[1]
Navas-Anguita, Z., García-Gusano, D., & Iribarren, D. (2019). A review of techno-economic data for road transportation fuels. Renewable and Sustainable Energy Reviews, 112, 11–26
DOI: 10.1016/j.rser.2019.05.041
Google Scholar
[2]
Osei, J.A., Adamou, R., Kabo-Bah, A.T., Narra, S. 2023. Climate variability and change impacts on vehicular fuel consumption and emissions- A Systematic overview in Africa. STED Journal, 5(1), 50-77.
Google Scholar
[3]
Ghana Energy Commission. (2022). National Energy Statistics 2000-2022 edition (Issue April). http://www.energycom.gov.gh/old/downloads/Energy_Statistics_2011.pdf
Google Scholar
[4]
Ikechukwu Obiuto Ibeneme. (2020). Implementation of CNG as an Alternative Fuel for Automobiles in Nigeria: Benefits and Recommendations. International Journal of Engineering Research And, V9(07), 5–12
DOI: 10.17577/ijertv9is070654
Google Scholar
[5]
Imran Khan, M. (2017). Policy options for the sustainable development of natural gas as transportation fuel. Energy Policy, 110(May), 126–136. https://doi.org/10.1016/j.enpol. 2017.08.017
DOI: 10.1016/j.enpol.2017.08.017
Google Scholar
[6]
World LPG Association. (2019). A Global Roadmap for Autogas. December. https://www.wlpga.org/wp-content/uploads/2019/04/WLPGA-AUTOGAS-ROADMAP-March-2019-1.pdf
Google Scholar
[7]
Adegoriola, A. E., & Ph, D. (2020). Adopting Gas Automobile Fuels (LPG & CNG) into the Nigerian Transportation System. Journal of Economics and Sustainable Development, 10(14), 12-19
DOI: 10.7176/jesd/10-14-02
Google Scholar
[8]
Eni, F., & Mattei, E. (2017). Ghanaian Energy Markets and the Role of Natural Gas for Local Development Abstract. December.
Google Scholar
[9]
Acheampong, T., & Hafner, M. (2018). An Assessment of Natural Gas Price Formation in Ghana: Implications for Industrial Development and Inclusive Growth. 1–5.
Google Scholar
[10]
Narkie, E. (2016). Munich Personal RePEc Archive Determinants of autogas demand among Taxi Drivers in rural Ghana Determinants of autogas demand among Taxi Drivers in rural Ghana. 74242.
Google Scholar
[11]
Bielaczyc, P., Szczotka, A., & Woodburn, J. (2016). A comparison of exhaust emissions from vehicles fuelled with petrol, LPG and CNG. IOP Conference Series: Materials Science and Engineering, 148(1)
DOI: 10.1088/1757-899X/148/1/012060
Google Scholar
[12]
Markets and Markets 2021, CNG &LPG Vehicle Market by Vehicle Body Type (Passenger cars, Three-wheelers & Commercial Vehicles) Fuel type (CNG &LPG), By Kit type (Venturi & Sequential), By Fitting (OE&Aftermarket, by Engine System Type and by Region- Global Forecast to 2026 https://www.marketsandmarkets.com/Market-Reports/cng-lpg-vehicle-market- 264307618.html
DOI: 10.2172/10151317
Google Scholar
[13]
Ackah, I., Narkie, T. E., & Suleman, S. (2017). Determinants of Autogas Demand Among Taxi Drivers in Ghana. Oil, Gas & Energy Law, 15(1).
