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Article

Synergistic Epichlorohydrin-Crosslinked Carboxymethyl Xylan for Enhanced Thermal Stability and Filtration Control in Water-Based Drilling Fluids

1
School of Petroleum Engineering, Xi’an Shiyou University, Xi’an 710065, China
2
Shaanxi Yanchang Petroleum (Group) Co., Ltd., Xi’an 710069, China
*
Authors to whom correspondence should be addressed.
Gels 2025, 11(8), 666; https://doi.org/10.3390/gels11080666
Submission received: 26 July 2025 / Revised: 11 August 2025 / Accepted: 19 August 2025 / Published: 20 August 2025
(This article belongs to the Section Gel Chemistry and Physics)

Abstract

Polymers derived from renewable polysaccharides offer promising avenues for the development of high-temperature, environmentally friendly drilling fluids. However, their industrial application remains limited by inadequate thermal stability and poor colloidal compatibility in complex mud systems. In this study, we report the rational design and synthesis of epichlorohydrin-crosslinked carboxymethyl xylan (ECX), developed through a synergistic strategy combining covalent crosslinking with hydrophilic functionalization. When incorporated into water-based drilling fluid base slurries, ECX facilitates the formation of a robust gel suspension. Comprehensive structural analyses (FT-IR, XRD, TGA/DSC) reveal that dual carboxymethylation and ether crosslinking impart a 10 °C increase in glass transition temperature and a 15% boost in crystallinity, forming a rigid–flexible three-dimensional network. ECX-modified drilling fluids demonstrate excellent colloidal stability, as evidenced by an enhancement in zeta potential from −25 mV to −52 mV, which significantly improves dispersion and interparticle electrostatic repulsion. In practical formulation (1.0 wt%), ECX achieves a 620% rise in yield point and a 71.6% reduction in fluid loss at room temperature, maintaining 70% of rheological performance and 57.5% of filtration control following dynamic aging at 150 °C. Tribological tests show friction reduction up to 68.2%, efficiently retained after thermal treatment. SEM analysis further confirms the formation of dense and uniform polymer–clay composite filter cakes, elucidating the mechanism behind its high-temperature resilience and effective sealing performance. Furthermore, ECX demonstrates high biodegradability (BOD5/COD = 21.3%) and low aquatic toxicity (EC50 = 14 mg/L), aligning with sustainable development goals. This work elucidates the correlation between molecular engineering, gel microstructure, and macroscopic function, underscoring the great potential of eco-friendly polysaccharide-based crosslinked polymers for industrial gel-based fluid design in harsh environments.
Keywords: xylan-based polymer; epichlorohydrin crosslinking; colloidal stability; high-temperature drilling fluids; gel suspension xylan-based polymer; epichlorohydrin crosslinking; colloidal stability; high-temperature drilling fluids; gel suspension

Share and Cite

MDPI and ACS Style

Li, Y.; Zhang, F.; Wang, B.; Liu, J.; Wang, Y.; Shi, Z.; Du, L.; Wang, K.; Zhang, W.; Wang, Z.; et al. Synergistic Epichlorohydrin-Crosslinked Carboxymethyl Xylan for Enhanced Thermal Stability and Filtration Control in Water-Based Drilling Fluids. Gels 2025, 11, 666. https://doi.org/10.3390/gels11080666

AMA Style

Li Y, Zhang F, Wang B, Liu J, Wang Y, Shi Z, Du L, Wang K, Zhang W, Wang Z, et al. Synergistic Epichlorohydrin-Crosslinked Carboxymethyl Xylan for Enhanced Thermal Stability and Filtration Control in Water-Based Drilling Fluids. Gels. 2025; 11(8):666. https://doi.org/10.3390/gels11080666

Chicago/Turabian Style

Li, Yutong, Fan Zhang, Bo Wang, Jiaming Liu, Yu Wang, Zhengli Shi, Leyao Du, Kaiwen Wang, Wangyuan Zhang, Zonglun Wang, and et al. 2025. "Synergistic Epichlorohydrin-Crosslinked Carboxymethyl Xylan for Enhanced Thermal Stability and Filtration Control in Water-Based Drilling Fluids" Gels 11, no. 8: 666. https://doi.org/10.3390/gels11080666

APA Style

Li, Y., Zhang, F., Wang, B., Liu, J., Wang, Y., Shi, Z., Du, L., Wang, K., Zhang, W., Wang, Z., & Dou, L. (2025). Synergistic Epichlorohydrin-Crosslinked Carboxymethyl Xylan for Enhanced Thermal Stability and Filtration Control in Water-Based Drilling Fluids. Gels, 11(8), 666. https://doi.org/10.3390/gels11080666

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