PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Clay minerals – mineralogy and phenomenon of clay swelling in oil & sas industry

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Among the minerals found in the earth's crust, clay minerals are of the widest interest. Due to the specific properties such as plasticity, absorbing and catalytic properties clay minerals are used in many industries (oil & gas, chemistry, pharmacy, refractory technology, ceramics etc.). In drilling, a phenomenon of swelling clays is frequently observed. It has an important impact on the cementing quality. During the last few decades clays have been the subject of research on a scale unprecedented in the history of mineralogy. This paper presents review literature on mineralogy of clay minerals and phenomenon of swelling in oil and gas industry. Unique ion exchange properties and clay swelling mechanisms are also considered.
Słowa kluczowe
Rocznik
Strony
37--55
Opis fizyczny
Bibliogr. 63 poz., rys., tab.
Twórcy
  • Gdansk University of Technology, Department of Materials Science and Welding Engineering, Narutowicza 11/12, 80-233 Gdańsk, Poland
autor
  • Gdansk University of Technology, Department of Materials Science and Welding Engineering, Narutowicza 11/12, 80-233 Gdańsk, Poland
Bibliografia
  • 1. Zvyagin B.B.: Materialy k klassifikatsii glinistykh mineralov (Data on the Classification of Clay Minerals), Izd. Akad. Nauk SSSR, Moscow, 1961.
  • 2. Stoch L.: Minerały Ilaste, Wydawnictwo geologiczne, Warszawa, 1974, 12-17.
  • 3. Henry C. H. Darley, George Robert Gray.: Composition and Properties of Drilling and Completion Fluids, Gulf Professional Publishing; 6 edition August 29, 2011.
  • 4. Krzysiek J, UK Patent: GB 2446742A; 2012.
  • 5. Civan, F., “Effect of Completion Damage on Well Performance,” Workshop 18: Contemporary Oil and Gas Well Completion and Work over Jobs, Petroleum Engineering Summer School, The Inter- University Center, Dubrovnik, Croatia, June 13-17, 2005.
  • 6. Fink, J. K.: Petroleum Engineers Guide to Oil Field Chemicals and Fluids, Gulf Professional Publishing, May 2012 .
  • 7. Durand, C., Onaisi, A., Audibert, A., Forsans, T., Ruffet, C.: Infuence of clays on bore-hole stability: A literature survey: Pt.1: Occurrence of drilling problems physico-chemicaldescription of clays and of their interaction with fuids. Rev. Inst. Franc. Pet. 50 (2), 1995, 187-218.
  • 8. Zhou,Z.J.,Gunter,W.D.,Jonasson,R.G.: Controlling formation damage using clay stabilizers: A review. In: Proceedings Volume-2, no. CIM 95-71, 46th Annu. Cim. Petrol. Soc. Tech. Mtg.(Banff, Can, 5/14-17/95), 1995.
  • 9. Van Oort, E.: Physico-chemical stabilization of shales, in: Proceedings Volume, SPE Oilfeld Chem. Int. Symp. (Houston, 2/18-21/97), 1997, 523-538.
  • 10. Patel, A.D., Stamatakis, E., Davis, E.: Shale hydration inhibition agent and method of use, US Patent 6 247 543, assigned to M I Llc., June 19 2001.
  • 11. Ohen, H.A. and Civan, F.: Simulation of Formation Damage in Petroleum Reservoirs, SPE Advanced Technology Series 1, 1993.
  • 12. Amaefule, J. O., Kersey, D. G., Norman, D. L., and Shannon, P. M.: Advancesin Formation Damage Assessment and Control Strategies, CIM Paper No.88-39-65, Proceedings of the 39th Annual Technical Meeting of PetroleumSociety of CIM and Canadian Gas Processors Association, Calgary, Alberta, June 12-16, 1988.
  • 13. Civan, Faruk; Mechanism of Clay Swelling from Reservoir Formation Damage - Fundamentals, Modeling, Assessment, and Mitigation; Elsevier; 2000.
  • 14. K. Krishna Moha, Ravimadhav N. Vaidyab, Marion G. Reed and H. Scott Fogle,: Colloids and Surfaces A: Physicochemical and Engineering Aspects. Elsevier Science Publishers B.V., Amsterdam; 18 February 1993, 73 (1993) 231-254.
  • 15. Gangopadhyay S.: Engineering Geology; Oxford University Press India, 2013
  • 16. Wentworth C. K., A scale of grade and class terms of clastic sediments. J. Geol. 30, 377 - 392, 1922.
