[1] SHAO X X, ZHANG H Y, TAN Y. Collapse behavior and microstructural alteration of remolded loess under graded wetting tests[J]. Engineering Geology, 2018, 233: 11-22. [2] JIN X, WANG T H, CHENG W C, et al. A simple method for settlement evaluation of loess-pile foundation[J]. Canadian Geotechnical Journal, 2019, 56(11): 1690-1699. [3] ZHAO M, CHEN L Y, WANG S Y, et al. Experimental study of the microstructure of loess on its macroscopic geotechnical properties of the Baozhong railway subgrade in Ningxia, China[J]. Bulletin of Engineering Geology and the Environment, 2020, 79(9): 4829-4840. [4] CHAI M T, ZHANG J M. Improvement of compressibility and thaw-settlement properties of warm and ice-rich frozen soil with cement and additives[J]. Materials, 2019, 12(7): 1068. [5] CHAI M T, ZHANG H, ZHANG J M, et al. Effect of cement additives on unconfined compressive strength of warm and ice-rich frozen soil[J]. Construction and Building Materials, 2017, 149: 861-868. [6] CHEN H J, CUI S L, ZHANG D. F, et al. Mechanical properties of cement treated zinc-contaminated loess[J]. Journal of Northwest University (Natural Science Edition), 2024, 54(1): 3341. [7] LENOIR T, DUBREUCQ T, LAMBERT T, et al. Safety factor calculation of a road structure with cement-modified loess as subgrade[J]. Transportation Geotechnics, 2021, 30: 100604. [8] SHEN W G, LIU Y, YAN B L, et al. Cement industry of China: driving force, environment impact and sustainable development[J]. Renewable and Sustainable Energy Reviews, 2017, 75: 618-628. [9] CONG P L, CHENG Y Q. Advances in geopolymer materials: a comprehensive review[J]. Journal of Traffic and Transportation Engineering (English Edition), 2021, 8(3): 283-314. [10] LIU Z, CAI C S, LIU F Y, et al. Feasibility study of loess stabilization with fly ash-based geopolymer[J]. Journal of Materials in Civil Engineering, 2016, 28(5): 04016003. [11] ZHANG T, LIU S Y, ZHAN H B, et al. Durability of silty soil stabilized with recycled lignin for sustainable engineering materials[J]. Journal of Cleaner Production, 2020, 248: 119293. [12] ZHANG Z J, TAO M J. Durability of cement stabilized low plasticity soils[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2008, 134(2): 203-213. [13] ABDULLAH H H, SHAHIN M A, WALSKE M L, et al. Systematic approach to assessing the applicability of fly-ash-based geopolymer for clay stabilization[J]. Canadian Geotechnical Journal, 2020, 57(9): 1356-1368. [14] NGO T P, BUI Q B, PHAN V T, et al. Durability of geopolymer stabilised compacted earth exposed to wetting-drying cycles at different conditions of pH and salt[J]. Construction and Building Materials, 2022, 329: 127168. [15] HOY M, RACHAN R, HORPIBULSUK S, et al. Effect of wetting-drying cycles on compressive strength and microstructure of recycled asphalt pavement-fly ash geopolymer[J]. Construction and Building Materials, 2017, 144: 624-634. [16] 陈 锐, 张 星, 朱 月. 钢渣水泥基地聚合物固化湿软黄土力学特性与微观机制[J]. 重庆交通大学学报(自然科学版), 2023, 42(6): 55-61. CHEN R, ZHANG X, ZHU Y. Steel slag and cement based geopolymer solidification of wet and soft loess: mechanical properties and micro mechanisms[J]. Journal of Chongqing Jiaotong University (Natural Science), 2023, 42(6): 55-61(in Chinese). [17] RIOS S, CRISTELO N, VIANA DA FONSECA A, et al. Structural performance of alkali-activated soil ash versus soil cement[J]. Journal of Materials in Civil Engineering, 2016, 28(2): 04015125. [18] RIVERA J F, OROBIO A, CRISTELO N, et al. Fly ash-based geopolymer as A4 type soil stabiliser[J]. Transportation Geotechnics, 2020, 25: 100409. [19] NOOLU V, RAO G M, CHAVALI R V P, et al. Strength and durability characteristics of GGBS geopolymer stabilized black cotton soil[J]. Materials Today: Proceedings, 2021, 43: 2373-2376. [20] 吴燕开, 乔晓龙, 李丹丹, 等. 