The Influence of Cyclic Loading on the Mechanical Properties of Well Cement
Abstract
:1. Introduction
2. Experimental Method
2.1. Cement Slurry Design
2.2. Experimental Method
3. Experimental Results
3.1. Monotonic Loading Test Analysis
3.2. The Mechanical Properties of Well Cement during Cyclic Loading
3.3. The Mechanical Properties of Well Cement after Cyclic Loading
3.4. Energy Analysis during Cyclic Loading
3.5. Fatigue Failure Model of Well Cement under Alternating Stress
4. Conclusions
- (1)
- The mechanical properties of well cement are significantly influenced by the testing environment. Specifically, increasing the testing temperature from 25 °C to 140 °C reduces the compressive strength and elastic modulus of well cement by 21% and 14%, respectively. However, the confining pressure has almost no effect on the mechanical properties or stress–strain curves of well cement during undrained tests at high temperatures, possibly due to increased pore pressure with increasing confining pressure.
- (2)
- The deformation and mechanical properties of well cement are influenced by the cyclic loading intensity and cycle number. Under HTHP conditions, well cement exhibits more pronounced strain hysteresis and greater plastic strain, which leads to a higher conversion rate of input energy into dissipated energy. The secant modulus of well cement decreases with increasing loading intensity at all test conditions and also decreases with increasing cycle number, especially under ambient testing conditions with high loading intensity.
- (3)
- Samples that can sustain 20 cycles of cyclic loading without failure exhibit similar ultimate compressive strength as the pristine sample not subjected to cyclic loading. However, the elastic modulus of cyclically loaded samples may decrease when the cyclic loading intensity is high.
- (4)
- Well cement has a longer fatigue life when subjected to HTHP testing conditions compared to that tested under ambient conditions. The fatigue life of well cement increases significantly with a decrease in loading intensity and can be predicted based on the plastic strain evolution rate. At 0.6 P loading intensity (60% of ultimate strength), well cement hardly experiences any fatigue damage.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Materials | Dosage (%bwoc) |
---|---|
Aksu cement | 100 |
Anti-strength retrogression agent | 35 |
Silica fume | 4 |
Ductility-enhancement agent | 4 |
Suspending agent | 1 |
Dispersant | 1 |
Water | 52 |
Retarder | 3 |
Fluid loss additive | 3.5 |
Defoamer | 0.5 |
Specimens | Testing Temperature/°C | Testing Pressure/MPa | Compressive Strength/MPa | Elastic Modulus/GPa | Poisson’ Ratio |
---|---|---|---|---|---|
M1 | 25 | 0 | 80.54 | 11.70 | 0.212 |
M2 | 25 | 0 | 86.16 | 12.86 | 0.189 |
M3 | 25 | 0 | 84.59 | 12.64 | 0.188 |
Average | 83.73 ± 2.92 | 12.4 ± 0.62 | 0.19 ± 0.014 | ||
M4 | 140 | 15 | 67.70 | 10.96 | 0.251 |
M5 | 140 | 30 | 65.45 | 10.89 | 0.155 |
M6 | 140 | 45 | 68.80 | 11.11 | 0.178 |
M7 | 140 | 60 | 67.33 | 10.25 | 0.151 |
M8 | 140 | 75 | 61.77 | 10.24 | 0.154 |
Average | 66.21 ± 2.76 | 10.69 ± 0.41 | 0.178 ± 0.04 |
Specimens | Intensity of Cyclic Loading | Testing Temperature/°C | Confining Pressure /MPa | Compressive Strength/MPa | Elastic Modulus/GPa |
---|---|---|---|---|---|
C2 | 80% | 25 | 0 | 77.97 | 9.89 |
C3 | 70% | 25 | 0 | 83.93 | 11.31 |
C4 | 60% | 25 | 0 | 81.53 | 12.67 |
C5 | 90% | 100 | 45 | 69.07 | 9.83 |
C6 | 80% | 100 | 45 | 67.05 | 10.56 |
C7 | 70% | 100 | 45 | 66.18 | 10.96 |
C8 | 60% | 100 | 45 | 62.51 | 11.69 |
Samples | C1 | C2 | C3 | C4 |
---|---|---|---|---|
Maximum loading intensity | 90% | 80% | 70% | 60% |
Loading rate/(N/s) | 100 | 100 | 100 | 100 |
Loading frequency f/Hz | 0.00159 | 0.00181 | 0.00209 | 0.00251 |
Loading period T/s | 629 | 553 | 478 | 398 |
0.149 | 0.149 | 0.149 | 0.149 | |
0.00196 | 0.00535 | 0.00215 | 0.00102 | |
10−5·s−1 | 3.12 | 0.967 | 0.450 | 0.256 |
Fatigue life NF | 7.5 | 27 * | 68 * | - |
Samples | C5 | C6 | C7 | C8 |
---|---|---|---|---|
Maximum loading intensity | 90% | 80% | 70% | 60% |
Loading rate/(N/s) | 100 | 100 | 100 | 100 |
Loading frequency (f/Hz) | 0.00193 | 0.00219 | 0.00257 | 0.00308 |
Loading period (T/s) | 519 | 458 | 389 | 324 |
0.302 | 0.302 | 0.302 | 0.302 | |
0.0151 | 0.00540 | 0.00297 | - | |
10−5 s−1 | 2.890 | 1.179 | 0.763 | - |
Fatigue life/NF | >20 | >56 * | >102 * | - |
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Zhang, Z.; Yuan, Z.; Ye, S.; Li, Y.; Yang, L.; Pang, X.; Lv, K.; Sun, J. The Influence of Cyclic Loading on the Mechanical Properties of Well Cement. Energies 2024, 17, 3856. https://doi.org/10.3390/en17153856
Zhang Z, Yuan Z, Ye S, Li Y, Yang L, Pang X, Lv K, Sun J. The Influence of Cyclic Loading on the Mechanical Properties of Well Cement. Energies. 2024; 17(15):3856. https://doi.org/10.3390/en17153856
Chicago/Turabian StyleZhang, Zhen, Zhongtao Yuan, Sutao Ye, Yang Li, Lvchao Yang, Xueyu Pang, Kaihe Lv, and Jinsheng Sun. 2024. "The Influence of Cyclic Loading on the Mechanical Properties of Well Cement" Energies 17, no. 15: 3856. https://doi.org/10.3390/en17153856
APA StyleZhang, Z., Yuan, Z., Ye, S., Li, Y., Yang, L., Pang, X., Lv, K., & Sun, J. (2024). The Influence of Cyclic Loading on the Mechanical Properties of Well Cement. Energies, 17(15), 3856. https://doi.org/10.3390/en17153856