| Literature DB >> 31540153 |
Jinpeng Dai1,2, Qicai Wang3,4, Chao Xie5, Yanjin Xue6, Yun Duan7, Xiaoning Cui8.
Abstract
To improve the properties of ground granulated blast furnace slag (GGBS) and utilize ground granulated blast furnace slag efficiently, this study investigates the effect of fineness on the hydration activity index (HAI) of ground granulated blast furnace slag. The hydration activity index of GGBS with six specific surface areas (SSAs) was characterized by the ratio of compressive strength of the prismatic mortar test block. The particle size distribution of GGBS with different grinding times was tested by laser particle size analyzer. The paste of different specific surface area GGBSs in different curing ages was investigated at the micro level by X-ray diffraction, scanning electron microscope, energy dispersive spectrometer, thermogravimetric scanning calorimeter, and differential scanning calorimeter. The effect of particle distribution of GGBS on the hydration activity index of different curing ages was studied by gray correlation analysis. The results indicated that the compressive strength and hydration activity index increases with the increase of a specific surface area of GGBS at different curing ages. The hydration activity index at different curing ages is almost a linear role for specific surface areas. With the increase in the specific surface area of GGBS, the content of Ca(OH)2 in paste decreases gradually. When GGBS was added into a mortar test block, the hydrate calcium silicate gel in paste changed from a high Ca/Si ratio to a low Ca/Si ratio. The 0-10 micron particles of GGBS particle distribution were highly correlated with the hydration activity index at different curing ages.Entities:
Keywords: fineness; gray correlation analysis; ground granulated blast furnace slag; hydration activity index
Year: 2019 PMID: 31540153 PMCID: PMC6766355 DOI: 10.3390/ma12182984
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Chemical composition of cement and GGBS/mass, %.
| Chemical Composition/% | CaO | SiO2 | Al2O3 | Fe2O3 | MgO | SO3 | K2O | TiO2 | ZnO |
|---|---|---|---|---|---|---|---|---|---|
| Cement | 76.70 | 9.90 | 2.01 | 7.01 | 0.31 | 1.61 | 1.06 | 0.57 | 0.11 |
| GGBS | 42.90 | 29.40 | 7.22 | 2.26 | 7.32 | 2.86 | 1.10 | 0.81 | - |
Figure 1Particle size distribution curves of ground granulated blast furnace slag (GGBS).
Figure 2XRD patterns of GGBS.
Mortar mixes ratio.
| Raw Materials | Reference Mortar | Test Mortar |
|---|---|---|
| OPC/g | 450 ± 2 | 225 ± 1 |
| Mineral admixture/g | - | 225 ± 1 |
| ISO sand/g | 1350 ± 5 | 1350 ± 5 |
| Water/mL | 225 | |
Compressive strength of specimen, MPa.
| Age | Cement | KA | KB | KC | KD | KE | KF |
|---|---|---|---|---|---|---|---|
| 1 d | 23.32 | 5.80 | 6.15 | 6.96 | 8.24 | 8.38 | 8.58 |
| 3 d | 24.94 | 12.99 | 16.24 | 17.98 | 19.37 | 20.11 | 21.23 |
| 7 d | 34.45 | 21.00 | 24.71 | 28.07 | 32.25 | 33.13 | 34.45 |
| 14 d | 36.31 | 27.61 | 30.86 | 35.50 | 40.14 | 42.18 | 45.24 |
| 28 d | 42.92 | 35.38 | 41.99 | 46.28 | 48.37 | 50.00 | 52.43 |
Figure 3HAI of GGBS.
Figure 4Relationship between SSA and HAI of GGBS.
Figure 5XRD patterns of specimens with different SSA. (a) XRD patterns of specimens at 1 day; (b) XRD patterns of specimens at 3 days; (c) XRD patterns of specimens at 7 days; (d) XRD patterns of specimens at 28 days.
Figure 6SEM micrographs of paste specimen of different SSA of GGBS and EDS in micro-area. (a) SEM micrograph of reference mortar at 28 days. (b) EDS of point 1 in micro-area of paste samples. (c) SEM micrograph of KB Test mortar at 28 days. (d) EDS of point 2 in micro-area of paste samples. (e) SEM micrograph of KD Test mortar at 28 days. (f) EDS of point 3 in micro-area of paste samples. (g) SEM micrograph of KF Test mortar at 28 days. (h) EDS of point 4 in micro-area of paste samples.
Figure 7TG-DSC curves of pastes at different ages.
Ca(OH)2 content of pastes at different ages,%.
| Specimen | Age | |
|---|---|---|
| 7 Days | 28 Days | |
| Cement | 9.50 | 8.68 |
| KA | 5.51 | 4.65 |
| KB | 4.73 | 4.48 |
| KC | 4.53 | 4.32 |
| KD | 3.66 | 3.29 |
| KE | 3.46 | 3.09 |
| KF | 2.72 | 2.51 |
Time ranges of the main-array.
| Specimen | Time-Array | ||||
|---|---|---|---|---|---|
| KA | 0.789 | 0.722 | 0.726 | 0.748 | 0.773 |
| KB | 0.836 | 0.903 | 0.854 | 0.836 | 0.918 |
| KC | 0.947 | 1.000 | 0.970 | 0.961 | 1.012 |
| KD | 1.120 | 1.077 | 1.115 | 1.087 | 1.057 |
| KE | 1.139 | 1.118 | 1.145 | 1.142 | 1.093 |
| KF | 1.168 | 1.180 | 1.191 | 1.225 | 1.146 |
Time ranges of sub-array.
| Specimen | Time-Array | |||||
|---|---|---|---|---|---|---|
| KA | 0.447 | 0.957 | 1.255 | 1.590 | 2.012 | 2.459 |
| KB | 0.644 | 0.983 | 1.224 | 1.340 | 1.594 | 1.915 |
| KC | 0.841 | 1.009 | 1.194 | 1.090 | 1.175 | 1.370 |
| KD | 1.141 | 0.880 | 0.848 | 1.057 | 0.920 | 0.256 |
| KE | 1.287 | 0.745 | 0.971 | 0.915 | 0.299 | 0.000 |
| KF | 1.640 | 1.425 | 0.508 | 0.006 | 0.000 | 0.000 |
Gray correlation degree.
| Age | Range of Particle Size/μm | |||||
|---|---|---|---|---|---|---|
| 0–5 | 5–10 | 10–20 | 20–40 | 40–60 | >60 | |
| 1d | +0.832 | +0.825 | −0.724 | −0.704 | −0.587 | −0.472 |
| 3d | +0.809 | +0.840 | −0.738 | −0.722 | −0.603 | −0.484 |
| 7d | +0.845 | +0.837 | −0.734 | −0.716 | −0.600 | −0.485 |
| 14d | +0.846 | +0.845 | −0.735 | −0.719 | −0.601 | −0.483 |
| 28d | +0.777 | +0.838 | −0.739 | −0.723 | −0.599 | −0.477 |