  • 17. Ruhin L. B.: Osnovy Litologii, YoYo Media 1961.
  • 18. Pettijohn F. J., Sedimentary rocks. Harper, New York 1957.
  • 19. Harrison, R.M., Understanding Our Environment - An Introduction to Environmental Chemistry and Pollution (3rd Edition), Royal Society of Chemistry, 1999.
  • 20. Grim, R.E., Clay Mineralogy, McGraw Hill Book Co., New York 1953.
  • 21. Grim, R.E., Applied Clay Mineralogy, McGraw Hill, New York 1962.
  • 22. Marshall, C.E., The Colloid Chemistry of Silicate Minerals, Academic Press, New York 1949.
  • 23. Weaver, C.E., Pollard, L.D., The Chemistry of Clay Minerals, Elsevier Scientific Publ. Co., New York 1973.
  • 24. Serra, O.: Well Logging and Reservoir Evaluation, Editions Technip ,Volume 3, Paris, France, 2007.
  • 25. Grim, R.E,: Clay Mineralogy, International Series in the Earth and Planetary Sciences. F. Press, ed. New York: McGraw-Hill Book Company, 1968
  • 26. Hendricks, S.B., Jefferson, M.E., 1938. Structure of kaolin and talc - pyrophyllite hydrate sand their bearing on water sorption of the clays. Am. Mineral. 23,863-875.
  • 27. MC Murchy R.C.: Structure of chlorites. Proc Leeds Phil. Lit. Soc. Sect. 5, 1934, 102-108.
  • 28. Hughes, R. V.: The Application of Modern Clay Concepts to Oil Field Development, in Drilling and Production Practice 1950, American Petroleum Institute, New York, NY, 1951, 151-167
  • 29. Grim, R. E.: Modern Concepts of Clay Minerals, Jour. Geology, Vol. 50, No. 3, April-May 1942, 225-275.
  • 30. Degens, E. T.: Geochemistry of Sediments, Prentice-Hall, Englewood Cliffs, N.J., 1965.
  • 31. Ezzat, A. M., “Completion Fluids Design Criteria and Current Technology Weak-nesses,” SPE 19434 paper, the SPE Formation Damage Control Symposium held in Lafayette, Louisiana, February 22-23, 1990, 255-266
  • 32. Mancini, E. A., “Characterization of Sandstone Heterogeneity in CarboniferousReservoirs for Increased Recovery of Oil and Gas from Foreland Basins,”Contract No. FG07-90BC14448, in EORDOE/ BC-90/4 Progress Review,64, 79-83, U.S. Department of Energy, Bartlesville, Oklahoma, May 1991,129pp.
  • 33. Stadler P.J.: Influence of crystallographic habit and aggregate structure of authigenic clay minerals on sandstone permeability, Geologic Mijnbouw 53, 1973, 217-220.
  • 34. Sommer F. (1975). Histoire diagtn&ique d'une strie grtseuse de Mer du Nord. Datation de l'introduction des hydrocarbures. Revue lnst. fr. Pdtrole 30, 729-740.
  • 35. Hancock N.J. & Taylor A.M.: Clay mineral diagenesis and oil migration in the Middle Jurassic Brent Sand Formation, J. Geol. Soc. Lond. 135, 1978, 69-72.
  • 36. Goven N., Howe W.F. & Davms D.K.: Nature of authigenic illites in sandstone reservoirs, J. Sedim.Petrol. 50, 1980, p. 761-766.
  • 37. Tovey, N.K.: A selection of scanning electron micrographs of clays, University of Cambridge, Department of Engineering, 1971.
  • 38. Patel, A.D., Stamatakis, E., Davis, E., Friedheim, J.: High performance water based drillingfuids and method of use, US Patent 7 250 390, assigned to M-I L.L.C. (Houston, TX), 31 July 2007.
  • 39. Blachier, C., Michot, L., Bihannic, I., Barr`es, O., Jacquet, A., Mosquet, M.: Adsorption ofpolyamine on clay minerals. J. Colloid Interface Sci. 336 (2), 2009, 599-606.
  • 40. Mehlich, A., 1948, Determination of cation- and anion-exchange properties of soils, Soil Sci. 66, 429-445.
  • 41. Alexiades C., Jackson M. L.: Quantitative determination of vermiculite in soils, Soil Sci. Soc. Amer. Proc. 29, 1965, 522-27
  • 42. Kloppenburg, S., 1997, Kolloidchemische Steuerung der Porosität aggregierter Tonminerale, Dissertation, Universität Kiel.
