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Articles

Energetic and exergetic performance of a diesel engine fueled with diesel and microalgae biodiesel

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Pages 2519-2533 | Received 14 Oct 2018, Accepted 08 Jan 2019, Published online: 08 Mar 2019

References

  • Aghbashlo, M., M. Tabatabaei, E. Khalife, B. Najafi, S. M. Mirsalim, A. Gharehghani, M. Pouya, A. Dadak, T. R. Shojaei, Z. K. M. Aghbashlo, et al. 2017a. A novel emulsion fuel containing aqueous nano cerium oxide additive in diesel–Biodiesel blends to improve diesel engines performance and reduce exhaust emissions: Part II–Exergetic analysis. Fuel 205:262–71. doi:10.1016/j.fuel.2017.05.003.
  • Aghbashlo, M., M. Tabatabaei, E. Khalife, T. R. Shojaei, and A. Dadak. 2018. Exergoeconomic analysis of a DI diesel engine fueled with diesel/biodiesel (B5) emulsions containing aqueous nano cerium oxide. Energy 149:967–78. doi:10.1016/j.energy.2018.02.082.
  • Aghbashlo, M., M. Tabatabaei, M. A. Rajaeifar, and M. A. Rosen. 2019. Exergy-based sustainability analysis of biodiesel production and combustion processes. Biofuel and Biorefinery Technologies 8:193–217. doi:10.1007/978-3-030-00985-4_9.
  • Aghbashlo, M., M. Tabatabaei, P. Mohammadi, B. Khoshnevisan, M. A. Rajaeifar, and M. Pakzad. 2017b. Neat diesel beats waste-oriented biodiesel from the exergoeconomic and exergoenvironmental point of views. Energy Conversion and Management 148:1–15. doi:10.1016/j.enconman.2017.05.048.
  • Aghbashlo, M., M. Tabatabaei, P. Mohammadi, M. Mirzajanzadeh, M. Ardjmand, and A. Rashidi. 2016. Effect of an emission-reducing soluble hybrid nanocatalyst in diesel/biodiesel blends on exergetic performance of a DI diesel engine. Renew Energy 93:353–68. doi:10.1016/j.renene.2016.02.077.
  • Aghbashlo, M., M. Tabatabaei, P. Mohammadi, N. Pourvosoughi, A. M. Nikbakht, and S. A. H. Goli. 2015. Improving exergetic and sustainability parameters of a DI diesel engine using polymer waste dissolved in biodiesel as a novel diesel additive. Energy Conversion and Management 105:328–37. doi:10.1016/j.enconman.2015.07.075.
  • Aloui, F., and I. Dincer. 2018. Exergy for a better environment and improved sustainability 1: Fundamentals. Berlin, Germany: Springer.
  • Caliskan, H., M. E. Tat, A. Hepbasli, and J. H. V. Gerpen. 2010. Exergy analysis of engines fueled with biodiesel from high oleic soybeans based on experimental values. International Journal of Exergy 7 (1):20–36. doi:10.1504/IJEX.2010.029612.
  • Canakci, M., and M. Hosoz. 2006. Energy and exergy analyses of a diesel engine fuelled with various biodiesels. Energy Sources Part B-Economics Planning and Policy 1 (4):379–94. doi:10.1080/15567240500400796.
  • Damanik, N., H. C. Ong, C. W. Tong, T. M. I. Mahlia, and A. S. Silitonga. 2018. A review on the engine performance and exhaust emission characteristics of diesel engines fueled with biodiesel blends. Environmental Science and Pollution Research 25 (16):15307–25. doi:10.1007/s11356-018-2098-8.
  • Dinçer, I., and M. A. Rosen. 2007. EXERGY : Energy, environment and sustainable development. Oxford, UK: Elsevier.
  • Efe, Ş., M. A. Ceviz, and H. Temur. 2018. Comparative engine characteristics of biodiesels from hazelnut, corn, soybean, canola and sunflower oils on DI diesel engine. Renewable Energy 119:142–51. doi:10.1016/j.renene.2017.12.011.
  • Hoang, A. T., and A. T. Le. 2018. A review on deposit formation in the injector of diesel engines running on biodiesel. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 41 (5):584–99. doi:10.1080/15567036.2018.1520342.
  • Hürdoğan, E. 2016. Thermodynamic analysis of a diesel engine fueled with diesel and peanut biodiesel. Environmental Progress & Sustainable Energy 35 (3):891–97. doi:10.1002/ep.12268.
  • Khalife, E., M. Tabatabaei, B. Najafi, S. M. Mirsalim, A. Gharehghani, P. Mohammadi, M. Aghbashlo, A. Ghaffari, Z. Khounani, T. R. Shojaei, et al. 2017. A novel emulsion fuel containing aqueous nano cerium oxide additive in diesel–Biodiesel blends to improve diesel engines performance and reduce exhaust emissions: Part I–Experimental analysis. Fuel 207:741–50. doi:10.1016/j.fuel.2017.06.033.
  • Kotas, T. J. 2013. The exergy method of thermal plant analysis. London, UK: Elsevier.
  • Kumar, M. V., A. V. Babu, P. R. Kumar, and S. R. Sudhakara. 2018. Experimental investigation of the combustion characteristics of Mahua oil biodiesel-diesel blend using a DI diesel engine modified with EGR and nozzle hole orifice diameter. Biofuel Research Journal 5 (3):863–71. doi:10.18331/BRJ2018.5.3.6.
