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Municipal Waste Plastics Conversion into Aviation Fuel

Municipal Waste Plastics Conversion into Aviation Fuel
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摘要 Aviation fuel is in great demand globally. The increased demand and high price for energy sources are driving efforts to convert natural non-renewable organic compounds into useful hydrocarbon fuel materials such as in form of aviation fuel. Alternate sources to these non-renewable hydrocarbon fuels are important and necessary. Much of these alternative sources are focused on biomass however, there are strong benefits of deriving fuels from waste plastic materials. Thermal processes can be used to convert waste plastics into hydrocarbon fuels like aviation fuel, which have unlimited applications in airline industries, as well as in transportation and power generation industries. These thermal processes are used to break down the long carbon chains found in plastics into the shorter chains in a temperature range from 300-450 ℃. This method has been carried out in succession in previous experiments. This simple and economically viable process has been developed to convert the hydrocarbon polymers of waste plastics into the short and medium chain hydrocarbons of liquid fuels. Based on the initial characterization, a fractionated portion of the developed fuel shows properties similar to some of the commercially available aviation fuels.
出处 《Journal of Energy and Power Engineering》 2011年第7期620-626,共7页 能源与动力工程(美国大卫英文)
关键词 Waste plastics aviation fuel fractional fuel alternative fuel thermal degradation fractional distillation. 航空燃料 废塑料 转化 烃类燃料 碳氢燃料 塑料材料 有机化合物 热加工工艺
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  • 1C.J. Moore, S.L. Moore, M.K. Leecaster, S.B. Weisberg,A comparison of plastic and plankton in the NorthPacific Central Gyre, Algalita Marine ResearchFoundation and Southern Calitbmia Coastal Water Research Project, Marine Pollution Bulletin 42 (2001) 1297-1300.
  • 2C.J. Moore, S.L. Moore, S.B. Weisberg, G.L. Lattin, A.F.Zellers, A comparison of neustonic plastic andzooplankton abundance in Southern California's CoastalWaters, Algalita Marine Research Foundation andSouthern California Coastal Water Research Project, Marine Pollution Bulletin 44 (2002) 1035-1038.
  • 3Available onlineat:http://www.bts.gov/publications/national_transportation_statistics/html/table 04 05.html.
  • 42011 oil consumption forecast moderates on slowergrowth-Friday fuel watch, available online at: http://www.certreforaviation.com.
  • 5Available online at: http://www.en.wikipedia.org/wiki/Jet_fuel.
  • 6H.N. Siauw, H. Seoud, M. Stanclulescu, Y. Suglmoto,Conversion of polyethylene to transportation fuels throughpyrolysis and catalytic cracking, Energy & Fuels 9 (1995) 735-742.
  • 7D.S. Scott, S.R. Czernik, J. Piskorz, D.St.A.G. Radlein,Fast pyrolyis of plastic wastes, Energy Fuels 4 (4) (1990) 407-411.
  • 8W. Kaminsky, B. Schlesselmann, C.M. Simon, Thermaldegradation of mixed plastic waste to aromatics and gas,Polymer Degradation and Stability 53 (2) (1996) 189-197.
  • 9A. Angyal, N. Miskolczi, L. Bartha, Petrochemicalfeedstock by thermal cracking of plastic waste, Journal ofAnalytical and Applied Pyrolysis 79 (1-2) (2007) 409-414.
  • 10J. Scheirs, in: J. Scheirs, W. Kaminsky (Eds.), FeedstockRecycling and Pyrolysis of Waste Plastics, Wiley, 2006, p. 383 (Chapter 15).

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