Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing

Detalhes bibliográficos
Autor(a) principal: Pereira, Caroline Eulino Gon?alves
Data de Publicação: 2018
Tipo de documento: Dissertação
Idioma: por
Título da fonte: Biblioteca Digital de Teses e Dissertações da UFRRJ
Texto Completo: https://tede.ufrrj.br/jspui/handle/jspui/4654
Resumo: Coiled tubing system has many uses in the oil industry, among them, the plugging and abandonment (P&A) process, by cementing. This system consists mainly of a long, flexible, continuous steel tube that has part of its length wrapped on a reel while another part is directed to the well by an injector and a rotary table. The use of coiled tubing in the P&A process is extremely important due to the fact it lowers operation time, since the pipe is continuous, which leads to a reduction in cost. Due to the frictional pressure loss and heat transfer which occurs during the flow of the fluid in this system, the physical, chemical, and rheological properties of cement slurries change over time. To avoid the risk of setting the cement slurry before reaching the desired location, additives such as mid-temp retarder is added in excess. As such, the importance of predicting pressure drop is highlighted due to its influence on fluid temperature profile, and, consequently, on the rheological properties of the fluids. Besides that, pressure drop prediction will allow better planning of the required pump pressure. Knowing this, this work focused on predicting pressure drop in the flow of Newtonian fluids in a coiled tubing system. In order to study the fluid flow in coiled tubing system, an experimental unit with 375 meters of wrapped copper tube with ? in diameter, and similarity to an actual coiled tubing system was built. Pressure transmitters were installed in this unit to monitor pressure along tube length. Tests were carried out with water, Newtonian fluid, in the flow range between 0.05 and 0.65 m3/h, in order to predict pressure drop in this coiled tubing system. Flow rate and pressure drop data obtained in the experimental unit allowed the evaluation of critical Reynolds number, friction factor correlations in laminar and turbulent regime, and the influence of the curvature and tube length on pressure drop. A methodology for predicting pressure drop in the coiled tubing system was proposed and the percentage error between the experimental and calculated pressure drop values was less than 5%.
id UFRRJ-1_17cc0e5a3f35665fed3309e887f3b199
oai_identifier_str oai:localhost:jspui/4654
network_acronym_str UFRRJ-1
network_name_str Biblioteca Digital de Teses e Dissertações da UFRRJ
repository_id_str
spelling Scheid, Cl?udia M?riam023546317-58http://lattes.cnpq.br/7777291180260276Cal?ada, Lu?s Am?ricoScheid, Cl?udia MiriamMiranda, Cristiane Richard deSilva, Leonardo Duarte Batista da141298987-60http://lattes.cnpq.br/5861902616811620Pereira, Caroline Eulino Gon?alves2021-05-18T03:24:05Z2018-08-30Pereira, Caroline Eulino Gon?alves. Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing. 2018. [136 f.]. Disserta??o( Programa de P?s-Gradua??o em Engenharia Qu?mica) - Universidade Federal Rural do Rio de Janeiro, [Serop?dica - RJ] .https://tede.ufrrj.br/jspui/handle/jspui/4654Coiled tubing system has many uses in the oil industry, among them, the plugging and abandonment (P&A) process, by cementing. This system consists mainly of a long, flexible, continuous steel tube that has part of its length wrapped on a reel while another part is directed to the well by an injector and a rotary table. The use of coiled tubing in the P&A process is extremely important due to the fact it lowers operation time, since the pipe is continuous, which leads to a reduction in cost. Due to the frictional pressure loss and heat transfer which occurs during the flow of the fluid in this system, the physical, chemical, and rheological properties of cement slurries change over time. To avoid the risk of setting the cement slurry before reaching the desired location, additives such as mid-temp retarder is added in excess. As such, the importance of predicting pressure drop is highlighted due to its influence on fluid temperature profile, and, consequently, on the rheological properties of the fluids. Besides that, pressure drop prediction will allow better planning of the required pump pressure. Knowing this, this work focused on predicting pressure drop in the flow of Newtonian fluids in a coiled tubing system. In order to study the fluid flow in coiled tubing system, an experimental unit with 375 meters of wrapped copper tube with ? in diameter, and similarity to an actual coiled tubing system was built. Pressure transmitters were installed in this unit to monitor pressure along tube length. Tests were carried out with water, Newtonian fluid, in the flow range between 0.05 and 0.65 m3/h, in order to predict pressure drop in this coiled tubing system. Flow rate and pressure drop data obtained in the experimental unit allowed the evaluation of critical Reynolds number, friction factor correlations in laminar and turbulent regime, and the influence of the curvature and tube length on pressure drop. A methodology for predicting pressure drop in the coiled tubing system was proposed and the percentage error between the experimental and calculated pressure drop values was less than 5%.O sistema coiled tubing tem v?rias utilidades no ramo do petr?leo, dentre elas o abandono de po?os por meio da cimenta??o. Esse sistema ? composto, principalmente de um tubo de a?o longo, cont?nuo e flex?vel que tem parte do seu comprimento enrolado em