Analyzing and Implementing Sustainable Aviation Fuel Solutions

Aulia Ramadhinya, Eka Nur Fatin, Imam Ozali, Yuwono D Sucipto

Abstract


This is a study of the impact of air transportation on the environment through emissions of CO2 and other pollutants, which are the causes of climate change. In Indonesia, transportation constitutes 27% of greenhouse gas emissions, especially in areas like Jakarta. This study purpose is to give a solution to deal with this situation by changing the fuel from conventional jet fuel to Sustainable Aviation Fuel (SAF) and to open opportunities in Indonesia by appealing to eco-conscious consumers and fostering technological innovation. This study mainly based on qualitative research with interviewing companies that are related to this study and research. The results of this study show that SAF is the key to saving climate change caused by air transportation emissions and many other benefits. SAF offers similar chemical ingredients to traditional jet fuel but with lower greenhouse gas emissions.

Keywords


Sustainable aviation fuel; Climate change; Reduce emission; Air pollutions; Aviation fuel effect; Indonesia environment; Environment

Full Text:

PDF

References


Atmowidjojo, A., Rianawati, E., Chin, B. L. F., Yusup, S., Quitain, A. T., Assabumrungrat, S., Yiin, C. L., Kiatkittipong, W., Srifa, A., & Eiad-Ua, A. (2021). Supporting Clean Energy in the ASEAN: Policy Opportunities from Sustainable Aviation Fuels Initiatives in Indonesia and Malaysia. IOP Conference Series: Earth and Environmental Science, 940(1). https://doi.org/10.1088/1755-1315/940/1/012031

Cabrera, E., & Melo de Sousa, J. M. (2022). Use of Sustainable Fuels in Aviation—A Review. Energies, 15(7), 1–23. https://doi.org/10.3390/en15072440

Carlier, D., Van Der Ven, A., Ceder, G., Croguennec, L., Ménétrier, M., & Delmas, C. (2003). Lithium electrochemical deintercalation from O2-LiCoO2: Structural study and first principles calculations. Materials Research Society Symposium - Proceedings, 756, 243–248. https://doi.org/10.1557/proc-756-ee5.9

Cordina, E. (2002). Aviation and the Environment A study on ways to limit the environmental harm caused by engine emissions and assessment of future environmentally friendly aircraft. July.

Dwi Jofanka, A., & Bagus Ketut Bayangkara, I. (2024). Online) 2723-813X | (Print) 2723-8121 Fakultas Ekonomi dan Bisnis, Universitas 17 Agustus 1945 Surabaya. Menur Pumpungan, Kec. Sukolilo, 45, 60118. https://journal.cattleyadf.org/index.php/Jasmien/index

Fu, J., Houston, L., Giordan, J., Grandbois, M. L., Maclachlan, J., Skinner, J., Cohen, J., & Liu, J. L. (2023). Opportunities and Challenges for Building Market-Aligned Sustainable Aviation Fuels. ACS Energy Letters, 8(8), 3558–3564. https://doi.org/10.1021/acsenergylett.3c01453

Gunawan, W., & Aprianingsih, A. (2023). Proposed Marketing Strategy of Green Jet Fuel or Sustainable Aviation Fuel (SAF) for Pertamina Post Development of Biorefinery Plant. European Journal of Business and Management Research, 8(3), 342–347. https://doi.org/10.24018/ejbmr.2023.8.3.2010

Haryanto, B. (2018). Climate Change and Urban Air Pollution Health Impacts in Indonesia. Springer Climate, January, 215–239. https://doi.org/10.1007/978-3-319-61346-8_14

Luthfiyah, M. F. (2017). Metodologi Penelitian: Penelitian Kualitatif, Tindakan Kelas Dan Studi Kasus. November, 26.

Martinez-Valencia, Lina, Peterson, S., Brandt, K., King, A. B., Garcia-Perez, M., & Wolcott, M. (2022). A System Dynamics Model Approach for Policy Analysis of Sustainable Aviation Fuel. May, 1–318. https://rex.libraries.wsu.edu/esploro/outputs/99900882926101842

Nugroho, D. A., Sitompul, M. R., & Widadi, N. (2024). Sustainable aviation fuel development: Case study in Indonesia. IOP Conference Series: Earth and Environmental Science, 1294(1). https://doi.org/10.1088/1755-1315/1294/1/012032

Rhodes, T., & Coomber, R. (2010). Qualitative Methods and Theory in Addictions Research. Addiction Research Methods, February 2010, 59–78. https://doi.org/10.1002/9781444318852.ch5

Rony, Z. I., Mofijur, M., Hasan, M. M., Ahmed, S. F., Almomani, F., Rasul, M. G., Jahirul, M. I., Loke Show, P., Kalam, M. A., & Mahlia, T. M. I. (2023). Unanswered issues on decarbonizing the aviation industry through the development of sustainable aviation fuel from microalgae. Fuel, 334. https://doi.org/10.1016/j.fuel.2022.126553

Sekartadji, R., Musyafa, A., Jaelani, L. M., & Ahyudanari, E. (2024). Analysis of CO2 Emission Reduction in Aviation Using Mix of 2,4% Biofuel. Proceeding of International Conference on Artificial Intelligence, Navigation, Engineering, and Aviation Technology (ICANEAT), 1(1), 154–157. https://doi.org/10.61306/icaneat.v1i1.203

Sena, A., Hariri, A., Prasojo, G. L., Iswahyudi, P., Penerbang, A., & Banyuwangi, I. (2021). Diplomacy Review of Delegation of Republic of Indonesia to the International Civil Aviation Organization in Montreal Canada. SKYHAWK: Jurnal Aviasi Indonesia, 1(1). http://ejournal.icpa-banyuwangi.ac.id/index.php/skyhawk

Teoh, R., Schumann, U., Voigt, C., Schripp, T., Shapiro, M., Engberg, Z., Molloy, J., Koudis, G., & Stettler, M. E. J. (2022). Targeted Use of Sustainable Aviation Fuel to Maximize Climate Benefits. Environmental Science and Technology, 56(23), 17246–17255. https://doi.org/10.1021/acs.est.2c05781

Yusaf, T., Kadirgama, K., Hall, S., & Fernandes, L. (2022). The Future of Sustainable Aviation Fuels, Challenges and Solutions. Energies, 15(21), 29–40. https://doi.org/10.3390/en15218151




DOI: https://doi.org/10.25292/atlr.v7i0.667

Refbacks

  • There are currently no refbacks.


Copyright (c) 2025 Advances in Transportation and Logistics Research

Creative Commons License
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.

Advances in Transportation and Logistics Research

ISSN: 2622-5778 (online)
Published by: Institut Transportasi dan Logistik Trisakti, Jakarta - Indonesia

ATLR by http://proceedings.itltrisakti.ac.id/index.php/ATLR is licensed under a Creative Commons Attribution 4.0 International License.