BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (8): 2770-2781.DOI: 10.16552/j.cnki.issn1001-1625.2026.0226
• Solid Waste and Eco-Materials • Previous Articles Next Articles
ZHOU Junkang1(
), LI Beixing1(
), TIAN Jikun2, TIAN Shenhua1
Received:2026-03-12
Revised:2026-04-29
Online:2026-08-15
Published:2026-09-01
Contact:
LI Beixing
CLC Number:
ZHOU Junkang, LI Beixing, TIAN Jikun, TIAN Shenhua. Effect of Mineral Admixtures on Hydration Kinetics of Low-Heat Portland Cement[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(8): 2770-2781.
| Material | Mass fraction/% | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| CaO | SiO2 | Fe2O3 | Al2O3 | MgO | TiO2 | SO3 | K2O | Na2O | LOI | |
| PLH | 60.7 | 22.8 | 5.0 | 3.5 | 3.7 | 0.2 | 1.9 | 0.6 | 0.1 | 0.6 |
| FA | 8.4 | 48.8 | 6.1 | 24.3 | 1.4 | 1.0 | 1.2 | 1.9 | 1.1 | 3.4 |
| SL | 50.3 | 27.3 | 2.2 | 9.9 | 4.3 | 0.5 | 2.8 | 0.7 | 0.2 | 0.2 |
Table 1 Main chemical composition of cementitious materials
| Material | Mass fraction/% | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| CaO | SiO2 | Fe2O3 | Al2O3 | MgO | TiO2 | SO3 | K2O | Na2O | LOI | |
| PLH | 60.7 | 22.8 | 5.0 | 3.5 | 3.7 | 0.2 | 1.9 | 0.6 | 0.1 | 0.6 |
| FA | 8.4 | 48.8 | 6.1 | 24.3 | 1.4 | 1.0 | 1.2 | 1.9 | 1.1 | 3.4 |
| SL | 50.3 | 27.3 | 2.2 | 9.9 | 4.3 | 0.5 | 2.8 | 0.7 | 0.2 | 0.2 |
| Mineral composition | C3S | C2S | C3A | C4AF |
|---|---|---|---|---|
| Percentage/% | 37.7B(39.8R) | 36.9B(43.0R) | 0.8B(1.2R) | 15.2B(16.0R) |
Table 2 Main mineral composition of low-heat Portland cement
| Mineral composition | C3S | C2S | C3A | C4AF |
|---|---|---|---|---|
| Percentage/% | 37.7B(39.8R) | 36.9B(43.0R) | 0.8B(1.2R) | 15.2B(16.0R) |
| Sample | Mass fraction/% | Water-to-binder ratio | ||
|---|---|---|---|---|
| PLH | FA | SL | ||
| PLH100 | 100 | 0 | 0 | 0.4 |
| FA20 | 80 | 20 | 0 | 0.4 |
| FA30 | 70 | 30 | 0 | 0.4 |
| FA40 | 60 | 40 | 0 | 0.4 |
| SL20 | 80 | 0 | 20 | 0.4 |
| SL30 | 70 | 0 | 30 | 0.4 |
| SL40 | 60 | 0 | 40 | 0.4 |
| FA10SL10 | 80 | 10 | 10 | 0.4 |
| FA15SL15 | 70 | 15 | 15 | 0.4 |
| FA20SL20 | 60 | 20 | 20 | 0.4 |
Table 3 Mix proportions of test samples
| Sample | Mass fraction/% | Water-to-binder ratio | ||
|---|---|---|---|---|
| PLH | FA | SL | ||
| PLH100 | 100 | 0 | 0 | 0.4 |
| FA20 | 80 | 20 | 0 | 0.4 |
| FA30 | 70 | 30 | 0 | 0.4 |
| FA40 | 60 | 40 | 0 | 0.4 |
| SL20 | 80 | 0 | 20 | 0.4 |
| SL30 | 70 | 0 | 30 | 0.4 |
| SL40 | 60 | 0 | 40 | 0.4 |
| FA10SL10 | 80 | 10 | 10 | 0.4 |
| FA15SL15 | 70 | 15 | 15 | 0.4 |
| FA20SL20 | 60 | 20 | 20 | 0.4 |
| Sample | Q7/(J·g-1) | Sample | Q7/(J·g-1) |
|---|---|---|---|
| PLH100 | 211.9 | SL30 | 177.3 |
| FA20 | 179.3 | SL40 | 160.9 |
| FA30 | 160.2 | FA10SL10 | 191.1 |
| FA40 | 131.1 | FA15SL15 | 173.2 |
| SL20 | 193.2 | FA20SL20 | 156.5 |
Table 4 Hydration heat release at 7 d for composite cementitious system
| Sample | Q7/(J·g-1) | Sample | Q7/(J·g-1) |
|---|---|---|---|
| PLH100 | 211.9 | SL30 | 177.3 |
| FA20 | 179.3 | SL40 | 160.9 |