um carretel enquanto outra parte ? direcionada ao po?o por meio de um injetor e uma mesa rotat?ria. O uso do coiled tubing no abandono de po?os ? de suma import?ncia por reduzir o tempo de opera??o, pelo fato do tubo ser cont?nuo, o que leva a uma redu??o do custo. Devido ? perda de carga por atrito e troca de calor que ocorre durante o escoamento do fluido nesse sistema, as propriedades f?sico-qu?micas e reol?gicas da pasta de cimento se alteram ao longo do tempo. Para que n?o haja risco da pasta curar antes de atingir o local desejado, aditivos, como retardador de pega, s?o adicionados em excesso. Visto isso, destaca-se a import?ncia da previs?o da perda de carga dada ? sua influ?ncia no perfil de temperatura e, consequentemente, nas propriedades reol?gicas dos fluidos. Al?m disso, o conhecimento da perda de carga permitir? um melhor planejamento da press?o de bombeio necess?ria. Porquanto, o objetivo desse trabalho ? prever a perda de carga no escoamento de fluidos Newtonianos em sistema coiled tubing. Com o intuito de estudar o escoamento de fluidos no sistema coiled tubing, uma unidade experimental com 375 metros de tubo de cobre enrolado com di?metro de ? in e similaridade a um sistema coiled tubing real foi constru?da. Nessa unidade foram instalados transmissores de press?o a fim de acompanhar a press?o ao longo do comprimento do tubo. Foram realizados testes com escoamento de ?gua, fluido Newtoniano, na faixa de vaz?o entre 0,05 e 0,65 m3/h, com o objetivo de prever a perda de carga nesse sistema coiled tubing. Os dados de vaz?o e queda de press?o obtidos na unidade experimental permitiram a avalia??o do Reynolds cr?tico, de correla??es de fator de atrito no regime laminar e turbulento e da influ?ncia da curvatura e do comprimento do tubo na queda de press?o. Uma metodologia de previs?o da perda de carga na regi?o enrolada de um sistema coiled tubing foi proposta e o erro percentual entre os valores de queda de press?o experimentais e calculados foi menor que 5%.Submitted by Sandra Pereira (srpereira@ufrrj.br) on 2021-05-18T03:24:05Z No. of bitstreams: 1 2018 - Caroline Eulino Gon?alves Pereira.pdf: 8056840 bytes, checksum: 3d4b05b3e09580f929136ed7683019a5 (MD5)Made available in DSpace on 2021-05-18T03:24:05Z (GMT). No. of bitstreams: 1 2018 - Caroline Eulino Gon?alves Pereira.pdf: 8056840 bytes, checksum: 3d4b05b3e09580f929136ed7683019a5 (MD5) Previous issue date: 2018-08-30Coordena??o de Aperfei?oamento de Pessoal de N?vel Superior, CAPES, Brasil.Conselho Nacional de Desenvolvimento Cient?fico e Tecnol?gico, CNPq, BrasilPetrobr?sapplication/pdfhttps://tede.ufrrj.br/retrieve/65106/2018%20-%20Caroline%20Eulino%20Gon%c3%a7alves%20Pereira.pdf.jpgporUniversidade Federal Rural do Rio de JaneiroPrograma de P?s-Gradua??o em Engenharia Qu?micaUFRRJBrasilInstituto de TecnologiaADLER, M. Striimung in gekriimmten rohren, 2.Angew. Math. Mech. 14, p. 257-275, 1934. AG?NCIA NACIONAL DO PETR?LEO (Brasil). Portaria ANP n? 25. Regulamento T?cnico n? 2/2002, de 6 de mar?o de 2002. Procedimentos a serem adotados no abandono de po?os de petr?leo e/ou g?s. Dispon?vel em: <http://nxt.anp.gov.br/NXT/gateway.dll/leg/folder_portarias_anp/portarias_anp_tec/2002/mar%C3%A7o/panp%2025%20-%202002.xml>. Acesso em: 10 dez. 2015. ALI, S. Pressure drop correlations for flow through regular helical coil tubes. Fluid Dynamics Research, v. 28, p. 295-310, 2001. ALI, S.; ZAIDI, A. H. Head loss and critical Reynolds number for flow in ascending equiangular spiral tube coils. Ind. Eng. Chem. Process Des. Dev., v. 18, n. 2, p. 349-353, 1979. AZOUZ, I.; SHAH, S. N.; VINOD, P. S.; LORD, D. L. Experimental investigation of frictional pressure losses in coiled tubing. SPE Production & Facilities, p. 91-96, 1998. BAKER HUGHES. Drilling fluids reference manual. Baker Hughes drilling fluis, 2006. BARUA, S. N. On Secondary Flow in Stationary Curved Pipes, The Quarterly Journal of Mechanics and Applied Mathematics, v. 6, pp. 61-77, 1963. Bridge Plugs [20--?]. Dispon?vel em: <http://www.shopbakerhughes.com/completion-tools/plugs-retainers/bridge-plugs.html>. Acesso em: 26 nov. 2015. BRODKEY, R. S. The phenomena of fluid motions. Dover Publications, Inc. New York, 1967. CAMPBELL, K.; SMITH, R. Permanent Well Abandonment. SPE, Tech 101, v. 9, n. 3, p. 25-27, 2013. CASTIGLIA, F.; CHIOVARO, P.; CIOFALO, M.; DI LIBERTO, M.; DI MAIO, P. A.; DI PIAZZA, I.; GIARDINA, M.; MASCARI, F.; MORANA, G.; VELLA, G. Modelling flow and heat transfer in helically coiled pipes. Part 3: Assessment of turbulence models, parametrical study and proposed correlations for fully turbulent flow in the case of zero pitch. Report Ricerca di Sistema Elettrico, Accordo di Programma Ministero dello Sviluppo Economico - ENEA, 2010. Cement Retainers [20--?]. Dispon?vel em: <http://www.shopbakerhughes.com/completion-tools/plugs-retainers/cement-retainers.html>. Acesso em: 26 nov. 2015. CIONCOLINI, A.; SANTINI, A. An experimental investigation regarding the laminar to turbulent flow transition in helically coiled pipes. Experimental Thermal and Fluid Science, v. 30, p. 367-380, 2006. doi: 10.1016/j.expthermflusci.2005.08.005 77 COILED Tubing Equipment [20--?]