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Articles

Experimental investigation on dispersing graphene-oxide in biodiesel/diesel/ higher alcohol blends on diesel engine using response surface methodology

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Pages 3131-3148 | Received 06 Jan 2021, Accepted 01 Apr 2021, Published online: 02 May 2021

References

  • Billa KK, Sastry GRK, Deb M. Environmental effects characterization of emission-performance paradigm of a DI-CI engine using artificial intelligent based multi objective response surface methodology model fueled with diesel-biodiesel blends. Energy Sources, Part A Recover Util Environ Eff. 2020;00(00):1–30.
  • El-Seesy AI, Nour M, Attia AMA, et al. Investigation the effect of adding graphene oxide into diesel/higher alcohols blends on a diesel engine performance. Int J Green Energy. 2020;17(3):233–253. doi:10.1080/15435075.2020.1722132.
  • Senthilkumar G, Sajin JB, Yuvarajan D, et al. Evaluation of emission, performance and combustion characteristics of dual fuelled research diesel engine. Environ Technol. 2020;41(6):711–718.
  • Kara K, Ouanji F, Lotfi EM, et al. Biodiesel production from waste fish oil with high free fatty acid content from Moroccan fish-processing industries. Egypt J Pet. 2018;27(2):249–255. doi:10.1016/j.ejpe.2017.07.010.
  • Hoseini SS, Naja G, Ghobadian B, et al. Biodiesels from three feedstock : The effect of graphene oxide ( GO ) nanoparticles diesel engine parameters fuelled with biodiesel. Renewable Energy. 2020;145:190–201.
  • Kathirvelu B, Subramanian S, Govindan N, et al. Emission characteristics of biodiesel obtained from jatropha seeds and fish wastes in a diesel engine. Sustain Environ Res. 2017;27(6):283–290.
  • Thiyagarajan S, Geo VE, Martin LJ, et al. Combined effect of fuel-design and after-treatment system on reduction of local and global emissions from CI engine. Environ Technol. 2019;40(21):2802–2812.
  • Subbarayan MR, Senthil Kumaar JS, Anantha Padmanaban MR. Experimental investigation of evaporation rate and exhaust emissions of diesel engine fuelled with cotton seed methyl ester and its blend with petro-diesel. Transp Res Part D Transp Environ. 2016;48:369–377. doi:10.1016/j.trd.2016.08.024.
  • Alherbawi M, AlNouss A, McKay G, et al. Optimum sustainable utilisation of the whole fruit of jatropha curcas: An energy, water and food nexus approach. Renew Sustain Energy Rev. 2021;137(December 2020):110605. doi:10.1016/j.rser.2020.110605.
  • Silitonga AS, Atabani AE, Mahlia TMI, et al. A review on prospect of jatropha curcas for biodiesel in Indonesia. Renew Sustain Energy Rev. 2011;15(8):3733–3756. doi:10.1016/j.rser.2011.07.011.
  • El-Seesy AI, Hassan H, Ookawara S. Effects of graphene nanoplatelet addition to jatropha biodiesel–diesel mixture on the performance and emission characteristics of a diesel engine. Energy. 2018;147:1129–1152. doi:10.1016/j.energy.2018.01.108.
  • Nalgundwar A, Paul B, Sharma SK. Comparison of performance and emissions characteristics of di CI engine fueled with dual biodiesel blends of palm and jatropha. Fuel. 2016;173(January):172–179. doi:10.1016/j.fuel.2016.01.022.
  • Muncrief R. Comparison of real-world off-cycle NOX emissions control in Euro IV, V, and VI. no. X, p. 5, 2015, [Online]. Available: https://theicct.org/sites/default/files/publications/ICCT_Briefing_EuroIV-V-VI-NOx_Mar2015.pdf.
  • Yilmaz N, Ileri E, Atmanli A. Performance of biodiesel / higher alcohols blends in a diesel engine. no. February, pp. 1134–1143, 2016, doi:10.1002/er.
