Experimental and modelling studies on static sag of solid weighting powders in Polysulfonate workover fluids at high temperature and high pressure

Gui Wang , Jiaqing Wang , Kai Tan

Petroleum ›› 2025, Vol. 11 ›› Issue (1) : 13 -22.

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Petroleum ›› 2025, Vol. 11 ›› Issue (1) :13 -22. DOI: 10.1016/j.petlm.2024.09.001
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Experimental and modelling studies on static sag of solid weighting powders in Polysulfonate workover fluids at high temperature and high pressure
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Abstract

The solid weighting material in a high-density workover fluid is prone to static sag. Existing experimental methods cannot predict the parameters of the settling stability of workover fluids at high temperature and high pressure (HTHP). Therefore, in this study, static settlement experiments were carried out using a novel experimental setup. The experimental setup enables the measurement of the density profile of heavy workover fluids at HTHP. A multi-parameter correlation equation between the sag factor and particle diameter, particle density, base fluid density, workover fluid density and rheological parameters, aging time, temperature, and pressure was obtained using dimensional analysis and multivariate nonlinear regression methods. The results reveal that the settlement stability of the workover fluid decreases with the increase in temperature and pressure. Based on the multi-parameter correlation, the predicted and the measured values were compared and verified. The error between the predicted value and the measured value was within 5%. The average prediction error was 1.68%, and the maximum prediction error was 3.8%. These results reveal that the model proposed in this study can effectively predict the static sedimentation stability of the solid weighted Polysulfonate workover fluids. Furthermore, the proposed correlation can guide the properties adjustment of the workover fluids to achieve the required sag stability. This work provides a new approach to predict and control the sag stability of the solid weighted workover fluids.

Keywords

Workover fluids / Static sag / Dimensional analysis / Correlation / Parameter adjustment

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Gui Wang, Jiaqing Wang, Kai Tan. Experimental and modelling studies on static sag of solid weighting powders in Polysulfonate workover fluids at high temperature and high pressure. Petroleum, 2025, 11(1): 13-22 DOI:10.1016/j.petlm.2024.09.001

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CRediT authorship contribution statement

Gui Wang: Writing - review & editing, Methodology, Conceptualization. Jiaqing Wang: Writing - original draft, Validation, Resources, Methodology. Kai Tan: Writing - original draft, Validation, Conceptualization.

Declaration of competing interest

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Acknowledgment

This work was financed by the Natural Science Foundation of Sichuan Province (No. 2024 NSFSC0204).

References

[1]

S. Adjei, S. Elkaktatny, Y.A. Sokama-Neuyam, K. Sarkodie, J. Atuquaye, Evaluation and remediation techniques for barite sagging: a review, Geoenergy Sci. Eng. 225 (2023) 211731, https://doi.org/10.1016/j.geoen.2023.211731.

[2]

O. Alade, M. Mahmoud, A. Al-Nakhli, Rheological studies and numerical investigation of barite sag potential of drilling fluids with thermochemical fluid additive using computational fluid dynamics, J. Petrol. Sci. Eng. 220 (2023) 111179, https://doi.org/10.1016/j.petrol.2022.111179.

[3]

T.H. Omland, H. Hodne, A. Saasen, S. Mjolhus, P.A. Amundsen, Drilling fluid weight material sedimentation-sedimentation of suspensions, Petrol. Sci. Technol. 31 (2013) 1908-1915, https://doi.org/10.1080/10916466.2010.489085.

[4]

R.R. Rocha, B.F. Oechsler, L.A.C. Meleiro, F.M. Fagundes, F.O. Arouca, Settling of weighting agents in non-Newtonian fluids to off-shore drilling wells: modeling, parameter estimation and analysis of constitutive equations, J. Petrol. Sci. Eng. 184 (2020) 106535, https://doi.org/10.1016/j.petrol.2019.106535.

[5]

T. Vrålstad, A. Saasen, E. Fjar, T. Oia, J.D. Ytrehus, M. Khalifeh, Plug & abandonement of offshore wells: ensuring long-term well integrity and cost-efficiency, J. Petrol. Sci. Eng. 173 (2019) 478-491, https://doi.org/10.1016/j.petrol.2018.10.049.