. Dispon?vel em: <https://www.emaze.com/@ALZTCZQ>. Acesso em: 9 ago. 2018. CUMING, H. G. The secondary flow in curved pipes. Aeronautical Research Council Reports and Memoranda, 1955. DEAN, W. R. Note on the motion of Fluid in a Curved Pipe. Philosophical Magazine. v. 20, p. 208-223, July 1927. DEAN, W. R. The stream-line motion of fluid in a Curved Pipe. Philosophical Magazine and Journal of Science, v. 5, n. 30, p. 673-695, April 1928. DENNIS, S. C. R. Calculation of the Steady Flow Through a Curved Tube Using a New Finite- Difference Scheme, Journal of Fluid Mechanics, v. 99, pp. 449-467, 1980. DRILLING Formula. Flow Regime and Critical Reynolds Number for Drilling Hydraulics, maio 2012. Dispon?vel em: < http://www.drillingformulas.com/flow-regime-and-critical-reynolds-number-for-drilling-hydraulics/>. Acesso em: 14 ago. 2018 EUSTICE, J. Flow of curved pipes. Proceedings of the Royal Society of London. Series A. Containing Papers of Mathematical and Physical Character, p. 107-118, 1910. EUSTICE, J. Experiments of streamline motion in curved pipes, Proc. R. Soc. A-85, p. 119-131, 1911. FOX, R. W.; MCDONALD, A. T.; PRITCHARD, P. J. Introdu??o ? Mec?nica dos Fluidos. 6. ed. Rio de Janeiro: Livros T?cnicos e Cient?ficos Editora S.a., 2006. GHOBADI, M.; MUZICHKA, Y.S. A review of heat transfer and pressure drop correlations for laminar flow in curved circular ducts. Heat Transfer Engineering, 2015. doi: 10.1080/01457632.2015.1089735 GHORBANI, N.; TAHERIAN, H.; GORJI, M.; MIRGOLBABAEI, H. An experimental study of thermal performance of shell-and-coil heat exchangers. International Communications in Heat and Mass Transfer, v. 37, p. 775-781, 2010. doi: 10.1016/j.icheatmasstransfer.2010.02.001 GON?ALO, R. Opera??es Rotineiras numa Sonda [20--?]. Dispon?vel em: < http://www.ebah.com.br/content/ABAAAfjyIAA/operacoes-rotineiras-numa-sonda>. Acesso em: 10 dez. 2015. GRAND DUKE, Drill Pipe. 2015. Dispon?vel em: < http://grandduke-rus.com/en/catalog/oil-pipes/drill-pipe/> Acesso em: 12 ago. 2018. GREEN, D. W.; PERRY, R. H. Perry?s Chemical Engineers? Handbook. 8. ed. EUA: McGraw-Hill, 2008. 78 GRINDLEY, J.H.; GIBSON, A.H. On the frictional resistance to the ow of air through a pipe. Proc. R. Soc. London, Ser. A 80, p. 114?139, 1908 GROVER, J; BARDEN, A. Coiled tubing offers pre-commissioning tool for deepwater pipelines. 2015. Dispon?vel em: <http://www.offshore-mag.com/articles/print/volume-75/issue-6/pipelines-flowlines/coiled-tubing-offers-pre-commissioning-tool-for-deepwater-pipelines.html> Acesso em: set. 2017. GUAN, F.; MA, W.; TU, Y; ZHOU, C.; FENG, D.; ZHOU, B. An Experimental Study of Flow Behavior of Coiled Tubing Drilling System. Hindawi Publishing Corporation, ID 935159, 2014 HASAN, W. K. Transient three-dimensional numerical analysis of forced convection flow and heat transfer in a curved pipe. IOSR Journal of Mechanical and Civil Engineering, v. 9, n. 5, p. 47-57, 2013. HOQUE, M.; ALAM, M. Effects of Dean number and curvature on fluid flow through a curved pipe with magnetic field. Procedia Engineering, v. 56, p. 245-253, 2013. doi: 10.1016/j.proeng.2013.03.114 ITO, H., Friction Factors for Turbulent Flow in Curved Pipes; Journal of Basic Engineering, pp. 123-134, jun. 1959. ITO, H. Laminar flow in curved pipes. ZAMM, v. 49, n. 11, p. 653-663, 1969. JAIN, S.; SINGHAL, N.; SHAH, S. N. Effect of Coiled Tubing Curvature on Friction Pressure Loss of Newtonian and Non-Newtonian Fluids ? Experimental and Simulation Study. SPE, Houston, Texas, set. 2004. KUBAIR, V.; VARRIER, C. B. S. Pressure Drop for Liquid Flow in Helical Coils, Transaction of Indian Institute of Chemical Engineering, vol. 14, pp. 93-97, 1961/2. LIU, S., and MASLIYAH, J. H., A Decoupling Numerical Method for Fluid Flow,International Journal of Numerical Methods Fluids, vol. 16, no. 8, pp. 659-682, 1993. MACHADO, J. C. V. Reologia e escoamento de fluidos. 1. ed. Editora Interci?ncia, p. 1-12, 39-44, 95-107, 2002. McCANN, R. C.; ISLAS, C. G. Frictional Pressure Loss During Turbulent Flow in Coiled Tubing. SPE/ICoTA, Texas, SPE 36345, fev.1996. McCONALOGUE, D.J.; SRIVASTAVA, R.S. Motion of a Fluid in a Curved Tube; Proceedings of Royal Society of London, Series A, v. 307, p. 37-53, 1968. 79 MEDJANI, B.; SHAH, S.N. A new approach for predicting frictional pressure losses of non-newtonian fluids in coiled tubing. SPE, Denver, Colorado, SPE 60319, march 2000. MESA Rotativa para Sonda de Perfura??o [20--?]. Dispon?vel em: <http://portuguese.alibaba.com/product-gs/zp205-rotary-table-for-drilling-rig-457376327.html>. Acesso em: 10 dez. 2015. MISHRA, P. and GUPTA, S.N., Momentum Transfer in Curved Pipes. I. Newtonian Fluids, II. Non-Newtonian Fluids; Industrial and Engineering Chemistry Process Design and Development, v. 18, pp. 130-42, 1979. MORI, Y.; NAKAYAMA, W. Study on forced convective heat transfer in curved pipes. Int. J. Heat Mass Transfer., v. 8, p. 67-82, 1965. NAPHON, P.; WONGWISES, S. A review of flow and heat transfer characteristics in curved tubes. Renewable and Sustainable Energy Reviews, v. 10, p. 463-490, 2006. doi: 10.1016/j.rser.2004.09.014 NELSON, E. B. Well Cementing, Houston: Schlumberger Educational Services, 1990. N?BREGA, A. K. C. Formula??o de Pastas Ciment?cias com Adi??o de Suspens?es de Quitosana para Cimenta??o de Po?os de Petr?leo. 2009. 134 f. Tese (Doutorado em Ci?ncia e Engenharia de Materiais) - Curso de P?s-Gradua??o em Ci?ncia e Engenharia de Materiais , Universidade Federal do Rio Grande do Norte, Natal, 2009. NPC. Plugging and Abandonment of Oil and Gas Wells. NPC North American Resource Development Study, artigo #2-25, 15 set. 2011. Dispon?vel em: < https://www.npc.org/Prudent_Development-Topic_Papers/2-25_Well_Plugging_and_Abandonment_Paper.pdf>. Acesso em: 14 nov. 2015. OCHOA, M.V. Analysis of drilling fluid rheology and tool joint effect to reduce erros in hydraulics calculations. Dissertation (Doctor of Philosophy - Petroleum Engineering) - Texas A&M University, ago. 2006. PACIFIC Northwest National Laboratory. Sensors & Electronics - Macro Property Measurements: Complex Fluid Type Governs Behavior, jul. 2011. Dispon?vel em: <https://technet.pnnl.gov/sensors/macro/projects/es4FIType.stm >. Acesso em: 13 ago. 2018. PARAISO, E. C. H. Estudo do Escoamento de Pasta de Cimento em Dutos Circulares e Anulares Conc?ntricos. 