Open Access
Issue
E3S Web of Conf.
Volume 405, 2023
2023 International Conference on Sustainable Technologies in Civil and Environmental Engineering (ICSTCE 2023)
Article Number 02022
Number of page(s) 15
Section Renewable Energy & Electrical Technology
DOI https://doi.org/10.1051/e3sconf/202340502022
Published online 26 July 2023
  1. L. A. Alcázar-Vara and I. R. Cortés-Monroy. Drilling Fluids for Deepwater Fields: An Overview, Recent Insights in Petroleum Science and Engineering, Mansoor Zoveidavianpoor, IntechOpen (2017). Available from: https://www.intechopen.com/books/recent-insights-in-petroleum-science-and-engineering/drilling-fluids-for-deepwater-fields-an-overview [Google Scholar]
  2. A. Fadairo, O. Falode, C. Ako, A. Adeyemi and A. Ameloko. Novel Formulation of Environmentally Friendly Oil Based Drilling Mud, New Technologies in the Oil and Gas Industry, Jorge Salgado Gomes, IntechOpen (2012). Available from: https://www.intechopen.com/books/new-technologies-in-the-oil-and-gas-industry/novel-formulation-of-environmentally-friendly-oil-based-drilling-mud [Google Scholar]
  3. W.A. Ahmed, E. Kalkan. Drilling Fluids; Types, Formation Choice and Environmental Impact. International Journal of Latest Technology in Engineering, Management & Applied Science (IJLTEMAS) Volume VIII, Issue XII, 66-71 (2019). [Google Scholar]
  4. A.M. Alsabagha, M.I., Abdoua, A.A. Khalilb, H.E. Ahmeda, A.A.A. Boulrousa. Investigation of some locally water-soluble natural polymers as circulation loss control agents during oil fields drilling. Egyptian Journal of Petroleum, 23(1): 27-34 (2014). [CrossRef] [Google Scholar]
  5. S. Hussein, B. Qadir, I. Sharbazheri, K. Mahmood, T. Ubaid, T. Adiel. Comparison between the Effect of Local Katira Gum and Xanthan Gum on the Rheological Properties of Water-based Drilling Fluids. UHD Journal of Science and Technology, 4(2), 18-27 (2020). [CrossRef] [Google Scholar]
  6. D. Soto, O. León, J. Urdaneta, A. Muñoz-Bonilla and M. Fernández-García. Modified Starch as a Filter Controller in Water-Based Drilling Fluids.J. Materials, 13, 2794(2020). [CrossRef] [Google Scholar]
  7. M. O. Jimoh, T. O. Salawudeen, A. O Arinkoola. & M.O. Daramola. Rheological study of a new water-based drilling fluid using Ubakala clay in the presence of natural polymers. Chemical Engineering communications. Published online 11 June 2020. [Google Scholar]
  8. S. Haider, M.-Z. Messaoud-Boureghda, A. Aknouche, L. Hammadi and B. Safi. An ecological water-based drilling mud (WBM) with low cost: substitution of polymers by wood wastes. Journal of Petroleum Exploration and Production Technology, 9, 307–313 (2019). [CrossRef] [Google Scholar]
  9. K. A. Galindo, W. Zha, H. Zhou, J.P. Deville. High temperature, high-performance water-based drilling fluid for extreme high-temperature wells. Paper presented at The SPE international symposium on oilfield chemistry, The Woodlands, Texas, USA (2015). [Google Scholar]
  10. H. Mao, W. Wang, Y. Ma & Y. Huang. Synthesis, characterization and properties of an anionic polymer for water-based drilling fluid as an anti-high temperature and anti-salt contamination fluid loss control additive. Polymer Bulletin, Published online (11 May 2020). [Google Scholar]
  11. Q. Chuab and L. Lin. Effect of molecular flexibility on the rheological and filtration properties of synthetic polymers used as fluid loss additives in water-based drilling fluid. RSC Adv., 9, 8608-8619 (2019). [CrossRef] [Google Scholar]
  12. S. Sepehri, R. Soleyman, A. Varamesh, M. Valizadeh, A. Nasiri. Effect of synthetic water-soluble polymers on the properties of the heavy water-based drilling fluid at high pressure-high temperature (HPHT) conditions. Journal of Petroleum Science and Engineering, 166, 850-856 (2018). [CrossRef] [Google Scholar]
  13. B.A. Hamad, M. He, M. Xu, W. Liu, M. Mpelwa, S. Tang, L. Jin, and J. A. Song. Novel Amphoteric Polymer as a Rheology Enhancer and Fluid-Loss Control Agent for Water-Based Drilling Muds at Elevated Temperatures. ACS Omega, 5, 15, 8483–8495(2020). [CrossRef] [PubMed] [Google Scholar]
  14. O.U. Nwosu, C. M. Ewulonu. Rheological Behaviour of Eco-friendly Drilling Fluids from Biopolymers. Journal of Polymer and Biopolymer Physics Chemistry, 2(3): 50-54(2014). [Google Scholar]
  15. H. M. Ahmad, M.S. Kamal, S.M.S. Hussain, and M. Al-Harthi. Synthesis of novel polymer nanocomposite for water- based drilling fluids. AIP Conference Proceedings 2205, 020057(2020). [CrossRef] [Google Scholar]