  • Madheshiya, A. K., and A. Vedrtnam. 2018. Energy-exergy analysis of biodiesel fuels produced from waste cooking oil and mustard oil. Fuel 214:386–408. doi:10.1016/j.fuel.2017.11.060.
  • Meisami, F., H. Ajam, and M. Tabasizadeh. 2018. Thermo-economic analysis of diesel engine fueled with blended levels of waste cooking oil biodiesel in diesel fuel. Biofuels 9 (4):503–12. doi:10.1080/17597269.2017.1284475.
  • Moran, M. J., and H. N. Shapiro, ed. 2000. Fundamentals of engineering thermodynamics. 3rd ed. New York, NY: Willey.
  • Nabi, M. N., and M. G. Rasul. 2018. Influence of second generation biodiesel on engine performance, emissions, energy and exergy parameters. Energy Conversion and Management 169:326–33. doi:10.1016/j.enconman.2018.05.066.
  • Ozcanli, M., and H. Serin. 2011. Evaluation of soybean/canola/palm biodiesel mixture as an alternative diesel fuel. Journal of Scientific and Industrial Research 70:466-70.
  • Ozcanli, M., H. Serin, O. Y. Saribiyik, K. Aydin, and S. Serin. 2012. Performance and emission studies of castor bean (Ricinus Communis) oil biodiesel and its blends with diesel fuel. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 34 (19):1808-14. doi: 10.1080/15567036.2010.545800.
  • Panigrahi, N., M. K. Mohanty, S. R. Mishra, and R. C. Mohanty. 2018. Energy and exergy analysis of a diesel engine fuelled with diesel and simarouba biodiesel blends. Journal of the Institution of Engineers (India): Series C 99 (1):9–17. doi:10.1007/s40032-016-0335-9.
  • Pipitone, E., and A. Costanza. 2018. An experimental investigation on the long-term compatibility of preheated crude palm oil in a large compression ignition diesel engine. Biofuel Research Journal 5 (4):900–08. doi:10.18331/BRJ2018.5.4.5.
  • Pour, A. H., S. M. S. Ardebili, and M. J. Sheikhdavoodi. 2018. Multi-objective optimization of diesel engine performance and emissions fueled with diesel-biodiesel-fusel oil blends using response surface method. Environmental Science and Pollution Research 25:35429–39. doi:10.1007/s11356-018-3459-z.
  • Rakopoulos, C. D., and D. C. Kyritsis. 2001. Comparative second-law analysis of internal combustion engine operation for methane, methanol, and dodecane fuels. Energy 26 (7):705–22. doi:10.1016/S0360-5442(01)00027-5.
  • Rosen, M. A. 2018. Environmental sustainability tools in the biofuel industry. Biofuel Research Journal 5 (1):751–52. doi:10.18331/BRJ2018.5.1.2.
  • Sayin Kul, B., and A. Kahraman. 2016. Energy and exergy analyses of a diesel engine fuelled with biodiesel-diesel blends containing 5% bioethanol. Entropy 18 (11):387. doi:10.3390/e18110387.
  • Sekmen, P., and Z. Yılbaşı. 2011. Application of energy and exergy analyses to a CI engine using biodiesel fuel. Mathematical and Computational Applications 16 (4):797–808. doi:10.3390/mca16040797.
  • Serin, H., M. Ozcanli, M. K. Gökce, and G. Tuccar. 2013. Biodiesel production from tea seed (Camellia Sinensis) oil and its blends with diesel fuel. International Journal of Green Energy 10 (4):370-77. doi: 10.1080/15435075.2012.655354.
  • Suresh, M., C. P. Jawahar, and A. Richard. 2018. A review on biodiesel production, combustion, performance, and emission characteristics of non-edible oils in variable compression ratio diesel engine using biodiesel and its blends. Renewable and Sustainable Energy Reviews 92:38–49. doi:10.1016/j.rser.2018.04.048.
  • Tat, M. E. 2011. Cetane number effect on the energetic and exergetic efficiency of a diesel engine fuelled with biodiesel. Fuel Processing Technology 92 (7):1311–21. doi:10.1016/j.fuproc.2011.02.006.
  • Verma, S., L. M. Das, S. S. Bhatti, and S. C. Kaushik. 2017. A comparative exergetic performance and emission analysis of pilot diesel dual-fuel engine with biogas, CNG and hydrogen as main fuels. Energy Conversion and Management 151:764–77. doi:10.1016/j.enconman.2017.09.035.
  • Whiting, K., L. G. Carmona, and T. Sousa. 2017. A review of the use of exergy to evaluate the sustainability of fossil fuels and non-fuel mineral depletion. Renewable and Sustainable Energy Reviews 76:202–11. doi:10.1016/j.rser.2017.03.059.
  • Yamin, J. A., E. A. E. Sheet, and I. Hdaib. 2018. Exergy analysis of biodiesel fueled direct injection CI engines. Energy Sources. Part A: Recovery, Utilization, and Environmental Effects 40 (11):1–8. doi:10.1080/15567036.2018.1476618.
  • Yesilyurt, M. K., and M. Arslan. 2018. Analysis of the fuel injection pressure effects on energy and exergy efficiencies of a diesel engine operating with biodiesel. Biofuels:1–13. doi:10.1080/17597269.2018.1489674.

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