Synthesis and Performance Evaluation of SF-4 Spacer Fluid for Open-Hole Completion with Oil-Based Drilling Fluid in the East China Sea

As oil and gas exploration and development in the East China Sea advance toward deeper and hotter formations, direct contact between oil-based drilling fluid and water-based completion fluid can cause severe rheological incompatibility during open-hole completion. This study developed an amphiphilic SF-4 spacer based on AM/AMPS/ODAAC copolymerization and evaluated its structure, interfacial behavior, wettability alteration, rheology, thermal stability, and field performance. Characterization of the synthesized copolymer gave a weight-average molecular weight of 1.28 ± 0.06 × 106 g/mol, a monomer conversion of 96.8 ± 0.7%, and total residual monomer content of 0.071 ± 0.008 wt%. Under the test oil/brine conditions, SF-4 reduced interfacial tension from 34.8 ± 1.6 to 3.2 ± 0.2 mN/m at 25 °C and from 31.4 ± 1.4 to 3.7 ± 0.3 mN/m at 150 °C, corresponding to reductions of 90.8% and 88.2%. The sandstone water-contact angle decreased from 132.4 ± 3.8° to 48.7 ± 2.9°, while oil-film surface coverage decreased from 92.1 ± 2.7% to 18.4 ± 3.0% after treatment. Compatibility tests showed that SF-4-containing mixed fluids remained free of harmful thickening after 16 h at 130–170 °C and after 10 d at 150 °C. In the field trial, 7 m3 of SF-4 was placed at 2000 L/min and approximately 1350 psi; the well achieved complete liquid recovery within 4.2 h and subsequently reached a maximum gas rate of 4.8 × 105 m3/d. These results support SF-4 as a high-temperature spacer for isolating incompatible oil- and water-based working fluids during open-hole completion.

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Journal
Processes
Published
2026-09-21
DOI
https://doi.org/10.3390/pr14183009
Primary Topic
Drilling and Well Engineering
Type
article
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article

Synthesis and Performance Evaluation of SF-4 Spacer Fluid for Open-Hole Completion with Oil-Based Drilling Fluid in the East China Sea

Yu Suo, Shunshui LI, Jian Wu, Bin Cai
Processes
Drilling and Well Engineering
article

Synthesis and Performance Evaluation of SF-4 Spacer Fluid for Open-Hole Completion with Oil-Based Drilling Fluid in the East China Sea

Yu Suo, Shunshui LI, Jian Wu, Bin Cai
article en

Abstract

As oil and gas exploration and development in the East China Sea advance toward deeper and hotter formations, direct contact between oil-based drilling fluid and water-based completion fluid can cause severe rheological incompatibility during open-hole completion. This study developed an amphiphilic SF-4 spacer based on AM/AMPS/ODAAC copolymerization and evaluated its structure, interfacial behavior, wettability alteration, rheology, thermal stability, and field performance. Characterization of the synthesized copolymer gave a weight-average molecular weight of 1.28 ± 0.06 × 106 g/mol, a monomer conversion of 96.8 ± 0.7%, and total residual monomer content of 0.071 ± 0.008 wt%. Under the test oil/brine conditions, SF-4 reduced interfacial tension from 34.8 ± 1.6 to 3.2 ± 0.2 mN/m at 25 °C and from 31.4 ± 1.4 to 3.7 ± 0.3 mN/m at 150 °C, corresponding to reductions of 90.8% and 88.2%. The sandstone water-contact angle decreased from 132.4 ± 3.8° to 48.7 ± 2.9°, while oil-film surface coverage decreased from 92.1 ± 2.7% to 18.4 ± 3.0% after treatment. Compatibility tests showed that SF-4-containing mixed fluids remained free of harmful thickening after 16 h at 130–170 °C and after 10 d at 150 °C. In the field trial, 7 m3 of SF-4 was placed at 2000 L/min and approximately 1350 psi; the well achieved complete liquid recovery within 4.2 h and subsequently reached a maximum gas rate of 4.8 × 105 m3/d. These results support SF-4 as a high-temperature spacer for isolating incompatible oil- and water-based working fluids during open-hole completion.

ProcessesVol. 14(18)
Northeast Petroleum University (CN)
Life below water
Openalex Percentile: Top 15%
Drilling and Well Engineering
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Synthesis and Performance Evaluation of SF-4 Spacer Fluid for Open-Hole Completion with Oil-Based Drilling Fluid in the East China Sea — Yu Suo, Shunshui LI, et al. · Processes (2026) | TGRS Research Map | TGRS