2011. 110 f. Disserta??o (Mestrado em Engenharia Qu?mica) - Curso de P?s-Gradua??o em Engenharia Qu?mica, Universidade Federal Rural do Rio de Janeiro, Rio de Janeiro, 2011. PATIL, R.H. Experimental studies on heat transfer to newtonian fluids through spiral coils. Experimental Thermal and Fluid Science, 2017. doi: 10.1016/j.expthermflusci.2017.02.002 80 PAWAR, S.S.; SUNNAPWAR, V.K.; TAGALPALLEWAR, A.R. Development of experimental heat transfer correlations using Newtonian fluids in helical coils. Heat Mass Transfer, 2015. doi: 10.1007/00231-015-1544-0 P&A [20--?]. Dispon?vel em: <http://www.glossary.oilfield.slb.com/Terms/p/pa.aspx>. Acesso em: 25 nov. 2015. RAO, B. Coiled tubing hydraulics modeling. CTES, L.C., Tech Note, 1999. RAO, B.N. Friction factors for turbulent flow on non-newtonian fluids in coiled tubing. SPE, Houston, Texas, SPE 74847, April 2002. SCHMIDT, D. F. Warmeubarang and Druckverlust in Rohrshlangen, Chemical Engineering Technology, vol. 13, pp. 781789, 1967. SHAH, S.; LASAT, M. Development of an Environmentally Friendly and Economical Process for Plugging Abandoned Wells (Phase II). EPA, 2003. Dispon?vel em: <http://cfpub.epa.gov/ncer_abstracts/index.cfm/fuseaction/display.highlight/abstract/8743/report/2003>. Acessado em: 25 nov. 2015. SHAH, S.; ZHOU, Y.; BAILEY, M.; HERNANDEZ, J. Correlations to predict frictional pressure loss of hydraulic-fracturing slurry n coiled tubing. SPE Production & Operations, p. 381- 395, August 2009. SHAQLAIH, A.S.; KAMEL, A.H. AIC applications in coiled tubing hydraulics. International Journal of Petroleum and Geoscience Engineering, v. 1, n. 2, p. 62-81, 2013. SHIROMA, P.H. Estudo do comportamento reol?gico de suspens?es aquosas de bentonita e cmc: influ?ncia da concentra??o do NaCl. Disserta??o (Mestrado em Engenharia Qu?mica) - Universidade de S?o Paulo, S?o Paulo, 2012. SILVA, M. G. P.; et al. Avalia??o de equa??es pertinentes aos projetos hidr?ulicos com fluidos de perfura??o, pastas de cimento e fluidos de completa??o no escoamento tubular e anular, Relat?rio T?cnico Interno, n? 675?12009, Vol.1, CENPES/PETROBRAS, 1989. SILVA, R. A. Engenharia de Perfura??o. Santa Catarina, [2009]. Departamento de Automa??o e Sistemas. Universidade Federal de Santa Catarina. Dispon?vel em: < http://user.das.ufsc.br/~plucenio/DAS5946/aula5/Apr_DrRenato_A_Silva.pdf >. Acesso em: 18 nov. 2015. SRINIVASAN, P.S.; NANDAPURKAR, S.S.; HOLLAND, F.A. Pressure Drop and Heat Transfer in Coils, Chemical Engineering Journal, vol. 218, pp. CE113-CE119, 1968. 81 SRINIVASAN, P.S.; NANDAPURKAR, S.S.; HOLLAND, F.A. Friction Factors for Coils; Transactions of the Institution of Chemical Engineers, v. 48, pp. T156-T161, 1970. WHITE, C.M. Streamline flow through curved pipes. Proc. R. Soc. Lond. A, v. 123, n.792, p. 645-663, 1929. WHITE, C.M. Fluid friction and its relation to heat transfer. Trans. Inst. Chem. Eng. (London) 10, p.66?86,1932. XUEJUN, H.; ZHILIN, Q.; QIMIN, L.; TENGFEI, S. Comparative analysis of the pressure loss from the circulation of drilling fluid during micro hole drilling with the use of coiled tubing. Chemistry and Technology of Fuels and Oils, v. 51, n. 4, p. 361-370, 2015. doi: 10.1007/s10553-015-0613-x ZHOU, Y.; SHAH, S.N. Fluid flow in coiled tubing: a critical review and experimental investigation. Canadian International Petroleum Conference. Paper 2002-225, p. 1-15, 2002a. ZHOU, Y.; SHAH, S.N. Non-newtonian fluid flow in coiled tubing: theoretical analysis and experimental verification. SPE, San Antonio, Texas, SPE 77708, 2002b. ZHOU, Y.; SHAH, S.N. New friction factor correlations for non-newtonian fluid flow in coiled tubing. SPE, Melbourne, Australia, SPE 77960, October 2002c. ZHOU, Y.; SHAH, S.N. Rheological properties and frictional pressure loss of drilling, completion, and stimulation fluids in coiled tubing. Journal of Fluids Engineering, v. 126, p. 153-161, March 2004a. doi: 10.1115/1.1669033 ZHOU, Y.; SHAH, S.N. Fluid flow in coiled tubing: a literature review and experimental investigation. Journal of Canadian Petroleum Technology, v. 43, n. 6, p. 52-61, June 2004b. ZHU, Z.Y. CFD simulation in helical coiled tubing. Journal of Applied Science and Engineering, v. 19, n. 3, p. 267-272, 2016. doi: 10.6180/jase.2016.19.3.04flexitubosperda de cargaunidade experimentalcoiled tubingpressure droppilot-scale unitEngenharia Qu?micaEstudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubingThe study of pressure drop in the flow of Newtonian fluids in coiled tubinginfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/masterThesisinfo:eu-repo/semantics/openAccessreponame:Biblioteca Digital de Teses e Dissertações da UFRRJinstname:Universidade Federal Rural do Rio de Janeiro (UFRRJ)instacron:UFRRJTHUMBNAIL2018 - Caroline Eulino Gon?alves Pereira.pdf.jpg2018 - Caroline Eulino Gon?alves Pereira.pdf.jpgimage/jpeg2104http://localhost:8080/tede/bitstream/jspui/4654/4/2018+-+Caroline+Eulino+Gon%C3%A7alves+Pereira.pdf.jpgc4715912a635b5fbde63d2a9b070733fMD54TEXT2018 - Caroline Eulino Gon?alves Pereira.pdf.txt2018 - Caroline Eulino Gon?alves Pereira.pdf.txttext/plain285645http://localhost:8080/tede/bitstream/jspui/4654/3/2018+-+Caroline+Eulino+Gon%C3%A7alves+Pereira.pdf.txt0f3ae4dbfa33e0e40ce4760833626b9bMD53ORIGINAL2018 - Caroline Eulino Gon?alves Pereira.pdf2018 - Caroline Eulino Gon?alves Pereira.pdfapplication/pdf8056840http://localhost:8080/tede/bitstream/jspui/4654/2/2018+-+Caroline+Eulino+Gon%C3%A7alves+Pereira.pdf3d4b05b3e09580f929136ed7683019a5MD52LICENSElicense.txtlicense.txttext/plain; charset=utf-82089http://localhost:8080/tede/bitstream/jspui/4654/1/license.txt7b5ba3d2445355f386edab96125d42b7MD51jspui/46542021-05-18 01:00:27.998oai:localhost: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Biblioteca Digital de Teses e Dissertaçõeshttps://tede.ufrrj.br/PUBhttps://tede.ufrrj.br/oai/requestbibliot@ufrrj.br||bibliot@ufrrj.bropendoar:2021-05-18T04:00:27Biblioteca Digital de Teses e Dissertações da UFRRJ - Universidade Federal Rural do Rio de Janeiro (UFRRJ)false
