A thermo-poroelastic model for dual steel casing−cement sheath−formation in deep earth environment
-
摘要: 基于热孔弹性理论,并考虑水泥环热渗效应,论文研究了双钢套管−水泥环−围岩组合体在套管内压力和温度荷载作用下的孔弹性力学行为。通过模型验证重现了已有文献的试验数据。模型结果表明,组合体中不排水水泥环1比排水水泥环2更容易产生界面径向开裂和界面脱黏失效破坏;相比于50 MPa套管内压力的作用,−100 ℃温度荷载引发了不排水水泥环1界面1处最大负孔隙压力−26.4 MPa,负孔隙压力导致了界面1处的有效拉应力远大于水泥环的抗拉强度和黏结强度,引发了界面1的径向开裂和界面脱黏失效破坏;当水泥环的热渗系数大于1×10−12 m2/(℃∙s)时,水泥环的热渗效应导致水泥环1负孔隙水压力更大,使得界面1处的有效拉应力更大,水泥环界面1处更容易发生径向开裂和界面脱黏失效破坏。Abstract: Based on thermo-poroelastic theory and accounting for the thermo-osmotic effect, this work investigates the poroelastic behavior of dual steel casing−cement sheath−formation subject to inner casing pressure and thermal loading. According to the model validation, the model well reproduces the experimental data in the existing literature. The model results show that compared with the drained cement sheath 2, the undrained cement sheath 1 is more susceptible to radial cracking and interface debonding; compared with the application of 50 MPa inner casing pressure, −100 ℃ thermal loading induce higher negative pore pressure at interface 1 of cement sheath 1, whose pore water pressure reach as much as −26.4 MPa, the high negative pore water pressure leads to high effective tensile stress at interface 1, resulting in the radial cracking and debonding of interface 1; when the thermo-osmotic coefficient of cement sheath is higher than 1×10−12 m2/(℃∙s), the thermo-osmotic effect leads to higher negative pore water pressure and thus higher effective tensile stress at interface 1, resulting in radial cracking and interface debonding at interface 1.
-
Key words:
- cement sheath /
- pore water pressure /
- thermo-osmosis effect /
- thermal loading /
- thermo-poroelastic model
-
图 5 ΔT =−100 ℃,Gfor/Gcem =0.14时,水泥环不同界面处孔隙水压力增量,径向有效应力增量和环向有效应力增量时变规律
Figure 5. Time-dependent variations of pore water pressure increment, radial effective stress increment and circumferential effective stress increment at different interfaces of the cement sheath at ΔT = −100 ℃ and Gfor/Gcem =0.14
图 8 在ΔT =−100 ℃温度作用下,不同热渗流系数对界面1处孔隙水压力增量,环向有效应力增量和径向有效应力增量时变规律的影响, Gfor/Gcem =0.14
Figure 8. Effect of different thermo-osmotic coefficients on time-dependent variations of pore water pressure increment, circumferential effective stress increment and radial effective stress increment at Interface 1 under temperature condition ΔT = −100 ℃ with Gfor/Gcem = 0.14
图 9 在ΔT =−100 ℃和pi=50 MPa共同作用下, 水泥环界面1与界面4的环向有效应力增量和径向有效应力增量时变规律, Gfor/Gcem = 0.14
Figure 9. Time-dependent variations of circumferential and radial effective stress increments at Interface 1 and Interface 4 of the cement sheath under combined effects of ΔT = −100 ℃ and pi = 50 MPa, with Gfor/Gcem = 0.14
表 1 模型验证选用的参数
Table 1. Parameters selected for model validation
表 2 双钢套管−水泥环−地层组合体的力学性质、热学性质和几何参数
Table 2. Mechanical, thermal and geometric parameters of the dual steel casing–cement sheath–formation assembly
参数 数值 单位 来源 地层 $ {G}^{\rm{s,for}} $ 0.9 GPa [22] $ {K}^{\rm{s,for}} $ 3 GPa [22] $ {\kappa }^{\rm{for}} $ 0.5×10−18 m2 [22] $ \varphi^{\rm{for}} $ 0.1 [22] 水泥环 $ {G}^{\rm{s,cem}} $ 10 GPa [23] $ {E}^{\rm{s,cem}} $ 13.9 GPa [8] $ \varphi^{\rm{cem}} $ 0.3 [23] $ {k}^{\rm{cem}} $ 1×10−18 m2 [23] $ b $ 0.525 [8] $ k_{\rm{T}}^{\rm{cem}} $ 0.34 W/(m·℃) [6] $ {\beta }^{\rm{cem}} $ 3.00×10−5 1/℃ [23] $ {\kappa }^{\rm{cem}} $ 1.1x10−19 m2 [24] 孔隙水 $ \mu $ 1×10−3 Pa·s [22] $ {K}^{\rm{f}} $ 2.18 GPa [22] $ {\beta }_{\rm{f}} $ 1.98×10−4 1/℃ [22] 钢套管 $ {E}^{\rm{cas}} $ 200 GPa [6] $ {\upsilon }^{\rm{cas}} $ 0.27 [6] $ k_{\rm{T}}^{\rm{cas}} $ 15 W/(m·℃) [6] $ {\beta }^{\rm{cas}} $ 3.6×10−5 1/℃ [6] 几何参数 $ {r}_{1} $ 0.05715 m $ {r}_{2} $ 0.06985 m $ {r}_{3} $ 0.118745 m $ {r}_{4} $ 0.13 m $ {r}_{\text{5}} $ 0.18 m -
