles (AREEV-2026) (under the aegis of ICETE 2026 Multi-Conference Platform)
Article Number 01001
Number of page(s) 6
Section Advances in Renewable Energy Systems
DOI https://doi.org/10.1051/e3sconf/202670501001
Published online 15 April 2026
  1. X. Wang, X. Dong, Z. Zhang, Y. Wang, Transportation carbon reduction technologies: A review of fundamentals, application, and performance, Journal of Traffic and Transportation Engineering (English Edition), 11(6), 1340–1377, (2024) [Google Scholar]
  2. S. Hadavi, B. Dizayi, H. Li, and A. S. Tomlin, Emissions From a HGV Using Used Cooking Oil as a Fuel Under Real World Driving Conditions, 1–11, (2015) [Google Scholar]
  3. K. Maqsood and M. Alsaady, Optimization Using Response Surface Methodology for Producing Biodiesel From Waste Cooking Oil Using Fishbone Catalyst, Materwiss Werksttech, 53(10), 1242–1248, (2022) [Google Scholar]
  4. O. Awogbemi, E. I. Onuh, and F. L. Inambao, Comparative Study of Properties and Fatty Acid Composition of Some Neat Vegetable Oils and Waste Cooking Oils, International Journal of LowCarbon Technologies, 14(3), 417–425, (2019) [Google Scholar]
  5. P. A. Nur Oktadina, A. Syarif, M. Yerizam, and A. Medi, The Characterization of Used Cooking Oil as a Raw Material to Produce Biofuel Using CoMo/Bottom Ash With Catalytic Cracking Process, Journal of Mechanical Civil and Industrial Engineering, 37–42, (2023) [Google Scholar]
  6. A. Nurfitriyah, A. Assari, F. S. Pamungkas, A. Elliyanti, A. H. Darmawan, and H. Juwono, Catalytic Co-Cracking of Used Cooking Oil Methyl Ester and Polystyrene Waste for GasolineRich Biofuel Over Mesoporous Al-MCM-41 Catalyst, Iptek Journal of Proceedings Series, 6, 388–393, (2021) [Google Scholar]
  7. M. S. Khan, H. Farah, N. Iqbal, T. Nооr, M. Z. Bin Amjad, and S. S. Ejaz Bukhari, A TiO2 Composite With Graphitic Carbon Nitride as a Photocatalyst for Biodiesel Production From Waste Cooking Oil, 11, 37575–37583, RSC Adv (2021) [Google Scholar]
  8. H. Zhang, U. A. Öztürk, D. Zhou, Y. Qiu, and Q. Wu, How to Increase the Recovery Rate for Waste Cooking Oil-to-Biofuel Conversion: A Comparison of Recycling Modes in China and Japan, Ecol Indic, 51, 146–150, (2015). [Google Scholar]
  9. A. I. Osman, N. Mehta, A. M. Elgarahy, A. AlHinai, A. H. Al-Muhtaseb, and D. W. Rooney, Conversion of Biomass to Biofuels and Life Cycle Assessment: A Review, Environ Chem Lett. 19, 4075–4118, (2021) [Google Scholar]
  10. V. Russo, L. Di Paola, V. Piemonte, A. Basile, M. De Falco, and A. Giuliani, Are Biofuels Sustainable? An LCA/multivariate Perspective on Feedstocks and Processes, Asia-Pacific Journal of Chemical Engineering, 11(5), 650–663, (2016) [Google Scholar]
  11. E. Martin, M. Chester, and S. E. Vergara, Attributional and Consequential Life-Cycle Assessment in Biofuels: A Review of Recent Literature in the Context of System Boundaries, Current Sustainable/Renewable Energy Reports, 2, 82–89, (2015) [Google Scholar]
  12. D. Rathor, A. Nizami, A. Singh, and D. Pant, Key Issues in Estimating Energy and Greenhouse Gas Savings of Biofuels: Challenges and Perspectives, Biofuel Research Journal, 3(2), 380–393, (2016) [Google Scholar]
  13. G. Gopal, M. Dhanorkar, S. P. Kale, and Y. Patil, Life Cycle Assessment of Anaerobic Digestion Systems, Management of Environmental Quality an International Journal, 391–414, (2019) [Google Scholar]
  14. E. M. Miyasato and B. J. Cardinale, Impacts of Fungal Disease on Algal Biofuel Systems: Using Life Cycle Assessment to Compare Control Strategies, Environ Sci Technol, 57(6), 2602–2610, (2023) [Google Scholar]
  15. O. V Tryboi, Efficient Biomass Value Chains for Heat Production From Energy Crops in Ukraine, Energetika, 64(2), 84–92, (2018) [Google Scholar]
  16. D. R. Shonnard et al., A Review of Environmental Life Cycle Assessments of Liquid Transportation Biofuels in the Pan American Region, Environ Manage, 56, 1356–1376, (2015) [Google Scholar]
  17. A. Eladeb, Magnesium Oxide (MgO) as a Sustainable Catalyst for Biodiesel Production From Waste Cooking Oil: A Comparative Study With KOH, Engineering Technology & Applied Science Research, 14(2), 13751–13756, (2024) [Google Scholar]
  18. R. Yang, W. Tang, and J. Zhang, Implications of Government Subsidies for Waste Cooking Oil Considering Asymmetric Information, Kybernetes, 50(2), 588–615, (2020) [Google Scholar]