dc.title.por.fl_str_mv Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
dc.title.alternative.eng.fl_str_mv The study of pressure drop in the flow of Newtonian fluids in coiled tubing
title Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
spellingShingle Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
Pereira, Caroline Eulino Gon?alves
flexitubos
perda de carga
unidade experimental
coiled tubing
pressure drop
pilot-scale unit
Engenharia Qu?mica
title_short Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
title_full Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
title_fullStr Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
title_full_unstemmed Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
title_sort Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing
author Pereira, Caroline Eulino Gon?alves
author_facet Pereira, Caroline Eulino Gon?alves
author_role author
dc.contributor.advisor1.fl_str_mv Scheid, Cl?udia M?riam
dc.contributor.advisor1ID.fl_str_mv 023546317-58
dc.contributor.advisor1Lattes.fl_str_mv http://lattes.cnpq.br/7777291180260276
dc.contributor.advisor-co1.fl_str_mv Cal?ada, Lu?s Am?rico
dc.contributor.referee1.fl_str_mv Scheid, Cl?udia Miriam
dc.contributor.referee2.fl_str_mv Miranda, Cristiane Richard de
dc.contributor.referee3.fl_str_mv Silva, Leonardo Duarte Batista da
dc.contributor.authorID.fl_str_mv 141298987-60
dc.contributor.authorLattes.fl_str_mv http://lattes.cnpq.br/5861902616811620
dc.contributor.author.fl_str_mv Pereira, Caroline Eulino Gon?alves
contributor_str_mv Scheid, Cl?udia M?riam
Cal?ada, Lu?s Am?rico
Scheid, Cl?udia Miriam
Miranda, Cristiane Richard de
Silva, Leonardo Duarte Batista da
dc.subject.por.fl_str_mv flexitubos
perda de carga
unidade experimental
topic flexitubos
perda de carga
unidade experimental
coiled tubing
pressure drop
pilot-scale unit
Engenharia Qu?mica
dc.subject.eng.fl_str_mv coiled tubing
pressure drop
pilot-scale unit
dc.subject.cnpq.fl_str_mv Engenharia Qu?mica
description Coiled tubing system has many uses in the oil industry, among them, the plugging and abandonment (P&A) process, by cementing. This system consists mainly of a long, flexible, continuous steel tube that has part of its length wrapped on a reel while another part is directed to the well by an injector and a rotary table. The use of coiled tubing in the P&A process is extremely important due to the fact it lowers operation time, since the pipe is continuous, which leads to a reduction in cost. Due to the frictional pressure loss and heat transfer which occurs during the flow of the fluid in this system, the physical, chemical, and rheological properties of cement slurries change over time. To avoid the risk of setting the cement slurry before reaching the desired location, additives such as mid-temp retarder is added in excess. As such, the importance of predicting pressure drop is highlighted due to its influence on fluid temperature profile, and, consequently, on the rheological properties of the fluids. Besides that, pressure drop prediction will allow better planning of the required pump pressure. Knowing this, this work focused on predicting pressure drop in the flow of Newtonian fluids in a coiled tubing system. In order to study the fluid flow in coiled tubing system, an experimental unit with 375 meters of wrapped copper tube with ? in diameter, and similarity to an actual coiled tubing system was built. Pressure transmitters were installed in this unit to monitor pressure along tube length. Tests were carried out with water, Newtonian fluid, in the flow range between 0.05 and 0.65 m3/h, in order to predict pressure drop in this coiled tubing system. Flow rate and pressure drop data obtained in the experimental unit allowed the evaluation of critical Reynolds number, friction factor correlations in laminar and turbulent regime, and the influence of the curvature and tube length on pressure drop. A methodology for predicting pressure drop in the coiled tubing system was proposed and the percentage error between the experimental and calculated pressure drop values was less than 5%.
publishDate 2018
dc.date.issued.fl_str_mv 2018-08-30
dc.date.accessioned.fl_str_mv 2021-05-18T03:24:05Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/masterThesis
format masterThesis
status_str publishedVersion
dc.identifier.citation.fl_str_mv Pereira, Caroline Eulino Gon?alves. Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing. 2018. [136 f.]. Disserta??o( Programa de P?s-Gradua??o em Engenharia Qu?mica) - Universidade Federal Rural do Rio de Janeiro, [Serop?dica - RJ] .
dc.identifier.uri.fl_str_mv https://tede.ufrrj.br/jspui/handle/jspui/4654
identifier_str_mv Pereira, Caroline Eulino Gon?alves. Estudo da perda de carga no escoamento de fluidos Newtonianos em coiled tubing. 2018. [136 f.]. Disserta??o( Programa de P?s-Gradua??o em Engenharia Qu?mica) - Universidade Federal Rural do Rio de Janeiro, [Serop?dica - RJ] .
