硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (4): 1109-1121.DOI: 10.16552/j.cnki.issn1001-1625.2025.0913
• 水泥混凝土 • 下一篇
收稿日期:2025-09-11
修订日期:2025-10-19
出版日期:2026-04-20
发布日期:2026-05-14
通信作者:
张亚梅,博士,教授。E-mail:ymzhang@seu.edu.cn作者简介:王伟(1993—),男,博士,副研究员。主要从事固废资源化方面的研究。E-mail:wang-wei@seu.edu.cn
基金资助:
WANG Wei1(
), YE Zi1, YU Qi2, ZHANG Yamei1(
)
Received:2025-09-11
Revised:2025-10-19
Published:2026-04-20
Online:2026-05-14
摘要:
水淬冷却镍铁渣细骨料无定形二氧化硅含量较高,存在碱骨料反应(ASR)活性高的问题,这会对建筑结构的耐久性和安全性造成不利影响。为深入探究镍铁渣初始粒径与其ASR行为之间的内在关系,通过破碎分级控制粒径,基于水化产物、凝胶结构及微观形貌等变化系统地研究了不同初始粒径镍铁渣细骨料的ASR活性。结果表明,镍铁渣细骨料的ASR活性随初始粒径增长而提高。镍铁渣细骨料水泥砂浆中生成的大量氢氧化钙参与后续的ASR。钙离子与凝胶产物中的碱金属离子发生交换,在骨料附近裂缝中生成大量富钙凝胶,富钙凝胶吸水率较高,会导致浆体膨胀,影响浆体的孔结构。本研究直观揭示了不同初始粒径骨料在ASR过程中的动态损伤累积特征,为镍铁渣细骨料的ASR危害性评价及防治策略制定提供依据和工程参考。
中图分类号:
王伟, 叶子, 于淇, 张亚梅. 镍铁渣初始粒径对水泥砂浆碱骨料反应的影响[J]. 硅酸盐通报, 2026, 45(4): 1109-1121.
WANG Wei, YE Zi, YU Qi, ZHANG Yamei. Influence of Initial Particle Size of Ferronickel Slag on Alkali-Silica Reaction in Cement Mortar[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(4): 1109-1121.
| Material | Mass fraction/% | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| CaO | SiO2 | Al2O3 | SO3 | MgO | MnO | Fe2O3 | Cr2O3 | Na2O | TiO2 | LOI | |
| Cement | 64.20 | 17.44 | 4.56 | 3.64 | 1.39 | — | 2.62 | — | 0.43 | — | 5.72 |
| Ferronickel slag | 29.43 | 22.84 | 19.06 | — | 8.76 | 1.34 | 1.24 | 0.75 | 0.50 | 0.49 | 15.59 |
表1 水泥和镍铁渣的化学成分
Table 1 Chemical composition of cement and ferronickel slag
| Material | Mass fraction/% | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| CaO | SiO2 | Al2O3 | SO3 | MgO | MnO | Fe2O3 | Cr2O3 | Na2O | TiO2 | LOI | |
| Cement | 64.20 | 17.44 | 4.56 | 3.64 | 1.39 | — | 2.62 | — | 0.43 | — | 5.72 |
| Ferronickel slag | 29.43 | 22.84 | 19.06 | — | 8.76 | 1.34 | 1.24 | 0.75 | 0.50 | 0.49 | 15.59 |
| Group | Ferronickel slag initial particle size/mm | Mass/g | |||
|---|---|---|---|---|---|
| Cement | Ferronickel slag fine aggregate | River sand | Water | ||
| Ref | — | 440 | 0 | 990.0 | 206.8 |
| A | >4.75 | 440 | 247.5 | 742.5 | 206.8 |
| B | 2.36~4.75 | 440 | 247.5 | 742.5 | 206.8 |
| C | 0~<2.36 | 440 | 247.5 | 742.5 | 206.8 |
表2 镍铁渣细骨料水泥砂浆快速砂浆棒法的试验配合比
Table 2 Experimental mix proportion of ferronickel slag fine aggregate cement mortar accelerated mortar bar method
| Group | Ferronickel slag initial particle size/mm | Mass/g | |||
|---|---|---|---|---|---|
| Cement | Ferronickel slag fine aggregate | River sand | Water | ||
| Ref | — | 440 | 0 | 990.0 | 206.8 |
| A | >4.75 | 440 | 247.5 | 742.5 | 206.8 |
| B | 2.36~4.75 | 440 | 247.5 | 742.5 | 206.8 |
| C | 0~<2.36 | 440 | 247.5 | 742.5 | 206.8 |
图7 不同龄期下镍铁渣细骨料水泥砂浆ASR过程水化产物的XRD谱
Fig.7 XRD patterns of hydration products of ferronickel slag fine aggregate cement mortar during ASR deterioration at different ages
图11 不同龄期下镍铁渣细骨料水泥砂浆ASR过程的28 d BSE图像
Fig.11 28 d BSE images of ferronickel slag fine aggregate cement mortar during ASR deterioration at different ages
| Group | Ref | A | B | C |
|---|---|---|---|---|
| Ca/Si ratio (gel) | 2.06 | 1.82 | 1.91 | 2.09 |
| Ca/Si ratio (ASR product) | — | 1.57 | 1.33 | — |
表3 镍铁渣细骨料水泥砂浆凝胶及ASR产物Ca/Si比
Table 3 Ca/Si ratio of gels and ASR products of ferronickel slag fine aggregate cement mortar
| Group | Ref | A | B | C |
|---|---|---|---|---|
| Ca/Si ratio (gel) | 2.06 | 1.82 | 1.91 | 2.09 |
| Ca/Si ratio (ASR product) | — | 1.57 | 1.33 | — |
图12 不同龄期下镍铁渣细骨料水泥砂浆ASR过程的孔结构演化
Fig.12 Pore structure evolution of ferronickel slag fine aggregate cement mortar during ASR deterioration at different ages
| [1] | OLSSON J A, MILLER S A, KNEIFEL J D. A review of current practice for life cycle assessment of cement and concrete[J]. Resources, Conservation and Recycling, 2024, 206: 107619. |