  • 43. Eslinger, E., Pevear, D, 1988. Clay Minerals for Petroleum Geologists and Engineers. SEPM Short Course Notes No. 22, Society of Economic Paleontologists and Mineralogists, Tulsa 1988.
  • 44. Zhou, Z., “Construction and Application of Clay-Swelling Diagrams by Use of XRD Methods,” JPT, April 1995, 306.
  • 45. Mohan, K. K., and Fogler, H. S., “Colloidally Induced Smecticic Fines Migration: Existance of Microquakes,” AIChE Journal, 43(3), March 1997, 565-576.
  • 46. Norrish, K.,1954.Theswellingofmontmorillonite.Discuss.FaradaySoc.18, 120-134.
  • 47. Collins, E. R.: Flow of Fluids Through Porous Materials, Penn Well Publishing Co., Tulsa, Oklahoma, 1961.
  • 48. Nayak, N. V., Christensen, R. W., Swelling Characteristics of Compacted Expansive Soils, Vol. 19, No. 4, December 1970, 251-261.
  • 49. Chang, F. F. and Civan, F.: Practical Model for Chemically Induced Formation Damage, Journal of Petroleum Science and Engineering, 17(1/2), February 1997, 123-137.
  • 50. Seed, H. B., Woodward, Jr, R. J., and Lundgren, R., “Prediction of Swelling Potential for Compacted Clays,” Journal of Soil Mechanics and Foundation Engineering Division, Proceedings of the American Society of Civil Engineers, 88(SM3), June 1962b, 53-87.
  • 51. Manohar Lal,; Shale Stability: Drilling Fluid Interaction and Shale Strength, Society of Petroleum Engineers Inc, BP Amoco, 1999
  • 52. Beihoffer, T.W., Dorrough, D.S., Schmidt, D.D.: The separation of electrolyte from rheological effects in studies of inhibition of shales with native moisture contents, SPE Paper 18032. IADC/SPE Drilling Conference, Houston, 1988, 2-5 October.
  • 53. Bol, G.M., Wong, S.W., Davidson, C.J., Woodland, D.C.: Borehole stability in shales. Paper SPE24975. SPE European Petroleum Conference, Cannes, 1992, Nov. 16-18.
  • 54. van Oort, E., 2003. On the physical and chemical stability of shales. J. Petr. Sci. Eng. 38, 213-235.
  • 55. Jaber Taheri Shakib, Hossein Jalalifar and Ebrahim Akhgarian,; Wellbore Stability in Shale Formation Using Analytical and Numerical Simulation, Journal of Chemical and Petroleum Engineering, University of Tehran, Vol. 47, No.1, Jun.2013, 51-60
  • 56. Doleschall, S., Milley, G., Paal, T., 1987. Control of clays in fuid reservoirs. In: Proceedings Volume, 4th BASF AG et al Enhanced Oil Recovery Europe Symp. (Hamburg, Ger, 10/27-29/87), 803-812.
  • 57. Ballard, T., Beare, S., Lawless, T., 1993. Mechanisms of shale inhibition with water based muds. In:Proceedings Volume, IBC Tech. Serv. Ltd Prev. Oil Discharge from Drilling Oper. The OptionsConf. (Aberdeen, Scot, 6/23-24/93).
  • 58. Pinnavma T.J.: Intercalated clay catalysts. Science, 220, 1983, 365-371.
  • 59. Diddams P.A., Thomas J.T., Jones W., Baelantine J.A. & Purnell J.H.: Synthesis, characterization, and catalytic activity of beidellite-montmorillonite layered silicas and their pillared analogues, J. Chem. Soc., Chem. Commun. 20, 1984, 1340-1342.
  • 60. Kitutchi E., Maxsuoa T., Ueda I. & Morita Y.: Conversion of trimethylbenzenes over montmorillonites pillared by aluminium and zirconium oxides. Appl. Cat. 16, 1985, 401-410.
  • 61. Zyla M. & Bandosz T.: Montmorillonite from Milowice intercalated with hydroxyl-aluminium oligocations as vapour and gas adsorbent, Min. Polon. 18, 1987, 39-50.
  • 62. Peter A., Ciullo R.T.: Industrial Minerals and their uses A Handbook & Formulary, Noyes Publication, United States, 1996.
  • 63. Brindley G.W., Sempels R.E.: Preparation and properties of some hydroxyl aluminium beidellites, Clay Miner. 12, 1977, 229-236.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e679992b-008f-48e8-8bde-61dc1206b917
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.