Journal of Shandong University(Engineering Science) ›› 2026, Vol. 56 ›› Issue (1): 89-96.doi: 10.6040/j.issn.1672-3961.0.2024.279

• Civil Engineering • Previous Articles    

The inhibition of alkali-silica reaction by ceramic polishing waste and silica fume

GAO Peng1,2,3, NI Zhuang1*, ZHOU Haoran1, WANG Yimeng1, WANG Jue1   

  1. GAO Peng1, 2, 3, NI Zhuang1*, ZHOU Haoran1, WANG Yimeng1, WANG Jue1(1. School of Civil Engineering, Inner Mongolia University of Science and Technology, Baotou 014010, Inner Mongolia, China;
    2. Inner Mongolia Autonomous Region Building Structure Disaster Prevention and Mitigation Engineering Technology Research Center, Inner Mongolia University of Science and Technology, Baotou 014010, Inner Mongolia, China;
    3. Inner Mongolia Key Laboratory of Safety and Durability for Civil Engineering, Inner Mongolia University of Science and Technology, Baotou 014010, Inner Mongolia, China
  • Published:2026-02-03

Abstract: In order to investigate the effects of ceramic polishing waste(CPW)and silica fume(SF)on the expansion of alkali-silica reaction(ASR), accelerated mortar bar tests were carried out with different proportions of CPW and SF instead of cement, and the strength of concrete specimens with the same replacement rate was tested. The hydration product, microstructure, and elemental composition in the mortar bars were analyzed using X-ray diffraction(XRD), scanning electron microscope(SEM), and energy dispersive spectrometer(EDS)to elucidate the ASR inhibition mechanism. The results showed that the effect of CPW on inhibiting ASR swelling increased with the increase of content, and 30% CPW could inhibit ASR expansion. A binary blend of CPW and SF further enhanced the inhibition of ASR; However, total replacement levels exceeding 30% may reduce the strength of concrete. In addition, there was a synergistic effect between CPW and SF, in which Al2O3 in CPW consumed alkali ions and promotes the formation of non-expansive aluminosilicate minerals. The pozzolanic effects of CPW and SF increased the alkali-binding capacity of the gel, further mitigating ASR expansion.

Key words: alkali-silica reaction, ceramic polishing waste, silica fume, inhibition mechanism, aluminosilicate minerals

CLC Number: 