[1] SADATI S E, KARGAR S H, RAHBAR N, et al. The effect of the thermal conductivity coefficients of building materials according to different sources on the thermal load and carbon dioxide emissions of the building[J]. Journal of Mechanical Engineering and Vibration, 2020, 11(3): 35-43. [2] 汪进超, 韩增强, 王益腾, 等. 基于像素空间信息的孔内低照度图像孔隙结构量化方法研究[J]. 岩石力学与工程学报, 2024, 43(S1): 3175-3186. (WANG J C, HAN Z Q, WANG Y T, et al. Quantification method of pore structure in low illuminance borehole images based on pixel spatial information[J]. Chinese Journal of Rock Mechanics and Engineering, 2024, 43(S1): 3175-3186. (in Chinese)WANG J C, HAN Z Q, WANG Y T, et al. Quantification method of pore structure in low illuminance borehole images based on pixel spatial information[J]. Chinese Journal of Rock Mechanics and Engineering, 2024, 43(S1): 3175-3186. (in Chinese) [3] 张 农, 项 哲, 潘东江. 硅溶胶自吸渗注浆及泥岩防渗加固[J]. 岩石力学与工程学报, 2024, 43(S1): 3121-3130. (ZHANG N, XIANG Z, PAN D J. Self-imbibition grouting and argillaceous rock mass anti-seepage reinforcement with silica sol[J]. Chinese Journal of Rock Mechanics and Engineering, 2024, 43(S1): 3121-3130. (in Chinese)ZHANG N, XIANG Z, PAN D J. Self-imbibition grouting and argillaceous rock mass anti-seepage reinforcement with silica sol[J]. Chinese Journal of Rock Mechanics and Engineering, 2024, 43(S1): 3121-3130. (in Chinese) [4] 刘学伟, 王 赛, 刘 滨, 等. 不同注浆材料填充双裂隙类岩石试样力学特性研究[J]. 岩石力学与工程学报, 2024, 43(3): 623-638. (LIU X W, WANG S, LIU B, et al. Effect of filling grouting material on mechanical properties and mechanism of rock-like samples with double-crack[J]. Chinese Journal of Rock Mechanics and Engineering, 2024, 43(3): 623-638. (in Chinese)LIU X W, WANG S, LIU B, et al. Effect of filling grouting material on mechanical properties and mechanism of rock-like samples with double-crack[J]. Chinese Journal of Rock Mechanics and Engineering, 2024, 43(3): 623-638. (in Chinese) [5] MENG M, FRASH F, CAREY J W, et al. Predicting cement-sheath integrity with consideration of initial state of stress and thermoporoelastic effects[J]. SPE Journal, 2021, 26(6): 3505-3528, doi: 10.2118/205344-PA [6] NIU Z H, SHEN J Y, WANG L L, et al. Thermo-poroelastic modelling of cement sheath: pore pressure response, thermal effect and thermo-osmotic effect[J]. European Journal of Environmental and Civil Engineering, 2022, 26(2): 657-682. doi: 10.1080/19648189.2019.1675094 [7] 初 纬, 沈吉云, 杨云飞, 等. 连续变化内压下套管−水泥环−围岩组合体微环隙计算[J]. 石油勘探与开发, 2015, 42(3): 379-385. (CHU W, SHEN J Y, YANG Y F, et al. Calculation of micro-annulus size in casing-cement sheath-formation system under continuous internal casing pressure change[J]. Petroleum Exploration and Development, 2015, 42(3): 379-385. (in Chinese) doi: 10.1016/S1876-3804(15)30028-8CHU W, SHEN J Y, YANG Y F, et al. Calculation of micro-annulus size in casing-cement sheath-formation system under continuous internal casing pressure change[J]. Petroleum Exploration and Development, 2015, 42(3): 379-385. (in Chinese) doi: 10.1016/S1876-3804(15)30028-8 [8] 张 智, 冯潇霄. 深层地热井考虑水泥环损伤的套管预热应力设计[J]. 