Journal of Jilin University(Earth Science Edition) ›› 2023, Vol. 53 ›› Issue (4): 1185-1194.doi: 10.13278/j.cnki.jjuese.20220042

Previous Articles     Next Articles

Experiment on Concrete Building Erosion by Underground Water in Gypsum Rock Formation

Wang Fugang1, Pan Huilin1, Li Shengwei2, Wang Donghui2, Wu Mingjie1, Ping Shifei1, Cao Yuqing1   

  1. 1.  Key Laboratory of Groundwater Resources and Environment(Jilin University), Ministry of Education, Changchun 130021, China
    2. Chengdu Center,China Geological Survey, Chengdu 610081, China
  • Received:2022-02-24 Online:2023-07-26 Published:2023-08-10
  • Supported by:
    the Project of China Geological Survey (DD20189210,DD20211402)

Abstract: During underground engineering construction in gypsum-enriched formations, the reaction between  gypsum and groundwater leads to the dissolution of Ca2+ and SO42-, which enhances the erosion effect on the concrete foundation of underground structures and affects the safety of underground engineering. In order to investigate the erosion characteristics and mechanisms of concrete under different  formation environmental conditions, commonly used C20 and C30 concrete in underground engineering construction were studied. The study focused on the gypsum-containing formation  conditions in the southern part of Chengdu basin and explored the erosion characteristics and mechanisms of concrete in both gypsum-containing and non-gypsum-containing formations under changing underground temperature conditions. The results show that: 1) The erosion degree of C20 and C30 concrete in gypsum-containing formations is significantly greater than in non-gypsum-containing formations. Under the erosionby different geological groundwater, the  maximum mass change rates of C20 and C30 concrete are 1.80% and 0.87%, with the maximum compressive strength reduction rates of 20.14% and 12.80%, respectively. C30 concrete exhibits a smaller attenuation in compressive strength under different groundwater conditions, making it more suitable as a construction material for underground engineering. 2) Increasing temperature enhances the erosion effect of SO42- on concrete, leading to a decrease in compressive strength. Among them, the maximum compressive strength reduction rates of C20 concrete under Quaternary and Guankou  Formation groundwater erosion reach 6.89% and 3.89%, respectively. 3) Concrete erosion occurs from the outside to the inside, where Ca2+ and SO42- in groundwater recrystallize to form gypsum on the  external surfaces of the concrete and then diffuse along cracks towards the interior, resulting in the formation of ettringite crystals, expansion forces, crack formation, and a decrease in compressive strength. Through correlation analysis, a relationship equation between the mechanical properties of concrete and temperature was established, achieving quantitative calculation of long-term changes in the mechanical properties of concrete in gypsum-containing formation engineering construction.

Key words: concrete, gypsum, erosion, compressive strength, dissolution, groundwater

CLC Number: 

  • P642.2
[1] Zhu Jie, Cao Jun, Tang Wencheng, Xiao Jianxun. Mechanical Properties of Metakaolin-Based Geopolymer-Modified Soil Under Free-zing Conditions [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(3): 951-962.
[2] Du Xinqiang, Yin Chengshan, Fang Yongjun, Li Zihan, Guo Hui.

Evaluation of Exploitable Groundwater Resources Based on Groundwater Ecological Water Depth Threshold:An Example of Puyang Irrigation District of Sanjiang Plain [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(2): 635-646.

[3] Shu Longcang, Wei Shujing, Che Limuge, Wen Zhongqi, Liu Bo.

Quantification of Groundwater Response and Uncertainty Related to Ecological Water Conveyance in Xiliaohe Plain [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(2): 647-660.

[4] Yang Ting, Li Yaxin, Liu Na, Lin Xiaojun, Zeng Jingwen , Wang Xiujuan , Cai Qianyi, Luo Zifeng, Zhang Yuanling, Rong Jingnan, Yu Weida, Qiu Jinrong, Zhou Jianli. Zeolite as PRB Filling Medium for  Remediation of NH4+ Polluted Groundwater and Its In-Situ Regeneration Performance [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(2): 661-672.
[5] Qin Chuanyu, You Kaihong, Li Xiaoqi, Zhang Chengwu, Yu Lijuan. Effects of Common Groundwater Anions on Nitrobenzene Degradation by Dual-Modified Nano Zero-Valent Iron and Underlying Mechanisms [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(1): 342-351.
[6] Zhang Wenjing, Tu Zhipeng, Jia Yuanyuan.  Research Progress on Release, Migration and Pollution Prediction of Heavy Metals in Mining Areas [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(6): 2001-2027.
[7] Yan Gangli, Feng Shen, Liu Ruinan, Huang Guanxing. Research Progress on  Assessment of Natural Background Levels in Groundwater [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(5): 1655-1670.
[8] Wang Shuang, Zhu Fen, Li Liang, Li Linjian, Liu Na.

