Thermochemical Treatment of Nigerian Raw Clays for Oil and Gas Drilling Operations

Author:

Ogolo Oghenerume12,Arinkoola Akeem O.13,Ngene Peter45,Ogbaga Chukwuma C.6ORCID,Osisanya Samuel17

Affiliation:

1. Department of Petroleum Engineering, African University of Science and Technology, Abuja P.M.B. 681, Nigeria

2. Innovation and Research Coordinating Department, Petroleum Training Institute, Effurun P.M.B 20, Nigeria

3. Department of Chemical Engineering, Ladoke Akintola University of Technology, Ogbomoso P.M.B 4000, Nigeria

4. Department of Material Science and Engineering, African University of Science and Technology, Abuja P.M.B 681, Nigeria

5. Materials Chemistry and Catalysis, Debye Institute for Nanomaterials Science, Utrecht University, 3584 CG Utrecht, The Netherlands

6. Independent Researcher, Middlesbrough TS1 2NR, North Yorkshire, UK

7. Department of Petroleum Engineering, Khalifa University, Abu Dhabi P.O. Box 127788, United Arab Emirates

Abstract

Sodium-based bentonite is used for drilling operations because of its high swelling capacity. This type of bentonite clay is not sourced locally in many oil- and gas-producing nations. However, low-swelling clays (calcium- and potassium-based) are in abundant quantities in most of these countries. Hence, there is a need to convert low-swelling bentonite clays to sodium-based bentonite. The method used to convert low-swelling clays is more applicable to calcium-based bentonite. This research investigated a thermochemical treatment method that converted potassium-based bentonite to sodium-based bentonite. The raw clay materials were sourced from Pindinga (P) and Ubakala (U) clay deposits in Nigeria. An X-ray diffractometer (XRD), an energy dispersive X-ray (EDX), and a scanning electron microscope (SEM) were used to characterize the raw clay samples. Mud slurry was prepared by mixing 22 g of the local raw clays, 3 wt.% soda ash, and MgO at concentrations between 1 and 3 wt.% and heating at 90 °C. The result showed that the viscosities of samples P and U increased from 6 to 26 and 8 to 35.5 cP before and after thermochemical treatment, respectively. Also, due to the thermochemical treatment, the samples’ yield point, consistency factor, consistency index, and thixotropy behavior were all significantly improved.

Publisher

MDPI AG

Subject

General Energy,General Engineering,General Chemical Engineering

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