  19. M. Ali, M. Shahid, W. Saeed, S. Imran, and M. A. Kalam, Design, Fabrication, and Operation of a 10 L Biodiesel Production Unit Powered by Conventional and Solar Energy Systems, Sustainability, 15(12), 9734, (2023) [Google Scholar]
  20. R. Rusdianasari, L. Utarina, L. Kalsum, D. Wulandari, and Y. Bow, Environmental Potential Impact on Biofuel Production From Thermal Cracking of Palm Shell Using Life Cycle Assessment, Journal of Ecological Engineering, 23(12), 61–67, (2022) [Google Scholar]
  21. S. Liu, S. Zhou, A. Peng, and W. Li, Investigation of Physiochemical and Rheological Properties of Waste Cooking Oil/SBS/Eva Composite Modified Petroleum Asphalt, J Appl Polym Sci, 137(26), 48828, (2019) [Google Scholar]
  22. D. Quiroz, J. M. Greene, B. J. Limb, and J. C. Quinn, Global Life Cycle and Techno-Economic Assessment of Algal-Based Biofuels, Environ Sci Technol, 57(31), 11541–11551, (2023) [Google Scholar]
  23. M. R. Giraldi-Díaz, L. De Medina-Salas, E. Castillo-González, and M. De la Cruz-Benavides, Environmental Impact Associated With the Supply Chain and Production of Biodiesel From Jatropha Curcas L. Through Life Cycle Analysis, Sustainability, 10(5), 1451, (2018) [Google Scholar]
  24. J. Chocholac, R. Hruska, S. Machalik, D. Sommerauerova, and P. Sohajek, Framework for Greenhouse Gas Emissions Calculations in the Context of Road Freight Transport for the Automotive Industry, Sustainability, 13(7), 1–28, (2021) [Google Scholar]
  25. P. Thanatrakolsri and D. Sirithian, Evaluation of Greenhouse Gas Emissions and Mitigation Measures at Thammasat University’s Lampang Campus in Thailand, Environ Health Insights, 18 (2024) [Google Scholar]
  26. M. Kareem and A. Saleh, Engine Performance with Diesel-Biodiesel Blends Fuel and Emission Characteristics, Engineering and Technology Journal, 38(5), 779–788 (2020) [Google Scholar]
  27. A. Mata et al., A Review of Grease Trap Waste Management in the US and the Upcycle as Feedstocks for Alternative Diesel Fuels,” Environments, 11(8), 159 (2024) [Google Scholar]
  28. M. A. Qamar, R. Liaquat, U. Jamil, R. Mansoor, and S. Azam, Techno-spatial assessment of waste cooking oil for biodiesel production in Pakistan, SN Appl Sci, 2(5), 901 (2020) [Google Scholar]
  29. M. Niekurzak, Determining the Unit Values of the Allocation of Greenhouse Gas Emissions for the Production of Biofuels in the Life Cycle, Energies (Basel), 14(24), 8394 (2021) [Google Scholar]
  30. M. M. Roy, M. S. Islam, and M. N. Alam, Biodiesel from Crude Tall Oil and Its NOx and Aldehydes Emissions in a Diesel Engine Fueled by Biodiesel-Diesel Blends with Water Emulsions, Processes, 9(1), 126, (2021) [Google Scholar]
  31. S. Cassiers et al., Emission Measurement of Buses Fueled with Biodiesel Blends during On-Road Testing, Energies (Basel), 13(20), 5267 (2020) [Google Scholar]
  32. C. H. Ribeiro and M. P. da Cunha, The Economic and Environmental Impacts of Brazilian National Biofuel Policy, Biofuels Bioproducts and Biorefining, 16, 413–434, (2021) [Google Scholar]
  33. X. Chen, M. Khanna, and S. Yeh, Stimulating Learning-by-Doing in Advanced Biofuels: Effectiveness of Alternative Policies, Environmental Research Letters, 7, 045907, (2012) [Google Scholar]
  34. A. A. Vitoriano Julio, T. S. Milessi, D. M. Yepes Maya, E. E. Silva Lora, and J. C. Escobar Palácio, Assessment of the sustainability and Economic Potential of Hydrotreated Vegetable Oils to complement Diesel and Biodiesel Blends in Brazil, Biofuels Bioproducts and Biorefining, 17(2), 312–323, (2022) [Google Scholar]
  35. G. De Feo, C. Ferrara, L. Giordano, and L. S. Ossèo, Assessment of Three Recycling Pathways for Waste Cooking Oil as Feedstock in the Production of Biodiesel, Biolubricant, and Biosurfactant: A Multi-Criteria Decision Analysis Approach, Recycling, 8(4), 64, (2023) [Google Scholar]
  36. I. Thushari and S. Babel, Comparative Study of the Environmental Impacts of Used Cooking Oil Valorization Options in Thailand, J Environ Manage, 310, 114810, (2022) [Google Scholar]
  37. S. C. Lim, I. A. Santo, C.Y. Ho, N. M. Razali, L. Yusoff, and C. Gomes, Decarbonization of ASEAN: An Engineering Approach, Journal of Engineering Technology and Applied Physics, 7(2), 75–80 (2025) [Google Scholar]
  38. C. L. Siow, I. A. Santo, Y. H. Chai, N. M. Razali, L. Yusoff and R. I. A. Jalal, Decarbonization of Malaysia’s Fishery Sector: Utilization of Waste Cooking Oil-Derived Biodiesel in Marine Engines, 109–113, (2025) [Google Scholar]

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