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Review

Alcohols as alternative fuels in compression ignition engines for sustainable transportation: a review

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References

  • Agarwal, A.K., P.C. Shukla, J.G. Gupta, C. Patel, R.K. Prasad, and N. Sharma. 2015. Unregulated emissions from a gasohol (E5, E15, M5, and M15) fuelled spark ignition engine. Applied Energy 154:732–41. doi:10.1016/j.apenergy.2015.05.052
  • Agarwal, A.K., P.C. Shukla, C. Patel, J.G. Gupta, N. Sharma, R.K. Prasad, et al. 2016. Unregulated emissions and health risk potential from biodiesel (KB5, KB20) and methanol blend (M5) fuelled transportation diesel engines. Renewable Energy 98:283–91. doi:10.1016/j.renene.2016.03.058.
  • Akansu, S.O., S. Tangöz, N. Kahraman, İ. M, and S. Açıkgöz. 2017. Experimental study of gasoline-ethanol-hydrogen blends combustion in an SI engine. International Journal of Hydrogen Energy 42(40):25781–90. doi:10.1016/j.ijhydene.2017.07.014.
  • Alemahdi, N., and M. Tuner. 2020.The effect of 2-ethyl-hexyl nitrate on HCCI combustion properties to compensate ethanol addition to gasoline. Fuel 270:117569. doi:10.1016/j.fuel.2020.117569
  • Annual Ethanol Production U.S. and World Ethanol Production by Renewable Fuels Association; 2022. Available from: [Accessed 06/20/2022. https://ethanolrfa.org/markets-and-statistics/annual-ethanol-production.
  • Aramsiriwat, R., K. Iempremjit, R. Munsin, Y. Laoonual, S. Jugjai, M. Tongroon. Classification of startability characteristics of a compression ignition engine fueled with ethanol and ignition improvers. SAE Technical Paper; 2015.
  • Balasubramanian, D., T. Wongwuttanasatian, I.P. Venugopal, and A. Rajarajan. 2022. Exploration of combustion behavior in a compression ignition engine fuelled with low-viscous Pimpinella anisum and waste cooking oil biodiesel blends. Journal of Cleaner Production 331:129999. doi:10.1016/j.jclepro.2021.129999
  • Belgiorno, G., G. Di Blasio, S. Shamun, C. Beatrice, P. Tunestål, and M.J.F. Tunér. 2018. Performance and emissions of diesel-gasoline-ethanol blends in a light duty compression ignition engine. 217:78–90.
  • Bhurat, S.S., S. Pandey, V. Chintala, P. Ranjit. Experimental study on performance and emissions characteristics of single cylinder diesel engine with ethanol and biodiesel blended fuels with diesel. International Conference on Advanced Materials, Energy & Environmental Sustainability (ICAMEES-2018), at UPES – Dehradun on 14th -15th December 2018 Materials Today: Proceedings 2019;17:220–26.
  • Broukhiyan, E.M.H., S.S. Lestz. Ethanol fumigation of a light duty automotive diesel engine. SAE Technical Paper; 1981.
  • Chato, M., S. Fukuda, K. Sato, T. Fujikawa, R. Chen, Z. Li, et al. 2012. Fuel spray evaporation and mixture formation processes of ethanol/gasoline blend injected by hole-type nozzle for DISI engine. SAE International Journal of Engines. 5(4):1836–46. doi:10.4271/2012-32-0018.
  • Cheung, C., L. Zhu, and Z. Huang. 2009. Regulated and unregulated emissions from a diesel engine fueled with biodiesel and biodiesel blended with methanol. Atmospheric Environment 43(32):4865–72. doi:10.1016/j.atmosenv.2009.07.021.
  • Chumueang, R., Y. Laoonual, N. Chollacoop. Effects of injection timing and injection pressure on combustion characteristics and emissions of ethanol ED95 under partially premixed combustion condition. SAE Technical Paper; 2015.
