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March 17, 2026Petroleum Science1 citationsOpen Access

Enhancing the performance of high-temperature, high-salinity, high-density water-based drilling fluid using a rheological modifier with low viscosity and high yield point characteristic

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YSYuanwei SunChina University of Petroleum, East ChinaJSJin-Sheng SunChina University of Petroleum, East ChinaKLKai-He LvState Key Laboratory of Oil and Gas Reservoir Geology and Exploitation

Key Points

  • To develop a zwitterionic polymer modifier that enhances the performance of water-based drilling fluids under extreme conditions.
  • Synthesis of a novel zwitterionic polymer modifier (LRM) with low viscosity and high yield point.
  • Testing LRM's effects on mud cake compactness and sedimentation stability at high temperatures and salinities.
  • Evaluation of LRM compatibility with various drilling fluid systems.
  • LRM significantly improved yield point and reduced sedimentation at 200 °C and 30% NaCl.
  • Enhanced mud cake compactness without increasing viscosity.
  • Demonstrated excellent compatibility with other polymer-based and clay-free drilling systems.

Abstract

Deep oil and gas development is critical for ensuring stable fossil energy supply and facilitating a smooth energy transition. However, under extreme high-temperature, high-salinity, and high-density conditions, the weak network framework of water-based drilling fluids often causes uncontrolled rheology, fluid loss, and poor sedimentation stability. Conventional rheological modifiers strengthen the structure but induce excessive viscosity, creating trade-offs among key performance properties. In this study, a novel zwitterionic polymer modifier (LRM) with an aggregated cluster structure was synthesized, featuring low viscosity and high yield point behavior. LRM significantly improves yield point, reduces sedimentation, and enhances mud cake compactness at 200 °C, 30% NaCl, and 2.4 g/cm 3 density, without notably increasing viscosity. Its aggregated clusters act as anchoring points, reinforcing the framework. In high-salinity environments, the anti-polyelectrolyte effect extends LRM chains, promoting multipoint adsorption and bridging with clay particles, while curled chains maintain low viscosity. The unique spatial structure buffers stress and forms recoverable micro-clusters with strong viscoelasticity, giving the fluid high initial resistance to flow and a low-viscosity, high-yield point profile. Furthermore, LRM also shows excellent compatibility with sulfonated, polymer-based, and clay-free systems, enhancing performance under harsh conditions. These results demonstrate LRM’s potential for designing high-performance drilling fluids with controllable rheology, low fluid loss, and improved stability.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69b8ef36deb47d591b8c541ahttps://doi.org/10.1016/j.petsci.2026.03.027
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