Volume 40 Issue 5
Dec.  2023
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FENG Ruige, LI Wei, MENG Renzhou, et al.Study and application of a tough anti-channeling cement slurry for well Xingtan-1[J]. Drilling Fluid & Completion Fluid,2023, 40(5):658-664 doi: 10.12358/j.issn.1001-5620.2023.05.016
Citation: FENG Ruige, LI Wei, MENG Renzhou, et al.Study and application of a tough anti-channeling cement slurry for well Xingtan-1[J]. Drilling Fluid & Completion Fluid,2023, 40(5):658-664 doi: 10.12358/j.issn.1001-5620.2023.05.016

Study and Application of a Tough Anti-Channeling Cement Slurry for Well Xingtan-1

doi: 10.12358/j.issn.1001-5620.2023.05.016
  • Received Date: 2023-05-16
  • Rev Recd Date: 2023-06-21
  • Publish Date: 2023-12-25
  • The well Xingtan-1 is a deep horizontal well drilled in the Shuangyang district of Changchun city by the Jilin Oilfield. This well has a total depth of 5,758 m and horizontal section of 2,015 m. Studies were conducted on two problems, which are mud losses and strict requirement for the impact resistance of the cement sheath to withstand the effects of large scale fracturing jobs. A toughness enhancing anti-channeling agent TA-1 is developed. TA-1 is a product with “core-shell” structure, and is used to formulate an anti-channeling cement slurry with good toughness. The molecules of TA-1 have elastic cores and flexible molecular chains, and are able to improve the toughness of the cement slurry and form films. Test results of the performance of the cement slurry show that the slurry has good stability, with thickening time adjustable between 150 min and 350 min. The SPN value of the cement slurry is 1.15, indicating the cement slurry has good anti-channeling capacity. TA-1 reduces the elastic modulus of the set cement by 29.5% and enhances the impact resistance of the set cement by 16.4%. A cement slurry treated with TA-1 has 24-hour strength of greater than 20 MPa. Well cementing with this anti-channeling cement slurry on the well Xingtan-1 is successful, helping solve the problems of gas channeling through the cement sheaths and cracking of set cement during fracturing operation.

     

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