The mechanism of foaming and thermal conductivity of glasses foamed with MnO2

被引:75
|
作者
Petersen, Rasmus R. [1 ]
Konig, Jakob [1 ,2 ]
Yue, Yuanzheng [1 ]
机构
[1] Aalborg Univ, Sect Chem, DK-9220 Aalborg, Denmark
[2] Jozef Stefan Inst, Adv Mat Dept, SI-1000 Ljubljana, Slovenia
关键词
Foam glass; Foam growth; Coalescence; Closed porosity; Thermal conductivity; VACUUM INSULATION PANELS; HEAT-TRANSFER; BEHAVIOR; REDUCTION; STABILITY; SI3N4; FILMS;
D O I
10.1016/j.jnoncrysol.2015.05.030
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
We prepare foam glass from cathode ray tube (CRT) panels using MnO2 as foaming agent at different temperatures for various durations. The reduction of MnO2 to Mn2O3 leads to formation of O-2 gas, and hence, causes initial foaming. The Mn2O3 particles dissolve into the glass melt and subsequently reduce, causing further formation of O-2 gas and foaming of the glass melt. Increasing the treatment temperature and time enhances foam expansion, Mn2O3 dissolution, and lowers the closed porosity. Once the foam reaches a percolated stage, the foam continues to grow. This is caused by nucleation of new bubbles and subsequent growth. We discuss evolution of pore morphology in terms of pore number density, pore size and closed porosity. The thermal conductivity of the foam glasses is linearly dependent on density. The heat transfer mechanism is revealed by comparing the experimental data with structural data and analytical models. We show that the effect of pore size, presence of crystal inclusions and degree of closed porosity do not affect the overall thermal conductivity. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:74 / 82
页数:9
相关论文
共 50 条
  • [21] Enhancement of electrical conductivity and morphological features of Polysulfone/MnO2 nanocomposite films with differing α-MnO2 nanorods loadings
    Hammani, Salim
    Guerziz, Soumia
    Ouradi, Adel
    Alsalme, Ali
    Samyn, Pieter
    Barhoum, Ahmed
    Materials Chemistry and Physics, 2024, 316
  • [22] THERMAL STABILITY, STRUCTURAL AND OPTICAL PROPERTIES OF RICE HUSK SILLICA BOROTELLURITE GLASSES CONTAINING MnO2
    Zaitizila, I
    Halimah, M. K.
    Muhammad, F. D.
    Nurisya, M. S.
    Zaid, M. H. M.
    CHALCOGENIDE LETTERS, 2018, 15 (04): : 187 - 197
  • [23] Foaming Mechanism of SiC in Steel Slag Foamed Ceramics
    Fang, Wenqiu
    Hou, Linjie
    Li, Yu
    ISIJ INTERNATIONAL, 2021, 61 (03) : 1043 - 1052
  • [24] Degradation mechanism of layered MnO2 cathodes in Zn/ZnSO4/MnO2 rechargeable cells
    Kim, SH
    Oh, SM
    JOURNAL OF POWER SOURCES, 1998, 72 (02) : 150 - 158
  • [25] Effect of MnO2 morphology on the thermal properties and combustion behavior of nano-Al/MnO2 thermite
    Liu, Xiaofeng
    Liu, Jun
    Zhao, Futian
    Xiao, Zhimin
    MATERIALS RESEARCH EXPRESS, 2022, 9 (06)
  • [26] THE ELECTRIC CONDUCTIVITY OF THE MNO2 SEMICONDUCTOR IN THE COURSE OF OXIDATION BY CO
    KACHANOVA, ZP
    VOEVODSKII, VV
    PURMAL, AP
    DOKLADY AKADEMII NAUK SSSR, 1960, 135 (03): : 648 - 650
  • [27] Investigation of mixed alkali effect on the DC electrical conductivity, structural, and physical properties of phosphate glasses containing MnO2
    Song, Jun
    Wu, Didi
    Zhang, Chaoyue
    Ming, Qing
    Imanzadeh, Mehdi
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2022, 167
  • [28] Rate and mechanism of the photoreduction of birnessite (MnO2) nanosheets
    Marafatto, Francesco Femi
    Strader, Matthew L.
    Gonzalez-Holguera, Julia
    Schwartzberg, Adam
    Gilbert, Benjamin
    Pena, Jasquelin
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2015, 112 (15) : 4600 - 4605
  • [29] A Novel Process of Thermal Decomposition of MnO2 Nanorods
    Song, Jia-Xing
    Fang, Xiang
    Guo, Tao
    Bei, Feng-Li
    Ding, Wen
    Yu, Hong-Jun
    Zhang, Xiao-Nan
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2018, 92 (09) : 1742 - 1747
  • [30] A Novel Process of Thermal Decomposition of MnO2 Nanorods
    Xiang Jia-Xing Song
    Tao Fang
    Feng-Li Guo
    Wen Bei
    Hong-Jun Ding
    Xiao-Nan Yu
    Russian Journal of Physical Chemistry A, 2018, 92 : 1742 - 1747