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Simultaneous multi-objective optimization of a new promoted ethylene dimerization catalyst using grey relational analysis and entropy measurement
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  • 作者:Seyed Hamed Mahdaviani ; Matin Parvari…
  • 关键词:Multi ; objective Optimization ; Grey Relational Analysis ; Entropy Measurement ; Ethylene Dimerization ; EDC
  • 刊名:Korean Journal of Chemical Engineering
  • 出版年:2016
  • 出版时间:February 2016
  • 年:2016
  • 卷:33
  • 期:2
  • 页码:423-437
  • 全文大小:529 KB
  • 参考文献:1.G.R. Lappin and J.D. Sauer, Alpha-olefins applications handbook, Marcel Dekker, Berkeley, CA (1989).
    2.P.-A.R. Breuil, L. Magna and H. Olivier-Bourbigou, Catal. Lett., 145, 173 (2015).CrossRef
    3.Y. Yang, Z. Liu, B. Liu and R. Duchateau, ACS Catal., 3, 2353 (2013).CrossRef
    4.W.R.H. Wright, A. S. Batsanov, A. M. Messinis, J. A. K. Howard, R.P. Tooze, M. J. Hanton and P.W. Dyer, Dalton Trans., 41, 5502 (2012).CrossRef
    5.A. Forestiere, H. Olivier-Bourbigou and L. Saussine, Oil Gas Sci. Technol.-Rev. IFP, 64, 649 (2009).CrossRef
    6.S. H. Mahdaviani, M. Parvari and D. Soudbar, Chem. Eng. Commun., 202, 1564 (2015).CrossRef
    7.S. H. Mahdaviani, D. Soudbar and M. Parvari, in IAENG transactions on engineering technologies, H. K. Kim, S.-I. Ao and B.B. Rieger Eds., Springer, Dordrecht (2013).
    8.F. Grasset, J.-B. Cazaux, L. Magna, P. Braunstein and H. Olivier-Bourbigou, Dalton Trans., 41, 10396 (2012).CrossRef
    9.F. Grasset and L. Magna, US Patent, 2011/0288308 A1 (2011).
    10.S. H. Mahdaviani, D. Soudbar and M. Parvari, Int. J. Chem. Eng. Appl., 1, 276 (2010).
    11.J.-B. Cazaux, P. Braunstein, L. Magna, L. Saussine and H. Olivier-Bourbigou, Eur. J. Inorg. Chem., 2009, 2942 (2009).CrossRef
    12.N. Ajellal, M. C. A. Khan, A. D. G. Boff, M. Hörner, C. M. Thomas, J.-F. Carpentier and O. L. Casagrande, Organometallics, 25, 1213 (2006).CrossRef
    13.F. Speiser, P. Braunstein and L. Saussine, Acc. Chem. Res., 38, 784 (2005).CrossRef
    14.R.F. Souza, K. Bernardo-Gusmão, G.A. Cunha, C. Loup, F. Leca and R. Réau, J. Catal., 226, 235 (2004).CrossRef
    15.A.W. Al-Sádoun, Appl. Catal. A: Gen., 105, 1 (1993).CrossRef
    16.A. M. Al-Jaralleh, J. A. Anabtawi, M. A. B. Siddiqui, A. M. Aitani and A.W. Al-Sádoun, Catal. Today, 14, 1 (1992).CrossRef
    17.S. M. Pillai, G. L. Tembe, M. Ravindranathan and S. Sivaram, Ind. Eng. Chem. Res., 27, 1971 (1988).CrossRef
    18.G.P. Belov, F.S. Dýachkovskii and V. I. Smirnov, Pet. Chem. U.S.S.R., 18, 223 (1979).CrossRef
    19.A. Bre, Y. Chauvin and D. Commereuc, Nouv. J. Chim., 10, 535 (1986).
