Long-Term Shrinkage Measurements on Large-Scale Specimens Exposed to Real Environmental Conditions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Setup
2.2. Production and Storage of the Specimens
2.3. Concrete Properties
2.4. Vibrating Wire Strain Gauges (VWSGs)
3. Theory/Analysis
3.1. Determination of Time Zero and Temperature Compensation of the VWSGs
3.2. Separation of the Thermal Strain
4. Results
4.1. Strain Measurements
4.2. Shrinkage Strain
5. Discussion
5.1. Measurements and Calculations
5.1.1. Evaluation of Time Zero of the VWSGs
5.1.2. Coefficient of Thermal Expansion
5.1.3. Extensometer Measurements
5.2. Comparison of the Observed Time-Dependent Behaviour with the Predictions of Models from Engineering Societies
- The laboratory measurements, which were performed at a constant temperature and humidity, agree well with the results of both models, with , as indicated in Table 6.
- In the large-scale specimens produced in the summer (S1 and S2), the influence of the specimen size on the measured shrinkage strain was relatively small, contrary to the estimates from the considered models.
- The varying environmental conditions over the first 100 days significantly influenced the rate of shrinkage (decreased shrinkage rate for the summer series (S1 and S2) and increased rate for the winter series S4). This is not reflected by either model.
- As can be seen in Table 6, the results from both models yield unsatisfactory results for the large-scale specimens (especially for series S1), due to the reasons mentioned above, i.e. because the effects of seasonal changes in environmental conditions are not captured by the models.
5.3. Seasonal Effects and Influence of the Production Date
- Contrary to the observations of Vandewalle [18], the shrinkage strain of the large-scale specimens did not reach the same shrinkage strain after 2000 days in all specimens, no matter what the production date. The difference between the strains measured in the summer and winter series may be due to the cold winter months during the first year of measurements; see Figure 22.
6. Conclusions
- VWSGs can be used for long-term measurements. In the presented study, VWSGs took strain measurements for over six years and the accuracy of the measurements is confirmed by additional measurements carried out with an extensometer.
- VWSGs allow for early-age concrete strain measurements as soon as the concrete and the sensor start acting compositely (which is some time between the initial and final setting times).
- The coefficient of thermal expansion (CTE) of concrete was back calculated from the measurements of the VWSGs. Two different calculation procedures were used to determine the CTE at an early age and during the whole measurement period.
- The CTE calculated for the whole measurement period shows a dependence on the measured concrete temperature. The calculated CTE values increase with increasing temperature.
- The measured shrinkage strains of the large-scale specimens and the results from analytical models provided by engineering societies (fib and RILEM) did not agree well with each other. Since the models do not capture the influence of changing environmental conditions, the measured shrinkage strains of the large-scale specimens were not predicted accurately by the models. Shrinkage strains from the tests carried out in the laboratory agreed well with the results from the models, since the shrinkage tests were performed under constant environmental conditions ( °C and ).
