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Articles

Effect of diesel and pentanol blends on PAH formation and regulated pollutants

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Pages 293-301 | Received 04 Jul 2022, Accepted 06 Oct 2022, Published online: 26 Oct 2022

References

  • Salvi BL, Subramanian KA, Panwar NL. Alternative fuels for transportation vehicles: a technical review. Renew Sustain Energy Rev. 2013;25:404–419.
  • Mamat R, Sani MSM, Sudhakar K, et al. An overview of higher alcohol and biodiesel as alternative fuels in engines. Energy Rep. 2019;5:467–479.
  • Zhao W, Yan J, Gao S, et al. The combustion and emission characteristics of a common-rail diesel engine fueled with diesel, propanol, and pentanol blends under low intake pressures. Fuel. 2022;307:121692.
  • Yilmaz N, Vigil FM. Potential use of a blend of diesel, biodiesel, alcohols and vegetable oil in compression ignition engines. Fuel. 2014;124:168–172.
  • Souza CV, Corrêa SM. Polycyclic aromatic hydrocarbons in diesel emission, diesel fuel and lubricant oil. Fuel. 2016;185:925–931.
  • Department of Health and Human Services (HHS), Public Health Service. Agency for Toxic Substances and Disease Registry (ATSDR). Polycyclic Aromatic Hydrocarbons (PAHs). 1995.
  • USA EPA. Provisional guidance for quantitative risk assessment of polycyclic aromatic hydrocarbons. EPA/600/R-93/089, 1993.
  • Nour M, Attia AMA, Nada SA. Combustion, performance and emission analysis of diesel engine fuelled by higher alcohols (butanol, octanol and heptanol)/diesel blends. Energ Convers Manage. 2019;185:313–329.
  • Surisetty VR, Dalai AK, Kozinski J. Alcohols as alternative fuels: an overview. Appl Catal Gen. 2011;404:1–11.
  • Yilmaz N, Donaldson A, Johns A. Some perspectives on alcohol utilization in a compression ignition engine. SAE J Fuels Lubr Techl Paper. 2005;01:3135.
  • Pachiannan T, Zhong W, Rajkumar S, et al. A literature review of fuel effects on performance and emission characteristics of low- temperature combustion strategies. Appl Energy. 2019;251:113380.
  • Nanthagopal K, Kishna RS, Atabani AE, et al. A compressive review on the effects of alcohols and nanoparticles as an oxygenated enhancer in compression ignition engine. Energy Convers Manage. 2020;203:112244.
  • Gill SS, Tsolakis A, Herreros JM, et al. Diesel emissions improvements through the use of biodiesel or oxygenated blending components. Fuel. 2012;95:578–586.,
  • 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. Energ Convers Manage. 2016;123:252–264.
  • Yilmaz N. Performance and emission characteristics of a diesel engine fuelled with biodiesel–ethanol and biodiesel–methanol blends at elevated air temperatures. Fuel. 2012;94:440–443.
  • Zhu L, Xiao Y, Cheung CS, et al. Combustion, gaseous and particulate emission of a diesel engine fueled with n- pentanol (C5 alcohol) blended with waste cooking oil biodiesel. Appl Therm Eng. 2016;102:73–79.
  • Dhanasekaran R, Krishnamoorthy V, Rana D, et al. A sustainable and eco-friendly fueling approach for direct-injection diesel engines using restaurant yellow grease and n-pentanol in blends with diesel fuel. Fuel. 2017;193:419–431.
  • Kumar BR, Saravanan S. Effects of iso-butanol/diesel and n-pentanol/diesel blends on performance and emissions of a DI diesel engine under premixed LTC (low temperature combustion) mode. Fuel. 2016;170:49–59.
  • Rajesh Kumar B, Saravanan S, Rana D, et al. Use of some advanced biofuels for overcoming smoke/NOx trade-off in a light- duty DI diesel engine. Renew Energy. 2016;96:687–699.
  • Agarwal AK. Biofuels (alcohols and biodiesel) applications as fuels for internal combustion engines. Prog Energ Combust. 2007;33(3):233–271.
  • Nabi M. Theoretical investigation of engine thermal efficiency, adiabatic flame temperature, NOx emission and combustion-related parameters for different oxygenated fuels. Appl Therm Eng. 2010;30(8-9):839–844.
  • Ma Y, Huang S, Huang R, et al. Spray and evaporation characteristics of n- pentanol–diesel blends in a constant volume chamber. Energy Convers Manage. 2016;130:240–251.
  • Campos-Fernandez J, Arnal JM, Gomez J, et al. Performance tests of a diesel engine fueled with pentanol/diesel fuel blends. Fuel. 2013;107:866–872.
  • Wei L, Cheung CS, Huang Z. Effect of n-pentanol addition on the combustion, performance and emission characteristics of a direct-injection diesel engine. Energy. 2014;70:172–180.
  • Li L, Wang J, Wang Z, et al. Combustion and emissions of compression ignition in a direct injection diesel engine fueled with pentanol. Energy. 2015;80:575–581.