[6]

J.X. Zang, Advances in Energy Materials and Environment Engineering, CRC Press, 2022, pp. 78-86, https://doi.org/10.1201/9781003332664.

[7]

S. Gautam, C. Guria, V.K. Rajak, A state of the art review on the performance of high-pressure and high-temperature drilling fluids: towards understanding the structure-property relationship of drilling fluid additives, J. Petrol. Sci. Eng. 213 (2022) 110318, https://doi.org/10.1016/j.petrol.2022.110318.

[8]

J.P. Jaimes, O. Farooq, O. Bravo, S. Croy, Y. Nenjerama, Advancements in weight material sag evaluation: a new perspective with advanced laboratory equipment,in: SPE/IADC Drilling Conference and Exhibition, 2024, https://doi.org/10.2118/217714-MS.SPE-217714-MS.

[9]

T.N. Ofei, B. Lund, A. Saasen, S. Sangesland, H. Linga, K.R. Gyland, M. Kawaji, Barite sag measurements, in: SPE/IADC Drilling Conference and Exhibition, 2020, https://doi.org/10.2118/199567-MS.SPE-199567-MS.

[10]

D.T. Jefferson, New procedure helps monitor sag in the field, Paper ASME 91 (1991) 20-24, https://doi.org/10.1115/ETCE2002/DRILL-29032.

[11]

M. Zamora, R. Bell,Improved wellsite test for monitoring barite sag, in: Proceedings of the Aade 2004 Drilling Fluids Conference, Houston, 2004, pp. 6-7. https://www.aade.org/download_file/2497/485.

[12]

T. Omland, A. Saasen, P.A. Amundsen, Detection techniques determining weighting material sag in drilling fluid and relationship to rheology, Annual Transactions-nordic Rheology Society 15 (2007) 277, https://doi.org/10.1515/arh-2007-0045.

[13]

S. Elkatatny, Enhancing the stability of invert emulsion drilling fluid for drilling in high-pressure high-temperature conditions, Energies 11 (2018) 2393, https://doi.org/10.3390/en11092393.

[14]

A. Jamrozik, A. Gonet, J. Fijał, K. Terpiłowski, L. Czekaj, Analysis of waste mud stability, Agh Dril Oil Gas. 31 (2014) 25-37, https://doi.org/10.7494/drill.2014.31.1.25.

[15]

W.Q. Zeng, M. Bouguetta,A comparative assessment of barite SAG evaluation methods, in: SPE Deepwater Drilling and Completions Conference, 2016, https://doi.org/10.2118/180348-MS.SPE-180348-MS.

[16]

N.B.C. Santos, F.M. Fagundes, F.O. Arouca, J.J.R. Damasceno, Sedimentation of solids in drilling fluids used in oil well drilling operations, J. Petrol. Sci. Eng. 162 (2018) 137-142, https://doi.org/10.1016/j.petrol.2017.12.026.

[17]

T.N. Ofei, B. Lund, A. Saasen, Effect of particle number density on rheological properties and barite sag in oil-based drilling fluids, J. Petrol. Sci. Eng. 206 (2021) 108908, https://doi.org/10.1016/j.petrol.2021.108908.

[18]

J.H. Wang, J.Q. Zhang, L.L. Yan, R.C. Cheng, X.X. Ni, H.J. Yang,Prevent barite static sag of oil-based completion fluid in ultra-deep wells, in: International Petroleum Technology Conference, IPTC, 2021, https://doi.org/10.2523/IPTC-21282-MS.IPTC-21282-MS.

[19]

P.A. Bern, E.V. Oort, B. Neustadt, H. Ebeltoft, C. Zurdo, M. Zamora, K.S. Slater, Barite sag: measurement, modeling, and management, SPE Drill. Complet. (2000), https://doi.org/10.2118/62051-PA.SPE-62051-PA.

[20]

P.R. Paslay, U.B. Sathuvalli, M.L. Payne,A phenomenological approach to analysis of barite sag in drilling muds, in: SPE Annual Technical Conference and Exhibition, 2007, https://doi.org/10.2118/110404-MS.SPE-110404-MS.