  • Dardiotis, C., G. Fontaras, A. Marotta, G. Martini, and U. Manfredi. 2015. Emissions of modern light duty ethanol flex-fuel vehicles over different operating and environmental conditions. Fuel 140:531–40.doi: 10.1016/j.fuel.2014.09.085
  • Datta, A., and B.K. Mandal. 2017. Engine performance, combustion and emission characteristics of a compression ignition engine operating on different biodiesel-alcohol blends. Energy 125:470–83. doi:10.1016/j.energy.2017.02.110
  • Demiray, E., E. Açıkel, S. Ertuğrul Karatay, and G. Dönmez. 2022. Saccharomyces cerevisiae and newly isolated Candida boidinii co-fermentation of industrial tea waste for improved bioethanol production. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 44(1):1160–72. doi:10.1080/15567036.2022.2053763.
  • De Morais, A.M., S. de Morais Hanriot, A. De Oliveira, M.A.M. Justino, O.S. Valente, and J.R. Sodré. 2019. An assessment of fuel consumption and emissions from a diesel power generator converted to operate with ethanol. Sustainable Energy Technologies and Assessments 35:291–97. doi:10.1016/j.seta.2019.08.005
  • Di Blasio, G., C. Beatrice, R. Ianniello, F.C. Pesce, A. Vassallo, G. Belgiorno, et al. 2019. Balancing hydraulic flow and fuel injection parameters for low-emission and high-efficiency automotive diesel engines. SAE International Journal of Advances and Current Practices in Mobility 2(2019–24–0111):638–52.
  • Di Blasio, G., A. Vassallo, F.C. Pesce, C. Beatrice, G. Belgiorno, and G. Avolio. 2019. The key role of advanced, flexible fuel injection systems to match the future CO₂ targets in an ultra-light mid-size diesel engine. SAE International Journal of Engines 12(2):129–44. doi:10.4271/03-12-02-0010.
  • Di, Y., C. Cheung, and Z. Huang. 2009. Experimental investigation on regulated and unregulated emissions of a diesel engine fueled with ultra-low sulfur diesel fuel blended with biodiesel from waste cooking oil. The Science of the Total Environment 407(2):835–46. doi:10.1016/j.scitotenv.2008.09.023.
  • Dong, S., C. Yang, B. Ou, H. Lu, and X. Cheng. 2018. Experimental investigation on the effects of nozzle-hole number on combustion and emission characteristics of ethanol/diesel dual-fuel engine. Fuel 217: 1–10. doi:10.1016/j.fuel.2017.12.024
  • Du, C., M. Andersson, and S. Andersson. 2014. The influence of ethanol blending in diesel fuel on the spray and spray combustion characteristics. SAE International Journal of Fuels and Lubricants 7(3):823–32. doi:10.4271/2014-01-2755.
  • Emiroğlu, A.O., and M. Şen. 2018. Combustion, performance and emission characteristics of various alcohol blends in a single cylinder diesel engine. Fuel 212:34–40. doi:10.1016/j.fuel.2017.10.016
  • Emiroğlu, A.O., and M. Şen. 2018. Combustion, performance and exhaust emission characterizations of a diesel engine operating with a ternary blend (alcohol-biodiesel-diesel fuel). Applied Thermal Engineering 133:371–80. doi:10.1016/j.applthermaleng.2018.01.069
  • EPA. 2022. Inventory of U.S. Greenhouse Gas Emissions and Sinks: 1990-2020. U.S. Environmental Protection Agency, EPA :430-R-22–003.
  • Fang, Q., J. Fang, J. Zhuang, and Z. Huang. 2013. Effects of ethanol–diesel–biodiesel blends on combustion and emissions in premixed low temperature combustion. Applied Thermal Engineering 54(2):541–48. doi:10.1016/j.applthermaleng.2013.01.042.
  • Ganesan, V. 2020. A comprehensive review on oxygenated fuel additive options for unregulated emission reduction from diesel engines. In Singh, A., Sharma, Y., Mustafi , N., Agarwal , A.,eds. Alternative Fuels and Their Utilization Strategies in Internal Combustion Engines. Energy, Environment, and Sustainability, pp. 141–65. Singapore: Springer.