  16. Alsaba M.T., Al Dushaishi M.F. & Abbas A.K.A. (2020). comprehensive review of nanoparticles applications in the oil and gas industry. Journal of Petroleum Exploration and Production Technology, 10, 1389–1399. [CrossRef] [Google Scholar]
  17. S. Mokhatab, M.A. Fresky and M.R. Islam. Applications of nanotechnology in oil and gas E and P. J. Pet. Technol., 58: 48-53 (2006). [CrossRef] [Google Scholar]
  18. P.X. Tran and D.K. Lyons. Nanofluids for use as ultra-deep drilling fluids. R&D Facts National Energy Technology Laboratory (2007). [Google Scholar]
  19. X. Kong and M. Ohadi. Applications of micro and nano technologies in the oil and gas industry: Overview of the recent progress. Proceedings of the Abu Dhabi International Petroleum Exhibition and Conference, November 1-4, 2010, Society of Petroleum Engineers, UAE. [Google Scholar]
  20. C. Cui, Y. Li and Z. Yuan. Study and Application of Nanomaterials in Drilling Fluids. Advanced Materials Research (Volumes 535-537), 323-328 (2012). [CrossRef] [Google Scholar]
  21. G.R. Seetharaman and J. S. Sangwai. Effect of Nanoparticles on the Performance of Drilling Fluids. Chapter in Nanotechnology for Energy and Environmental Engineering. Springer International Publishing (2020). [Google Scholar]
  22. R. Rafati, S.R. Smith, A.S. Haddad, R. Novara, H. Hamidi. Effect of nanoparticles on the modifications of drilling fluids properties: A review of recent advances. Journal of Petroleum Science and Engineering, 161, 61-76 (2018). [CrossRef] [Google Scholar]
  23. G. Cheraghian. Application of Nano-Particles of Clay to Improve Drilling Fluid. International J. of Nanoscience and Nanotechnology,13 (2), 177-186 (2017). [Google Scholar]
  24. M.S. Al Ruqeishi, Y. Al Salmi and T. Mohiuddin. Nanoparticles as Drilling Fluids Rheological Properties Modifiers. Progress Petrochem Sci.1(5)97-103(2018). [CrossRef] [Google Scholar]
  25. E. Kusrini, B. Suseno, M. Khalil, and A. Usman. Study of the use of nanomaterials as drilling mud additives. E3S Web of Conferences 67, 02007 (2018). [CrossRef] [EDP Sciences] [Google Scholar]
  26. M.N. Agista, K. Guo, and Z. Yu. A State-of-the-Art Review of Nanoparticles Application in Petroleum with a Focus on Enhanced Oil Recovery. Appl. Sci. 8, 871(2018). [CrossRef] [Google Scholar]
  27. F. A Albadran and I.M. Kamal. Synthesize of Green Silver Nanoparticles by One Pot Microwave-Assisted Technique: Modeling and Optimization. Periodicals of Engineering and Natural Sciences, 8(3), 1591-1599 (2020). [Google Scholar]
  28. A.A. Abed and I. Kamal, Factorial Design for Studying the Properties of Recycled Aggregate Concrete Exposed to Aggressive Media. J. Engineering Research, 9, (2021). [Google Scholar]
  29. S. Ahmad and I. Kamal. Electrical Resistivity and Compressive Strength of Cement Mortar Based on Green Magnetite Nanoparticles and Wastes from Steel Industry. Case Studies in Construction Materials, 17, e01712 (2022). [CrossRef] [Google Scholar]
  30. C. Omurlu, H. Pham, Q. P. Nguyen. Interaction of surface-modified silica nanoparticles with clay minerals. Applied Nanoscience, 6, 1167–1173 (2016). [CrossRef] [Google Scholar]
  31. E.M. Hotze, T. Phenrat, and G. V. Lowry. Nanoparticle Aggregation: Challenges to Understanding Transport and Reactivity in the Environment. J. Environ. Qual. 39:1909–1924 (2010). [CrossRef] [PubMed] [Google Scholar]
  32. N.S. Al-Zubaidi, A. A. Alwasiti, D. Mahmood. A comparison of nano bentonite and some nano chemical additives to improve drilling fluid using local clay and commercial bentonites. Egyptian Journal of Petroleum, 26 (3), 811-818 (2017). [CrossRef] [Google Scholar]
  33. S.W. Cui. Food Carbohydrates: Chemistry, physical properties and applications. Taylor and Francis. London. Pp. 289–290 (2005). [Google Scholar]
  34. F. J. Adewale, P. A. L Anawe, O. Abioye, F. B. Elehinafe. Selecting the Most Appropriate Model for Rheological Characterization of Synthetic Based Drilling Mud. International Journal of Applied Engineering Research, 12(18) 7614-7629 (2017). [Google Scholar]
  35. J.C. Misraa, S.D. Adhikary. Flow of a Bingham fluid in a porous bed under the action of a magnetic field: Application to magneto-hemorheology. Engineering Science and Technology, an International Journal, 20 (3), 973-981 (2017). [CrossRef] [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.