[21]

Y. Hashemian, S. Miska, M.J. Yu, E.M. Ozbayoglu, N. Takach, B. McLaury, Experimental study and modelling of barite sag in annular flow, J. Can. Petrol. Technol. (2014), https://doi.org/10.2118/173189-PA.SPE-173189-PA.

[22]

S.D. Kulkarni, D.E. Jamison, J.S. Gollapalli,Modeling real-time sag in the wellbore, in: SPE/IADC Drilling Conference and Exhibition, 2016, https://doi.org/10.2118/178832-MS.SPE-178832-MS.

[23]

J.M. Ribeiro, F.M. Eler, A.L. Martins, C.M. Scheid, L.A. Calcade, L.A.C. Meleiro, A simplified model applied to the barite sag and fluid flow in drilling muds: simulation and experimental results, Oil & Gas Science and Technology e Rev. IFP Energies nouvelles. 72 (2017) 23, https://doi.org/10.2516/ogst/2017016.

[24]

H. Movahedi, S. Shad, Z.B. Mokhtari-Hosseini, Modeling and simulation of barite deposition in an annulus space of a well using CFD, J. Petrol. Sci. Eng. 161 (2018) 476-496, https://doi.org/10.1016/j.petrol.2017.12.014.

[25]

A. Siamak, B. Mehdi, R. Majid, CFD e DEM model for simulation of non-spherical particles in hole cleaning process, Part. Sci. Technol. 33 (2015) 472-481, https://doi.org/10.1080/02726351.2015.1010760.

[26]

J. Kohl, Radioisotope measurement applications in engineering, Nucl. Sci. Eng. 31 (2017) 559-560, https://doi.org/10.13182/NSE68-A17612.

[27]

E. Buckingham, On physically similar systems; illustrations of the use of dimensional equations, Phys. Rev. 4 (1914) 345, https://doi.org/10.1103/PhysRev.4.345.

[28]

T. Szirtes, P. Rózsa, Applied Dimensional Analysis and Modeling, Butterworth-heinemann 2 (2007) 37-68, https://doi.org/10.1016/B978-0-12-370620-1.X5000-X.

[29]

R. Paulo, Dimensionless non-Newtonian fluid mechanics, J. Non-Newtonian Fluid Mech. 147 (2007) 109-116, https://doi.org/10.1016/j.jnnfm.2007.07.010.

[30]

S. Basfar, A. Mohamed, S. Elkatany, A. Al-Majed, A combined barite e ilmenite weighting material to prevent barite sag in water-based drilling fluid, Materials 12 (2019) 1945, https://doi.org/10.3390/ma12121945.

[31]

A. Mohamed, S. Al-Afnan, S. Elkatany, A. Al-Majed, I. Hussein, Prevention of barite sag in water-based drilling fluids by a urea-based additive for drilling deep formations, Sustainability 12 (2020) 2719, https://doi.org/10.3390/su12072719.

[32]

A. Mohamed, S. Basfar, S. Elkatany, Prevention of barite sag in oil-based drilling fluids using a mixture of barite and ilmenite as weighting material, Sustainability 11 (2019) 5617, https://doi.org/10.3390/su11205617.

[33]

T.N. Ofei, D.V. Kalaga, B. Lund, A. Saasen, H. Linga, S. Sangesland, K.R. Gyland, M. Kawaji, Laboratory evaluation of static and dynamic sag in oil-based drilling fluids, SPE J. (2021), https://doi.org/10.2118/199567-PA.SPE-199567-PA.

[34]

S. Ponmani, G. Kumar, S. Khan, A.N. Babu, M. Reddy, G.S. Kumar, D.S. Reddy,Improvement of anti-sag and rheological properties of water based muds using nano-barite, Mater. Today: Proc. 17 (2019) 176-185, https://doi.org/10.1016/j.matpr.2019.06.416.

[35]

A. Busch, B. Werner, S.T. Johansen, Cuttings transport modeling d part 2: dimensional analysis and scaling, SPE Drill. Complet. (2020), https://doi.org/10.2118/198907-PA.SPE-198907-PA.

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