url https://tede.ufrrj.br/jspui/handle/jspui/4654
dc.language.iso.fl_str_mv por
language por
dc.relation.references.por.fl_str_mv ADLER, M. Striimung in gekriimmten rohren, 2.Angew. Math. Mech. 14, p. 257-275, 1934. AG?NCIA NACIONAL DO PETR?LEO (Brasil). Portaria ANP n? 25. Regulamento T?cnico n? 2/2002, de 6 de mar?o de 2002. Procedimentos a serem adotados no abandono de po?os de petr?leo e/ou g?s. Dispon?vel em: <http://nxt.anp.gov.br/NXT/gateway.dll/leg/folder_portarias_anp/portarias_anp_tec/2002/mar%C3%A7o/panp%2025%20-%202002.xml>. Acesso em: 10 dez. 2015. ALI, S. Pressure drop correlations for flow through regular helical coil tubes. Fluid Dynamics Research, v. 28, p. 295-310, 2001. ALI, S.; ZAIDI, A. H. Head loss and critical Reynolds number for flow in ascending equiangular spiral tube coils. Ind. Eng. Chem. Process Des. Dev., v. 18, n. 2, p. 349-353, 1979. AZOUZ, I.; SHAH, S. N.; VINOD, P. S.; LORD, D. L. Experimental investigation of frictional pressure losses in coiled tubing. SPE Production & Facilities, p. 91-96, 1998. BAKER HUGHES. Drilling fluids reference manual. Baker Hughes drilling fluis, 2006. BARUA, S. N. On Secondary Flow in Stationary Curved Pipes, The Quarterly Journal of Mechanics and Applied Mathematics, v. 6, pp. 61-77, 1963. Bridge Plugs [20--?]. Dispon?vel em: <http://www.shopbakerhughes.com/completion-tools/plugs-retainers/bridge-plugs.html>. Acesso em: 26 nov. 2015. BRODKEY, R. S. The phenomena of fluid motions. Dover Publications, Inc. New York, 1967. CAMPBELL, K.; SMITH, R. Permanent Well Abandonment. SPE, Tech 101, v. 9, n. 3, p. 25-27, 2013. CASTIGLIA, F.; CHIOVARO, P.; CIOFALO, M.; DI LIBERTO, M.; DI MAIO, P. A.; DI PIAZZA, I.; GIARDINA, M.; MASCARI, F.; MORANA, G.; VELLA, G. Modelling flow and heat transfer in helically coiled pipes. Part 3: Assessment of turbulence models, parametrical study and proposed correlations for fully turbulent flow in the case of zero pitch. Report Ricerca di Sistema Elettrico, Accordo di Programma Ministero dello Sviluppo Economico - ENEA, 2010. Cement Retainers [20--?]. Dispon?vel em: <http://www.shopbakerhughes.com/completion-tools/plugs-retainers/cement-retainers.html>. Acesso em: 26 nov. 2015. CIONCOLINI, A.; SANTINI, A. An experimental investigation regarding the laminar to turbulent flow transition in helically coiled pipes. Experimental Thermal and Fluid Science, v. 30, p. 367-380, 2006. doi: 10.1016/j.expthermflusci.2005.08.005 77 COILED Tubing Equipment [20--?]. Dispon?vel em: <https://www.emaze.com/@ALZTCZQ>. Acesso em: 9 ago. 2018. CUMING, H. G. The secondary flow in curved pipes. Aeronautical Research Council Reports and Memoranda, 1955. DEAN, W. R. Note on the motion of Fluid in a Curved Pipe. Philosophical Magazine. v. 20, p. 208-223, July 1927. DEAN, W. R. The stream-line motion of fluid in a Curved Pipe. Philosophical Magazine and Journal of Science, v. 5, n. 30, p. 673-695, April 1928. DENNIS, S. C. R. Calculation of the Steady Flow Through a Curved Tube Using a New Finite- Difference Scheme, Journal of Fluid Mechanics, v. 99, pp. 449-467, 1980. DRILLING Formula. Flow Regime and Critical Reynolds Number for Drilling Hydraulics, maio 2012. Dispon?vel em: < http://www.drillingformulas.com/flow-regime-and-critical-reynolds-number-for-drilling-hydraulics/>. Acesso em: 14 ago. 2018 EUSTICE, J. Flow of curved pipes. Proceedings of the Royal Society of London. Series A. Containing Papers of Mathematical and Physical Character, p. 107-118, 1910. EUSTICE, J. Experiments of streamline motion in curved pipes, Proc. R. Soc. A-85, p. 119-131, 1911. FOX, R. W.; MCDONALD, A. T.; PRITCHARD, P. J. Introdu??o ? Mec?nica dos Fluidos. 6. ed. Rio de Janeiro: Livros T?cnicos e Cient?ficos Editora S.a., 2006. GHOBADI, M.; MUZICHKA, Y.S. A review of heat transfer and pressure drop correlations for laminar flow in curved circular ducts. Heat Transfer Engineering, 2015. doi: 10.1080/01457632.2015.1089735 GHORBANI, N.; TAHERIAN, H.; GORJI, M.; MIRGOLBABAEI, H. An experimental study of thermal performance of shell-and-coil heat exchangers. International Communications in Heat and Mass Transfer, v. 37, p. 775-781, 2010. doi: 10.1016/j.icheatmasstransfer.2010.02.001 GON?ALO, R. Opera??es Rotineiras numa Sonda [20--?]. Dispon?vel em: < http://www.ebah.com.br/content/ABAAAfjyIAA/operacoes-rotineiras-numa-sonda>. Acesso em: 10 dez. 2015. GRAND DUKE, Drill Pipe. 2015. Dispon?vel em: < http://grandduke-rus.com/en/catalog/oil-pipes/drill-pipe/> Acesso em: 12 ago. 2018. GREEN, D. W.; PERRY, R. H. Perry?s Chemical Engineers? Handbook. 8. ed. EUA: McGraw-Hill, 2008. 78 GRINDLEY, J.H.; GIBSON, A.H. On the frictional resistance to the ow of air through a pipe. Proc. R. Soc. London, Ser. A 80, p. 114?139, 1908 GROVER, J; BARDEN, A. Coiled tubing offers pre-commissioning tool for deepwater pipelines. 