Microsoft Word - Bibliografia

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103 REFERÊNCIAS BIBLIOGRÁFICAS A., PILEHVARI, R. SERTH, Generalized Hydraulic Calculation Method Using Rational Polynomial Model, J. Energy Res. Tech., 127, p.15, 2005. A. B., METZNER, J. C. REED, Flow of non-newtonian fluids-correlation of laminar, transition and turbulent flow regions. AICHE Journal, 1: 434-40, Dec. 1955. B. C. CRITTENDON, The mecanics of desingn and interpretation of hydraulic fracture treatments. Journal of Petroleum Technology, Outubro 1959, pp. 21-9. B. P. A., HEDSTRON, Flow of plastic materials in pipes. Ind. Eng. Chem., 44:651- 6, 1952. BIRD, R. B.; STEWART, W. E.; LIGHTFOOT, E. N. Transport Phenomena. New York: John Wiley, 1960. CLAPP, R. M., Turbulent Heat Transfer in PseudoPlastic Non-Newtonian Fluids. International Developments in Heat Transfer, A.S.M.E., Part. III, Sec. A, 1961. Citado por SKELLAND, A. H. P. Non-Newtonian Flow and Heat Transfer. New York: John Wiley& Sons, 1967. COULSON, J. M.; RICHARDSON, J. F. Tecnologia Química, v. III, 2 nd ed. Lisboa: Pergamon Press, 1979. CRANE COMPANY Flow of Fluids through Valves, Fittings and Pipe. Technical Paper No. 410, 16 th printing, Crane Co., 300 Park Avenue, New York, 1976. C. F., COLEBROOK, Turbulent flow in pipes with particular referent to the transition region between the smooth and rough pipe laws. J. of Inst. Civil Eng., 11: 133, 1939. D. W., DODGE, A. B., METZNER, Turbulent flow of non-newtonian systems. J. Amer. Ints. Chem. Eng., 5(2): 189, 1959. DODGE, D. W.; METZNER, A. B. Turbulent flow of non-Newtonian systems. AIChE J., v. 5, n. 2, p. 191-204, 1959. F. J. A. D., GOMES, Hidráulica, fluidos de potência: racionalização do uso do fator de fricção,I. Encontro Técnico sobre Informática na Perfuração,CAPER/87,Módulo 7, Salvador, Brasil, 1987. FOUST, A. S.; WENZEL, L. A.; CLUMP, W. M.; ANDERSEN, L. B. Princípios das Operações Unitárias. 6ª ed. Rio de Janeiro: Livros Técnicos e Científicos, 1982.

Transcript of Microsoft Word - Bibliografia

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REFERÊNCIAS BIBLIOGRÁFICAS

A., PILEHVARI, R. SERTH, Generalized Hydraulic Calculation Method Using Rational Polynomial Model, J. Energy Res. Tech., 127, p.15, 2005. A. B., METZNER, J. C. REED, Flow of non-newtonian fluids-correlation of laminar, transition and turbulent flow regions. AICHE Journal, 1: 434-40, Dec. 1955. B. C. CRITTENDON, The mecanics of desingn and interpretation of hydraulic fracture treatments. Journal of Petroleum Technology, Outubro 1959, pp. 21-9. B. P. A., HEDSTRON, Flow of plastic materials in pipes. Ind. Eng. Chem., 44:651-6, 1952. BIRD, R. B.; STEWART, W. E.; LIGHTFOOT, E. N. Transport Phenomena. New York: John Wiley, 1960. CLAPP, R. M., Turbulent Heat Transfer in PseudoPlastic Non-Newtonian Fluids. International Developments in Heat Transfer, A.S.M.E., Part. III, Sec. A, 1961. Citado por SKELLAND, A. H. P. Non-Newtonian Flow and Heat Transfer. New York: John Wiley& Sons, 1967. COULSON, J. M.; RICHARDSON, J. F. Tecnologia Química, v. III, 2nd ed. Lisboa: Pergamon Press, 1979. CRANE COMPANY Flow of Fluids through Valves, Fittings and Pipe. Technical Paper No. 410, 16th printing, Crane Co., 300 Park Avenue, New York, 1976. C. F., COLEBROOK, Turbulent flow in pipes with particular referent to the transition region between the smooth and rough pipe laws. J. of Inst. Civil Eng., 11: 133, 1939. D. W., DODGE, A. B., METZNER, Turbulent flow of non-newtonian systems. J. Amer. Ints. Chem. Eng., 5(2): 189, 1959. DODGE, D. W.; METZNER, A. B. Turbulent flow of non-Newtonian systems. AIChE J., v. 5, n. 2, p. 191-204, 1959. F. J. A. D., GOMES, Hidráulica, fluidos de potência: racionalização do uso do fator de fricção,I. Encontro Técnico sobre Informática na Perfuração,CAPER/87,Módulo 7, Salvador, Brasil, 1987. FOUST, A. S.; WENZEL, L. A.; CLUMP, W. M.; ANDERSEN, L. B. Princípios das Operações Unitárias. 6ª ed. Rio de Janeiro: Livros Técnicos e Científicos, 1982.