  • Ganesan, N., T.H. Le, P. Ekambaram, D. Balasubramanian, V.V. Le, and A.T. Hoang. 2022. Experimental assessment on performance and combustion behaviors of reactivity-controlled compression ignition engine operated by n-pentanol and cottonseed biodiesel. Journal of Cleaner Production 330:129781. doi:10.1016/j.jclepro.2021.129781
  • Gao, T., G. Reader, J. Tjong, M. Zheng. Energy efficiency comparison between butanol and ethanol combustion with diesel ignition. SAE Technical Paper; 2015.
  • Geo, V.E., A. Sonthalia, G. Nagarajan, and B. Nagalingam. 2017. Studies on performance, combustion and emission of a single cylinder diesel engine fuelled with rubber seed oil and its biodiesel along with ethanol as injected fuel. Fuel 209:733–41. doi:10.1016/j.fuel.2017.08.036
  • Ghadikolaei, M.A., C.S. Cheung, and K.-F. Yung. 2019. Comparison between blended mode and fumigation mode on combustion, performance and emissions of a diesel engine fueled with ternary fuel (diesel-biodiesel-ethanol) based on engine speed. Journal of the Energy Institute 92(5):1233–50. doi:10.1016/j.joei.2018.10.010.
  • Gnanamoorthi, V., and G. Devaradjane. 2015. Effect of compression ratio on the performance, combustion and emission of DI diesel engine fueled with ethanol–diesel blend. Journal of the Energy Institute 88(1):19–26. doi:10.1016/j.joei.2014.06.001.
  • Godoi, R.H., G. Polezer, G.C. Borillo, A. Brown, F.B. Valebona, T.O. Silva, A. B. G. Ingberman, M. Nalin, C. I. Yamamoto, S. Potgieter-Vermaak, et al. 2016. Influence on the oxidative potential of a heavy-duty engine particle emission due to selective catalytic reduction system and biodiesel blend. The Science of the Total Environment 560:179–85. doi:10.1016/j.scitotenv.2016.04.018.
  • Gowtham, M., C. Mohan, and R. Prakash. 2019. Effect of n-butanol fumigation on the regulated and unregulated emission characteristics of a diesel engine. Fuel 242:84–95. doi:10.1016/j.fuel.2019.01.019
  • Gürbüz, H., and S. Demirtürk. 2020. Investigation of dual-fuel combustion by different port injection fuels (Neat Ethanol and E85) in a DE95 diesel/ethanol blend fueled compression ignition engine. Journal of Energy Resources Technology 142(12). doi:10.1115/1.4047328.
  • Hansen, A.C., Q. Zhang, and P.W. Lyne. 2005. Ethanol–diesel fuel blends––a review. Bioresource Technology 96(3):277–85. doi:10.1016/j.biortech.2004.04.007.
  • Hatte, P., and Y. Bhalerao. Prediction of ethanol-gasoline blend fuelled spark ignition engine performance using dimensional analysis. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 2021:1–15. doi:10.1080/15567036.2021.1955044.
  • Hjuler, K., P. Glarborg, and K. Dam-Johansen. 1995. Mutually promoted thermal oxidation of nitric oxide and organic compounds. Industrial & Engineering Chemistry Research 34(5):1882–88. doi:10.1021/ie00044a040.
  • Huang, J., H. Xiao, X. Yang, F. Guo, and X. Hu. 2020. Effects of methanol blending on combustion characteristics and various emissions of a diesel engine fueled with soybean biodiesel. Fuel 282:118734. doi:10.1016/j.fuel.2020.118734
  • Ianniello, R., G. Belgiorno, G. Di Luca, C. Beatrice, and G. Di Blasio. 2021. Ethanol in dual-fuel and blend fueling modes for advanced combustion in compression ignition engines. alcohol as an alternative fuel for internal combustion engines, pp. 5–27. Singapore: Springer.
