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Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization

In the context of deep well drilling, the addition of functionalized additives into mud systems becomes imperative due to the adverse impact of elevated borehole temperatures and salts on conventional additives, causing them to compromise their intrinsic functionalities. Numerous biomaterials have u...

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Autores principales: Ali, Imtiaz, Ahmad, Maqsood, Ridha, Syahrir, Iferobia, Cajetan Chimezie, Lashari, Najeebullah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10630931/
https://www.ncbi.nlm.nih.gov/pubmed/38025871
http://dx.doi.org/10.1039/d3ra06008j
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author Ali, Imtiaz
Ahmad, Maqsood
Ridha, Syahrir
Iferobia, Cajetan Chimezie
Lashari, Najeebullah
author_facet Ali, Imtiaz
Ahmad, Maqsood
Ridha, Syahrir
Iferobia, Cajetan Chimezie
Lashari, Najeebullah
author_sort Ali, Imtiaz
collection PubMed
description In the context of deep well drilling, the addition of functionalized additives into mud systems becomes imperative due to the adverse impact of elevated borehole temperatures and salts on conventional additives, causing them to compromise their intrinsic functionalities. Numerous biomaterials have undergone modifications and have been evaluated in drilling muds. However, the addition of dually modified tapioca starch in bentonite-free mud systems remains a notable gap within the existing literature. This study aims to examine the performance of dually modified carboxymethyl irradiated tapioca starch (CMITS) under high temperature and salt-containing conditions employing central composite design approach; the study evaluates the modified starch's impact on mud rheology, thermal stability, and salt resistance. The findings indicated that higher DS (0.66) and CMITS concentrations (8 ppb) improved plastic viscosity (PV), yield point (YP) and gel strength (GS), while increased salt and temperature decreased it, demonstrating the complex interplay of these factors on mud rheology. The developed empirical models suggested that DS 0.66 starch addition enhanced rheology, especially at elevated temperatures, demonstrating improved borehole cleaning potential, supported by quadratic model performance indicators in line with American Petroleum Institute (API) ranges. The optimized samples showed a non-Newtonian behavior, and Power-law model fitting yields promising results for improved cuttings transportation with starch additives.
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spelling pubmed-106309312023-11-08 Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization Ali, Imtiaz Ahmad, Maqsood Ridha, Syahrir Iferobia, Cajetan Chimezie Lashari, Najeebullah RSC Adv Chemistry In the context of deep well drilling, the addition of functionalized additives into mud systems becomes imperative due to the adverse impact of elevated borehole temperatures and salts on conventional additives, causing them to compromise their intrinsic functionalities. Numerous biomaterials have undergone modifications and have been evaluated in drilling muds. However, the addition of dually modified tapioca starch in bentonite-free mud systems remains a notable gap within the existing literature. This study aims to examine the performance of dually modified carboxymethyl irradiated tapioca starch (CMITS) under high temperature and salt-containing conditions employing central composite design approach; the study evaluates the modified starch's impact on mud rheology, thermal stability, and salt resistance. The findings indicated that higher DS (0.66) and CMITS concentrations (8 ppb) improved plastic viscosity (PV), yield point (YP) and gel strength (GS), while increased salt and temperature decreased it, demonstrating the complex interplay of these factors on mud rheology. The developed empirical models suggested that DS 0.66 starch addition enhanced rheology, especially at elevated temperatures, demonstrating improved borehole cleaning potential, supported by quadratic model performance indicators in line with American Petroleum Institute (API) ranges. The optimized samples showed a non-Newtonian behavior, and Power-law model fitting yields promising results for improved cuttings transportation with starch additives. The Royal Society of Chemistry 2023-11-08 /pmc/articles/PMC10630931/ /pubmed/38025871 http://dx.doi.org/10.1039/d3ra06008j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ali, Imtiaz
Ahmad, Maqsood
Ridha, Syahrir
Iferobia, Cajetan Chimezie
Lashari, Najeebullah
Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization
title Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization
title_full Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization
title_fullStr Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization
title_full_unstemmed Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization
title_short Enhancing drilling mud performance through CMITS-modified formulations: rheological insights and performance optimization
title_sort enhancing drilling mud performance through cmits-modified formulations: rheological insights and performance optimization
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10630931/
https://www.ncbi.nlm.nih.gov/pubmed/38025871
http://dx.doi.org/10.1039/d3ra06008j
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