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Erschienen in: Rock Mechanics and Rock Engineering 6/2023

12.03.2023 | Original Paper

Sustaining Wormholes Mechanical Stability in Weak Acidized Carbonates Using Consolidants

verfasst von: Ayyaz Mustafa, Mahmoud Desouky, Murtada Saleh Aljawad, Theis Solling, Jack Dvorkin

Erschienen in: Rock Mechanics and Rock Engineering | Ausgabe 6/2023

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Abstract

Matrix acidizing is vital to enhance the production of tight carbonate formations. In weak carbonate rocks or acid over-dissolution, the rock is prone to failure upon developing wormholes. Strengthening agents can play a significant role in mitigating failure and supporting more extended productivity. In this study, we tested 0.1 M and 0.2 M zinc sulfate (ZnSO4) and 0.5 M diammonium phosphate ((NH4)2HPO4) as strengthening agents, which change the dominant host mineral into harder ones. Both agents were tested on two different types of acidized (i.e., wormholed) carbonate rocks, specifically Austin chalk and Indiana limestone. The impulse hammer and acoustics measurements evaluated the carbonate rocks’ mechanical properties before and after the treatment. In addition, scanning electron microscopy energy-dispersive X-ray spectroscopy (SEM–EDS) and scanning electron microscopy (SEM) were used to affirm the change of rock mineralogy into harder minerals after the treatment. The chemical treatment caused no noticeable change in the wormhole size and shape, as revealed by the scanned micro-computed tomography (micro-CT) images. The chemical treatment of the samples was conducted by core flooding the plugs at high pressure and temperature with 4–5 pore volumes of the chemicals and leaving them in the treatment solution for 72 h. As a result of the formation of harder minerals, the mechanical properties after the treatment showed improvement. Zinc sulfate raised the surface rock hardness of limestone by 16%, while diammonium phosphate showed a 30% increase when evaluated with the same technique. The most noticeable improvement happened to chalk after treatment with diammonium phosphate. Chalk impulse hammer hardness almost quadrupled with the diammonium phosphate. The acoustics measurements showed a similar result to the impulse hammer through an increase in the dynamic Young’s modulus and a decrease in Poisson’s ratio.

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Literatur
Zurück zum Zitat Barri A, Mahmoud M, Elkatatny S (2016) Evaluation of Rock Mechanical Properties Alteration During Matrix Stimulation With Chelating Agents. J Energy Resour Technol. Doi 10(1115/1):4032546 Barri A, Mahmoud M, Elkatatny S (2016) Evaluation of Rock Mechanical Properties Alteration During Matrix Stimulation With Chelating Agents. J Energy Resour Technol. Doi 10(1115/1):4032546
Zurück zum Zitat Jahani N, Berge G, Haugen B (2014a) Prediction of rock strength with matrix acidizing stimulation and induced wormhole by computational simulation methods. In: Alejano L, Perucho Á, Olalla C, Jiménez R (eds) Rock Engineering and Rock Mechanics: Structures in and on Rock Masses. CRC Press, Florida Jahani N, Berge G, Haugen B (2014a) Prediction of rock strength with matrix acidizing stimulation and induced wormhole by computational simulation methods. In: Alejano L, Perucho Á, Olalla C, Jiménez R (eds) Rock Engineering and Rock Mechanics: Structures in and on Rock Masses. CRC Press, Florida
Zurück zum Zitat Samarkin Y, Aljawad MS, Amao A, Solling T, Al-Ramadan K, Abu-Khamsin S, Patil S, AlTammar MJ, Alruwaili KM (2022) Hydraulic fracture conductivity sustenance in carbonate formations through rock strengthening by DAP Solution. Int Petrol Technol Conf. https://doi.org/10.2523/IPTC-22496-MSCrossRef Samarkin Y, Aljawad MS, Amao A, Solling T, Al-Ramadan K, Abu-Khamsin S, Patil S, AlTammar MJ, Alruwaili KM (2022) Hydraulic fracture conductivity sustenance in carbonate formations through rock strengthening by DAP Solution. Int Petrol Technol Conf. https://​doi.​org/​10.​2523/​IPTC-22496-MSCrossRef
Metadaten
Titel
Sustaining Wormholes Mechanical Stability in Weak Acidized Carbonates Using Consolidants
verfasst von
Ayyaz Mustafa
Mahmoud Desouky
Murtada Saleh Aljawad
Theis Solling
Jack Dvorkin
Publikationsdatum
12.03.2023
Verlag
Springer Vienna
Erschienen in
Rock Mechanics and Rock Engineering / Ausgabe 6/2023
Print ISSN: 0723-2632
Elektronische ISSN: 1434-453X
DOI
https://doi.org/10.1007/s00603-023-03285-4

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