  • Imdadul, H., H. Masjuki, M. Kalam, N. Zulkifli, A. Alabdulkarem, M. Rashed, et al. 2016. Higher alcohol–biodiesel–diesel blends: An approach for improving the performance, emission, and combustion of a light-duty diesel engine. Energy Conversion and Management 111:174–85. doi:10.1016/j.enconman.2015.12.066.
  • Irshad, A. Oxygenated diesel: Emission and performance characteristics of ethanol-diesel blends in CI engine. SAE Paper 2001(2001–01):2475. https://doi.org/10.4271/2001-01-2475.
  • Jamrozik, A. 2017. The effect of the alcohol content in the fuel mixture on the performance and emissions of a direct injection diesel engine fueled with diesel-methanol and diesel-ethanol blends. Energy Conversion and Management 148:461–76. doi:10.1016/j.enconman.2017.06.030
  • Janssen, R., D. Rutz, A. Hofer, P. Helm, G. Landahl, J. Ericson Bioethanol for Europe-The EU project best (bioethanol for sustainable transport). Proceedings of 15th European Biomass Conference & Exhibition. Berlin, Germany, 2007:2284–87.
  • Janssen, R., D. Rutz, A. Hofer, J.R. Moreira, S. Santos, S. Coelho, et al. 2010. Bioethanol as sustainable bus transport fuel in Brazil and Europe.
  • Kandasamy, S.K., A.S. Selvaraj, and T.K.R. Rajagopal. 2019. Experimental investigations of ethanol blended biodiesel fuel on automotive diesel engine performance, emission and durability characteristics. Renewable Energy 141: 411–19. doi:10.1016/j.renene.2019.04.039
  • Karabektas, M., G. Ergen, and M. Hosoz. 2013. Effects of the blends containing low ratios of alternative fuels on the performance and emission characteristics of a diesel engine. Fuel 112:537–41. doi:10.1016/j.fuel.2011.04.036
  • Karthickeyan, V., P. Balamurugan, R. Senthil. Investigation of CI engine fueled with ethanol nano additives blended diesel. Proceedings of the First International Conference on Recent Advances in Bioenergy Research. Kapurthala, New Delhi, India. Springer; 2016:121–30.
  • Krishna, S.M., P.A. Salam, M. Tongroon, and N. Chollacoop. 2019. Performance and emission assessment of optimally blended biodiesel-diesel-ethanol in diesel engine generator. Applied Thermal Engineering 155:525–33. doi:10.1016/j.applthermaleng.2019.04.012
  • Kumar, R., and O.P. Chaurasia. 2019. A review on performance and emissions of compression ignition engine fueled with ethanol-diesel blend. Journal Européen des Systèmes Automatisés 52(2):205–14. doi:10.18280/jesa.520214.
  • Kumar, A., T.K. Sahu, and P.C. Shukla. 1042. Design and fabrication of a partial flow dilution tunnel for particulate mass sampling in an ethanol blended CI engine, 1 ed., p. 012006. Pune, India: IOP Publishing.
  • Kwanchareon, P., A. Luengnaruemitchai, and S. Jai-In. 2007. Solubility of a diesel–biodiesel–ethanol blend, its fuel properties, and its emission characteristics from diesel engine. Fuel 86(7–8):1053–61. doi:10.1016/j.fuel.2006.09.034.
  • Lapuerta, M., O. Armas, and R. Garcia-Contreras. 2007. Stability of diesel–bioethanol blends for use in diesel engines. Fuel 86 (10–11):1351–57. doi:10.1016/j.fuel.2006.11.042.
  • Liang, J., Q. Zhang, Z. Chen, Z. Zheng, C. Yang, and Q. Ma. 2021. The combustion and emission characteristics of diesel-ethanol blends with THF as cosolvents in a diesel engine operating with EGR. Fuel 298:120843. doi:10.1016/j.fuel.2021.120843
  • Liu, J., Y. Li, G. Li, Z. Zhu, H. He, and S. Liu. 2010. Effect of pilot diesel quantity and fuel delivery advance angle on the performance and emission characteristics of a methanol-fueled diesel engine. Energy & Fuels 24(3):1611–16. doi:10.1021/ef901281m.