  • Yilmaz N. Comparative analysis of biodiesel e ethanol e diesel and biodiesel e methanol e diesel blends in a diesel engine. Energy. 2012;40(1):210–213. doi:10.1016/j.energy.2012.01.079.
  • Klajn FF, Gurgacz F, Lenz AM, et al. Comparison of the emissions and performance of ethanol-added diesel – biodiesel blends in a compression ignition engine with those of pure diesel blends in a compression ignition engine with those of pure diesel. Environ Technol. 2020;41(0):511–520.
  • Atmanli A, Yilmaz N. A comparative analysis of n-butanol/diesel and 1-pentanol/diesel blends in a compression ignition engine. Fuel. 2018;234(July):161–169. doi:10.1016/j.fuel.2018.07.015.
  • Yilmaz N, Atmanli A, Trujillo M. Influence of 1-pentanol additive on the performance of a diesel engine fueled with waste oil methyl ester and diesel fuel. Fuel. 2017;207:461–469. doi:10.1016/j.fuel.2017.06.093.
  • Yilmaz N, Atmanli A. Experimental evaluation of a diesel engine running on the blends of diesel and pentanol as a next generation higher alcohol. Fuel. 2017;210(June):75–82. doi:10.1016/j.fuel.2017.08.051.
  • Atmanli A, Yilmaz N. An experimental assessment on semi-low temperature combustion using waste oil biodiesel/C3-C5 alcohol blends in a diesel engine. Fuel. 2020;260(October 2019):116357. doi:10.1016/j.fuel.2019.116357.
  • Yilmaz N, Atmanli A, Vigil FM. Quaternary blends of diesel, biodiesel, higher alcohols and vegetable oil in a compression ignition engine. Fuel. 2018;212(August 2017):462–469. doi:10.1016/j.fuel.2017.10.050.
  • Yilmaz N, Atmanli A. Experimental assessment of a diesel engine fueled with diesel-biodiesel-1-pentanol blends. Fuel. 2017;191:190–197. doi:10.1016/j.fuel.2016.11.065.
  • Gopal K, Sathiyagnanam AP, Rajesh Kumar B, et al. Prediction of emissions and performance of a diesel engine fueled with n-octanol/diesel blends using response surface methodology. J Clean Prod. 2018;184:423–439. doi:10.1016/j.jclepro.2018.02.204.
  • “The Renewable Fuel Standard ( RFS ): An Overview,” 2020, p. 17.
  • Deep, A., Kumar, N., Karnwal, A., Gupta, D. et al. Assessment of the performance and emission characteristics of 1-octanol/diesel fuel blends in a water cooled compression ignition engine. SAE Technical Paper. 2014;2014-01-2830. doi:10.4271/2014-01-2830
  • Ashok B, Nanthagopal K, Anand V, et al. Effects of n-octanol as a fuel blend with biodiesel on diesel engine characteristics. Fuel. 2019;235(July 2018):363–373. doi:10.1016/j.fuel.2018.07.126.
  • Soudagar MEM, Nik-Ghazali NN, Abul Kalam M, et al. The effect of nano-additives in diesel-biodiesel fuel blends: A comprehensive review on stability, engine performance and emission characteristics. Energy Convers Manag. 2018;178(no. October):146–177. doi:10.1016/j.enconman.2018.10.019.
  • Sivathanu N, Valai Anantham N. Impact of multi-walled carbon nanotubes with waste fishing net oil on performance, emission and combustion characteristics of a diesel engine. Environ Technol. 2020;41(28):3670–3681.
  • El-seesy AI, Attia AMA, El-batsh HM. The e ff ect of aluminum oxide nanoparticles addition with jojoba methyl ester-diesel fuel blend on a diesel engine performance, combustion and emission characteristics. Fuel. 2018;224(June 2017):147–166. doi:10.1016/j.fuel.2018.03.076.
  • Heidari-maleni A, Mesri T, Jahanbakhshi A. Performance improvement and exhaust emissions reduction in diesel engine through the use of graphene quantum dot (GQD) nanoparticles and ethanol- biodiesel blends. Fuel. 2020;267(October 2019):117116. doi:10.1016/j.fuel.2020.117116.