    20.G. P. Belov, T. S. Dzhabiev and I. M. Kolesnikov, J. Mol. Catal., 14, 105 (1982).CrossRef
    21.J.A. Suttil and D. S. McGuinness, Organometallics, 31, 7004 (2012).CrossRef
    22.R. Robinson, D. S. McGuinness and B. F. Yates, ACS Catal., 3, 3006 (2013).CrossRef
    23.S. Tang, Z. Liu, X. Yan, N. Li, R. Cheng, X. He and B. Liu, Appl. Catal. A: Gen., 481, 39 (2014).CrossRef
    24.H. Chen, X. Liu, W. Hu, Y. Ning and T. Jiang, J. Mol. Catal. A: Chem., 270, 273 (2007).CrossRef
    25.Y. Yang, K. Kim, J. Lee, H. Paik and H.G. Jang, Appl. Catal. A: Gen., 193, 29 (2000).CrossRef
    26.O. L. Davies and P. L. Goldsmith, Statistical methods in research and production with special reference to the chemistry industry, published for Imperial Chemical Industries Ltd., 4th Rev. Ed., Oliver and Boyd, Edinburgh (1972).
    27.R. L. Mason, R. F. Gunst and J. L. Hess, Statistical design and analysis of experiments: with applications to engineering and science, 2nd Ed., Wiley, New York (2003).CrossRef
    28.G. Taguchi, System of experimental design: Engineering methods to optimize quality and minimize costs, UNIPUB/Kraus International Publications, New York (1987).
    29.P.J. Ross, Taguchi techniques for quality engineering, 2nd Ed., McGraw-Hill, New York (1996).
    30.J. L. Deng, J. Grey Syst., 1, 1 (1989).
    31.K. L. Wen, T. C. Chang and X. L. You, in Proceedings of the IEEE International Conference on Systems, Man and Cybernetics, San Diego, CA, 2, 1842 (1998).
    32.M. S. Phadke, Quality engineering using robust design, AT&T Bell Laboratories Report, Prentice-Hall International Editions, New Jersey (1989).
    33.R.K. Roy, Design of experiments using the Taguchi approach:16steps to product and process improvement, John Wiley & Sons, Inc., New York (2001).
    34.Ö. Küçük, Korean J. Chem. Eng., 23, 21 (2006).CrossRef
    35.M. Lu and K. Wevers, J. Grey Syst., 10, 47 (2007).
    36.S. Liu and Y. Lin, Grey information: Theory and practical applications (Advanced information and knowledge processing), Springer-Verlag, New York (2005).
    37.J. Yan and L. Li, J. Clean. Prod., 52, 462 (2013).CrossRef
    38.E. Kuram and B. Ozcelik, Measurement, 46, 1849 (2013).CrossRef
    39.S. Padhee, S. Pani and S. S. Mahapatra, J. Manuf. Eng., 226, 176 (2012).CrossRef
    40.R. Siriyala, G. K. Alluru, R. M. R. Penmetsa and M. Duraiselvam, Front. Mech. Eng., 7, 279 (2012).CrossRef
    41.S. Mondal, C.P. Paul, L.M. Kukreja, A. Bandyopadhyay and P.K. Pal, Int. J. Adv. Manuf. Technol., 54, 957 (2011).CrossRef
    42.B. Acherjee, A. S. Kuar, S. Mitra and D. Misra, Int. J. Adv. Manuf. Technol., 56, 995 (2011).CrossRef
    43.J. H. Jung and W.T. Kwon, J. Mech. Sci. Technol., 24, 1083 (2010).CrossRef
    44.C.-C. Chen, C.-C. Tsao, Y.-C. Lin and C.-Y. Hsu, Ceram. Int., 36, 979 (2010).CrossRef
    45.C.-J. Tzeng, Y.-H. Lin, Y. K. Yung and M.-C. Jeng, J. Mater. Process. Technol., 209, 2753 (2009).CrossRef
    46.U. Caydas and A. Hascalik, Opt. Laser Technol., 40, 987 (2008).CrossRef
    47.L. K. Pan, C. C. Wang, S. L. Wei and H. F. Sher, J. Mater. Process. Technol., 182, 107 (2007).CrossRef
    48.C.-F. J. Kuo, T.-L. Su and C.-P. Tsai, Fiber. Polym., 8, 654 (2007).CrossRef
    49.P.N. Singh, K. Raghukandan and B. C. Pai, J. Mater. Process. Technol., 155-156, 1558 (2004).CrossRef
    50.C. P. Fung, C. H. Huang and J. L. Doong, J. Reinf. Plast. Comp., 22, 51 (2003).CrossRef
    51.P. S. Kao and H. Hocheng, J. Mater. Process. Technol., 140, 255 (2003).CrossRef
    52.Y. S. Tarng, S. C. Juang and C. H. Chang, J. Mater. Process. Technol., 128, 1 (2002).CrossRef
