Pore structure analysis of electrolytic manganese residue based permeable brick by using industrial CT

被引:55
|
作者
Tang, Binwen [1 ]
Gao, Shuai [1 ]
Wang, Yaguang [1 ]
Liu, Xiaoming [1 ]
Zhang, Na [2 ]
机构
[1] Univ Sci & Technol Beijing, Sch Met & Ecol Engn, Room 313, Beijing 100083, Peoples R China
[2] China Univ Geosci, Sch Mat Sci & Technol, Natl Lab Mineral Mat, Beijing Key Lab Mat Utilizat Nonmetall Minerals &, Beijing 100083, Peoples R China
基金
中国国家自然科学基金;
关键词
Industrial CT; Electrolytic manganese residue; Permeable brick; Pore structure; GANGUE;
D O I
10.1016/j.conbuildmat.2019.03.066
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In view of the fact that the internal pore structure of electrolytic manganese residue based permeable brick (EMRB) is as difficult to observe as "black box", which is not conducive to the analysis of its pore structure, this paper combines industrial CT with electrolytic manganese residue based permeable brick to study its pore structure distribution, and makes quantitative statistics and layer-by-layer porosity analysis of each component in electrolytic manganese residue based permeable brick by using digital rock analysis. The internal ball and stick model were built, and the pore radius, volume, shape factor, connectivity (coordination number) and each throat characteristic (throat length, shape factor) connected with it were calculated. In order to establish the relationship between macroscopic permeability coefficient and microscopic pore structure, the pore structure of permeable brick is well displayed by using industrial CT. The results showed that the splitting tensile strength of permeable brick is negatively correlated with the permeability coefficient. To a certain extent, the higher the splitting tensile strength, the lower the permeability coefficient. By scanning the pore structure of the permeable brick, it can be found that the pore in the permeable brick is generally triangular, and the maximum pore can reach 10.46 mm. Through extracting the scanned image to construct the ball and stick model and quantitative statistical results, the parameters such as throat radius, throat length and pore radius of the permeable brick were obtained to characterize the permeability coefficient of the permeable brick, which further verifies the dimensional stability and high throughput of the permeable brick. The pore structure of permeable brick was well characterized by industrial CT, which is an effective method to analyze the pore structure of permeable brick. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:697 / 709
页数:13
相关论文
共 50 条
  • [41] DIFFUSION AND CONVECTION IN CHROMATOGRAPHIC PROCESSES USING PERMEABLE SUPPORTS WITH A BIDISPERSE PORE STRUCTURE
    CARTA, G
    RODRIGUES, AE
    CHEMICAL ENGINEERING SCIENCE, 1993, 48 (23) : 3927 - 3935
  • [42] Solidification/stabilization of electrolytic manganese residue using phosphate resource and low-grade MgO/CaO
    Shu, Jiancheng
    Liu, Renlong
    Liu, Zuohua
    Chen, Hongliang
    Du, Jun
    Tao, Changyuan
    JOURNAL OF HAZARDOUS MATERIALS, 2016, 317 : 267 - 274
  • [43] Synergistic preparation of geopolymer using electrolytic manganese residue, coal slag and granulated blast furnace slag
    Wu, Zhonghu
    Zhang, Hui
    Pu, Shaoyun
    Cai, Guojun
    Duan, Wei
    Song, Huailei
    Zeng, Chi
    Yang, Yuhan
    JOURNAL OF BUILDING ENGINEERING, 2024, 91
  • [44] Nitrogen Removal Performance and Microbial Community Analysis of Anoxic and Oxic Process in Electrolytic Manganese Residue Leachate
    Jiang, Feifeng
    Zhou, Yu
    Yue, Yufang
    Long, Zhiwei
    Yi, Langbo
    Hu, Wenyong
    JOURNAL OF ENVIRONMENTAL ENGINEERING, 2023, 149 (08)
  • [45] Enhancing the properties of electrolytic manganese residue-based unburned bricks through multifaceted composite additives
    Guo, Yinjie
    Chen, Yuehui
    Liu, Yun
    He, Dejun
    Zhang, Kejing
    You, Zhimin
    Guo, Jing
    Li, Mengke
    Jin, Honghao
    Shi, Yan
    CONSTRUCTION AND BUILDING MATERIALS, 2025, 473
  • [46] Effect of Electrolytic Manganese Residue in Fly Ash-Based Cementitious Material: Hydration Behavior and Microstructure
    Wang, Yaguang
    Zhang, Na
    Ren, Yongyu
    Xu, Yingtang
    Liu, Xiaoming
    MATERIALS, 2021, 14 (22)
  • [47] Hazard-free treatment of electrolytic manganese residue and recovery of manganese using low temperature roasting-water washing process
    He S.
    Wilson B.P.
    Lundström M.
    Liu Z.
    Journal of Hazardous Materials, 2022, 402
  • [48] Quantitative analysis of pore structure and permeability characteristics of sandstone using SEM and CT images
    Ni, Hongyang
    Liu, Jiangfeng
    Huang, Bingxiang
    Pu, Hai
    Meng, Qingbin
    Wang, Yangguang
    Sha, Ziheng
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2021, 88
  • [49] Hazard-free treatment of electrolytic manganese residue and recovery of manganese using low temperature roasting-water washing process
    He, Shichao
    Wilson, Benjamin P.
    Lundstrom, Mari
    Liu, Zhihong
    JOURNAL OF HAZARDOUS MATERIALS, 2021, 402
  • [50] Enhanced electrokinetic remediation of manganese and ammonia nitrogen from electrolytic manganese residue using pulsed electric field in different enhancement agents
    Shu, Jiancheng
    Sun, Xiaolong
    Liu, Renlong
    Liu, Zuohua
    Wu, Haiping
    Chen, Mengjun
    Li, Bobo
    ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2019, 171 : 523 - 529