2015. Dispon?vel em: <http://www.offshore-mag.com/articles/print/volume-75/issue-6/pipelines-flowlines/coiled-tubing-offers-pre-commissioning-tool-for-deepwater-pipelines.html> Acesso em: set. 2017. GUAN, F.; MA, W.; TU, Y; ZHOU, C.; FENG, D.; ZHOU, B. An Experimental Study of Flow Behavior of Coiled Tubing Drilling System. Hindawi Publishing Corporation, ID 935159, 2014 HASAN, W. K. Transient three-dimensional numerical analysis of forced convection flow and heat transfer in a curved pipe. IOSR Journal of Mechanical and Civil Engineering, v. 9, n. 5, p. 47-57, 2013. HOQUE, M.; ALAM, M. Effects of Dean number and curvature on fluid flow through a curved pipe with magnetic field. Procedia Engineering, v. 56, p. 245-253, 2013. doi: 10.1016/j.proeng.2013.03.114 ITO, H., Friction Factors for Turbulent Flow in Curved Pipes; Journal of Basic Engineering, pp. 123-134, jun. 1959. ITO, H. Laminar flow in curved pipes. ZAMM, v. 49, n. 11, p. 653-663, 1969. JAIN, S.; SINGHAL, N.; SHAH, S. N. Effect of Coiled Tubing Curvature on Friction Pressure Loss of Newtonian and Non-Newtonian Fluids ? Experimental and Simulation Study. SPE, Houston, Texas, set. 2004. KUBAIR, V.; VARRIER, C. B. S. Pressure Drop for Liquid Flow in Helical Coils, Transaction of Indian Institute of Chemical Engineering, vol. 14, pp. 93-97, 1961/2. LIU, S., and MASLIYAH, J. H., A Decoupling Numerical Method for Fluid Flow,International Journal of Numerical Methods Fluids, vol. 16, no. 8, pp. 659-682, 1993. MACHADO, J. C. V. Reologia e escoamento de fluidos. 1. ed. Editora Interci?ncia, p. 1-12, 39-44, 95-107, 2002. McCANN, R. C.; ISLAS, C. G. Frictional Pressure Loss During Turbulent Flow in Coiled Tubing. SPE/ICoTA, Texas, SPE 36345, fev.1996. McCONALOGUE, D.J.; SRIVASTAVA, R.S. Motion of a Fluid in a Curved Tube; Proceedings of Royal Society of London, Series A, v. 307, p. 37-53, 1968. 79 MEDJANI, B.; SHAH, S.N. A new approach for predicting frictional pressure losses of non-newtonian fluids in coiled tubing. SPE, Denver, Colorado, SPE 60319, march 2000. MESA Rotativa para Sonda de Perfura??o [20--?]. Dispon?vel em: <http://portuguese.alibaba.com/product-gs/zp205-rotary-table-for-drilling-rig-457376327.html>. Acesso em: 10 dez. 2015. MISHRA, P. and GUPTA, S.N., Momentum Transfer in Curved Pipes. I. Newtonian Fluids, II. Non-Newtonian Fluids; Industrial and Engineering Chemistry Process Design and Development, v. 18, pp. 130-42, 1979. MORI, Y.; NAKAYAMA, W. Study on forced convective heat transfer in curved pipes. Int. J. Heat Mass Transfer., v. 8, p. 67-82, 1965. NAPHON, P.; WONGWISES, S. A review of flow and heat transfer characteristics in curved tubes. Renewable and Sustainable Energy Reviews, v. 10, p. 463-490, 2006. doi: 10.1016/j.rser.2004.09.014 NELSON, E. B. Well Cementing, Houston: Schlumberger Educational Services, 1990. N?BREGA, A. K. C. Formula??o de Pastas Ciment?cias com Adi??o de Suspens?es de Quitosana para Cimenta??o de Po?os de Petr?leo. 2009. 134 f. Tese (Doutorado em Ci?ncia e Engenharia de Materiais) - Curso de P?s-Gradua??o em Ci?ncia e Engenharia de Materiais , Universidade Federal do Rio Grande do Norte, Natal, 2009. NPC. Plugging and Abandonment of Oil and Gas Wells. NPC North American Resource Development Study, artigo #2-25, 15 set. 2011. Dispon?vel em: < https://www.npc.org/Prudent_Development-Topic_Papers/2-25_Well_Plugging_and_Abandonment_Paper.pdf>. Acesso em: 14 nov. 2015. OCHOA, M.V. Analysis of drilling fluid rheology and tool joint effect to reduce erros in hydraulics calculations. Dissertation (Doctor of Philosophy - Petroleum Engineering) - Texas A&M University, ago. 2006. PACIFIC Northwest National Laboratory. Sensors & Electronics - Macro Property Measurements: Complex Fluid Type Governs Behavior, jul. 2011. Dispon?vel em: <https://technet.pnnl.gov/sensors/macro/projects/es4FIType.stm >. Acesso em: 13 ago. 2018. PARAISO, E. C. H. Estudo do Escoamento de Pasta de Cimento em Dutos Circulares e Anulares Conc?ntricos. 2011. 110 f. Disserta??o (Mestrado em Engenharia Qu?mica) - Curso de P?s-Gradua??o em Engenharia Qu?mica, Universidade Federal Rural do Rio de Janeiro, Rio de Janeiro, 2011. PATIL, R.H. Experimental studies on heat transfer to newtonian fluids through spiral coils. Experimental Thermal and Fluid Science, 2017. doi: 10.1016/j.expthermflusci.2017.02.002 80 PAWAR, S.S.; SUNNAPWAR, V.K.; TAGALPALLEWAR, A.R. Development of experimental heat transfer correlations using Newtonian fluids in helical coils. Heat Mass Transfer, 2015. doi: 10.1007/00231-015-1544-0 P&A [20--?]