- The influence of the production date on the shrinkage strains of the large-scale specimens was investigated. One test series was produced during the summer and a second series with the same concrete mixture was produced in the winter. The measurements show that the evolution of the shrinkage strains significantly differs because of the different production dates. During the first measurement year, the shrinkage strains of the specimens which were produced in winter developed faster and achieved nearly four times the value of the measured shrinkage strains of the specimens which were produced in summer.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. Shrinkage Data
Composition I | Composition II | ||
---|---|---|---|
(day) | () | (day) | () |
0.02 | 1.06 | 0.02 | 0.06 |
0.04 | 1.84 | 0.04 | 0.27 |
0.08 | −0.59 | 0.08 | −0.56 |
0.17 | −0.42 | 0.17 | −2.00 |
0.34 | −5.23 | 0.34 | −4.44 |
0.70 | −12.66 | 0.69 | −10.54 |
1.41 | −26.41 | 1.41 | −22.02 |
2.87 | −51.09 | 2.85 | −42.69 |
5.82 | −92.09 | 5.79 | −77.09 |
11.82 | −151.62 | 11.74 | −128.11 |
23.98 | −225.27 | 23.81 | −192.08 |
48.65 | −297.38 | 48.30 | −256.48 |
98.72 | −362.03 | 97.98 | −314.49 |
200.33 | −418.16 | 198.75 | −370.78 |
406.50 | −450.37 | 403.16 | −409.74 |
824.87 | −478.49 | 817.79 | −442.78 |
Series S1 | Series S2 | Series S4 | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
L | M | S | L | M | S | L | M | S | |||
(day) | () | () | () | (day) | () | () | () | (day) | () | () | () |
0.06 | −1.71 | −2.59 | −3.43 | 0.06 | −0.31 | −0.55 | −0.79 | 0.06 | −1.00 | −1.20 | −0.30 |
0.08 | −1.94 | −4.42 | −7.82 | 0.08 | −0.51 | −0.94 | −1.74 | 0.08 | −1.60 | −1.46 | −2.80 |
0.11 | −2.45 | −4.26 | −8.43 | 0.11 | −0.71 | −1.37 | −2.65 | 0.11 | −2.04 | −1.44 | −2.76 |
0.15 | 0.04 | −4.61 | −9.77 | 0.15 | −1.27 | −2.09 | −3.66 | 0.14 | −1.14 | −2.77 | −3.69 |
0.20 | −0.68 | −5.56 | −10.97 | 0.20 | −3.58 | −4.80 | −5.56 | 0.19 | 0.19 | −3.16 | −4.51 |
0.26 | −3.79 | −7.95 | −14.10 | 0.26 | −2.64 | −6.65 | −6.19 | 0.25 | −0.64 | −3.92 | −5.50 |
0.35 | −5.82 | −8.74 | −15.11 | 0.35 | −3.52 | −7.80 | −14.99 | 0.34 | −1.44 | −4.86 | −7.37 |
0.47 | −7.00 | −9.55 | −16.69 | 0.47 | −5.02 | −9.37 | −18.50 | 0.45 | −2.35 | −6.07 | −10.27 |
0.63 | −8.22 | −10.67 | −18.35 | 0.63 | −5.17 | −9.61 | −22.97 | 0.60 | −5.03 | −7.68 | −14.07 |
0.84 | −9.35 | −13.13 | −22.18 | 0.84 | −0.80 | −11.49 | −27.02 | 0.80 | −6.51 | −9.54 | −17.90 |
1.13 | −11.05 | −16.76 | −27.54 | 1.12 | −6.30 | −14.71 | −33.94 | 1.07 | −8.14 | −11.86 | −21.72 |
1.51 | −15.27 | −18.15 | −26.94 | 1.50 | −8.26 | −21.32 | −41.42 | 1.43 | −11.49 | −14.05 | −27.58 |
2.02 | −15.55 | −23.09 | −38.20 | 2.01 | −10.06 | −24.31 | −47.94 | 1.91 | −13.66 | −17.77 | −34.64 |
2.70 | −18.76 | −27.47 | −44.22 | 2.69 | −14.13 | −31.59 | −58.49 | 2.56 | −16.97 | −22.10 | −43.00 |
3.61 | −22.55 | −33.01 | −51.83 | 3.60 | −15.36 | −36.01 | −64.49 | 3.41 | −21.51 | −27.31 | −53.79 |
4.83 | −25.15 | −40.32 | −63.89 | 4.82 | −23.79 | −41.72 | −76.98 | 4.56 | −25.48 | −34.23 | −67.34 |
6.46 | −30.03 | −50.08 | −78.96 | 6.45 | −27.64 | −50.11 | −94.89 | 6.09 | −30.50 | −43.45 | −82.84 |
8.64 | −35.83 | −64.05 | −97.91 | 8.63 | −34.65 | −58.78 | −111.78 | 8.38 | −34.73 | −58.02 | −100.20 |
11.57 | −40.31 | −70.27 | −104.22 | 11.54 | −33.71 | −63.80 | −127.70 | 10.85 | −30.02 | −50.32 | −86.07 |
15.48 | −46.10 | −75.80 | −114.42 | 15.44 | −40.83 | −78.32 | −152.13 | 14.49 | −29.48 | −60.39 | −88.29 |
20.71 | −42.80 | −83.04 | −129.16 | 20.66 | −37.84 | −73.45 | −131.92 | 19.34 | −18.32 | −34.04 | −74.28 |
27.71 | −43.37 | −87.00 | −129.30 | 27.65 | −48.90 | −86.31 | −158.87 | 25.83 | 6.48 | −24.28 | −91.25 |
37.07 | −41.07 | −91.99 | −130.56 | 36.99 | −55.10 | −95.10 | −184.18 | 34.49 | −6.02 | −33.70 | −113.15 |
49.60 | −30.51 | −75.27 | −109.35 | 49.49 | −54.72 | −90.46 | −181.28 | 46.06 | −22.40 | −69.08 | −161.64 |
66.37 | −33.05 | −64.25 | −93.47 | 66.21 | −46.89 | −77.62 | −167.55 | 61.50 | −65.69 | −128.76 | −240.69 |