  • Luca, G.D., M. Pipicelli, R. Ianniello, G. Belgiorno, and G. Di Blasio. 2022. Alcohol fuels in spark ignition engines. In Gabriele Di Blasio, Avinash Kumar Agarwal, Giacomo Belgiorno & Pravesh Chandra Shukla, Application of Clean Fuels in Combustion Engines, pp. 33–54. Singapore: Springer.
  • Lyon, R.K., J.A. Cole, J.C. Kramlich, and S.L. Chen. 1990. The selective reduction of SO3 to SO2 and the oxidation of NO to NO2 by methanol. Combustion and Flame 81(1):30–39. doi:10.1016/0010-2180(90)90067-2.
  • Mirgal, N. 2017. Indian automotive industry towards bharat stage-vi emission norms: A technical review. Journal Impact Factor 2:10.
  • Mofijur, M., M. Rasul, and J. Hyde. 2015. Recent developments on internal combustion engine performance and emissions fuelled with biodiesel-diesel-ethanol blends. Procedia Engineering 105:658–64. doi:10.1016/j.proeng.2015.05.045
  • Mourad, M., and K. Mahmoud. 2019. Investigation into SI engine performance characteristics and emissions fuelled with ethanol/butanol-gasoline blends. Renewable Energy 143:762–71. doi:10.1016/j.renene.2019.05.064
  • Munsin, R., Y. Laoonual, S. Jugjai, M. Matsuki, H. Kosaka. Investigation of effects of ignition improvers on ignition delay time of ethanol combustion with rapid compression and expansion machine. SAE Technical Paper; 2012.
  • Murcak, A., C. Haşimoğlu, Ç. İ, M. Karabektaş, and G. Ergen. 2013. Effects of ethanol–diesel blends to performance of a DI diesel engine for different injection timings. Fuel 109:582–87. doi:10.1016/j.fuel.2013.03.014
  • Naik, S., D. Johnson, L. Fromm, J. Koszewnik, F. Redon, G. Regner, et al. 2017. Achieving Bharat Stage VI emissions regulations while improving fuel economy with the opposed-piston engine. SAE International Journal of Engines 10(1):17–26. doi:10.4271/2017-26-0056.
  • Nour, M., A.M. Attia, and S.A. Nada. 2019. Combustion, performance and emission analysis of diesel engine fuelled by higher alcohols (butanol, octanol and heptanol)/diesel blends. Energy Conversion and Management 185:313–29. doi:10.1016/j.enconman.2019.01.105
  • O’Driscoll, R., M.E. Stettler, N. Molden, T. Oxley, and H.M. ApSimon. 2018. Real world CO2 and NOx emissions from 149 Euro 5 and 6 diesel, gasoline and hybrid passenger cars. The Science of the Total Environment 621:282–90. doi:10.1016/j.scitotenv.2017.11.271
  • Oh, H., C. Bae, and K. Min. 2010. Spray and combustion characteristics of ethanol blended gasoline in a spray guided DISI engine under lean stratified operation. SAE International Journal of Engines 3(2):213–22. doi:10.4271/2010-01-2152.
  • Padala, S., C. Woo, S. Kook, and E.R. Hawkes. 2013. Ethanol utilisation in a diesel engine using dual-fuelling technology. Fuel 109:597–607. doi:10.1016/j.fuel.2013.03.049
  • Parthasarathy, M., J.I.J. Lalvani, B. Dhinesh, and K. Annamalai. 2016. Effect of hydrogen on ethanol–biodiesel blend on performance and emission characteristics of a direct injection diesel engine. Ecotoxicology and Environmental Safety 134:433–39. doi: 10.1016/j.ecoenv.2015.11.005
  • Patel, P.D., A. Lakdawala, S. Chourasia, and R.N. Patel. 2016. Bio fuels for compression ignition engine: A review on engine performance, emission and life cycle analysis. Renewable and Sustainable Energy Reviews 65:24–43. doi:10.1016/j.rser.2016.06.010
  • Paul, A., R. Panua, and D. Debroy. 2017. An experimental study of combustion, performance, exergy and emission characteristics of a CI engine fueled by Diesel-ethanol-biodiesel blends. Energy 141:839–52. doi:10.1016/j.energy.2017.09.137
  • Pedrozo, V.B., I. May, and H. Zhao. 2017. Exploring the mid-load potential of ethanol-diesel dual-fuel combustion with and without EGR. Applied Energy 193:263–75. doi:10.1016/j.apenergy.2017.02.043
  • Pipicelli, M., G.D. Luca, R. Ianniello, A. Gimelli, and C. Beatrice. 2022. Alcohol fuels in compression ignition engines. In Di Blasio, G., Agarwal, A.K., Belgiorno, G., Shukla, P.C. (eds) Application of clean fuels in combustion engines. Energy, Environment, and Sustainability. pp. 9–31. https://doi.org/10.1007/978-981-16-8751-8_2. Singapore: Springer.
