A Three-Dimensional Analytical Solution of Stress Field in Casing-Cement-Stratum System Considering Initial Stress State
Abstract
:1. Introduction
2. Formulation
2.1. Problem Description, Decomposition and Basic Equations
- (1)
- In-plane plane strain Sub-problem I: this sub-problem can be divided into an axisymmetric and asymmetric mode, which is widely applied.Mode one, axisymmetric loading:Mode two, asymmetric loading:
- (2)
- Elastic uni-axial stress problem II:
- (3)
- Elastic anti-plane shear problem III:
2.2. Solution Formulation
2.2.1. Solution of Mode One in Sub-Problem I
2.2.2. Solution of Mode two in Sub-Problem I
2.2.3. Comparison between the Present and Existing Model
2.2.4. Solution of Sub-Problem II: Elastic Uni-Axial Stress Problem
2.2.5. Solution of Sub-Problem III: Anti-Plane Shear Problem
2.3. The 3D Total Stress Field within the Casing-Cement-Stratum System
3. Results and Discussions
3.1. Validation of Present Analytical Model
3.2. Model Comparison between the Present Solution and Existing One in Antiplane Shear Problem III
3.3. The Effect of Initial Stress State of Cement on the Stress Field
4. Estimation of the Casing and Cement Integrity
5. Conclusions
- (1)
- Compared to the existing model, the present model provides a more accurate stress level in the anti-plane shear problem and eliminates unrealistic infinite displacements at infinity.
- (2)
- The maximum Mises stress in the present 3D model differs from that in the corresponding 2D model, highlighting the importance of considering the uni-axial stress problem and anti-plane shear problem. For the specific conditions studied in this paper, the maximum Mises stress in the cement in the present 3D model is lower than that in the corresponding 2D model, resulting in a more conservative failure potential in the 3D circumstance.
- (3)
- The existence of initial stress in cement has a significant effect on the cement failure potential. For the specific conditions studied in this paper, as the wellbore pressure increases, the failure potential of the casing decreases while that of cement increases. However, the presence of initial stress in cement significantly decreases the increased failure potential of cement with increasing internal wellbore pressure.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
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Component | Casing | Cement | Stratum |
---|---|---|---|
Elastic coefficients and geometry | |||
Young’s modulus | 210 | 12 | 10 |
Poisson’s ratio | 0.3 | 0.25 | 0.2 |
Inner radius/mm | 59.31 | 69.85 | 107.95 |
Stress state | |||
Initial vertical stress | 0 | 0 | −100 (assumed) |
Initial horizontal stress | 0 | 0 | −82, −55 |
Internal pressure | −34 |
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Wang, X.; Jiang, T.; Zhang, Y.; Zhou, J.; Xiao, H.; Li, W. A Three-Dimensional Analytical Solution of Stress Field in Casing-Cement-Stratum System Considering Initial Stress State. Processes 2023, 11, 1164. https://doi.org/10.3390/pr11041164
Wang X, Jiang T, Zhang Y, Zhou J, Xiao H, Li W. A Three-Dimensional Analytical Solution of Stress Field in Casing-Cement-Stratum System Considering Initial Stress State. Processes. 2023; 11(4):1164. https://doi.org/10.3390/pr11041164
Chicago/Turabian StyleWang, Xiaoyang, Tingxue Jiang, Yayun Zhang, Jun Zhou, Hecheng Xiao, and Wenda Li. 2023. "A Three-Dimensional Analytical Solution of Stress Field in Casing-Cement-Stratum System Considering Initial Stress State" Processes 11, no. 4: 1164. https://doi.org/10.3390/pr11041164
APA StyleWang, X., Jiang, T., Zhang, Y., Zhou, J., Xiao, H., & Li, W. (2023). A Three-Dimensional Analytical Solution of Stress Field in Casing-Cement-Stratum System Considering Initial Stress State. Processes, 11(4), 1164. https://doi.org/10.3390/pr11041164