  • Uslu S, Ayd M. Effect of operating parameters on performance and emissions of a diesel engine fueled with ternary blends of palm oil biodiesel / diethyl ether / diesel by Taguchi method. Fuel. 2020;275(March):117978.
  • Billa KK, Sastry GRK, Deb M. ANFIS model for prediction of performance-emission paradigm of a DICI engine fueled with the blends of fish Oil methyl ester, n-pentanol and diesel. 2020;JMechE,17(1):115–133.
  • Yilmaz N, Ileri E, Atmanli A, et al. Predicting the engine performance and exhaust emissions of a diesel engine fueled with hazelnut Oil methyl ester: The performance comparison of response surface methodology and LSSVM. J Energy Resour Technol Trans ASME. 2016;138(5):1–7. doi:10.1115/1.4032941.
  • Karimi M, Keyhani A, Akram A, et al. Hybrid response surface methodology-genetic algorithm optimization of ultrasound-assisted transesterification of waste oil catalysed by immobilized lipase on mesoporous silica/iron oxide magnetic core-shell nanoparticles. Environ Technol. 2013;34(13–14):2201–2211.
  • Singh A, Sinha S, Choudhary AK, et al. Optimization of performance and emission characteristics of CI engine fueled with jatropha biodiesel produced using a heterogeneous catalyst (CaO). Fuel. 2020;280(July):118611. doi:10.1016/j.fuel.2020.118611.
  • De Poures MV, Gopal K, Sathiyagnanam AP, et al. Comparative account of the effects of two high carbon alcohols (C5 & C6) on combustion, performance and emission characteristics of a DI diesel engine. Energy Sources, Part A Recover Util Environ Eff. 2020;42(0):1772–1784.
  • Atmanli A, Ileri E, Yilmaz N. Optimization of diesel e butanol e vegetable oil blend ratios based on engine operating parameters. Energy. 2016;96(2016):569–580.
  • Basha JS, Faculty S. Impact of carbon nanotubes and Di-ethyl ether as additives with biodiesel emulsion fuels in a diesel engine – An experimental investigation. J Energy Inst. April 2018;91(2), 289–303.
  • Saxena V, Kumar N, Saxena VK. A comprehensive review on combustion and stability aspects of metal nanoparticles and its additive effect on diesel and biodiesel fuelled C.I. engine. Renew Sustain Energy Rev. 2017;70(September 2016):563–588. doi:10.1016/j.rser.2016.11.067.
  • Paramashivaiah BM, Banapurmath NR, Rajashekhar CR, et al. Studies on effect of graphene nanoparticles addition in different levels with simarouba biodiesel and diesel blends on performance, combustion and emission characteristics of CI engine. Arab J Sci Eng. 2018;43(9):4793–4801. doi:10.1007/s13369-018-3121-6.
  • Randviir EP, Brownson DAC, Banks CE. A decade of graphene research : production, applications and outlook. Biochem Pharmacol. 2014;17(9):426–432.
  • Deb M, Banerjee R, Majumder A, et al. Multi objective optimization of performance parameters of a single cylinder diesel engine with hydrogen as a dual fuel using pareto-based genetic algorithm. Int J Hydrogen Energy. 2014;39(15):8063–8077. doi:10.1016/j.ijhydene.2014.03.045.
  • Parida MK, Joardar H, Rout AK, et al. Multiple response optimizations to improve performance and reduce emissions of argemone mexicana biodiesel-diesel blends in a VCR engine. Appl Therm Eng. 2019;148:1454–1466.
  • Atmanlı A, Yüksel B, Ileri E, et al. Response surface methodology based optimization of diesel – n-butanol – cotton oil ternary blend ratios to improve engine performance and exhaust emission characteristics. Energy Convers Manage. 2015;90:383–394.
  • Yusri IM, Mamat R, Azmi WH, et al. Application of response surface methodology in optimization of performance and exhaust emissions of secondary butyl alcohol-gasoline blends in SI engine. Energy Convers. Manag. 2017;133(2017):178–195.
