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Emissions of automobiles fueled with alternative fuels based on engine technology: A review

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.jtte.2018.05.001

关键词

Natural gas; Methanol; Ethanol; Biodiesel; PODEn; Emission

资金

  1. National Engineering Laboratory for Mobile Source Emission Control Technology [NELMS2017B02]
  2. Special Fund for Basic Scientific Research of Central Colleges, Chang'an University [310822172203]

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Diversification of alternative fuels for automobiles is not only an actual situation, but also a development trend. Whether the alternative fuels are clean is an important issue. Emissions of automobiles fueled with natural gas (NG), methanol, ethanol, biodiesel, dimethyl ether (DME) and polyoxymethylene dimethyl ethers (PODEn) are investigated and reviewed based on engine technology and fuel properties. Compared to gasoline, NG/gasoline bi-fuel and NG automobiles have higher brake thermal efficiencies (BTE) and produce less HC, CO and PM emissions, while more NOx emission. Compared to diesel, NG/diesel dual fuel automobiles have lower BTE and emit lower soot and NOx emissions, but higher HC and CO emissions. Methanol and ethanol blending in gasoline can obviously reduce the HC, CO and PM emissions of spark ignition (SI) automobiles. Methanol or ethanol blending in diesel may prolong the ignition delay, shorten the combustion duration and improve the BTE, resulting in lower soot emissions. However, the HC, CO and NOx emissions of methanol or ethanol diesel blend fuels are uncertain due to low cetane number, high latent heat of vaporization. Most biodiesel has higher viscosity, distillation temperature, cetane number and oxygen content than diesel. Soot emission of biodiesel is lower than that of diesel, while NOx emission is higher. Both DME and PODEn do not contain C-C bonds and their blend with diesel can prohibit the formation of soot. PODEn has high cetane number and low viscosity, resulting in better ignitability and spray quality respectively. PODEn blending shortens both the ignition delay and the combustion duration, improves the BTE, and increases the temperature in the diffusion combustion phase, leading to a higher NOx emission. (C) 2018 Periodical Offices of Chang'an University. Publishing services by Elsevier B.V. on behalf of Owner.

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