岩土力学 ›› 2023, Vol. 44 ›› Issue (S1): 145-153.doi: 10.16285/j.rsm.2022.0687

• 基础理论与实验研究 • 上一篇    下一篇

MX-80膨润土高温老化时间效应的细微观分析

曾召田1,张瀚彬1,邵捷昇1, 2,车东泽1,吕海波1, 3,梁珍1, 4   

  1. 1. 桂林理工大学 广西岩土力学与工程重点实验室,广西 桂林 541004;2. 上海大学 土木工程系,上海 200444; 3. 贺州学院 建筑与电气工程学院,广西 贺州 542899;4. 新疆交通规划勘察设计研究院有限公司,新疆 乌鲁木齐 830006
  • 收稿日期:2022-05-09 接受日期:2022-11-18 出版日期:2023-11-16 发布日期:2023-11-16
  • 通讯作者: 吕海波,男,1973年生,博士,教授,博士生导师,主要从事特殊土工程特性方面研究。E-mail: lhb@glut.edu.cn E-mail:zengzhaotian@163.com
  • 作者简介:曾召田,男,1981年生,博士,教授,博士生导师,主要从事环境岩土工程方面研究。
  • 基金资助:
    国家自然科学基金(No. 41962014);广西自然科学基金(No. 2023GXNSFAA026187)。

Microscopic analysis of high-temperature aging time effect in MX-80 bentonite

ZENG Zhao-tian1, ZHANG Han-bin1, SHAO Jie-sheng1, 2, CHE Dong-ze1, LÜ Hai-bo1, 3, LIANG Zhen1, 4   

  1. 1. Guangxi Key Laboratory of Geotechnical Mechanics and Engineering, Guilin University of Technology, Guilin, Guangxi 541004, China; 2. Department of Civil Engineering, Shanghai University, Shanghai 200444, China; 3. School of Architecture and Electrical Engineering, Hezhou University, Hezhou, Guangxi 542899, China; 4. Xinjiang Transportation Planning, Survey and Design Institute, Urumqi, Xinjiang 830006, China
  • Received:2022-05-09 Accepted:2022-11-18 Online:2023-11-16 Published:2023-11-16
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (41962014) and the National Natural Science Foundation of Guangxi (2023GXNSFAA026187).

摘要: 在200 ℃高温条件下,对MX-80膨润土粉末进行了不同时长(0、15、30、60、90、120 d)的热老化预处理;通过热重分析(thermogravimetric analysis,简称TGA)、X射线衍射(X-ray diffraction,简称XRD)和电镜扫描(electron microscope scanning,简称SEM)等试验探讨了MX-80膨润土中结合水、矿物成分、微观形貌等随热老化时间t的变化规律;基于蒙脱石矿物晶体结构学理论揭示了MX-80膨润土高温老化时间效应的细微观机制。试验结果表明:(1)膨润土中自由水、弱结合水和强结合水随热老化时间t的递增均发生不同程度的脱附现象,0~15 d变化显著,15 d后趋于稳定,120 d后三者降幅分别为82.6%、68.8%和96.5%;(2)随着热老化时间t的增加,膨润土主要矿物成分蒙脱石部分转化为稳定性较好的钠云母,0~15 d变化显著,15 d后趋向稳定,120 d后二者的变化量分别为–12.57%和+12.47%;(3)高温热老化过程中,蒙脱石矿物的晶层间距减小,引起片层状矿物之间收缩变形,导致膨润土的微观形貌随着热老化时间t的递增发生不同程度的变化;(4)高温热老化状态下,膨润土的矿物成分转化、结合水脱附、微观形貌改变等三者之间相互作用和彼此影响,是引起膨润土宏观物理力学性能发生变化的根本原因。

关键词: MX-80膨润土, 高温老化, 时间效应, 微观机制, 蒙脱石

Abstract: The MX-80 bentonite powder was pretreated by thermal aging at 200 ℃ for different durations (t =0, 15, 30, 60, 90, 120 d). Then, thermogravimetric analysis (TGA), X-ray diffraction (XRD) and scanning electron microscopy (SEM) were used to investigate the variations of bound water, mineral composition, and microstructure in MX-80 bentonite with the thermal aging time t. Based on the crystal structure theory of montmorillonite, the micro-mechanism of high-temperature ageing time effect in MX-80 bentonite was revealed. The results show that, 1) the free water, weak bound water, and strong bound water in bentonite have different degrees of desorption with thermal aging time t increasing. The desorption changes significantly from 0 to 15 days and tends to be stable after 15 days. After 120 days, desorption values of three types of water decrease by 82.6%, 68.8% and 96.5%, respectively. 2) With increasing the thermal aging time t, montmorillonite, the main mineral component of bentonite, is transformed into sodium mica with good stability, and it changes significantly from 0 to 15 days, and tends to be stable after 15 days. After 120 days, the changes of montmorillonite and sodium mica are –12.57% and +12.47%, respectively. 3) In the process of high-temperature aging, the distance between crystal layers of montmorillonite decreases, resulting in the contraction and deformation of lamellar minerals, and the microstructure of bentonite changes with the increase of thermal aging time t. 4) Under the condition of high-temperature aging, the fundamental reason for the changes in the macroscopic physical and mechanical properties of bentonite is the interaction and mutual influence among the mineral composition transformation, bound water desorption, and microscopic morphology change of bentonite.

Key words: MX-80 bentonite, high-temperature aging, time effect, micro-mechanism, montmorillonite

中图分类号: TU 411
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