  • TU528
[1] GHOLIZADEH-VAYGHAN A, RAJABIPOUR F. The influence of alkali-silica reaction(ASR)gel composition on its hydrophilic properties and free swelling in contact with water vapor[J]. Cement and Concrete Research, 2017, 94:49-58.
[2] GAO P, WANG Y B, WANG Y M, et al. Influence of waste tire rubber powder, polypropylene fiber and their binary blends on mitigating alkali-silica reaction[J]. Journal of Building Engineering, 2023, 67: 105951.
[3] WANG Y B, GAO P, SU H Z, et al. Failure criteria and microstructure evolution mechanism of the alkali-silica reaction of concrete[J]. Reviews on Advanced Materials Science, 2023, 62: 20230102.
[4] 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.
[5] HAY R, OSTERTAG C P. New insights into the role of fly ash in mitigating alkali-silica reaction(ASR)in concrete[J].Cement and Concrete Research,2021, 144: 106440.
[6] SHAFAATIAN S M H, AKHAVAN A, MARAGHECHI H, et al. How does fly ash mitigate alkali-silica reaction(ASR)in accelerated mortar bar test(ASTM C1567)?[J]. Cement and Concrete Composites, 2013, 37: 143-153.
[7] THOMAS M. The effect of supplementary cementing materials on alkali-silica reaction: a review[J]. Cement and Concrete Research, 2011, 41(12): 1224-1231.
[8] WANG W Q, ROBERTS J, RANGARAJU P. Pozzolanic reactivity of high-alkali supplementary cementitious materials and its impact on mitigation of alkali-silica reaction[J]. Transportation Research Record: Journal of the Transportation Research Board, 2024, 2678(11): 2110-2126.
[9] CHEN Y L, XIONG X F, SHI S, et al. Effect of glass powder on alkali-silica reaction mitigation for tunnel waste rock slag in concrete[J]. Journal of Building Engineering, 2024, 98: 111024.
[10] SONG Q, BAO J W, XUE S B, et al. Study on the recycling of ceramic polishing slag in autoclaved aerated foam concrete by response surface methodology[J]. Journal of Building Engineering, 2022, 56: 104827.
[11] TIAN B, MA W N, LI X G, et al. Effect of ceramic polishing waste on the properties of alkali-activated slag pastes: shrinkage, hydration and mechanical property[J]. Journal of Building Engineering, 2023, 63: 105448.
[12] 孙晓玮, 邵佳慧, 王巧梭, 等. 浅谈废陶瓷的资源化再利用研究[J]. 佛山陶瓷, 2022, 32(11): 45-47. SUN Xiaowei, SHAO Jiahui, WANG Qiaosuo, et al. Talking about the research on the recycling of waste ceramics[J]. Foshan Ceramics, 2022, 32(11): 45-47.
[13] LI L G, ZHUO Z Y, ZHU J, et al. Adding ceramic polishing waste as paste substitute to improve sulphate and shrinkage resistances of mortar[J]. Powder Technology, 2020, 362: 149-156.
[14] PACHECO-TORGAL F, JALALI S. Retraction note: compressive strength and durability properties of ceramic wastes based concrete[J]. Materials and Structures, 2021, 54(4): 153.
[15] KANNAN D M, ABOUBAKR S H, EL-DIEB A S, et al. High performance concrete incorporating ceramic waste powder as large partial replacement of Portland cement[J]. Construction and Building Materials, 2017, 144: 35-41.
[16] PATEL H, ARORA N K, VANIYA S R. Use of ceramic waste powder in cement concrete[J]. International Journal for Innovative Research in Science & Technology, 2015, 2(1): 91-97.
[17] 中华人民共和国水利部. 水工混凝土试验规程: GB/T SL352—2020[S]. 北京: 中国水利水电出版社, 2020.
[18] 杨长辉, 蒲心诚, 吴芳. 碱矿渣水泥砂浆的碱集料反应膨胀研究[J]. 硅酸盐学报, 1999, 27(6): 651-657. YANG Changhui, PU Xincheng, WU Fang. The studies on alkali-aggregate reaction of alkali-activated slag cement mortars[J]. Journal of the Chinese Ceramic Society, 1999, 27(6): 651-657.
[19] TAPAS M J, THOMAS P, VESSALAS K, et al. Comparative study of the efficacy of fly ash and reactive aggregate powders in mitigating alkali-silica reaction[J]. Journal of Building Engineering, 2023, 63: 105571.
[20] SHI Z G, SHI C J, ZHANG J, et al. Alkali-silica reaction in waterglass-activated slag mortars incorporating fly ash and metakaolin[J]. Cement and Concrete Research, 2018, 108: 10-19.
[21] 中华人民共和国住房和城乡建设部,国家市场监督管理总局. 混凝土物理力学性能试验方法标准: GB/T 50081—2019[S]. 北京: 中国建筑工业出版社, 2019.
[22] 魏风艳, 吕忆农, 兰祥辉, 等. 低Ca/Si比的C—S—H凝胶产物在抑制AAR中的作用[J]. 南京工业大学学报(自然科学版), 2004, 26(4): 98-102. WEI Fengyan, L(¨overU)Yinong, LAN Xianghui, et al. Effect of low Ca/Si ratio of C—S—H gels on restraining expansion due to alkali-aggregate reaction[J]. Journal of Nanjing University of Technology(Natural Science Edition), 2004, 26(4): 98-102.
[23] CHENG Y H, HUANG F, LI G L, et al. Test research on effects of ceramic polishing powder on carbonation and sulphate-corrosion resistance of concrete[J]. Construction and Building Materials, 2014, 55: 440-446.
[24] H(¨overU)NGER K J. The contribution of quartz and the role of aluminum for understanding the AAR with greywacke[J]. Cement and Concrete Research, 2007, 37(8): 1193-1205.
[25] 龚青南, 王德辉. 不同离子对混凝土碱硅酸反应影响的研究进展[J]. 材料导报, 2024, 38(2): 89-103. GONG Qingnan, WANG Dehui. Research progress on the effects of different ions on alkali-silica reaction of concrete[J]. Materials Reports, 2024, 38(2): 89-103.
[26] 武汉地质学院矿物教研室. 结晶学及矿物学:上册[M]. 北京: 地质出版社, 1979: 91-95.
[27] 魏丽丽, 胡明玉, 郑江, 等. 陶瓷抛光渣对水泥基材料碱集料反应的影响[J]. 硅酸盐学报, 2018, 46(11): 1568-1574. WEI Lili, HU Mingyu, ZHENG Jiang, et al. Effect of ceramic polishing powder on alkali-aggregate reaction of cement-based materials[J]. Journal of the Chinese Ceramic Society, 2018, 46(11): 1568-1574.
[28] LOTHENBACH B, BERNARD E, MÄDER U. Zeolite formation in the presence of cement hydrates and albite[J]. Physics and Chemistry of the Earth, Parts A/B/C, 2017, 99: 77-94.
[29] 董伟, 周梦虎, 王雪松, 等. 碳化-冻融作用对风积沙混凝土氯离子传输的影响[J].山东大学学报(工学版), 2024, 54(1): 123-130. DONG Wei, ZHOU Menghu, WANG Xuesong, et al. Effect of carbonation freeze-thaw on chloride ion transport in aeolian sand concrete[J]. Journal of Shandong University( Engineering Science), 2024, 54(1): 123-130.
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