  • Pradelle, F., S.L. Braga, Fonseca de Aguiar Martins, F. de Aguiar Martins ARF, R.N.C. Pradelle, and A. R. Fonseca de Aguiar Martins. 2019. Performance and combustion characteristics of a compression ignition engine running on diesel-biodiesel-ethanol (DBE) blends – Potential as diesel fuel substitute on an Euro III engine. Renewable Energy 136:586–98. doi:10.1016/j.renene.2019.01.025
  • Praptijanto, A., A. Muharam, A. Nur, and Y. Putrasari. 2015. Effect of ethanol percentage for diesel engine performance using virtual engine simulation tool. Energy Procedia 68 (April):345–54. doi:10.1016/j.egypro.2015.03.265.
  • Puškár, M., and M. Kopas. 2018.System based on thermal control of the HCCI technology developed for reduction of the vehicle NOX emissions in order to fulfil the future standard Euro 7. The Science of the Total Environment 643:674–80.doi: 10.1016/j.scitotenv.2018.06.082
  • Rakopoulos, C., K. Antonopoulos, and D. Rakopoulos. 2007. Experimental heat release analysis and emissions of a HSDI diesel engine fueled with ethanol–diesel fuel blends. Energy 32(10):1791–808. doi:10.1016/j.energy.2007.03.005.
  • Ranganathan, P. 2020. Preliminary techno-economic evaluation of 2G ethanol production with co-products from rice straw. Biomass Conversion and Biorefinery.
  • Rao, R.N., A.S. Silitonga, A.H. Shamsuddin, J. Milano, T.M.I. Riayatsyah, A.H. Sebayang, T. B. Nur, M. Sabri, M. R. Yulita, R. W. Sembiring, et al. 2020. Effect of ethanol and gasoline blending on the performance of a stationary small single cylinder engine. Arabian Journal for Science and Engineering 45(7):5793–802. doi:10.1007/s13369-020-04567-7.
  • Roadmap for Ethanol Blending in India by 2025 by NITI Ayog; 2022. Available from: https://www.niti.gov.in/expert-committee-roadmap-ethanol-blending-india-2025. [Accessed 20/06/2022].
  • Sahu, T.K., S. Gupta, and P.C. Shukla. 2020. Second generation bioethanol production from organic waste. In Akhilendra Pratap Singh, Yogesh C. Sharma, Nirendra N. Mustafi , Avinash Kumar Agarwal., Alternative fuels and their utilization strategies in internal combustion engines, pp. 49–64. Singapore: Springer.
  • Sahu, T.K., R. Kshatri, A. Kumar, and P.C. Shukla. Combustion stability investigation of ethanol blends (E5, E10) in a Twin-cylinder CI engineSAE Technical Paper 20222022-01-0521.
  • Sahu, T.K., R. Kshatri, and P.C. Shukla. 2021. Impact of ethanol on combustion, performance, and emission characteristics of diesel engine. Alcohol as an alternative fuel for internal combustion engines, pp. 251–66. Singapore: Springer.
  • Sahu, T.K., V.K. Sahu, A. Mondal, P.C. Shukla, S. Gupta, and S. Sarkar. 2022. Investigation of sugar extraction capability from rice paddy straw for potential use of bioethanol production towards energy security. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 44(1):272–86. doi:10.1080/15567036.2022.2043958.