    53.J. L. Lin and C. L. Lin, Int. J. Mach. Tools Manuf., 42, 237 (2002).CrossRef
    54.A. Sharma and V. Yadava, Opt. Laser Technol., 44, 159 (2012).CrossRef
    55.K. Jangra, S. Grover and A. Aggarwal, Front. Mech. Eng., 7, 288 (2012).CrossRef
    56.C.-F. J. Kuo, T.-L. Su, P.-R. Jhang, C.-Y. Huang and C.-H. Chiu, Energy, 36, 3554 (2011).CrossRef
    57.A. Sharma and V. Yadava, Mater. Manuf. Process., 26, 1522 (2011).CrossRef
    58.G. K. Singh, V. Yadava and R. Kumar, Int. J. Precis. Eng. Manuf., 11, 509 (2010).CrossRef
    59.Y. M. Chiang and H. H. Hsieh, Comput. Ind. Eng., 56, 648 (2009).CrossRef
    60.R. Rao and V. Yadava, Opt. Laser Technol., 41, 922 (2009).CrossRef
    61.H.R. Lindman, Analysis of variance in experimental design, Springer-Verlag, Berlin (1992).CrossRef
    62.C.-S. Chou, G.-Y. Ho and C.-I. Hang, Adv. Powder Technol., 20, 55 (2009).CrossRef
    63.C.-S. Chou, C.-L. Liu and W.-C. Chaung, Mater. Des., 44, 172 (2013).CrossRef
    64.B. Ramavandi, G. Asgari, J. Faradmal, S. Sahebi and B. Roshani, Korean J. Chem. Eng., 31, 2207 (2014).CrossRef
    65.Y. Sahin, Mater. Sci. Eng. A, 408, 1 (2005).CrossRef
    66.G. M. P. Bardinet and R. E. J. Keck, US Patent, 3,752,834 (1973).
    67.D. F. Herman, US Patent, 2, 654,770 (1953).
    68.A. K. Pandey and A. K. Dubey, Opt. Laser Eng., 50, 328 (2012).CrossRef
    69.V. C. Srivastava, I.D. Mall and I. M. Mishra, Ind. Eng. Chem. Res., 46, 5697 (2007).CrossRef
    70.R. A. Fisher, Statistical methods for research workers, Oliver and Boyd, London (1925).
  • 作者单位:Seyed Hamed Mahdaviani (1) (2)
    Matin Parvari (1)
    Davood Soudbar (2)

    1. School of Chemical Engineering, Iran University of Science and Technology, Narmak, 1684613114, Tehran, Iran
    2. Catalysis research group, Research and Development Center, Arak Petrochemical Company, P. O. Box 575, Arak, Iran
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Industrial Chemistry and Chemical Engineering
    Catalysis
    Materials Science
    Biotechnology
  • 出版者:Springer New York
  • ISSN:1975-7220
文摘
A hybrid approach between the Taguchi method and grey relational analysis (GRA) with entropy measurement was applied to determine a single optimum setting for reaction factors of the proposed ethylene dimerization catalyst having overall selectivity to 1-butene (S1-btn (%)) and turnover frequency (TOF (h-1)) as multiple quality characteristics. Titanium tetrabutoxide (Ti(OC4H9)4) catalyst precursor in combination with triethyl aluminum (TEA) activator, 1,4-dioxane as a suitable modifier, and ethylene dichloride (EDC) as a novel promoter were used in the catalysis. Control factors of temperature, pressure, Al/Ti, 1,4-dioxane/Ti, and EDC/Ti mol ratios were investigated on three levels and their main effects were discussed. The effect of the binary interaction between temperature, pressure, and Al/Ti mol ratio was also examined. Weight of the responses was determined using entropy. Analysis of variance (ANOVA) for data obtained from GRA indicated that EDC/Ti mol ratio with 27.64% contribution had the most profound effect on the multiple quality characteristics. Development of the weighted Grey-Taguchi method used the Taguchi method as its basic structure, adopted GRA to deal with multiple responses, and entropy to enhance the reasonability of the comprehensive index produced by GRA to make the results more objective and accurate. Overall, these combined mathematical techniques improved catalytic performance for 1-butene production. Keywords Multi-objective Optimization Grey Relational Analysis Entropy Measurement Ethylene Dimerization EDC

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