Google Scholar
[14]
Engerer, H., & Horn, M. (2010). Natural gas vehicles: An option for Europe. Energy Policy, 38(2), 1017–1029
DOI: 10.1016/j.enpol.2009.10.054
Google Scholar
[15]
Aydin, F., & Katirci, S. N. (2022). Experimental investigation of the use of LPG in a gasoline vehicle with a fuel stratified injection. Sadhana - Academy Proceedings in Engineering Sciences, 47(1)
DOI: 10.1007/s12046-021-01801-2
Google Scholar
[16]
Synák, F., Čulík, K., Rievaj, V., & Gaňa, J. (2019). Liquefied petroleum gas as an alternative fuel. Transportation Research Procedia, 40, 527–534. https://doi.org/10.1016/ j.trpro.2019.07.076
DOI: 10.1016/j.trpro.2019.07.076
Google Scholar
[17]
Raslavičius, L., Keršys, A., Mockus, S., Keršiene, N., & Starevičius, M. (2014). Liquefied petroleum gas (LPG) as a medium-term option in the transition to sustainable fuels and transport. Renewable and Sustainable Energy Reviews, 32, 513–525
DOI: 10.1016/j.rser.2014.01.052
Google Scholar
[18]
Benamor, A., Nasser, M., & Al-Marri, M. J. (2017). Gas Processing Technology-Treatment and Utilization. In Encyclopedia of Sustainable Technologies (Vol. 3). Elsevier
DOI: 10.1016/B978-0-12-409548-9.10101-0
Google Scholar
[19]
Khan, M. I., Yasmeen, T., Khan, M. I., Farooq, M., & Wakeel, M. (2016). Research progress in the development of natural gas as fuel for road vehicles: A bibliographic review (1991-2016). Renewable and Sustainable Energy Reviews, 66, 702–741. https://doi.org/10.1016/j.rser. 2016.08.041
DOI: 10.1016/j.rser.2016.08.041
Google Scholar
[20]
Chauhan, B. S., & Cho, H.-M. (2011). The Performance and Emissions Analysis of a Multi Cylinder Spark Ignition Engine with Gasoline LPG & CNG. Journal of the Korean Institute of Gas, 15(4), 33–38
DOI: 10.7842/kigas.2011.15.4.033
Google Scholar
[21]
Sourove, M., Momin, S., Dutta, M., Sahid Hassan, M., Golam Kader, M., & Md Iftakher, S. (2016). Study of LPG (Liquefied Petroleum Gas) And CNG (Compressed Natural Gas) Vehicles And It's Future Aspects. February 2019, 0–6.
Google Scholar
[22]
Nguyen, V. N., Nayak, S. K., Le, H. S., Kowalski, J., Deepanraj, B., Duong, X. Q., Truong, T. H., Tran, V. D., Cao, D. N., & Nguyen, P. Q. P. (2024). Performance and emission characteristics of diesel engines running on gaseous fuels in dual-fuel mode. In International Journal of Hydrogen Energy (Vol. 49). Hydrogen Energy Publications LLC. https://doi.org/10.1016/ j.ijhydene.2023.09.130
DOI: 10.1016/j.ijhydene.2023.09.130
Google Scholar
[23]
Asamoah, D., Amoakohene, R., & Adiwokor, E. (2012). Analysis of Liquefied Petroleum Gas (LPG) Shortage in Ghana: A Case of the Ashanti Region. International Journal of Business Administration, 3(5), 89–98
DOI: 10.5430/ijba.v3n5p89
Google Scholar
[24]
Baringer (2021). Ghana - An analysis of the natural gas market and the role of LNG. September.
Google Scholar
[25]
Fulwood, M. (2021). Does Ghana need LNG ? The Oxford Institute for Energy Studies, July.
Google Scholar
[26]
Occhiali, G., & Hafner, M. (2017). Ghanaian Energy Markets and the Role of Natural Gas for Local Development. Reports
Google Scholar
[27]
Meteku, E., Ankudey, E. G., & Ocran, G. A. (2019). Research Article Liquefied Petroleum Gas (Lpg) Transportation and Storage in Ghana : the Safety Perspective.
Google Scholar
[28]
Angnunavuri, P. N., Kuranchie, F. A., Attiogbe, F., & Nerquaye-Tetteh, E. N. (2019). The potential of integrating vehicular emissions policy into Ghana's transport policy for sustainable urban mobility. SN Applied Sciences, 1(10), 1201.
DOI: 10.1007/s42452-019-1215-8
Google Scholar
[29]
Biscoff, R., Akple, M., Turkson, R., & Klomegah, W. (2012). Scenario of the emerging shift from gasoline to LPG fuelled cars in Ghana: A case study in Ho Municipality, Volta Region. Energy Policy, 44, 354–361
DOI: 10.1016/j.enpol.2012.02.001
Google Scholar
[30]
Kwaw A. J (2014) The Use of LPG as a Fuel for Commercial Vehicles in Ghana: A Case Study. Unpublished BSc Project Report, University of Mines and Technology, Tarkwa. 38.