| [2] | ZHONG X Y, HU M M, DEETMAN S, et al. Global greenhouse gas emissions from residential and commercial building materials and mitigation strategies to 2060[J]. Nature Communications, 2021, 12: 6126. |
| [3] | SANTHOSH K G, SUBHANI S M, BAHURUDEEN A. Cleaner production of concrete by using industrial by-products as fine aggregate: a sustainable solution to excessive river sand mining[J]. Journal of Building Engineering, 2021, 42: 102415. |
| [4] | DINH H L, LIU J, ONG D E L, et al. A sustainable solution to excessive river sand mining by utilizing by-products in concrete manufacturing: a state-of-the-art review[J]. Cleaner Materials, 2022, 6: 100140. |
| [5] | 郭倩绮, 童蕊花, 冯晓兰, 等. 工业固废在加气混凝土制品生产中的研究与应用[J]. 砖瓦, 2023(10): 44-47. |
| GUO Q Q, TONG R H, FENG X L, et al. Research and application of industrial solid waste in the production of aerated concrete products[J]. Brick and Tile, 2023(10): 44-47 (in Chinese). | |
| [6] | WANG D Q, MA B, PANG L, et al. Alkali-activated blast furnace ferronickel slag for Cr immobilization[J]. Cement and Concrete Composites, 2024, 150: 105560. |
| [7] | YANG T, YAO X, ZHANG Z H. Geopolymer prepared with high-magnesium nickel slag: characterization of properties and microstructure[J]. Construction and Building Materials, 2014, 59: 188-194. |
| [8] | SAHA A K, KHAN M N N, SARKER P K. Value added utilization of by-product electric furnace ferronickel slag as construction materials: a review[J]. Resources, Conservation and Recycling, 2018, 134: 10-24. |
| [9] | SAKOI Y, ABA M, TSUKINAGA Y, et al. Properties of concrete used in ferronickel slag aggregate[C]. Proceedings of the 3 rd international conference on sustainable construction materials and technologies, Tokyo, Japan, 2013. |
| [10] | CHOI Y C, CHOI S. Alkali-silica reactivity of cementitious materials using ferronickel slag fine aggregates produced in different cooling conditions[J]. Construction and Building Materials, 2015, 99: 279-287. |
| [11] | SAHA A K, SARKER P K. Sustainable use of ferronickel slag fine aggregate and fly ash in structural concrete: mechanical properties and leaching study[J]. Journal of Cleaner Production, 2017, 162: 438-448. |
| [12] | SUN J W, FENG J J, CHEN Z H. Effect of ferronickel slag as fine aggregate on properties of concrete[J]. Construction and Building Materials, 2019, 206: 201-209. |
| [13] | NURUZZAMAN M, KURI J C, SARKER P K. Strength, permeability and microstructure of self-compacting concrete with the dual use of ferronickel slag as fine aggregate and supplementary binder[J]. Construction and Building Materials, 2022, 318: 125927. |
| [14] | SAHA A K, SARKER P K. Effect of sulphate exposure on mortar consisting of ferronickel slag aggregate and supplementary cementitious materials[J]. Journal of Building Engineering, 2020, 28: 101012. |
| [15] | NURUZZAMAN M, CAMARGO CASIMIRO J O, SARKER P K. Fresh and hardened properties of high strength self-compacting concrete using by-product ferronickel slag fine aggregate[J]. Journal of Building Engineering, 2020, 32: 101686. |
| [16] | MOHAMMADI A, GHIASVAND E, NILI M. Relation between mechanical properties of concrete and alkali-silica reaction (ASR): a review[J]. Construction and Building Materials, 2020, 258: 119567. |
| [17] | SAHA A K, SARKER P K. Expansion due to alkali-silica reaction of ferronickel slag fine aggregate in OPC and blended cement mortars[J]. Construction and Building Materials, 2016, 123: 135-142. |
| [18] | LUKSCHOVÁ Š, PŘIKRYL R, PERTOLD Z. Petrographic identification of alkali-silica reactive aggregates in concrete from 20 th century bridges[J]. Construction and Building Materials, 2009, 23(2): 734-741. |
| [19] | STRACK C M, BARNES E, RAMSEY M A, et al. Impact of aggregate mineralogy and exposure solution on alkali-silica reaction product composition and structure within accelerated test conditions[J]. Construction and Building Materials, 2020, 240: 117929. |