  • Pan M, Huang R, Liao J, et al. Experimental study of the spray, combustion, and emission performance of a diesel engine with high n-pentanol blending ratios. Energ Convers Manage. 2019;194:1–10.
  • 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;210:75–82.
  • Atmanli A, Yilmaz N. Comparative assessment of different diesel engines fueled with 1-pentanol and diesel blends. Environ Prog Sustainable Energy. 2021;40(5):ep13663.
  • Atmanli A, Yilmaz N. A comparative analysis of n-butanol/diesel and 1-pentanol/diesel blends in a compression ignition engine. Fuel. 2018;234:161–169.
  • Campos-Fernandez J, Arnal JM, Gomez J, et al. A comparison of performance of higher alcohols/diesel fuel blends in a diesel engine. Appl Energy. 2012;95:267–275.
  • Raza M, Chen L, Ruiz R, et al. Influence of pentanol and dimethyl ether blending with diesel on the combustion performance and emission characteristics in a compression ignition engine under low temperature combustion mode. J Energy Inst. 2019;92(6):1658–1669.
  • Kumar BR, Saravanan S. Effect of exhaust gas recirculation (EGR) on performance and emissions of a constant speed DI diesel engine fueled with pentanol/diesel blends. Fuel. 2015;160:217–226.
  • Ma Y, Huang S, Huang R, et al. Ignition and combustion characteristics of n-pentanol–diesel blends in a constant volume chamber. Appl Energy. 2017;185:519–530.
  • Correa SM, Arbilla G. Aromatic hydrocarbons emissions in diesel and biodiesel exhaust. Atmos Environ. 2006;40(35):6821–6826.
  • Wu S, Bao J, Wang Z, et al. The regulated emissions and PAH emissions of bio-based long-chain ethers in a diesel engine. Fuel Process Technol. 2021;214:106724.
  • Yilmaz N, Donaldson AB. Examination of causes of wetstacking in diesel engines. SAE Technical Papers: 2005-01-3138; 2005.
  • Arias S, Molina F, Palacio R, et al. Assessment of carbonyl and PAH emissions in an automotive diesel engine fueled with butanol and renewable diesel fuel blends. Fuel. 2022;316:123290.
  • Yilmaz N, Donaldson AB. Experimental and computational investigation of PAH production in a diesel engine as a function of load. SAE Tech Paper. 2006;01:1977.
  • Yilmaz N, Davis SM. Polycyclic aromatic hydrocarbon (PAH) formation in a diesel engine fueled with diesel, biodiesel and biodiesel/n-butanol blends. Fuel. 2016;181:729–740.
  • Sadiktsis I, Koegler HJ, Benham T, et al. Particulate associated polycyclic aromatic hydrocarbon exhaust emissions from a portable power generator fueled with three different fuels – a comparison between petroleum diesel and two biodiesels. Fuel. 2014;115:573–580.
  • Lin YC, Lee WJ, Hou HC. PAH emissions and energy efficiency of palm-biodiesel blends fueled on diesel generator. Atmos Environ. 2006;40(21):3930–3940.
  • Karavalakis G, Deves G, Fontaras G, et al. The impact of soy-based biodiesel on PAH, nitro-PAH and oxy-PAH emissions from a passenger car operated over regulated and nonregulated driving cycles. Fuel. 2010;89:3876–3883.
  • Yilmaz N, Donaldson AB. Evidence of PAH production under lean combustion conditions. Fuel. 2007;86(15):2377–2382.
  • Bakeas EB, Karavalakis G. Regulated, carbonyl and polycyclic aromatic hydrocarbon emissions from a light-duty vehicle fueled with diesel and biodiesel blends. Environ Sci-Process Impacts. 2013;15(2):412–422.
  • Ballesteros R, Hernández JJ, Lyons LL. An experimental study of the influence of biofuel origin on particle-associated PAH emissions. Atmos Environ. 2010;44:930–938.
  • Borillo GC, Tadano YS, Godoi AF, et al. Polycyclic aromatic hydrocarbons (PAHs) and nitrated analogs associated to particulate matter emission from a euro V-SCR engine fuelled with diesel/biodiesel blends. Sci Total Environ. 2018;644:675–682.
  • Guarieiro ALN, Santos JV, Fernandez AE, et al. Redox activity and PAH content in size-classified nanoparticles emitted by a diesel engine fuelled with biodiesel and diesel blends. Fuel. 2014;116:490–497.
  • Borras E, Tortajada-Genaro LA, Vazquez M, et al. Polycyclic aromatic hydrocarbon exhaust emissions from different reformulated diesel fuels and engine operating conditions. Atmos Environ. 2009;43(37):5944–5952.
  • He C, Ge Y, Tan J, et al. Characteristics of polycyclic aromatic hydrocarbons emissions of diesel engine fueled with biodiesel and diesel. Fuel. 2010;8:2040–2046.
  • Karavalakis G, Boutsika V, Stournas S, et al. Biodiesel emissions profile in modern diesel vehicles. Part 2: effect of biodiesel origin on carbonyl, PAH, nitro-PAH and oxy-PAH emissions. Sci Total Environ. 2011;409(4):738–747.

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