| FA30 | 160.2 | FA10SL10 | 191.1 |
| FA40 | 131.1 | FA15SL15 | 173.2 |
| SL20 | 193.2 | FA20SL20 | 156.5 |
| Sample | Qmax/(J·g-1) | Sample | Qmax/(J·g-1) |
|---|---|---|---|
| PLH100 | 249.7 | SL30 | 208.3 |
| FA20 | 215.0 | SL40 | 187.5 |
| FA30 | 194.3 | FA10SL10 | 223.8 |
| FA40 | 161.8 | FA15SL15 | 204.9 |
| SL20 | 228.4 | FA20SL20 | 188.4 |
Table 5 Total hydration heat release of composite cementitious system
| Sample | Qmax/(J·g-1) | Sample | Qmax/(J·g-1) |
|---|---|---|---|
| PLH100 | 249.7 | SL30 | 208.3 |
| FA20 | 215.0 | SL40 | 187.5 |
| FA30 | 194.3 | FA10SL10 | 223.8 |
| FA40 | 161.8 | FA15SL15 | 204.9 |
| SL20 | 228.4 | FA20SL20 | 188.4 |
| Sample | n | K1′ | K2′ | K3′ |
|---|---|---|---|---|
| PLH100 | 2.715 85 | 0.042 25 | 0.010 48 | 0.001 19 |
| FA20 | 2.809 48 | 0.043 52 | 0.010 12 | 0.001 06 |
| FA30 | 2.814 21 | 0.044 09 | 0.009 42 | 0.000 95 |
| FA40 | 2.273 11 | 0.036 45 | 0.008 13 | 0.000 76 |
| SL20 | 2.805 99 | 0.044 23 | 0.010 03 | 0.001 11 |
| SL30 | 2.670 34 | 0.045 60 | 0.010 23 | 0.001 15 |
| SL40 | 2.390 43 | 0.049 02 | 0.010 08 | 0.001 21 |
| FA10SL10 | 2.544 54 | 0.044 86 | 0.010 03 | 0.001 03 |
| FA15SL15 | 2.605 14 | 0.044 47 | 0.009 85 | 0.000 99 |
| FA20SL20 | 2.836 46 | 0.044 93 | 0.009 24 | 0.000 90 |
Table 6 Hydration kinetic parameters of composite cementitious systems
| Sample | n | K1′ | K2′ | K3′ |
|---|---|---|---|---|
| PLH100 | 2.715 85 | 0.042 25 | 0.010 48 | 0.001 19 |
| FA20 | 2.809 48 | 0.043 52 | 0.010 12 | 0.001 06 |
| FA30 | 2.814 21 | 0.044 09 | 0.009 42 | 0.000 95 |
| FA40 | 2.273 11 | 0.036 45 | 0.008 13 | 0.000 76 |
| SL20 | 2.805 99 | 0.044 23 | 0.010 03 | 0.001 11 |
| SL30 | 2.670 34 | 0.045 60 | 0.010 23 | 0.001 15 |
| SL40 | 2.390 43 | 0.049 02 | 0.010 08 | 0.001 21 |
| FA10SL10 | 2.544 54 | 0.044 86 | 0.010 03 | 0.001 03 |
| FA15SL15 | 2.605 14 | 0.044 47 | 0.009 85 | 0.000 99 |
| FA20SL20 | 2.836 46 | 0.044 93 | 0.009 24 | 0.000 90 |
| Sample | α1 | α2 | α2-α1 |
|---|---|---|---|
| PLH100 | 0.127 | 0.162 | 0.035 |
| FA20 | 0.124 | 0.157 | 0.033 |
| FA30 | 0.104 | 0.142 | 0.038 |
| FA40 | 0.090 | 0.137 | 0.047 |
| SL20 | 0.113 | 0.155 | 0.042 |
| SL30 | 0.109 | 0.160 | 0.051 |
| SL40 | 0.100 | 0.169 | 0.069 |
| FA10SL10 | 0.114 | 0.146 | 0.032 |
| FA15SL15 | 0.108 | 0.143 | 0.035 |
| FA20SL20 | 0.097 | 0.138 | 0.041 |
Table 7 Hydration degree during transition of hydration stages in composite cementitious systems
| Sample | α1 | α2 | α2-α1 |
|---|---|---|---|
| PLH100 | 0.127 | 0.162 | 0.035 |
| FA20 | 0.124 | 0.157 | 0.033 |
| FA30 | 0.104 | 0.142 | 0.038 |
| FA40 | 0.090 | 0.137 | 0.047 |
| SL20 | 0.113 | 0.155 | 0.042 |
| SL30 | 0.109 | 0.160 | 0.051 |
| SL40 | 0.100 | 0.169 | 0.069 |
| FA10SL10 | 0.114 | 0.146 | 0.032 |
| FA15SL15 | 0.108 | 0.143 | 0.035 |
| FA20SL20 | 0.097 | 0.138 | 0.041 |
| [1] | 钟翔, 李北星. 温度匹配养护对大掺量矿物掺合料混凝土抗压强度及早期水化性能的影响[J]. 硅酸盐通报, 2019, 38(10): 3080-3086. |
