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Production of low sulfur diesel-like fuel from crude oil wastes by pyrolytic distillation and its usage in a diesel engine

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  • Uyar, Mahmut
  • Aydın, Hüseyin

Abstract

In the present study, a diesel-like fuel was produced from crude oil sludge with the method of catalytic pyrolysis. The initial liquid that was derived from the direct pyrolysis has considerably high sulfur content. Therefore it was subjected to two stage novel desulfurization methods. At the first stage the pyrolysis reactions were applied with perlite, CaO, Ca(OH)2 and zeolite catalysts. The sulfur content was reduced by 52.63% with using 10% perlite as the novel catalyst. As the second stage, in the acidic desulfurization reactions, the sulfur content of this liquid was reduced by 82.31% which means that the cumulative sulfur reduction was by 91.32%. At the end of both stages, low-sulfur diesel-like fuel (LSDLF) has 0.132% sulfur amount, highly similar to that of diesel fuel (DF) 0.1%. It was determined that the density and viscosity values of the LSDLF were close to those of DF, but its cetane number and heating values were slightly lower along with little higher sulfur content. The pure diesel-like fuel LSDLF100, its blend the LSDLF50 and the DF were tested in a single-cylinder and direct injection diesel engine. The engine performance characteristics and exhaust emission values obtained from these tests were comparatively examined. It was concluded that the obtained fuels can be used in diesel engines without any engine operations problems such as injector sticking, difficult start, overabundance noise, black smoke exhaust or any engine modifications.

Suggested Citation

  • Uyar, Mahmut & Aydın, Hüseyin, 2022. "Production of low sulfur diesel-like fuel from crude oil wastes by pyrolytic distillation and its usage in a diesel engine," Energy, Elsevier, vol. 244(PA).
  • Handle: RePEc:eee:energy:v:244:y:2022:i:pa:s0360544221029327
    DOI: 10.1016/j.energy.2021.122683
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    References listed on IDEAS

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    1. Azadi, Pooya & Inderwildi, Oliver R. & Farnood, Ramin & King, David A., 2013. "Liquid fuels, hydrogen and chemicals from lignin: A critical review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 21(C), pages 506-523.
    2. Senthil Kumar, M. & Kerihuel, A. & Bellettre, J. & Tazerout, M., 2005. "Experimental investigations on the use of preheated animal fat as fuel in a compression ignition engine," Renewable Energy, Elsevier, vol. 30(9), pages 1443-1456.
    3. Castillo Santiago, York & Martínez González, Aldemar & Venturini, Osvaldo José & Yepes Maya, Diego Mauricio, 2021. "Assessment of the energy recovery potential of oil sludge through gasification aiming electricity generation," Energy, Elsevier, vol. 215(PB).
    4. Pugazhvadivu, M. & Jeyachandran, K., 2005. "Investigations on the performance and exhaust emissions of a diesel engine using preheated waste frying oil as fuel," Renewable Energy, Elsevier, vol. 30(14), pages 2189-2202.
    5. Cheng, Shuo & Wang, Yuhua & Fumitake, Takahashi & Kouji, Tokimatsu & Li, Aimin & Kunio, Yoshikawa, 2017. "Effect of steam and oil sludge ash additive on the products of oil sludge pyrolysis," Applied Energy, Elsevier, vol. 185(P1), pages 146-157.
    6. Ramadhas, A.S & Jayaraj, S & Muraleedharan, C, 2004. "Use of vegetable oils as I.C. engine fuels—A review," Renewable Energy, Elsevier, vol. 29(5), pages 727-742.
    7. Mazzoni, Luca & Janajreh, Isam & Elagroudy, Sherien & Ghenai, Chaouki, 2020. "Modeling of plasma and entrained flow co-gasification of MSW and petroleum sludge," Energy, Elsevier, vol. 196(C).
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