Hydrochemical Characteristics and Genetic Mechanism of Shallow Groundwater in Naozhou Island, Zhanjiang City [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(5): 1680-1690.

[9] Huang Shuchun, Li Hongtao, Deng Bo, Wang Dan, Zhang Gaohua.

Hydrochemistry and Its Driving Factors in Hexi Area, Xiangtan, Hunan Province over the Past Two Decades [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(4): 1269-1287.

[10] Wang Jinbo, He Zhiyi, Wang Yanan, Cheng Shiyu, Liu Mingzhu.

Synergistic Remediation Thresholds for Soil and Groundwater in Contaminated Site [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(4): 1288-1297.

[11] Wang Fugang, Guan Xiaotong, He Qingcheng, Cheng Hui, Yang Guohua, Cheng Zhongle, Wang Yaohui.  A Mathematical Model of Low-Velocity Non-Darcy Flow in Clayey Soil Considering Change of Viscosity in Boundary Layer Fluid [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(3): 893-905.
[12] Hu Qizhi, Wang Xiujuan, Qiu Jinrong, Kang Di, Zeng Jingwen, Cai Qianyi, Liu Rentao , Liu Na .  Hydrochemical Characteristics and Formation Mechanism  of Acidic Shallow Groundwater of Groundwater Drinking Water Sources in Chaoshan Area [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(3): 906-918.
[13] Zhang Shengyu, Shen Wenchao, Su Xiaosi.  Risk Assessment of Regional Groundwater Nitrate Pollution Based on Random Forest Method [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(3): 943-956.
[14] Wang Boxin, Gao Yinlong, Wang Qing, Liu Jiaqi. Effect of Freeze-Thaw Cycles on Shear Properties of Seasonal Frozen Soil Area Silty Clay-Concrete Interface [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(5): 1592-1603.
[15] Duan Lei , Zeng Jingwen, Zhao Xianlin, Qiu Jinrong, Liu Na, Tao Junshi, Zhou Jianli. Distribution, Sources and Health Risk Assessment of Iodide in Shallow Groundwater in Typical Aquaculture Areas of the Pearl River Delta  [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(5): 1657-1674.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] YU Ping, LI Rui-lei, FU Lei, HAO Xue, ZHANG Xiang-jun,LIAN Guo-fen. Regional Tectonic Characteristics and Significance of North Harbin Area in Songliao Basin: Evidenced from Long Seismic Profiles[J]. J4, 2005, 35(05): 611 -615 .
[2] ZHANG Yuan-qing, SONG Bing-zhong, WANG Yu-fu, ZHANG Ning. Metallogenetic Rules and Prediction of Gold Deposits Around Tongshi Complex,Western Shandong Province[J]. J4, 2010, 40(6): 1287 -1294 .
[3] LI Jian-ping, LI Tong-lin, ZHANG Hui, XU Kai-jun. Study and Application of the TEM Forward and Inversion Problem of Irregular Loop Source over the Layered Medium[J]. J4, 2005, 35(06): 790 -0795 .
[4] GAO Song,SONG Ying,WANG Lin,JIANG Buxin. Study on the Screening and Characterization of Special Effective Bacteria of Degrading Thiuram in the Waterbody[J]. J4, 2006, 36(03): 455 -457 .
[5] ZHANG Feng-jun, LI Qing, MA Jiu-tong, YU Guang-ju. Experimental Study on Treatment of Furfural Wastewater with Membrane Distillation[J]. J4, 2006, 36(02): 270 -0273 .
[6] LU Shuang-fang, LI Ji-jun, XUE Hai-tao, XU Li-heng. Chemical Kinetics of Carbon Isotope Fractionation of Oil-Cracking Methane and Its Initial Application[J]. J4, 2006, 36(05): 825 -829 .
[7] DING Zhi-hong,FENG Ping,MAO Hui-hui. Research and Application of a Method Considering Runoff Distribution Through A Year During Partitioning Runoff into Abundant and Low State[J]. J4, 2009, 39(2): 276 -0280 .
[8] REN He-jun, LIU Na, GAO Song,ZHANG Lan-ying,ZHANG Yu-ling,ZHOU Rui. Degradation of Polychlorinated Biphenyls and Confirm of bphA1 Gene Core by Pseudomonas DN2[J]. J4, 2009, 39(2): 312 -0316 .
[9] Huang Qibo, Qin Xiaoqun, Liu Pengyu, Kang Zhiqiang, Tang Pingping. Applicability of Karst Carbon Sinks Calculation Methods in Semi-Arid Climate Environment[J]. Journal of Jilin University(Earth Science Edition), 2015, 45(1): 240 -246 .
[10] Xiong Xiaoliang,Sun Hongyue,Zhang Shihua,Cai Yueliang. Analysis of Condition of Ensuring High-Lift Siphon Drainage and Numerical Simulation of Choice of Optimum Diameter[J]. Journal of Jilin University(Earth Science Edition), 2014, 44(5): 1595 -1601 .