| ZHONG X, LI B X. Effect of temperature match curing on compressive strength and early hydration properties of concrete with high volume of mineral admixture[J]. Bulletin of the Chinese Ceramic Society, 2019, 38(10): 3080-3086 (in Chinese). | |
| [2] | 杨彦鑫, 周和祥, 马建林, 等. 大体积混凝土承台温度控制及分布规律[J]. 硅酸盐通报, 2019, 38(5): 1497-1502+1509. |
| YANG Y X, ZHOU H X, MA J L, et al. Study on temperature control and distribution of mass concrete cap[J]. Bulletin of the Chinese Ceramic Society, 2019, 38(5): 1497-1502+1509 (in Chinese). | |
| [3] | KIM S J, YANG K H, MOON G D. Hydration characteristics of low-heat cement substituted by fly ash and limestone powder[J]. Materials, 2015, 8(9): 5847-5861. |
| [4] | ZHOU Y F, LI W W, PENG Y X, et al. Hydration and fractal analysis on low-heat Portland cement pastes using thermodynamics-based methods[J]. Fractal and Fractional, 2023, 7(8): 606. |
| [5] | HAN F H, HE X J, ZHANG Z Q, et al. Hydration heat of slag or fly ash in the composite binder at different temperatures[J]. Thermochimica Acta, 2017, 655: 202-210. |
| [6] | LUAN C Q, YUAN L W, WANG J B, et al. Uncovering the mechanism of the role of fly ash in the self-healing ability of mortar with different curing ages[J]. Materials, 2023, 16(9): 3453. |
| [7] | JIANG C M, XIA L, LI S X, et al. Impact of ground granulated blast furnace slag on calcium leaching of low-heat Portland cement paste[J]. Materials, 2024, 17(15): 3857. |
| [8] | MOKAL M P, MANDAL R, NAYAK S, et al. Efficacy of high-volume fly ash and slag on the physicomechanical, durability, and analytical characteristics of high-strength mass concrete[J]. Journal of Building Engineering, 2023, 76: 107295. |
| [9] | KRSTULOVIĆ R, DABIĆ P. A conceptual model of the cement hydration process[J]. Cement and Concrete Research, 2000, 30(5): 693-698. |
| [10] | SUN H G. Determination of low-temperature crack resistance of asphalt mastics based on relaxation properties[J]. Case Studies in Construction Materials, 2023, 19: e02389. |
| [11] | BAI R, ZHANG J, YAN C W, et al. Hydration characteristics of cementitious composites containing calcium silicate slag powder[J]. KSCE Journal of Civil Engineering, 2023, 27(7): 2952-2963. |
| [12] | WU C R, XIAO Z P, WEI J J, et al. Early hydration behaviours and kinetics of Portland cement composites incorporating low-calcium circulating fluidized bed fly ash[J]. Journal of Composites Science, 2025, 9(12): 671. |
| [13] | LAGIER F, KURTIS K E. Influence of Portland cement composition on early age reactions with metakaolin[J]. Cement and Concrete Research, 2007, 37(10): 1411-1417. |
| [14] | FERNÁNDEZ Á, LOTHENBACH B, ALONSO M C, et al. Thermodynamic modelling of short and long term hydration of ternary binders. Influence of Portland cement composition and blast furnace slag content[J]. Construction and Building Materials, 2018, 166: 510-521. |
| [15] | LV X D, YANG L, WANG F Z, et al. Hydration, microstructure characteristics, and mechanical properties of high-ferrite Portland cement in the presence of fly ash and phosphorus slag[J]. Cement and Concrete Composites, 2023, 136: 104862. |
