Mechanical Properties and Microscopic Mechanism of Slag-white Mud Solidified Loess

被引:0
|
作者
Xue Z.-J. [1 ]
Luo J. [1 ,2 ]
Yan C.-G. [1 ]
Zhang Y. [1 ]
Zhang Y.-L. [1 ]
Jia X.-L. [3 ]
机构
[1] School of Highway, Chang'an University, Shaanxi, Xi'an
[2] Chengdu Municipal Engineering Design & Research Institute Co. Ltd., Sichuan, Chengdu
[3] Ningxia Communications Construction Group Co. Ltd., Ningxia, Yinchuan
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
durability; mechanical strength testing; slag-white mud; solidified loess; subgrade engineering;
D O I
10.19721/j.cnki.1001-7372.2024.06.015
中图分类号
学科分类号
摘要
To explore the feasibility of slag-white mud solid waste material for loess subgrade reinforcement and to solve the problems of low strength and high pollution in the production of lime loess, this study prepared a slag-white mud cementing material and used different dosages (0%, 5%, 10%, and 15%) of slag-white mud cementing material to solidify the loess. The unconfined compressive strength and durability of the solidified loess were investigated based on its physical and chemical properties, and the microscopic mechanism was revealed through X-ray diffraction, thermogravimetry/differential thermogravimetry, and scanning electron microscopy. Results show that the higher the proportion of slag in the slag-white mud cementing material, the greater is the strength growth potential. However, when the slag proportion is greater than 70%, the sample cannot be formed. An appropriate increase in the proportion of white mud can improve the pH and early strength. The best slag is that with a white mud ratio of 60:40 under the consideration of cost and strength. Under a no-soaking condition, the unconfincd compressive strength of slag-white mud solidified loess at 28 d is 4. 9 MPa at a 10% dosage, which is 2. 2 times higher than that of lime solidified loess, and the water stability coefficient is 0. 45 times higher than that of the lime solidified loess. The strength and quality of the solidified loess with 10% and 15% dosages change by less than 2% after 14 freeze-thaw cycles. The strength of the solidified loess first increases and then decreases with the number of dry-wet cycles, and the strength of the solidified loess after 12 dry-wet cycles is higher than that after 28 d. Microscopic experiments show that white mud promotes the slag hydration reaction. The main hydration products of slag-white mud cementing materials are CSH-type gels. The cementation of the CSH gel is the main source of strength and durability improvement, where the filling effect plays a secondary role. © 2024 Chang'an University. All rights reserved.
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页码:181 / 192
页数:11
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  • [1] SHEN Ai-qin, ZHENG Nanxiang, SU Yi, Et al., Study of compacting mechanism and construction technology of filling road bed with bearing sand silt of low liquid limit [J], China Journal of Highway and Transport, 13, 4, pp. 14-17, (2000)
  • [2] YANG Xiao-hua, ZHANG Jian-wei, ZHANG Sha-sha, Et al., Research progress on foundation treatment techniques of expressway in loess area [JJ, Journal of Chang'an University (Natural Science Edition), 42, 1, pp. 16-32, (2022)
  • [3] Review on China's suhgrade engineering research: 2021 [j], China Journal of Highway and Transport, 34, 3, pp. 1-49, (2021)
  • [4] LIU J, TONG D, ZHENG Y X, Et al., Carbon and air pollutant emissions from China's cement industry 1990-2015: Trends, evolution of technologies, and drivers, Atmospheric Chemistry and Physics, 21, 3, pp. 1627-1647, (2021)
  • [5] XUE Zhi-jia, LI Liang-chen, YAN Chang-gen, Et al., Evaluation of energy consumption and carbon emissions for construction of wet and soft loess subgrade in highway engineering, Jl- Journal of Dalian University of Technology, 61, 5, pp. 522-530, (2021)
  • [6] ZHANG Jun-hui, CHEN Sha-sha, GU Fan, Et al., Industrial waste materials utilized in subgrade modification
  • [7] A review [j], China Journal of Highway and Transport, 36, 10, pp. 1-16, (2023)
  • [8] CHEN En-yi, HAN Xiao-hua, GAO Qi-hai, Et al., Operation status and prospect of China's GGBS industry in 2021 [J], The World of Building Materials, 43, 2, pp. 1-5, (2022)
  • [9] DENG Zhi-bin, LI You-ming, Present situation and development of comprehensive utilization of white mud [J], Huhei Paper Making, 3, pp. 33-36, (2006)
  • [10] CHENG YAN-jun, WANG Jie, YUE Bing, Et al., Research on the development of science and technology for pulp and paper pollution prevention [C], Report on the development of Pulp and Paper Science and technology from 2016 to 2017, 153-174, (2018)