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FOX, R. W.; MCDONALD, A. T. Introdução à Mecânica dos Fluidos. 4ª ed. Rio de Janeiro: Guanabara Koogan, 1995. IRVINE, T. F. JR., Chem. Eng. Commun., (1988). Citado por HARTNETT, J.P.; KOSTIC, M. Turbulent friction factor correlations for power law fluids in circular and non-circular channels. Int. Comm. Heat Mass Transfer, v. 17, p. 59-65, 1990. KEMBLOWSKI, Z.; KOLODZIEJSKI, J. Flow resistances of non-Newtonian fluids in transitional and turbulent flow. International Chemical Engineering, v. 13, n 2, p. 265-279, 1973. KITTREDGE, C. P.; ROWLEY, D. S. Resistance coefficients for laminar and turbulent flow through one-half-inch valves and fittings. Trans. Am. Soc. Mech. Engrs., v. 79, p. 1759-1766, 1957. Citado por PERRY, H. R.; CHILTON, C. H. Manual de Engenharia Química. 5ª ed. Rio de Janeiro: Guanabara Dois, 1980. KOZICKI, C. H.; CHOU, C. H.; TIU, C. Non-Newtonian flow in ducts of arbitrary cross-sectional shape. Chem. Eng. Sci., v. 21, p. 261-279, 1966 MACHADO, J. C. V. Reologia e Escoamento de Fluidos. Rio de Janeiro: Interciência, 2002. MAEGAVA, L. M.; SANTANA C. C.; MASSARANI, G.; BHATNAGAR, R. K. Comportamento reológico e escoamento turbulento de soluções poliméricos: O efeito de redução no arraste. In: IV CONGRESSO BRASILEIRO DE ENGENHARIA QUIMICA, 1984, Campinas-SP. Anais do IV Congresso Brasileiro de Engenharia Química, Campinas: Unicamp, 1984. v. 1, p. 113-122. MASSARANI, G. Viscosímetro capilar de tubos descartáveis. Revista de Ensino de Física, v. 2, n. 2, p. 3, 1981. MASSARANI, G. Fluidos não-Newtonianos e sistemas particulados. In: XXVII CONGRESSO BRASILEIRO DE SISTEMAS PARTICULADOS, 1999, Campos do Jordão-SP. Anais do XXVII Congresso Brasileiro de Sistemas Particulados. São Paulo-SP: USP, 1999. v. 1, p. 3-28. MCCABE, L. W.; SMITH, J. C.; HARRIOTT, P. Unit Operations of Chemical Engineering. 5th ed. New York: McGraw-Hill, 1993. METZNER, A. B.; REED, J. C. Flow of non-Newtonian fluids-correlation of the laminar, transition, and turbulent-flow regions. AIChE J., v. 1, n. 4, p. 434-440, 1955.

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MOODY, L. F. Friction Factors for pipe flow. Trans. of the ASME, v. 68, n. 8, p. 671-684, 1944. Citado por PERRY, R. H.; GREEN, D. W. Perry’s Chemical Engineers’ Handbook. 7th ed. New York: McGraw-Hill, 1999. PERRY, R. H.; GREEN, D. W. Perry’s Chemical Engineers’ Handbook. 7th ed. New York: McGraw-Hill, 1999. R. C. ELLIS, D. S. GEORGE, Pratical interpretation on theology, annular displacing torces. How to avoid by passing mud during primary cementing. World Oil, 64-9, 1977. R., DARBY, J., MELSON, J. Chem. Eng., p.59, 28 dezembro, 1981. R., DARBY, R., MUN, D. V., BOGER, Predict Friction Loss in Slurry Pipes”, Chemical Engineering, v.9, p.116, 1992. S. W., CHURCHILL, Friction factor equation spans A11 fluid flow regimes, Chem. Eng., 7 novembro, 1977. TOMITA, Y. A study on non-Newtonian flow in pipe lines. Bulletin JSME, v. 2, n. 5, p. 10-16, 1959. WELTY, R. J.; WICKS, C. E.; WILSON, R. E. Fundamentals of Momentum, Heat and Mass Transfer. 3th ed. New York: John Wiley& Sons, 1984. WHITE, F. M. Fluid Mechanics. Singapore: McGraw-Hill, 1988. WÓJS, K. Laminar and turbulent flow of dilute polymer solutions in smooth and rough pipes. J. Non-Newtonian Fluid Mech., v. 48, p. 337-355, 1993. VIRK, P. S. Drag Reduction Fundamentals. AICHE J. v. 21, p. 625-650, 1975. Y. A., TOMITA, A study of non-newtonian flow in pipe lines. Bulletin of J. S. M. E., 2(5): 10, 1959. YOO, S. S. Heat transfer and friction factors for non-Newtonian fluids in circular tubes, Ph D. Thesis, University of Illinois, Chicago, 1974. Citado por HARTNETT, J.P.; KOSTIC, M. Turbulent friction factor correlations for power law fluids in circular and non-circular channels. Int. Comm. Heat Mass Transfer, v. 17, p. 59-65, 1990.