| [20] | WANG W, ZHANG S Z, ZHANG Y M, et al. Understanding the influence of slag fineness and water-to-binder ratio on the alkali-silica reaction in alkali-activated slag mortars[J]. Cement and Concrete Composites, 2025, 157: 105907. |
| [21] | WANG W, NOGUCHI T, TOMOYOSE A, et al. Influence of volcanic glass powder on alkali-silica reaction expansion in alkali-activated slag mortars[J]. Cement and Concrete Composites, 2024, 152: 105665. |
| [22] | WANG W, MARUYAMA I, NOGUCHI T. Impact of exposure conditions on alkali-silica reaction in alkali-activated material systems[J]. Cement and Concrete Composites, 2024, 153: 105695. |
| [23] | LEI J W, LAW W W, YANG E H. Effect of calcium hydroxide on the alkali-silica reaction of alkali-activated slag mortars activated by sodium hydroxide[J]. Construction and Building Materials, 2021, 272: 121868. |
| [24] | LEEMANN A, LE SAOUT G, WINNEFELD F, et al. Alkali-silica reaction: the influence of calcium on silica dissolution and the formation of reaction products[J]. Journal of the American Ceramic Society, 2011, 94(4): 1243-1249. |
| [25] | JOO H E, TAKAHASHI Y. Analytical and experimental studies on alkali-silica reaction mechanism: aggregate cracking and chemical composition change of gel[J]. Cement and Concrete Composites, 2023, 139: 105003. |
| [26] | NGUYEN Q D, CASTEL A, KIM T, et al. Performance of fly ash concrete with ferronickel slag fine aggregate against alkali-silica reaction and chloride diffusion[J]. Cement and Concrete Research, 2021, 139: 106265. |
| [27] | OEY T, LA PLANTE E C, FALZONE G, et al. Calcium nitrate: a chemical admixture to inhibit aggregate dissolution and mitigate expansion caused by alkali-silica reaction[J]. Cement and Concrete Composites, 2020, 110: 103592. |
| [28] | MA Y F, LI W W, JIN M, et al. Influences of leaching on the composition, structure and morphology of calcium silicate hydrate (C-S-H) with different Ca/Si ratios[J]. Journal of Building Engineering, 2022, 58: 105017. |
| [29] | RAJABIPOUR F, GIANNINI E, DUNANT C, et al. Alkali-silica reaction: current understanding of the reaction mechanisms and the knowledge gaps[J]. Cement and Concrete Research, 2015, 76: 130-146. |
| [30] | ZHOU W, LI L, LIU S H, et al. Hydration properties and thermal analysis of cement-based materials containing limestone powder[J]. Journal of Central South University, 2017, 24(12): 2932-2939. |
| [31] | YU P, KIRKPATRICK R J, POE B, et al. Structure of calcium silicate hydrate (C-S-H): near-, mid-, and far-infrared spectroscopy[J]. Journal of the American Ceramic Society, 1999, 82(3): 742-748. |
| [32] | KIRKPATRICK R J, YARGER J L, MCMILLAN P F, et al. Raman spectroscopy of C-S-H, tobermorite, and jennite[J]. Advanced Cement Based Materials, 1997, 5(3/4): 93-99. |
| [33] | CONG X D, KIRKPATRICK R J. 29Si MAS NMR study of the structure of calcium silicate hydrate[J]. Advanced Cement Based Materials, 1996, 3(3/4): 144-156. |
| [34] | GADSDEN J A J. Infrared spectra of minerals and related inorganic compounds[J]. Mineralogical Magazine, 1976, 40(313): 540. |
| [35] | KRIVENKO P, DROCHYTKA R, GELEVERA A, et al. Mechanism of preventing the alkali-aggregate reaction in alkali activated cement concretes[J]. Cement and Concrete Composites, 2014, 45: 157-165. |
| [36] | KNUDSEN T, THAULOW N. Quantitative microanalyses of alkali-silica gel in concrete[J]. Cement and Concrete Research, 1975, 5(5): 443-454. |
| [37] | PEREIRA E, PEREIRA E, PIANARO S A, et al. Combined effect of alkali-aggregate reaction (AAR) and internal sulfate attack (ISA): microstructural and porous structure modifications of Portland cement mortars[J]. Construction and Building Materials, 2023, 362: 129676. |
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