Google Scholar
[31]
Ogunlowo, O. O., Bristow, A. L., & Sohail, M. (2015). Developing compressed natural gas as an automotive fuel in Nigeria: Lessons from international markets. Energy Policy, 76(November), 7–17
DOI: 10.1016/j.enpol.2014.10.025
Google Scholar
[32]
Amorin, R., Broni-Bediako, E., Worlanyo, D., & Konadu, S. A. (2018). The Use of Liquefied Petroleum Gas (LPG) as a Fuel for Commercial Vehicles in Ghana: A Case Study at Tema Community 1. Current Journal of Applied Science and Technology, 29(2), 1–8. https://doi.org/
DOI: 10.9734/cjast/2018/41531
Google Scholar
[33]
Asamoah, D., Amoakohene, R., & Adiwokor, E. (2012). Analysis of Liquefied Petroleum Gas (LPG) Shortage in Ghana: A Case of the Ashanti Region. International Journal of Business Administration, 3(5)
DOI: 10.5430/ijba.v3n5p89
Google Scholar
[34]
Ben-Chaim, M., Shmerling, E., & Kuperman, A. (2013). Analytic modeling of vehicle fuel consumption. Energies, 6(1), 117–127
DOI: 10.3390/en6010117
Google Scholar
[35]
Bisong, M. S., Felix, P., Miguel, Y. N., Cyrille, T. S., & Talla, P. K. (2020). Study and Simulation of the Fuel Consumption of a Vehicle With Respect To Ambient Temperature and Weather Conditions. International Journal of Engineering Technologies and Management Research, 7(1), 24–35
DOI: 10.29121/ijetmr.v7.i1.2020.480
Google Scholar
[36]
Lapshin, O.V. (2017). Nonstationary Combustion Wave. Concise Encyclopedia of Self-Propagating High-Temperature Synthesis: History, Theory, Technology, and Products, 224–226
DOI: 10.1016/B978-0-12-804173-4.00102-2
Google Scholar
[37]
Lairenlakpam, R., Jain, A. K., Gupta, P., Kamei, W., Badola, R., & Singh, Y. (2017). Effect of Real World Driving and Different Drive Modes on Vehicle Emissions and Fuel Consumption. SAE Technical Papers, 1–10
DOI: 10.4271/2018-01-5017
Google Scholar
[38]
Joost, W. J. (2012). Reducing vehicle weight and improving U.S. energy efficiency using integrated computational materials engineering. Jom, 64(9), 1032–1038
DOI: 10.1007/s11837-012-0424-z
Google Scholar
[39]
Arslan, O., Kose, R., & Ceylan, N. (2011). Experimental analysis of consumption and exhaust emissions of gasoline and LPG in car engines under cold climatic conditions. Energy Sources, Part A: Recovery, Utilization and Environmental Effects, 33(3), 244–253
DOI: 10.1080/15567030903078293
Google Scholar
[40]
Ryskamp, R. (2017). Emissions and Performance of Liquefied Petroleum Gas as a Transportation Fuel: A Review. 36. https://auto-gas.net/wp-content/uploads/2019/11/2017-WLPGA-Literature-Review.pdf
Google Scholar
[41]
Hashem, G. T., Al-Dawody, M. F., & Sarris, I. E. (2023). The characteristics of gasoline engines with the use of LPG: An experimental and numerical study. International Journal of Thermofluids, 18(March), 100316
DOI: 10.1016/j.ijft.2023.100316
Google Scholar
[42]
Gültekin, N., & Ciniviz, M. (2023). Examination of the effect of combustion chamber geometry and mixing ratio on engine performance and emissions in a hydrogen-diesel dual-fuel compression-ignition engine. International Journal of Hydrogen Energy, 48(7), 2801–2820. 421
DOI: 10.1016/j.ijhydene.2022.10.155
Google Scholar
[43]
Raymond Acquah (2024). Ghana's LPG prices rank among highest globally- LPG Marketers Association https://www.myjoyonline.com/ghanas-lpg-prices-rank-among-the-highest-globally-lpg-marketers-association/
Google Scholar
[44]
