TY - JOUR
T1 - A polymer-crosslinker-nanoparticles formulation for effective sand consolidation in loose sandstone formations
AU - Mohyaldinn, Mysara Eissa
AU - Solomon, Emmanuel Bullen Lado
AU - Mohamed, Moamen Hassan
AU - Alakbari, Fahd Saeed
AU - Ayoub, Mohammed A.
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/8
Y1 - 2025/8
N2 - Sand production in weakly consolidated sandstone reservoirs presents a significant challenge for hydrocarbon recovery, affecting both the reservoir stability and productivity. This study introduces a novel chemical sand consolidation formulation comprising polyacrylamide, chromium(III) acetate, and nano-silica, aimed at enhancing sand control while minimizing permeability reduction. The stability, rheological properties, and compressive strength of the formulation were experimentally evaluated at reservoir-relevant temperatures (25–80 °C) using bottle tests, rheometry, and unconfined compressive-strength measurements. The optimal formulation, containing 9500 ppm polyacrylamide, 2612.5 ppm chromium(III) acetate, and 6500 ppm nano-silica, achieved a compressive strength exceeding 3552.23 kPa, surpassing the typical requirements for weak sandstones. Core flooding experiments indicated a permeability reduction, which was attributed to modifications in the post-gelation pore structure rather than extensive pore blockage. Although the formulation effectively consolidates the formation, minimizing the impact on permeability is crucial for maximizing hydrocarbon recovery. Future research should focus on refining the formulation and injection strategies to further mitigate permeability reduction and optimize the balance between sand control and permeability retention. This innovative approach, incorporating nanoparticles and a lower concentration of the less toxic chromium(III) acetate, offers a promising alternative to conventional sand consolidation methods, with the potential for improved environmental compatibility.
AB - Sand production in weakly consolidated sandstone reservoirs presents a significant challenge for hydrocarbon recovery, affecting both the reservoir stability and productivity. This study introduces a novel chemical sand consolidation formulation comprising polyacrylamide, chromium(III) acetate, and nano-silica, aimed at enhancing sand control while minimizing permeability reduction. The stability, rheological properties, and compressive strength of the formulation were experimentally evaluated at reservoir-relevant temperatures (25–80 °C) using bottle tests, rheometry, and unconfined compressive-strength measurements. The optimal formulation, containing 9500 ppm polyacrylamide, 2612.5 ppm chromium(III) acetate, and 6500 ppm nano-silica, achieved a compressive strength exceeding 3552.23 kPa, surpassing the typical requirements for weak sandstones. Core flooding experiments indicated a permeability reduction, which was attributed to modifications in the post-gelation pore structure rather than extensive pore blockage. Although the formulation effectively consolidates the formation, minimizing the impact on permeability is crucial for maximizing hydrocarbon recovery. Future research should focus on refining the formulation and injection strategies to further mitigate permeability reduction and optimize the balance between sand control and permeability retention. This innovative approach, incorporating nanoparticles and a lower concentration of the less toxic chromium(III) acetate, offers a promising alternative to conventional sand consolidation methods, with the potential for improved environmental compatibility.
KW - Chemical sand consolidation
KW - Cross-linker
KW - Nanoparticles
KW - Permeability
KW - Polymer
UR - https://www.scopus.com/pages/publications/105010683173
UR - https://www.scopus.com/pages/publications/105010683173#tab=citedBy
U2 - 10.1007/s13202-025-02035-2
DO - 10.1007/s13202-025-02035-2
M3 - Article
AN - SCOPUS:105010683173
SN - 2190-0558
VL - 15
JO - Journal of Petroleum Exploration and Production Technology
JF - Journal of Petroleum Exploration and Production Technology
IS - 8
M1 - 125
ER -