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Izobuten - otrzymywanie i zastosowanie w przemysłowej technologii organicznej

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
EN
Isobutene - obtaining and application in the industrial organic technology
Języki publikacji
PL
Abstrakty
PL
W artykule przedstawiono możliwe sposoby zagospodarowania izobutenu w przemysłowej technologii organicznej, a także przedstawiono alternatywną drogę jego otrzymywania w reakcji odwodornienia izobutanu w obecności ditlenku węgla. Podano typowe warunki prowadzenia procesu oraz stosowane katalizatory.
EN
The paper discusses the possibilities of isobutene application in the industrial organic technology. An isobutane dehydrogenation reaction in the presence of carbon dioxide was shown as an alternative way for obtaining this olefin. Typical processing conditions as well as using catalysts were also presented.
Słowa kluczowe
PL
EN
Czasopismo
Rocznik
Strony
556--564
Opis fizyczny
Bibliogr. 38 poz., tab., wykr.
Twórcy
autor
  • Politechnika Krakowska, Instytut Chemii i Technologii Organicznej, Kraków
Bibliografia
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  • [4] Balsco T., Lopez Nieto J.M.: Oxidative dehydrogenation of short chain alkanes on supported vanadium oxide catalysts. Applied Catalysis A: General 157, 117-142, 1997.
  • [5] Batiot C., Hodnett B.K.: The role of reactant and product bond energies in determining limitations to selective catalytic oxidations. Applied Catalysis A: General 137, 179-191, 1996.
  • [6] Bhasin M.M., McCain J.H., Vora B.V., Imai T., Pujado P.R: Dehydrogenation and oxydehydrogenation of paraffins to olefins. Applied Catalysis A: General 221, 397-419, 2001.
  • [7] Bi Y-L., Zhen K-J., Valenzuela R.X., Jia M-J., Cortes Corberan V.: Oxidative dehydrogenation of isobutane over LaBaSm oxide catalyst. Influence of the addition of CO2 in the feed. Catalysis Today 61, 369-375, 2000.
  • [8] Bogoczek R., Kociołek-Balawajder E.: Technologia chemiczna organiczna. Surowce i półprodukty. Wydawnictwo AE, Wrocław 1992.
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  • [11] Cortright R.D., Hill J.M., Dumesic J.A.: Selective dehydrogenation of isobutane over supported Pt/Sn catalysts. Catalysis Today 55, 213-223, 2000.
  • [12] Delsarte S., Mauge F., Grange P.: Isobutane dehydrogenation over supported platinum acid-base AlGaPON catalysts. Journal of Catalysis 202, 1-3, 2001.
  • [13] den Hollander M.A., Wissink M., Makkee M., Moulijn J.A.: Gasoline conversion: reactivity towards cracking with equilibrated FCC and ZSM-5 catalysts. Applied Catalysis A: General 223, 85-102, 2002.
  • [14] General aspects - http://media.walley.com/product.data/excerpt
  • [15] Grzywa E., Molenda J.: Technologia podstawowych syntez organicznych. Tom I, Surowce do syntez. WNT, Warszawa 1995.
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  • [22] Kikuchi E.: Palladium/ceramic membranes for selective hydrogen permeation and their application to membrane reactor. Catalysis Today 25, 333-337, 1995.
  • [23] Kralik M., Macho V., Jurecekova E., Jurecek L.: The oxidative dehydrogenation of alkanes C3-C4 by carbon dioxide. Chemical Papers - Chemicke Zvesti 52, 682-691, 1998.
  • [24] Krylov O.V., Mamedov A.X., Mirzabekova S.R.: The regularities in the interaction of alkanes with CO2 on oxide catalysts. Catalysis Today 24, 371-375, 1995.
  • [25] Labinger J.A.: Selective alkane oxidation: a hot and cold approaches to a hot problem. Journal of Molecular Catalysis A: Chemical 220, 27-35, 2004.
  • [26] Mamedov E.A., Cortes Corberan V.: Oxidative dehydrogenation of lower alkanes on vanadium oxide-based catalysts. The present state of the art and outlooks. Applied Catalysis A: General 127, 1-40, 1995.
  • [27] Marchionna M., Di Girolamo M., Patrini R.: Light olefins dimerization to high quality gasoline components. Catalysis Today 65, 397-403, 2001.
  • [28] Matsuda T., Koike I., Kubo N., Kikuchi E.: Dehydrogenation of isobutane to isobutene in a palladium membrane reactor. Applied Catalysis A: General 96, 3-13, 1993.
  • [29] Mirzabekova S.R., Mamedov A.X: Ob osobiennostah okislitel’nogo degidrirovania izobutana dioksidom uglevoda. Kinetika i kataliz 35, 903-906, 1994.
  • [30] Morrison R.T., Boyd R.N.: Chemia organiczna. PWN, Warszawa 1998.
  • [31] Nakagawa K., Kajita Ch., Ikenaga N., Nishitani-Gamo M., Ando T., Suzuki T.: Dehydrogenation of light alkanes over oxidized diamond-supported catalysts in the presence of carbon dioxide. Catalysis Today 84, 149-157, 2003.
  • [32] Ogonowski J., Sikora E., Skrzyńska E.: Odwodornienie izobutanu do izobutenu w obecności ditlenku węgla - analiza termodynamiczna procesu. Nafta-Gaz 3, 121-124, 2005.
  • [33] Raybold T.M., Huff M.C.: Oxidation of isobutane over supported noble metal catalysts in a palladium membrane reactor, Catalysis Today 56, 35-44, 2000.
  • [34] Sanfilippo D., Miracca I.: Dehydrogenation of paraffins: synergies between catalyst design and reactor engineering. Catalysis Today 111, 133-139, 2006.
  • [35] Shimada H., Akazawa T., Ikenaga N., Suzuki T.: Dehydrogenation of isobutane to isobutene with iron-loaded activated catalyst. Applied Catalysis A: General 168, 243-250, 1998.
  • [36] Siri G.J., Casella M.L., Santori G.F., Ferretti O.A.: Tin/Platinum on alumina as catalysts for dehydrogenation of isobutene. Influence of preparation procedure and of the addition of lithium on the catalytic properties. Ind. Eng. Chem. Res. 36, 4821-4826, 1997.
  • [37] Wang Y., Ohishi Y., Shishido T., Zhang Q., Takehira K.: Cr-MCM-41 for selective dehydrogenation of lower alkanes with carbon dioxide. Studies in Surface Science and Catalysis 146, 725-728, 2003.
  • [38] Weckhuysen B.M., Schoonheydt R.A.: Alkane dehydrogenation over supported chromium oxide catalysts. Catalysis Today 51, 223-232, 1999.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-AGH5-0015-0084
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