XIONG Min. Origin Analysis and Elimination of the S-Shaped Strength Development Curve of Cement Slurry[J]. Petroleum Drilling Techniques, 2018, 46(3): 39-43. DOI: 10.11911/syztjs.2018064
Citation: XIONG Min. Origin Analysis and Elimination of the S-Shaped Strength Development Curve of Cement Slurry[J]. Petroleum Drilling Techniques, 2018, 46(3): 39-43. DOI: 10.11911/syztjs.2018064

Origin Analysis and Elimination of the S-Shaped Strength Development Curve of Cement Slurry

More Information
  • Received Date: December 19, 2017
  • Revised Date: May 13, 2018
  • By adding silica flour,it could be possible to prevent the loss of compressive strength of cement in high temperature conditions,and the retrogression of cement.However,the strength retrogression may still occur in some cases even after silica flour is added,which could result in the S-shaped growth of ultrasonic strength development curve under high temperature.In order to prevent cement strength retrogression from influencing cementing quality,it is necessary to eliminate the growth of the S-shaped strength curve.To investigate the cause of this strength retrogression phenomenon,the phases of the cement hydrated at 12,24,48 and 90 h were analyzed by XRD respectively in a study.Results showed that the amount of silica flour in the cement slurry was constant within 24 h,and the strength retrogression that occurred in the cement with 5.0% silica powder could not prevent the conversion of C-S-H phase to α-C2SH phase.Having silica flour for 24 hours prevented strength retrogression because it gradually participated in the hydration process.By increasing the specific surface area of silica flour to improve its reactivity,the phenomenon of strength retrogression disappeared.The research suggest that,reactivity cleficiency of silica flour is the primary cause of S-shaped strength development curve in cement slurry.Therefore,the addition of silica flour with higher specific surface area is one of the solutions to prevent the S-shaped strength retrogression of cement slurry.
  • [1]
    刘崇建,黄柏宗,徐同台,等.油气井注水泥理论与应用[M].北京:石油工业出版社,2001:147-166. LIU Chongjian,HUANG Bozong,XU Tongtai,et al.Theory and application of cementing in oil gas wells[M].Beijing:Petroleum Industry Press,2001:147-166.
    [2]
    符军放.掺硅粉高水灰比水泥石高温强度衰退现象分析[J].钻井液与完井液,2017,34(1):112-115. FU Junfang.Analysis of high temperature strength retrogression of high water/cement ratio set cement with silica powder[J].Drilling Fluid Completion Fluid,2017,34(1):112-115.
    [3]
    CARITEY J P,BRADY J.Performance of thermal cements with different weighting materials[R].SPE 163544,2013.
    [4]
    DILLENBECK R L Ⅲ,MUELLER D T,ORR B R.The effect of microsilica on the thermal stability of lightweight cement systems[R].SPE 21597,1990.
    [5]
    NELSON E B,GUILLOT D.Well cementing[M].2nd ed.New York:Schlumberger,2006:319-341.
    [6]
    SARGEANT J,KALVENES O,VONHEIM A.Cement slurry:US 5158613[P].1992-10-27.
    [7]
    LUKE K.Phase studies of pozzolanic stabilized calcium silicate hydrates at 180℃[J].Cement and Concrete Research,2004,34(9):1725-1732.
    [8]
    JUPE A C,WIKINSON A P,LUKE K,et al.Class H cement hydration at 180℃ and high pressure in the presence of added silica[J].Cement and Concrete Research,2008,38(5):660-666.
    [9]
    EILERS L H,NELSON E B,MORA L K.High temperature cement compositions:pectolite,scawtiete,truscottite or xonotlite which do you want?[R].SPE 9286,1980.
    [10]
    张景富,徐明,闫占辉,等.高温条件下G级油井水泥原浆及加砂水泥的水化和硬化[J].硅酸盐学报,2008,36(7):939-945. ZHANG Jingfu,XU Ming,YAN Zhanhui,et al.Hydration and hardening of class G oilwell cement with and without silica sands under high temperatures[J].Journal of the Chinese Ceramic Society,2008,36(7):939-945.
  • Cited by

    Periodical cited type(1)

    1. 李斐, 路飞飞, 胡文庭. 超深超高温裂缝性气藏固井水泥浆技术. 石油钻采工艺. 2019(01): 38-42 .

    Other cited types(0)

Catalog

    Article Metrics

    Article views (5056) PDF downloads (7392) Cited by(1)
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return