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振动荷载及温度对白云岩和石灰岩溶蚀影响试验研究

顾展飞 黄冰砚 刘之葵 全鑫 谢永雄

顾展飞,黄冰砚,刘之葵,等. 振动荷载及温度对白云岩和石灰岩溶蚀影响试验研究[J]. 中国岩溶,2023,42(4):834-841 doi: 10.11932/karst202304y01
引用本文: 顾展飞,黄冰砚,刘之葵,等. 振动荷载及温度对白云岩和石灰岩溶蚀影响试验研究[J]. 中国岩溶,2023,42(4):834-841 doi: 10.11932/karst202304y01
GU Zhanfei, HUANG Bingyan, LIU Zhikui, QUAN Xin, XIE Yongxiong. Experimental study on the influence of vibration loads and temperatures on the dissolution of dolomite and limestone[J]. CARSOLOGICA SINICA, 2023, 42(4): 834-841. doi: 10.11932/karst202304y01
Citation: GU Zhanfei, HUANG Bingyan, LIU Zhikui, QUAN Xin, XIE Yongxiong. Experimental study on the influence of vibration loads and temperatures on the dissolution of dolomite and limestone[J]. CARSOLOGICA SINICA, 2023, 42(4): 834-841. doi: 10.11932/karst202304y01

振动荷载及温度对白云岩和石灰岩溶蚀影响试验研究

doi: 10.11932/karst202304y01
基金项目: 国家自然科学基金(41867039);南方石山地区矿山地质环境修复工程技术创新中心项目(CX2X2020002);广西岩土力学与工程重点实验室资助课题(桂科能20-Y-XT-03).
详细信息
    作者简介:

    顾展飞(1985-),男,博士,副教授。E-mail:guzhanfei2005@163.com

    通讯作者:

    刘之葵(1968-),男,博士,教授。E-mail:liuzhikui@126.com

  • 中图分类号: P642.25;U212.22

Experimental study on the influence of vibration loads and temperatures on the dissolution of dolomite and limestone

  • 摘要: 在岩溶地区,列车运行期间的振动会对白云岩和石灰岩的水岩作用过程产生影响,再加上复杂的外界条件,这一影响会更加显著。以桂北岩溶石山地区白云岩和石灰岩为研究对象,利用自主设计的试验装置进行室内模拟试验,分别研究振动荷载及不同温度条件对白云岩和石灰岩的溶蚀的影响规律。研究发现:①常温常压条件下,在静止的酸性溶液中,白云岩的溶蚀速率小于石灰岩;②在H+充足的条件下,随着温度(0~45 ℃)的升高,石灰岩和白云岩的溶蚀速率都会增大,温度变化对于白云岩溶蚀影响更为显著;③白云岩和石灰岩的溶蚀受振动条件的强烈影响,二者的溶蚀量都随着振动次数的增加而增大,且在相同振动条件下石灰岩的溶蚀速率始终大于白云岩。该研究可为桂北岩溶石山地区的工程设计和建设提供理论依据。

     

  • 图  1  溶蚀试验装置示意图

    Figure  1.  Schematic diagram of the corrosion test device

    图  2  白云岩与石灰岩钙离子浓度析出对比示意图

    Figure  2.  Comparison of precipitation concentrations of calcium ion between dolomite and limestone

    图  3  不同温度下石灰岩与白云岩钙离子析出浓度对比示意图

    Figure  3.  Comparison of precipitation concentrations of calcium ion between limestone and dolomite at different temperatures

    图  4  不同振动次数下石灰岩与白云岩钙离子析出浓度对比示意图

    Figure  4.  Comparison of precipitation concentrations of calcium ion between limestone and dolomite under different vibration times

    图  5  白云岩溶蚀前后扫描电镜照片对比

    Figure  5.  Comparison of scanning electron microscope images before and after dolomite dissolution

    图  6  白云岩细晶结构鉴定照片

    Figure  6.  Identification image of dolomite fine grain structure

    图  7  石灰岩粉晶结构鉴定照片

    Figure  7.  Identification image of limestone powder structure

    表  1  岩石样品尺寸及规格

    Table  1.   Size of rock samples

    组别质量/g厚度/mm直径/mm表面积/mm2体积/mm3
    1 白云岩120.3168.9112.1710 093.1845 391.46
    2 石灰岩120.4968.3012.5310 017.3445 913.67
    3 白云岩119.8268.8312.3510 112.2945 951.51
    4 石灰岩120.2768.9112.2910 118.6945 830.40
    下载: 导出CSV

    表  2  岩石样品化学成分含量

    Table  2.   Chemical contents of rock samples

    组别CaOMgOSiO2其他烧失量
    1 白云岩32.1420.270.241.5945.76
    2 石灰岩53.650.390.902.5442.52
    3 白云岩34.2720.040.562.0143.12
    4 石灰岩52.710.520.713.7542.31
    下载: 导出CSV
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出版历程
  • 收稿日期:  2022-09-08
  • 录用日期:  2023-06-02
  • 修回日期:  2022-09-21
  • 网络出版日期:  2023-11-28
  • 刊出日期:  2023-11-28

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