. Dispon?vel em: <http://www.glossary.oilfield.slb.com/Terms/p/pa.aspx>. Acesso em: 25 nov. 2015. RAO, B. Coiled tubing hydraulics modeling. CTES, L.C., Tech Note, 1999. RAO, B.N. Friction factors for turbulent flow on non-newtonian fluids in coiled tubing. SPE, Houston, Texas, SPE 74847, April 2002. SCHMIDT, D. F. Warmeubarang and Druckverlust in Rohrshlangen, Chemical Engineering Technology, vol. 13, pp. 781789, 1967. SHAH, S.; LASAT, M. Development of an Environmentally Friendly and Economical Process for Plugging Abandoned Wells (Phase II). EPA, 2003. Dispon?vel em: <http://cfpub.epa.gov/ncer_abstracts/index.cfm/fuseaction/display.highlight/abstract/8743/report/2003>. Acessado em: 25 nov. 2015. SHAH, S.; ZHOU, Y.; BAILEY, M.; HERNANDEZ, J. Correlations to predict frictional pressure loss of hydraulic-fracturing slurry n coiled tubing. SPE Production & Operations, p. 381- 395, August 2009. SHAQLAIH, A.S.; KAMEL, A.H. AIC applications in coiled tubing hydraulics. International Journal of Petroleum and Geoscience Engineering, v. 1, n. 2, p. 62-81, 2013. SHIROMA, P.H. Estudo do comportamento reol?gico de suspens?es aquosas de bentonita e cmc: influ?ncia da concentra??o do NaCl. Disserta??o (Mestrado em Engenharia Qu?mica) - Universidade de S?o Paulo, S?o Paulo, 2012. SILVA, M. G. P.; et al. Avalia??o de equa??es pertinentes aos projetos hidr?ulicos com fluidos de perfura??o, pastas de cimento e fluidos de completa??o no escoamento tubular e anular, Relat?rio T?cnico Interno, n? 675?12009, Vol.1, CENPES/PETROBRAS, 1989. SILVA, R. A. Engenharia de Perfura??o. Santa Catarina, [2009]. Departamento de Automa??o e Sistemas. Universidade Federal de Santa Catarina. Dispon?vel em: < http://user.das.ufsc.br/~plucenio/DAS5946/aula5/Apr_DrRenato_A_Silva.pdf >. Acesso em: 18 nov. 2015. SRINIVASAN, P.S.; NANDAPURKAR, S.S.; HOLLAND, F.A. Pressure Drop and Heat Transfer in Coils, Chemical Engineering Journal, vol. 218, pp. CE113-CE119, 1968. 81 SRINIVASAN, P.S.; NANDAPURKAR, S.S.; HOLLAND, F.A. Friction Factors for Coils; Transactions of the Institution of Chemical Engineers, v. 48, pp. T156-T161, 1970. WHITE, C.M. Streamline flow through curved pipes. Proc. R. Soc. Lond. A, v. 123, n.792, p. 645-663, 1929. WHITE, C.M. Fluid friction and its relation to heat transfer. Trans. Inst. Chem. Eng. (London) 10, p.66?86,1932. XUEJUN, H.; ZHILIN, Q.; QIMIN, L.; TENGFEI, S. Comparative analysis of the pressure loss from the circulation of drilling fluid during micro hole drilling with the use of coiled tubing. Chemistry and Technology of Fuels and Oils, v. 51, n. 4, p. 361-370, 2015. doi: 10.1007/s10553-015-0613-x ZHOU, Y.; SHAH, S.N. Fluid flow in coiled tubing: a critical review and experimental investigation. Canadian International Petroleum Conference. Paper 2002-225, p. 1-15, 2002a. ZHOU, Y.; SHAH, S.N. Non-newtonian fluid flow in coiled tubing: theoretical analysis and experimental verification. SPE, San Antonio, Texas, SPE 77708, 2002b. ZHOU, Y.; SHAH, S.N. New friction factor correlations for non-newtonian fluid flow in coiled tubing. SPE, Melbourne, Australia, SPE 77960, October 2002c. ZHOU, Y.; SHAH, S.N. Rheological properties and frictional pressure loss of drilling, completion, and stimulation fluids in coiled tubing. Journal of Fluids Engineering, v. 126, p. 153-161, March 2004a. doi: 10.1115/1.1669033 ZHOU, Y.; SHAH, S.N. Fluid flow in coiled tubing: a literature review and experimental investigation. Journal of Canadian Petroleum Technology, v. 43, n. 6, p. 52-61, June 2004b. ZHU, Z.Y. CFD simulation in helical coiled tubing. Journal of Applied Science and Engineering, v. 19, n. 3, p. 267-272, 2016. doi: 10.6180/jase.2016.19.3.04
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.format.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv Universidade Federal Rural do Rio de Janeiro
dc.publisher.program.fl_str_mv Programa de P?s-Gradua??o em Engenharia Qu?mica
dc.publisher.initials.fl_str_mv UFRRJ
dc.publisher.country.fl_str_mv Brasil
dc.publisher.department.fl_str_mv Instituto de Tecnologia
publisher.none.fl_str_mv Universidade Federal Rural do Rio de Janeiro
dc.source.none.fl_str_mv reponame:Biblioteca Digital de Teses e Dissertações da UFRRJ
instname:Universidade Federal Rural do Rio de Janeiro (UFRRJ)
instacron:UFRRJ
instname_str Universidade Federal Rural do Rio de Janeiro (UFRRJ)
instacron_str UFRRJ
institution UFRRJ
reponame_str Biblioteca Digital de Teses e Dissertações da UFRRJ
collection Biblioteca Digital de Teses e Dissertações da UFRRJ
bitstream.url.fl_str_mv http://localhost:8080/tede/bitstream/jspui/4654/4/2018+-+Caroline+Eulino+Gon%C3%A7alves+Pereira.pdf.jpg
http://localhost:8080/tede/bitstream/jspui/4654/3/2018+-+Caroline+Eulino+Gon%C3%A7alves+Pereira.pdf.txt
http://localhost:8080/tede/bitstream/jspui/4654/2/2018+-+Caroline+Eulino+Gon%C3%A7alves+Pereira.pdf
http://localhost:8080/tede/bitstream/jspui/4654/1/license.txt
bitstream.checksum.fl_str_mv c4715912a635b5fbde63d2a9b070733f
0f3ae4dbfa33e0e40ce4760833626b9b
3d4b05b3e09580f929136ed7683019a5
7b5ba3d2445355f386edab96125d42b7
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
MD5
MD5
repository.name.fl_str_mv Biblioteca Digital de Teses e Dissertações da UFRRJ - Universidade Federal Rural do Rio de Janeiro (UFRRJ)
repository.mail.fl_str_mv bibliot@ufrrj.br||bibliot@ufrrj.br
_version_ 1800313526154166272