西南石油大学学报(自然科学版), 2024, 46(1): 179-188. (ZHANG Z, FENG X X. Research on safety evaluation method of casing in geothermal well[J]. Journal of Southwest Petroleum University (Science & Technology Edition), 2024, 46(1): 179-188. (in Chinese)ZHANG Z, FENG X X. Research on safety evaluation method of casing in geothermal well[J]. Journal of Southwest Petroleum University (Science & Technology Edition), 2024, 46(1): 179-188. (in Chinese) [9] YIN F, HOU D L, LIU W, et al. Novel assessment and countermeasure for micro-annulus initiation of cement sheath during injection/fracturing[J]. Fuel, 2019, 252: 157-163. doi: 10.1016/j.fuel.2019.04.018 [10] CARNAHAN C L. Thermodynamic coupling of heat and matter flows in near-field regions of nuclear waste repositories[J]. MRS Online Proceedings Library, 1983, 26(1): 1023-1030. doi: 10.1557/proc-26-1023 [11] GHASSEMI A, TAO Q, DIEK A. Influence of coupled chemo-poro-thermoelastic processes on pore pressure and stress distributions around a wellbore in swelling shale[J]. Journal of Petroleum Science and Engineering, 2009, 67(1/2): 57-64, doi: 10.1016/j.petrol.2009.02.015 [12] ZHENG L, SAMPER J. A coupled THMC model of FEBEX mock-up test[J]. Physics and Chemistry of the Earth, Parts A/B/C, 2008, 33(S1): S486-S498, doi: 10.1016/j.pce.2008.10.023 [13] DERJAGUIN B V. Some results from 50 years’ research on surface forces[M]//ERIKSSON J C, LINDMAN B, STENIUS P. Surface Forces and Surfactant Systems. Darmstadt: Steinkopff, 1987: 17-30, doi: 10.1007/BFB0109369. [14] YANG R W, LEMARCHAND E, FEN-CHONG T, et al. A micromechanics model for partial freezing in porous media[J]. International Journal of Solids and Structures, 2015, 75-76: 109-121. [15] GONÇALVÈS J, TRÉMOSA J. Estimating thermo-osmotic coefficients in clay-rocks: I. Theoretical insights[J]. Journal of Colloid and Interface Science, 2010, 342(1): 166-174. doi: 10.1016/j.jcis.2009.09.056 [16] DAVIES B, MARTIN B. Numerical inversion of the laplace transform: a survey and comparison of methods[J]. Journal of Computational Physics, 1979, 33(1): 1-32, doi: 10.1016/0021-9991(79)90025-1 [17] KANJ M, ABOUSLEIMAN Y. Porothermoelastic analyses of anisotropic hollow cylinders with applications[J]. International Journal for Numerical and Analytical Methods in Geomechanics, 2005, 29(2): 103-126, doi: 10.1002/NAG.406 [18] CHEN S, JIN J Z, SHEN J Y, et al. Monitoring evolution of temperature and strain in cement sheath using embedded optical fiber Bragg gratings[J]. SPE Journal, 2023, 28(1): 19-31, doi: 10.2118/212264-PA [19] JACKSON P B, MURPHEY C E. Effect of casing pressure on gas flow through a sheath of set cement[C]//Proceedings of SPE/IADC Drilling Conference. Amsterdam: SPE, 1993: SPE-25698-MS, doi: 10.2118/25698-MS. [20] ABOUSLEIMAN Y N, KANJ M Y. The generalized Lame’ problem-Part II: applications in poromechanics[J]. Journal of Applied Mechanics, 2004, 71(2): 180-189, doi: 10.1115/1.1683800 [21] 周世华, 董 芸, 杨华全. 不同胶凝体系水泥浆体线膨胀系数的研究[J]. 长江科学院院报, 2008, 25(1): 70-72. (ZHOU S H, DONG Y, YANG H Q. Thermal dilation coefficients of several hardened cement pastes[J]. Journal of Yangtze River Scientific Research Institute, 2008, 25(1): 70-72. (in Chinese) doi: 10.3969/j.issn.1001-5485.2008.01.018ZHOU S H, DONG Y, YANG H Q. Thermal dilation coefficients of several hardened cement pastes[J]. Journal of Yangtze River Scientific Research Institute, 2008, 25(1): 70-72. (in Chinese) doi: 10.3969/j.issn.1001-5485.2008.01.018 [22] LIENHARD J H. A heat transfer textbook[M]. 6th ed. North Chelmsford: Courier Corporation, 2013. [23] GHABEZLOO S, SULEM J, SAINT-MARC J. The effect of undrained heating on a fluid-saturated hardened cement paste[J]. Cement and Concrete Research, 2009, 39(1): 54-64, doi: 10.1016/j.cemconres.2008.09.004 [24] ZHANG J Y, QIU J, SHEN J Y, et al. On the early behavior and microstructure of oil well cement paste incorporating with carbon nanotubes cured at a high temperature[J]. Construction and Building Materials, 2022, 317: 125670. doi: 10.1016/j.conbuildmat.2021.125670 -
下载: