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Nanomateriały jako perspektywiczne składniki płynów wiertniczych

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Warianty tytułu
EN
Nanomaterials as prospective components of drilling fluids
Języki publikacji
PL
Abstrakty
PL
Płyny wiertnicze są kluczowym elementem technologii wierceń, nie tylko w przemyśle naftowym i gazowniczym, ale również w szeroko pojętej geotermii (płytka i głęboka geotermia), technologiach bezwykopowych i wielu innych. W artykule omówiono zastosowanie wybranych nanomateriałów jako perspektywicznych składników płuczek wiertniczych, zwłaszcza stosowanych w warunkach wysokiego ciśnienia i temperatury (HPHT). Obecny rozwój nanotechnologii otwiera nowe możliwości dla branży płynów wiertniczych. Dzięki zastosowaniu nanomateriałów właściwości płynów wiertniczych mogą mieć bezpośredni wpływ na zwiększenia efektywność wierceń, stabilność otworów wiertniczych, minimalizację wpływu na środowisko naturalne, ale także mogą przyczynić się do poprawy bezpieczeństwa prowadzonych operacji wiertniczych.
EN
Drilling fluids are a key element of drilling technology, not only in the oil and gas industry, but also in geothermal energy (shallow and deep geothermal), trenchless technologies and many others. The article discusses the use of selected nanomaterials as prospective components of drilling fluids, especially those used under high pressure and temperature (HPHT) conditions. The current development of nanotechnology opens up new opportunities for the drilling fluid industry. Thanks to the use of nanomaterials, the properties of drilling fluids can have a direct impact on increasing drilling efficiency, stability of boreholes, minimizing the impact on the natural environment, but can also contribute to improving the safety of drilling operations.
Twórcy
  • Chemfor Poland Sp. z o.o.
  • Akademia Górniczo-Hutnicza im. Stanisława Staszica w Krakowie al. Mickiewicza 30 30-059 Kraków
Bibliografia
  • 1. Wang, X., Wu, P., Chen, Y., Zhang, E., Ye, X.,Huang, Q., Wang, R., Wang, G., & Xie, G. (2024). “Research on Nanoparticle-Enhanced Cooling Technology for Oil-Based Drilling Fluids.”Applied Sciences
  • 2. Alkalbani, A. M., & Chala, G. T. (2024). “A Comprehensive Review of Nanotechnology Applications in Oil and Gas Well Drilling Operations.
  • 3. Al-Yasiri, M. S., & Al-Sallami, W. T. (2015). “How the drilling fluids can be made more efficient by using nanomaterials.
  • 4. M.K. Chaudhury, “Spread the word about nanofluids”, Nature, 423 (6936) (2003), pp. 131-132
  • 5. Rabia Ikram, Badrul Mohamed Jan, Jana Vejpravova, Towards recent tendencies in drilling fluids: application of carbon-based nanomaterials, Journal of Materials Research and Technology, Volume 15, November-December 2021, Pages 3733-3758, https://doi.org/10.1016/j.jmrt.2021.09.114
  • 6. StatNano, “Application of Nanotechnology in Petroleum Industry Based on Active Enterprises”. January 2016
  • 7. Joshi R.K., et al. “Precise and Ultrafast Molecular Sieving Through Graphene Oxide Membranes”. Science, February 14, 2014 DOI:10.1126/science.1245711
  • 8. Jamrozik A., Wiśniowski R., Ziaja J., Studies on the possibility of applying nanoparticles in drilling fluid technologies, 16th International Multidisciplinary Scientific Geoconference: Science and Technologies in Geology, Exploration and Mining: 30 June - 6 July, 2016, Albena, Bulgaria: Conference Proceedings, Vol. 3, Hydrogeology, Engineering Geology and Geotechnics, Applied And Environmental Geophysics, Oil And Gas Exploration. Sofia: STEF92 Technology Ltd., cop. 2016
  • 9. Kosynkin DV, Ceriotti G, Wilson KC, Lomeda JR, Scorsone JT, Patel AD, et al. “Graphene oxide as a high-performance fluid loss-control additive in water-based drilling flu-ids”. ACS Appl.Mater Interfaces 2011;4(1):222-227
  • 10. Camilo Zamora-Ledezma, Christian Narváez-Muñoz, Víctor H. Guerrero, Ernesto Medina, and Luis Meseguer-Olmo, “Nanofluid Formulations Based on Two-Dimensional Nanoparticles”, Their Performance, and Potential Application as Water-Based Drilling Fluids, ACS Omega 2022 7 (24), 20457-20476 DOI:10.1021/acsomega.2c02082
  • 11. Jamrozik A., “Graphene and graphene oxide in the oil and gas industry”, AGH Drilling, Oil, Gas - 2017 vol. 34 no. 3, s. 731–744
  • 12. Xia, P., Pan, Y. Effects of nanosilica on the properties of brine-base drilling fluid. Sci Rep 13, 20462 (2023). https://doi.org/10.1038/s41598-023-47932-w
  • 13. Maagi, M. T., Lupyana, S. D. & Gu, J. Effect of nano-SiO2, nano-TiO2 and nano-Al2O3 addition on fluid loss in oil-well cement slurry. Int. J. Concr. Struct. Mater. 13, 1–6 (2019)
  • 14. Xinliang Li, Kai Wang, Yingjun Lu, Xiulun Shen, Hehai Zhang, Jianghao Peng, Shangli Jiang, Ming Duan, Compatibility and efficiency of hydrophilic/hydrophobic nano silica as rheological modifiers and fluid loss reducers in water-based drilling fluids, Geoenergy Science and Engineering, Volume 234, 2024,https://doi.org/10.1016/j.geoen.2023.212628
  • 15. Wang, Hao, Li, Ming, Wu, Jie, Yan, Ping, Liu, Gang, Sun, Kun, Mou, Qiwei and Zhang, Chunhua. “Nano-SiO2/hydroxyethyl cellulose nanocomposite used for 210°C sedimentation control of petroleum drilling fluid” Journal of Polymer Engineering, vol. 42, no. 2, 2022, pp. 163-171. https://doi.org/10.1515/polyeng-2021-0188
  • 16. Prakash, V., Sharma, N. & Bhattacharya, M. “Effect of silica nano particles on the rheological and HTHP filtration properties of environment friendly additive in water-based drilling fluid”. J Petrol Explor Prod Technol 11, 4253–4267 (2021). https://doi.org/10.1007/s13202-021-01305-z
  • 17. Xinliang Li, Kai Wang, Yingjun Lu, Xiulun Shen, Hehai Zhang, Jianghao Peng, Shangli Jiang, Ming Duan, Compatibility and efficiency of hydrophilic/hydrophobic nano silica as rheological modifiers and fluid loss reducers in water-based drilling fluids, Geoenergy Science and Engineering, Volume 234, 2024, https://doi.org/10.1016/j.geoen.2023.212628.
  • 18. M. Danish Haneef, Jamil Abdo, Abdullah Al--Shabibi, HIGH TEMPERATURE AND HIGH PRESSURE NANOCLAY MODIFIED DRILLING FLUIDS, Funchal/Madeira, 23-27 June 2013
  • 19. Abdo J. and Danish M., “Nanoparticles: Promising Solution to Overcome Stern Drilling Problems”, Nanotech Conference and exhibition, Anaheim, California, June, 2010.
  • 20. Elward i Julianne, 1993 Elward-berry, Julianne, Rheologically stable water-based high temperature drilling fluids, United States Patent 5244877,1993
  • 21. Goshtasp Cheraghian, Application of Nano--Particles of Clay to Improve Drilling Fluid, International Journal of Nanoscience and Nanotechnology, Vol. 13, No. 2, June 2017, pp.177-186
  • 22. Cai, J., Chenevert, M.E., Sharma, M.M., Friedheim, J., (2012). “Decreasing Water Invasion Into Atoka Shale Using Nonmodified Silica Nanoparticles”, SPE Drill & Compl., 27: 103-111
  • 23. Suleimanov, B. A., Ismailov, F. S., & Veliyev, E. F. (2011). “Nanofluid for enhanced oil recovery.” Journal of Petroleum Science and Engineering,
  • 24. Vryzas, Z., & Kelessidis, V. C. (2017). “Nano--Based Drilling Fluids: A Review.”
  • 25. Hazlina Husin, Khaled Abdalla Elraies, Hyoung Jin Choi, Zachary Aman, Influence of Graphene Nanoplatelet and Silver Nanoparticle on the Rheological Properties of Water-Based Mud, 2018
  • 26. Maaly Salah Asad, Mohammed Thamer Jaafar, Farhan Lafta Rashid, Hussein Togun, Musaab K. Rasheed, Mudhar A. Al-Obaidi, Qusay Rasheed Al-Amir, Hayder I. Mohammed, Ioannis E. Sarris, Sustainable Drilling Fluids: A Review of Nano-Additives for Improved Performance and Reduced Environmental Impact, 2024)
  • 27. Asad, M. S., Jaafar, M. T., Rashid, F. L., Togun, H., Rasheed, M. K., Al-Obaidi, M. A., Al-Amir, Q. R., Mohammed, H. I., & Sarris, I. E. (2024). “Sustainable Drilling Fluids: A Review of Nano-Additives for Improved Performance and Reduced Environmental Impact.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b26a9836-adb5-4528-bcd2-1b4104d209ae
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