| [16] | 宁全纪, 陈阳杰, 曹园章, 等. 低热硅酸盐水泥早期水化热动力学研究[J]. 新型建筑材料, 2023, 50(8): 44-51+69. |
| NING Q J, CHEN Y J, CAO Y Z, et al. Thermodynamic and kinetic studies on early hydration of low-heat cement[J]. New Building Materials, 2023, 50(8): 44-51+69 (in Chinese). | |
| [17] | MEHDIPOUR I, KHAYAT K H. Effect of particle-size distribution and specific surface area of different binder systems on packing density and flow characteristics of cement paste[J]. Cement and Concrete Composites, 2017, 78: 120-131. |
| [18] | LI Y, DENG Y G, LIU R Q. Hydration kinetics of Portland cement-silica fume binary system at low temperature[J]. Materials, 2019, 12(23): 3896. |
| [19] | CHENG Q H, MENG W Q, MA K L. Hydration heat and hydration kinetics of cement paste compound with molybdenum tailings powder: a research article[J]. Coatings, 2023, 13(12): 2073. |
| [20] | DING Z Y, ZHOU J H, SU Q, et al. Hydration kinetics for alkaline activation of slag from color variation data[J]. Molecules, 2021, 26(12): 3764. |
| [21] | KNUDSEN T. The dispersion model for hydration of Portland cement I. General concepts[J]. Cement and Concrete Research, 1984, 14(5): 622-630. |
| [22] | SHENG X W, XIAO S M, ZHENG W Q, et al. Hydration kinetics analysis of cementitious paste composites produced by binary and ternary binder materials for potential use in massive concrete structures[J]. Case Studies in Construction Materials, 2023, 18: e02209. |
| [23] | SUN Y, LEE H S. Effect of fly ash with or without mechanical activation on early-age cement hydration: a comparative case study by boundary nucleation and growth model[J]. Thermochimica Acta, 2022, 716: 179306. |
| [24] | JOZIĆ D, LJUBIČIĆ B, PETROVIĆ A, et al. The influence of GGBFS as an additive replacement on the kinetics of cement hydration and the mechanical properties of cement mortars[J]. Buildings, 2023, 13(8): 1960. |
| [25] | DING X B, DU H Y, WU E F, et al. Investigating the hydration, mechanical properties, and pozzolanic activity of cement paste containing co-combustion fly ash[J]. Buildings, 2024, 14(5): 1305. |
| [26] | ZHU X H, RICHARDSON I G. Morphology-structural change of C-A-S-H gel in blended cements[J]. Cement and Concrete Research, 2023, 168: 107156. |
| [27] | YOSHIDA S, ELAKNESWARAN Y, NAWA T. Electrostatic properties of C-S-H and C-A-S-H for predicting calcium and chloride adsorption[J]. Cement and Concrete Composites, 2021, 121: 104109. |
| [28] | ATALLAH J, BIGNONNET F, RANAIVOMANANA H, et al. An analytical model for the long term slag hydration kinetics in slag blended cement established from a large experimental database[J]. Construction and Building Materials, 2024, 448: 138160. |
| [29] | ZHANG N, LI H X, LIU X M. Hydration kinetics of cementitious materials composed of red mud and coal gangue[J]. International Journal of Minerals, Metallurgy, and Materials, 2016, 23(10): 1215-1224. |
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