Ong, H. C., Mahlia, T. M. I., & Masjuki, H. H. (2011). A review on emissions and mitigation strategies for road transport in Malaysia. Renewable and Sustainable Energy Reviews, 15(8), 3516–3522
DOI: 10.1016/j.rser.2011.05.006
Google Scholar
[45]
Liu, Y., Yeom, J., & Chung, S. (2013). A study of spray development and combustion propagation processes of spark-ignited direct injection (SIDI) compressed natural gas (CNG). Mathematical and Computer Modelling, 57(1–2), 228–244. https://doi.org/10.1016/j.mcm. 2011.06.035
DOI: 10.1016/j.mcm.2011.06.035
Google Scholar
[46]
Kakaee, A.H., Paykani, A., & Ghajar, M. (2014). The influence of fuel composition on the combustion and emission characteristics of natural gas fueled engines. Renewable and Sustainable Energy Reviews, 38(2014), 64–78
DOI: 10.1016/j.rser.2014.05.080
Google Scholar
[47]
Ministry of Environment, Science, T. and I. (MESTI). (2021). Ghana: Updated Nationally Determined Contribution under the Paris Agreement (2020-2030). Environmental Protection Agency (EPA) and the Ministry of Environment, Science, Technology and Innovation (MESTI), September, 10. https://www4.unfccc.int/sites/ndcstaging/PublishedDocuments/Ghana First/Ghana%27s Updated Nationally Determined Contribution to the UNFCCC_2021.pdf
DOI: 10.1016/j.scitotenv.2020.143509
Google Scholar
[48]
Olabimtan Olabode. H , Hassan Musa Zaid , Abdulsalam Ismaeel. A, Adegboro Narcillina. N. (2023). Feasibility Assessment of Liquified Petroleum Gas (LPG) as an Alternative Fuel for Vehicular Transportation: A Review International Journal of Multidisciplinary Experimental Processes 1(1) 5-12.
Google Scholar
[49]
Raslavičius, L., Keršys, A., Mockus, S., Keršiene, N., & Starevičius, M. (2014). Liquefied petroleum gas (LPG) as a medium-term option in the transition to sustainable fuels and transport. Renewable and Sustainable Energy Reviews, 32, 513–525
DOI: 10.1016/j.rser.2014.01.052
Google Scholar
[50]
Angnunavuri, P. N., Kuranchie, F. A., Attiogbe, F., & Nerquaye-Tetteh, E. N. (2019). The potential of integrating vehicular emissions policy into Ghana's transport policy for sustainable urban mobility. SN Applied Sciences, 1(10), 1–14
DOI: 10.1007/s42452-019-1215-8
Google Scholar
[51]
Olabimtan, O.H., Zaid, H. M, Absulsalam, I. A., Adegboro, N. N. (2023). Feasibility Assessment of Liquified Petroleum Gas (LPG) as an Alternative Fuel for Vehicular Transportation: A Review International Journal of Multidisciplinary Experimental Processes 1(1) 5-12.
Google Scholar
[52]
Tettehfio, E. O., Apreko, A. A., Bolu, B. K., & Amoakohene, S. K. (2014). Assessing the effect of liquid petroleum gas ( LPG ) car conversion system in petrol car by local Artisans in Ghana. Journal of Energy Technologies and Policy, 4(4), 1–9.
Google Scholar
[53]
Akple, M. S., Biscoff, R. K., Turkson, R. F., & Dzokoto, S. T. K. (2014). International Journal of Engineering Sciences & Research Technology an Assessment of Tail-Pipe Emissions from Petrol and LPG Fuelled Vehicles in Ghana *. 3(5).
Google Scholar
[54]
International Council on Clean Transportation. (2005). Natural Gas as a Transportation Fuel : Best Practices for Achieving Optimal Emissions Reductions. 1–13.
Google Scholar
[55]
Khan, M.I., Yasmin, T., & Shakoor, A. (2015). Technical overview of compressed natural gas (CNG) as a transportation fuel. Renewable and Sustainable Energy Reviews, 51(July 2015), 785–797
DOI: 10.1016/j.rser.2015.06.053
Google Scholar