88.81 | −29.43 | −70.75 | −103.35 | 88.59 | −64.87 | −89.36 | −179.60 | 82.12 | −87.71 | −174.24 | −299.64 |
118.83 | −40.15 | −68.57 | −88.32 | 118.53 | −69.63 | −84.70 | −170.93 | 109.65 | −98.57 | −188.51 | −317.50 |
159.00 | −36.89 | −63.18 | −85.82 | 158.59 | −76.96 | −89.01 | −170.37 | 146.41 | −105.99 | −202.09 | −353.06 |
212.74 | −51.33 | −73.25 | −89.66 | 212.18 | −87.10 | −90.23 | −166.94 | 195.50 | −89.79 | −211.16 | −389.34 |
284.66 | −35.29 | −86.81 | −133.86 | 283.89 | −72.12 | −94.60 | −211.60 | 261.04 | −77.92 | −212.04 | −377.70 |
380.88 | −35.94 | −137.32 | −191.31 | 379.83 | −109.89 | −119.14 | −268.84 | 348.57 | −100.26 | −207.42 | −353.53 |
509.63 | −54.48 | −141.85 | −172.29 | 508.19 | −154.28 | −131.19 | −251.79 | 465.44 | −96.20 | −218.70 | −388.45 |
681.91 | −47.20 | −154.92 | −200.18 | 679.94 | −129.73 | −123.60 | −269.33 | 621.49 | −103.95 | −243.43 | −397.52 |
912.41 | −89.54 | −174.74 | −188.47 | 909.72 | −185.47 | −144.83 | −270.50 | 829.86 | −90.43 | −259.70 | −438.50 |
1220.84 | −91.71 | −165.43 | −166.61 | 1217.17 | −195.27 | −159.00 | −297.28 | 1108.10 | −110.09 | −255.96 | −375.40 |
1633.53 | −93.04 | −178.57 | −189.24 | 1628.51 | −206.05 | −185.20 | −305.44 | 1479.62 | −124.93 | −285.69 | −421.24 |
2185.73 | −69.07 | −183.58 | −230.96 | 2178.86 | −194.98 | −185.11 | −339.78 | 1975.71 | −109.30 | −311.60 | −466.18 |
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Series | S1 | S2 | S4 |
---|---|---|---|
Production date | 13 July 2017 | 20 July 2017 | 8 February 2018 |
Stripping date | 17 July 2017 | 24 July 2017 | 12 February 2018 |
Transportation date | 10 August 2017 | 10 August 2017 | 20 February 2018 |
Concrete composition | I | II | I |
Concrete Composition | I | II |
---|---|---|
Cement CEM II A-LL 42.5 N | 292 | - |
Cement CEM II A-LL 42.5 R | - | 450 |
Processed hydraulic additions | 73 | 70 |
Water | 167 | 185 |
Aggregate (45% fine, 55% coarse) | 1794 | 1619 |
Superplasticiser dynamiQ flow L01 | 2.56 | 3.9 |
Air-entraining agent dynamiQ air S-01 | 0.55 | 0.78 |
Property | Unit | S1 | S2 | S4 |
---|---|---|---|---|
Young’s modulus, E | GPa | 31.6 ± 0.9 | 32.2 ± 1.1 | 31.0 ± 0.4 |
Compressive strength, | MPa | 41.4 ± 0.4 | 52.9 ± 0.6 | 44.4 ± 0.1 |
Density, | kg/dm³ | 2.30 ± 0.01 | 2.31 ± 0.02 | 2.28 ± 0.02 |
Specimen Size | S1 | S2 | S4 |
---|---|---|---|
Large | 9.69 | 10.48 | 10.02 |
Medium | 8.21 | 10.36 | 9.14 |
Small | 8.15 | 10.27 | 10.59 |
S1 | S2 | S4 | ||
---|---|---|---|---|
Large | 11.08 | 11.73 | 11.83 | |
0.07 | 0.10 | 0.01 | ||
Medium | 11.14 | 12.05 | 11.68 | |
0.06 | 0.07 | 0.06 | ||
Small | 10.85 | 11.58 | 11.00 | |
0.03 | 0.05 | 0.03 |
Test Data j | Model | ||
---|---|---|---|
MC 2010 | B4s | ||
1. | CC I | 25.6 | 33.6 |
2. | CC II | 19.0 | 31.8 |
3. | S1 large | 271.3 | 251.6 |
4. | S1 medium | 136.8 | 123.3 |
5. | S1 small | 163.6 | 148.8 |
6. | S2 large | 28.5 | 30.2 |
7. | S2 medium | 125.5 | 98.0 |
8. | S2 small | 35.9 | 23.9 |
9. | S4 large | 146.0 | 113.0 |
10. | S4 medium | 23.1 | 35.5 |
11. | S4 small | 38.9 | 49.7 |
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Bachofner, W.; Suza, D.; Müller, H.S.; Kollegger, J. Long-Term Shrinkage Measurements on Large-Scale Specimens Exposed to Real Environmental Conditions. Materials 2023, 16, 7305. https://doi.org/10.3390/ma16237305
Bachofner W, Suza D, Müller HS, Kollegger J. Long-Term Shrinkage Measurements on Large-Scale Specimens Exposed to Real Environmental Conditions. Materials. 2023; 16(23):7305. https://doi.org/10.3390/ma16237305
Chicago/Turabian StyleBachofner, Wolfgang, Dominik Suza, Harald S. Müller, and Johann Kollegger. 2023. "Long-Term Shrinkage Measurements on Large-Scale Specimens Exposed to Real Environmental Conditions" Materials 16, no. 23: 7305. https://doi.org/10.3390/ma16237305