| Literature DB >> 28788490 |
Jun Liu1, Feng Xing2, Biqin Dong3, Hongyan Ma4, Dong Pan5.
Abstract
In this paper, concrete specimens are immersed in ultrapure water, to study the evolutions of surface permeability, pore structure and paste microstructure following the prolonging of immersion period. According to the results, after 30-day immersion, the surface permeability of concrete becomes higher as compared with the value before immersion. However, further immersion makes the surface permeability decrease, so that the value measured after 150-day immersion is only half that measured after 30-day immersion. The early increase in surface permeability should be mainly attributed to the leaching of calcium hydroxide, while the later decrease to the refinement of pore structure due to hydration. The two effects work simultaneously and compete throughout the immersion period. The proposed mechanisms get support from microscopic measurements and observations.Entities:
Keywords: calcium hydroxide; concrete; immersion; pore structure; surface permeability
Year: 2014 PMID: 28788490 PMCID: PMC5453065 DOI: 10.3390/ma7020876
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1.An arbitrary example of the processing of Autoclam test results.
Water seepage volume (10−7 m3) recorded within 15 min Autoclam tests on concrete at different immersion age.
| Time (min) | Immersion age (days)
| |||||
|---|---|---|---|---|---|---|
| 0 (moisture curing to 28 days) | 30 | 60 | 90 | 120 | 150 | |
| 1 | 0.59 | 1.53 | 0.74 | 1.07 | 0.7 | 1.56 |
| 2 | 0.92 | 2.45 | 1.06 | 1.48 | 1.01 | 2.71 |
| 3 | 1.28 | 3.15 | 1.33 | 1.78 | 1.21 | 3.3 |
| 4 | 1.38 | 3.5 | 1.56 | 2.04 | 1.49 | 3.79 |
| 5 | 1.67 | 5.21 | 1.82 | 2.26 | 1.72 | 4.68 |
| 6 | 1.84 | 4.7 | 2.04 | 2.66 | 1.92 | 5.11 |
| 7 | 2.01 | 5.18 | 2.24 | 2.84 | 2.2 | 5.42 |
| 8 | 2.1 | 5.25 | 2.39 | 3.03 | 2.35 | 5.51 |
| 9 | 2.45 | 5.49 | 2.57 | 3.19 | 2.44 | 5.6 |
| 10 | 2.61 | 5.6 | 2.95 | 3.34 | 2.57 | 5.72 |
| 11 | 2.66 | 6.11 | 3.11 | 3.49 | 2.78 | 5.75 |
| 12 | 2.87 | 6.21 | 3.26 | 3.62 | 2.96 | 5.82 |
| 13 | 2.99 | 6.4 | 3.43 | 3.77 | 3.08 | 5.88 |
| 14 | 3.11 | 6.73 | 3.58 | 3.9 | 3.15 | 5.97 |
| 15 | 3.2 | 7.06 | 3.71 | 4.03 | 3.28 | 6.04 |
Figure 2.Evolution of surface permeability index of concrete as immersed in ultrapure water.
Figure 3.MIP cumulative porosity curves showing: (a) a curve averaged from three sample curves; and (b) changing of the pore structure of concrete as immersed in ultrapure water.
Figure 4.Changing of pore structure of concrete as immersed in ultrapure water (nitrogen adsorption).
Figure 5.X-ray diffraction (XRD) patterns of concrete specimens at the immersion ages of 0 and 30 days.
Figure 6.Scanning electron microscopy (SEM) images of calcium-rich crystals in concrete specimens at the immersion ages of (a) 0 and (b) 30 days.