干湿循环下钢渣粉水泥改良膨胀土室内试验研究[J]. 西安建筑科技大学学报(自然科学版), 2021, 53(3): 319-329. WU Y K, QIAO X L, LI D D, et al. Experimental study on expansive soil improved by steel slag powder-cement under dry-wet cycles[J]. Journal of Xi’an University of Architecture & Technology (Natural Science Edition), 2021, 53(3): 319-329 (in Chinese). [21] 田 威, 云 伟, 贺文昊, 等. 矿渣基地聚物固化黄土抗压强度及固化机制研究[J/OL]. 土木工程学报, 1-13 (2024-07-10) [2024-07-25]. https://doi.org/10.15951/j.tmgcxb.24040258. TIAN W, YUN W, HE W H, et al. Study on compressive strength and curing mechanism of slag based geopolymer solidified loess[J/OL]. China Civil Engineering Journal, 1-13 (2024-07-10) [2024-07-25]. https://doi.org/10.15951/j.tmgcxb.24040258 (in Chinese). [22] WU Z P, XU J, FAN H H, et al. Experimental study on dry-wet durability and water stability properties of fiber-reinforced and geopolymer-stabilized loess[J]. Construction and Building Materials, 2024, 418: 135379. [23] 吴燕开, 史可健, 胡晓士, 等. 海水侵蚀下钢渣粉+水泥固化黄土强度劣化试验研究[J]. 岩土工程学报, 2019, 41(6): 1014-1022. WU Y K, SHI K J, HU X S, et al. Experimental study on strength degradation of steel slag+cement-solidified soil under seawater erosion[J]. Chinese Journal of Geotechnical Engineering, 2019, 41(6): 1014-1022 (in Chinese). [24] POURABBAS B M, TOUFIGH M M, TOUFIGH V. Experimental investigation of using a recycled glass powder-based geopolymer to improve the mechanical behavior of clay soils[J]. Construction and Building Materials, 2018, 170: 302-313. [25] 童国庆, 张吾渝, 高义婷, 等. 碱激发粉煤灰地聚物的力学性能及微观机制研究[J]. 材料导报, 2022, 36(4): 129-134. TONG G Q, ZHANG W Y, GAO Y T, et al. Mechanical properties and micromechanism of alkali-activated fly ash geopolymer[J]. Materials Reports, 2022, 36(4): 129-134 (in Chinese). [26] MA C K, AWANG A Z, OMAR W. Structural and material performance of geopolymer concrete: a review[J]. Construction and Building Materials, 2018, 186: 90-102. [27] HOY M, TRAN N Q, SUDDEEPONG A, et al. Wetting-drying durability performance of cement-stabilized recycled materials and lateritic soil using natural rubber latex[J]. Construction and Building Materials, 2023, 403: 133108. [28] HUANG K, FANG Z Q, CAI G J, et al. Macro and microscopic characteristics of soft soil stabilized by Portland cement-soda residue under dry-wet cycling[J]. Construction and Building Materials, 2024, 428: 136347. [29] 刘 春, 王宝军, 施 斌, 等. 基于数字图像识别的岩土体裂隙形态参数分析方法[J]. 岩土工程学报, 2008, 30(9): 1383-1388. LIU C, WANG B J, SHI B, et al. Analytic method of morphological parameters of cracks for rock and soil based on image processing and recognition[J]. Chinese Journal of Geotechnical Engineering, 2008, 30(9): 1383-1388 (in Chinese). [30] DASSEKPO J M, FENG W P, LI Y R, et al. Synthesis and characterization of alkali-activated loess and its application as protective coating[J]. Construction and Building Materials, 2021, 282: 122631. [31] SHEAR D L, OLSEN H W, NELSON K R. Effects of desiccation on the hydraulic conductivity versus void ratio relationship for a natural clay[M]. Washington: National Academy Press, 1993. |