  • Sahu, V.K., T.K. Sahu, and P.C. Shukla. 2022. Fuel injection strategies for alcohol utilization in combustion engines. In Gabriele Di Blasio, Avinash Kumar Agarwal, Giacomo Belgiorno & Pravesh Chandra Shukla., Application of clean fuels in combustion engines, pp. 55–69. Singapore: Springer.
  • Sahu, T.K., S. Sarkar, and P.C. Shukla. 2021. Combustion investigation of waste cooking oil (WCO) with varying compression ratio in a single cylinder CI engine. Fuel 283:119262. doi:10.1016/j.fuel.2020.119262
  • Sahu, T.K., P.C. Shukla, V.K. Sahu, S. Gupta, and S. Sarkar. 2021. Fuel property investigation: jatropha biodiesel, used cooking oil biodiesel and fuel-grade ethanol blends. Published in conference proceedings of Advances in Thermal-Fluids Engineering (ATFE 2021) held in Gandhinagar during 25-26 march 2021, 1146, 012012. https://doi.org/10.1088/1757-899X/1146/1/012012. Materials Science and Engineering: IOP Conference Series.
  • Sakthivel, P., K. Subramanian, and R. Mathai. 2019. Comparative studies on combustion, performance and emission characteristics of a two-wheeler with gasoline and 30% ethanol-gasoline blend using chassis dynamometer. Applied Thermal Engineering 146:726–37. doi:10.1016/j.applthermaleng.2018.10.035
  • Sarkar, N., S.K. Ghosh, S. Bannerjee, and K. Aikat. 2012. Bioethanol production from agricultural wastes: An overview. Renewable Energy 37(1):19–27. doi:10.1016/j.renene.2011.06.045.
  • Sebayang, A.H., H.H. Masjuki, H.C. Ong, S. Dharma, A.S. Silitonga, F. Kusumo, et al. 2017. Prediction of engine performance and emissions with Manihot glaziovii bioethanol − Gasoline blended using extreme learning machine. Fuel 210:914–21. doi:10.1016/j.fuel.2017.08.102.
  • Shamun, S., G. Belgiorno, and G.D. Blasio. 2020. Engine parameters assessment for alcohols fuels application in compression ignition engines. In Singh, A., Sharma, Y., Mustafi , N., Agarwal , A., Alternative fuels and their utilization strategies in internal combustion engines, pp. 125–39. Singapore: Springer.
  • Shamun, S., G. Belgiorno, G. Di Blasio, C. Beatrice, M. Tunér, and P. Tunestål. 2018. Performance and emissions of diesel-biodiesel-ethanol blends in a light duty compression ignition engine. Applied Thermal Engineering 145: 444–52. doi: 10.1016/j.applthermaleng.2018.09.067
  • Shamun, S., C. Haşimoğlu, A. Murcak, A. Ö, M. Tunér, and P. Tunestål. 2017.Experimental investigation of methanol compression ignition in a high compression ratio HD engine using a Box-Behnken design. Fuel 209:624–33.doi: 10.1016/j.fuel.2017.08.039
  • Sharma, N., and A.K. Agarwal. 2020. Effect of fuel injection pressure and engine speed on performance, emissions, combustion, and particulate investigations of gasohols fuelled gasoline direct injection engine. Journal of Energy Resources Technology 142(4). doi:10.1115/1.4044763.
  • Shukla, P.C., G. Belgiorno, G. Di Blasio, and A.K. Agarwal. 2021. Alcohol as an alternative fuel for internal combustion engines. Singapore: Springer.
  • Silitonga, A.S., H.H. Masjuki, H.C. Ong, A.H. Sebayang, S. Dharma, F. Kusumo, et al. 2018. Evaluation of the engine performance and exhaust emissions of biodiesel-bioethanol-diesel blends using kernel-based extreme learning machine. Energy 159:1075–87. doi:10.1016/j.energy.2018.06.202.