  • Bhowmik S, Paul A, Panua R, et al. Performance-exhaust emission prediction of diesosenol fueled diesel engine : an ANN coupled MORSM based optimization. Energy 153, 212–222. Elsevier B.V.; 2018.
  • Mackay DB. NOTES AND COMMUNICATIONS Theil ‘ s forecast accuracy coefficient : a clarification. Journal of Marketing Research 2012;10(4):444–446.
  • Deb M, Majumder P, Majumder A, et al. Application of artificial intelligence (AI) in characterization of the performance–emission profile of a single cylinder CI engine operating with hydrogen in dual fuel mode: an ANN approach with fuzzy-logic based topology optimization. Int J Hydrogen Energy. 2016;41(32):14330–14350. doi:10.1016/j.ijhydene.2016.07.016.
  • Bhowmik S, Panua R, Debroy D, et al. Artificial neural network prediction of diesel engine performance and emission fueled with diesel–kerosene–ethanol blends: a fuzzy-based optimization. J Energy Resour Technol. 2017;139(4):042201. doi:10.1115/1.4035886.
  • El-seesy AI, Hassan H. Investigation of the effect of adding graphene oxide, graphene nanoplatelet, and multiwalled carbon nanotube additives with n- butanol-jatropha methyl ester on a diesel engine performance. Renewable Energy, 132, 558–574. Elsevier B.V.; 2018.
  • Pavoski G, et al. “Few Layer Reduced Graphene Oxide : Evaluation of the Best Experimental Conditions for C =,” 2015.
  • Saleem H, Haneef M, Abbasi HY. Synthesis route of reduced graphene oxide via thermal reduction of chemically exfoliated graphene oxide. Mater Chem Phys. 2018;204:1–7. doi:10.1016/j.matchemphys.2017.10.020.
  • Nanthagopal K, Ashok B, Saravanan B, et al. Effect of next generation higher alcohols and calophyllum inophyllum methyl ester blends in diesel engine. J Clean Prod. 2018;180:50–63. doi:10.1016/j.jclepro.2018.01.167.
  • Ahmadi MA, Mostafaei M, Najafi G, et al. Effect of nano-additives blended diesel-biodiesel on performance and emissions of CI engine in the presence of magnetic field. Energy Sources, Part A Recover Util Environ Eff. 2019;0(0):1–17.
  • Hoseini SS, Naja G, Ghobadian B, et al. Performance and emission characteristics of a CI engine using graphene oxide ( GO ) nano-particles additives in biodiesel-diesel blends. Renewable Energy. 2020;145:458–465.
  • Zhang T, Munch K, Denbratt I. An experimental study on the use of butanol or octanol blends in a heavy duty diesel engine. SAE Int J Fuels Lubr. 2015;8(3):610–621. doi:10.4271/2015-24-2491.
  • Agarwal AK, Dhar A, Gupta JG, et al. Effect of fuel injection pressure and injection timing of Karanja biodiesel blends on fuel spray, engine performance, emissions and combustion characteristics. Energy Convers Manag. Feb. 2015;91:302–314. doi:10.1016/j.enconman.2014.12.004.
  • Raman LA, Deepanraj B, Rajakumar S, et al. Experimental investigation on performance, combustion and emission analysis of a direct injection diesel engine fuelled with rapeseed oil biodiesel. Fuel. 2019;246(March 2018):69–74. doi:10.1016/j.fuel.2019.02.106.
  • Imdadul HK, Masjuki HH, Kalam MA, et al. Influences of ignition improver additive on ternary (diesel-biodiesel-higher alcohol) blends thermal stability and diesel engine performance. Energy Convers Manag. 2016;123:252–264. doi:10.1016/j.enconman.2016.06.040.
  • Rajkumar S, Thangaraja J. Effect of biodiesel, biodiesel binary blends, hydrogenated biodiesel and injection parameters on NOx and soot emissions in a turbocharged diesel engine. Fuel. 2019;240(November 2018):101–118. doi:10.1016/j.fuel.2018.11.141.

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