Plasma Thermal Conversion of Methane to Acetylene

被引:131
作者
Fincke J.R. [1 ]
Anderson R.P. [1 ]
Hyde T. [1 ]
Detering B.A. [1 ]
Wright R. [1 ]
Bewley R.L. [1 ]
Haggard D.C. [1 ]
Swank W.D. [1 ]
机构
[1] Idaho Natl. Eng./Environ. Laboratory, Idaho Falls, ID 83415-2211
关键词
Conversion of methane to acetylene; Experimental/modeling; Thermal plasmas;
D O I
10.1023/A:1012944615974
中图分类号
学科分类号
摘要
This paper describes a re-examination of a known process for the direct plasma thermal conversion of methane to acetylene. Conversion efficiencies (% methane converted) approached 100% and acetylene yields in the 90-95% range with 2-4% solid carbon production were demonstrated. Specificity for acetylene was higher than in prior work. Improvements in conversion efficiency, yield, and specificity were due primarily to improved injector design and reactant mixing, and minimization of temperature gradients and cold boundary layers. At the 60-kilowatt scale cooling by wall heat transfer appears to be sufficient to quench the product stream and prevent further reaction of acetylene resulting in the formation of heavier hydrocarbon products or solid carbon. Significantly increasing the quenching rate by aerodynamic expansion of the products through a converging-diverging nozzle led to a reduction in the yield of ethylene but had little effect on the yield of other hydrocarbon products. While greater product selectivity for acetylene has been demonstrated, the specific energy consumption per unit mass of acetylene produced was not improved upon. A kinetic model that includes the reaction mechanisms resulting in the formation of acetylene and heavier hydrocarbons, through benzene, is described.
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页码:105 / 136
页数:31
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共 42 条
  • [1] Itoh N., Xu W.-C., Sathe A.M., Ind. Engr. Chem. Res., 32, (1993)
  • [2] Fields E.K., Winzenburg M.L., DeMarco D.A., Process for Preparation of Fuel Additives from Acetylene, (1986)
  • [3] Wizenburg M.L., DeMarco D.A., Process for Converting a Wet Acetylene Containing Stream to Aromatics Using a Zinc-promoted Crystalline, Borosilicate Molecular Sieve Catalyst Composition, (1991)
  • [4] Timmons R.B., He Y., Jang W.-L., Zeolite Catalyzed Conversion of Acetylene, (1992)
  • [5] Gladisch H., Hydrocarbon Processing and Petroleum Refiner, 41, (1962)
  • [6] Vursel F., Polak L., Plasma Chemical Processing, Reactions Under Plasma Conditions, (1971)
  • [7] Frenklach M., Wang H., Detailed Mechanism and Modeling of Soot Particle Formation, Soot Formations in Combustion, (1994)
  • [8] Lindstedt R.P., A Simple Reaction Mechanism for Soot Formation in Non-Premixed Flames, Proceedings of IVTAM Symposium, (1992)
  • [9] Wang H., Frenklach M., Combustion and Flame, 110, pp. 173-221, (1997)
  • [10] Fincke J.R., Swank W.D., Haggard D.C., Transverse Injection into a Supersonic Thermal Plasma Stream, Proceedings of the 11th International Symposium on Plasma Chemistry, (1993)