Effects of high temperature treatment on physical-thermal properties of clay

被引:66
作者
Geng, Jishi [1 ]
Sun, Qiang [1 ]
机构
[1] China Univ Min & Technol, Sch Resources & Geosci, Xuzhou 221116, Jiangsu, Peoples R China
关键词
High temperature; Clay; Thermal parameter; Physical property; PHASE-TRANSFORMATION SEQUENCE; NUCLEAR-WASTE; BEHAVIOR; KAOLINITE; FIRE; DIFFRACTION; TRANSITION; EVOLUTION; MULLITE; QUARTZ;
D O I
10.1016/j.tca.2018.06.018
中图分类号
O414.1 [热力学];
学科分类号
摘要
High temperature changes the internal microstructure of clay and consequently affects its physical and thermal properties. In this paper, the influence of firing temperature (up to 900 degrees C) on the thermo-physical properties of clay is analyzed through laboratory tests and the relationship between thermal conductivity and density is revealed. Furthermore, the variation of surface characteristics including clay color and cracking is reported. The results obtained indicate that the thermal conductivity and diffusivity as well as the bulk density of clay decrease rapidly as the temperature increases from room temperature to 200 degrees C, and then become approximately constant. From the Thermogravimetric Analysis (TG) and Differential Thermal Analysis (DTA) tests it is also shown that there are two significant stages for the clay exposed to high temperature: 25-200 degrees C and 400-700 degrees C. The evaporation of adhered water and bound water are proved to be the main reason for the first stage of clay mass loss at 25-200 degrees C, while the decomposition of minerals is considered as the second stage of mass loss in the temperature range of 400-700 degrees C. In addition, the combustion of organic matter in clay is the main reason for its darkening at 300-400 degrees C.
引用
收藏
页码:148 / 155
页数:8
相关论文
共 42 条
[21]   Thermo-plasticity of clays: An isotropic yield mechanism [J].
Laloui, L ;
Cekerevac, C .
COMPUTERS AND GEOTECHNICS, 2003, 30 (08) :649-660
[22]  
Lee S, 1999, J AM CERAM SOC, V82, P2841
[23]   Characterization, firing behavior and ceramic application of clays from the Gabes region in South Tunisia [J].
Mahmoudi, Salah ;
Bennour, Ali ;
Srasra, Ezzedine ;
Zargouni, Fouad .
APPLIED CLAY SCIENCE, 2017, 135 :215-225
[24]   Densification behaviour of a red firing Brazilian kaolinitic clay [J].
Milheiro, FAC ;
Freire, MN ;
Silva, AGP ;
Holanda, JNF .
CERAMICS INTERNATIONAL, 2005, 31 (05) :757-763
[25]   Mineralogical evolution of ceramic clays during heating. An ex/in situ X-ray diffraction method comparison study [J].
Miras, Adolfo ;
Galan, Emilio ;
Gonzalez, Isabel ;
Romero-Baena, Antonio ;
Martin, Domingo .
APPLIED CLAY SCIENCE, 2018, 161 :176-183
[26]   Temperature variation of elastic constants of quartz across the α-β transition [J].
Ohno, I ;
Harada, K ;
Yoshitomi, C .
PHYSICS AND CHEMISTRY OF MINERALS, 2006, 33 (01) :1-9
[27]   Clay mineral assemblages in weathered basalt profiles from central and southern Portugal:: climatic significance [J].
Prudêncio, MI ;
Braga, MAS ;
Paquet, H ;
Waerenborgh, JC ;
Pereira, LCJ ;
Gouveia, MA .
CATENA, 2002, 49 (1-2) :77-89
[28]   The effect of thermal treatment on some of the physicochemical properties of a bentonite [J].
Sarikaya, Y ;
Önal, M ;
Baran, B ;
Alemdaroglu, T .
CLAYS AND CLAY MINERALS, 2000, 48 (05) :557-562
[29]   Mineralogy and textural impact on beneficiation of goethitic ore [J].
Shobhana, Dey ;
Manoj, Mohanta K. ;
Ratnakar, Singh .
INTERNATIONAL JOURNAL OF MINING SCIENCE AND TECHNOLOGY, 2017, 27 (03) :445-450
[30]   A METHOD OF MEASURING THERMAL DIFFUSIVITIES OF ROCKS AT ELEVATED TEMPERATURES [J].
SOMERTON, WH ;
BOOZER, GD .
AICHE JOURNAL, 1961, 7 (01) :87-90