  • Torres-Jimenez, E., M.S. Jerman, A. Gregorc, I. Lisec, M.P. Dorado, and B. Kegl. 2011. Physical and chemical properties of ethanol–diesel fuel blends. Fuel 90(2):795–802. doi:10.1016/j.fuel.2010.09.045.
  • Venugopal, I.P., D. Balasubramanian, and A. Rajarajan. 2021. Potential improvement in conventional diesel combustion mode on a common rail direct injection diesel engine with PODE/WCO blend as a high reactive fuel to achieve effective Soot-NOx trade-off. Journal of Cleaner Production 327:129495. doi:10.1016/j.jclepro.2021.129495
  • Veza, I., A. Deniz Karaoglan, E. Ileri, A. Afzal, A. Tuan Hoang, N. Tamaldin, et al. 2022. Multi-Objective optimization of diesel engine performance and emission using grasshopper optimization algorithm. Fuel 323:124303. doi:10.1016/j.fuel.2022.124303.
  • Veza, I., A.D. Karaoglan, E. Ileri, S.A. Kaulani, N. Tamaldin, Z.A. Latiff, et al. 2022. Grasshopper optimization algorithm for diesel engine fuelled with ethanol-biodiesel-diesel blends. Case Studies in Thermal Engineering 31:101817. doi:10.1016/j.csite.2022.101817.
  • Veza, I., M.F.M. Said, and Z.A. Latiff. 2019. Progress of acetone-butanol-ethanol (ABE) as biofuel in gasoline and diesel engine: A review. Fuel Processing Technology 196:106179. doi:10.1016/j.fuproc.2019.106179
  • Wei, L., C. Cheung, and Z. Ning. 2018. Effects of biodiesel-ethanol and biodiesel-butanol blends on the combustion, performance and emissions of a diesel engine. Energy 155:957–70. doi:10.1016/j.energy.2018.05.049
  • Yilmaz, N., F.M. Vigil, A.B. Donaldson, and T. Darabseh. 2014. Investigation of CI engine emissions in biodiesel–ethanol–diesel blends as a function of ethanol concentration. Fuel 115:790–93. doi:10.1016/j.fuel.2013.08.012
  • Zapata-Mina, J., A. Restrepo, C. Romero, and H. Quintero. 2020. Exergy analysis of a diesel engine converted to spark ignition operating with diesel, ethanol, and gasoline/ethanol blends. Sustainable Energy Technologies and Assessments 42:100803. doi:10.1016/j.seta.2020.100803
  • Zhang, Z., C. Cheung, T. Chan, and C. Yao. 2010. Experimental investigation on regulated and unregulated emissions of a diesel/methanol compound combustion engine with and without diesel oxidation catalyst. The Science of the Total Environment 408(4):865–72. doi:10.1016/j.scitotenv.2009.10.060.
  • Zhang, Z., K. Tsang, C. Cheung, T. Chan, and C. Yao. 2011. Effect of fumigation methanol and ethanol on the gaseous and particulate emissions of a direct-injection diesel engine. Atmospheric Environment 45(11):2001–08. doi:10.1016/j.atmosenv.2010.12.019.
  • Zhao, H., Y. Ge, J. Tan, H. Yin, J. Guo, W. Zhao, et al. 2011. Effects of different mixing ratios on emissions from passenger cars fueled with methanol/gasoline blends. Journal of Environmental Sciences. 23(11):1831–38. doi:10.1016/S1001-0742(10)60626-2.
  • Zincir, B., C. Deniz, and M. Tunér. 2019. Investigation of environmental, operational and economic performance of methanol partially premixed combustion at slow speed operation of a marine engine. Journal of Cleaner Production 235:1006–19. doi:10.1016/j.jclepro.2019.07.044
  • Zincir, B., P. Shukla, S. Shamun, M. Tuner, C. Deniz, and B. Johansson. 2019. Investigation of effects of intake temperature on low load limitations of methanol partially premixed combustion. Energy & Fuels 33(6):5695–709. doi:10.1021/acs.energyfuels.9b00660.

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