The influence of temperature on rehydroxylation [RHX] kinetics in archaeological pottery
暂无分享,去创建一个
[1] M. Collins,et al. A chronological framework for the British Quaternary based on Bithynia opercula , 2011, Nature.
[2] R. Grim,et al. Rehydration and dehydration of the clay minerals , 1948 .
[3] W. Cole. Moisture Expansion of a Ceramic Body and its Internal Surface Area , 1962, Nature.
[4] Christopher Hall,et al. A Review of Rehydroxylation in Fired-Clay Ceramics , 2012 .
[5] D. Parker,et al. A new daily central England temperature series, 1772–1991 , 1992 .
[6] J. Smerdon,et al. Conduction‐dominated heat transport of the annual temperature signal in soil , 2003 .
[7] Daron Duke,et al. An archaeologically validated protocol for computing obsidian hydration rates from laboratory data , 2011 .
[8] Martin Jones,et al. Soil Temperature and Obsidian Hydration Dating: A Clarification of Variables Affecting Accuracy , 1997 .
[9] A. C. Dunham,et al. Mineral assemblages formed in Oxford Clay fired under different time–temperature conditions with reference to brick manufacture , 2001 .
[10] V. Drits,et al. An Improved Model for Structural Transformations of Heat-Treated Aluminous Dioctahedral 2:1 Layer Silicates , 1995 .
[11] Tyson E. Ochsner,et al. A New Perspective on Soil Thermal Properties , 2001 .
[12] V. Drits,et al. Studies of the dehydroxylated-rehydroxylated montmorillonite : Structure of the layers and intercalation of water molecules , 2000 .
[13] M. E. Smith,et al. Solid-state NMR characterisation of the thermal transformation of a Hungarian white illite. , 2005, Solid state nuclear magnetic resonance.
[14] J. Smerdon,et al. A model study of the effects of climatic precipitation changes on ground temperatures , 2003 .
[15] J. Smerdon,et al. Air‐ground temperature coupling and subsurface propagation of annual temperature signals , 2004 .
[16] W. D. Hoff,et al. Dating fired-clay ceramics using long-term power law rehydroxylation kinetics , 2009, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[17] J. C. Jaeger,et al. Conduction of Heat in Solids , 1952 .
[18] Christopher Hall,et al. Kinetics of long-term moisture expansion in fired-clay brick , 2011 .
[19] P. Coveney,et al. Density-functional-theory-based study of the dehydroxylation behavior of aluminous dioctahedral 2:1 layer-type clay minerals , 2004 .
[20] S. Ferrari,et al. Kinetics of illite dehydroxylation , 2006 .
[21] M. Gaft,et al. Rehydroxyiation of clay minerals and hydration in ancient pottery from the ‘Land of Geshur’ , 1991 .
[22] G. Artioli,et al. High temperature dehydroxylation of muscovite-2M1: a kinetic study by in situ XRPD , 1999 .
[23] S. Redfern,et al. Dehydroxylation and transformations of the 2:1 phyllosilicate pyrophyllite at elevated temperatures: An infrared spectroscopic study , 2002 .
[24] A. Chamberlain,et al. Neanderthal DNA: Not just old but old and cold? , 2001, Nature.
[25] J. Smerdon,et al. Daily, seasonal, and annual relationships between air and subsurface temperatures , 2006 .
[26] L. Heller. The Dehydroxylation and Rehydroxylation of Triphormic Dioctahedral Clay Minerals , 1962 .
[27] S. Brantley,et al. Analysis of Rates of Geochemical Reactions , 2008 .
[28] William E Lee,et al. Microstructural Development on Firing Illite and Smectite Clays Compared with that in Kaolinite , 2005 .
[29] Gilberto Artioli,et al. Kinetic study of the kaolinite-mullite reaction sequence. Part I: Kaolinite dehydroxylation , 1995 .
[30] P. Blanchart,et al. Significance of kinetic theories on the recrystallization of kaolinite , 2006 .
[31] C. I. Sainz-Díaz,et al. Dehydroxylation mechanisms in Al3+/Fe3+ dioctahedral phyllosilicates by quantum mechanical methods with cluster models , 2008 .
[32] J. Smerdon,et al. Variable seasonal coupling between air and ground temperatures: A simple representation in terms of subsurface thermal diffusivity , 2005 .
[33] Giuseppe Cultrone,et al. Carbonate and silicate phase reactions during ceramic firing , 2001 .
[34] D. Bish,et al. Rehydration kinetics of a natural analcime , 2010 .
[35] P. Bullen. Handbook of means and their inequalities , 1987 .
[36] C. Rodriguez-Navarro,et al. TEM study of mullite growth after muscovite breakdown , 2003 .
[37] M. Hughes,et al. Proxy-based reconstructions of hemispheric and global surface temperature variations over the past two millennia , 2008, Proceedings of the National Academy of Sciences.
[38] H. S. Carslow,et al. Conduction of Heat in Solids, Second Edition , 1986 .
[39] W. D. Hoff,et al. Mass Gain due to the Chemical Recombination of Water in Fired Clay Brick , 2008 .
[40] A. Yuste,et al. TEM study of mineral transformations in fired carbonated clays: relevance to brick making , 2004, Clay Minerals.
[41] Christopher Hall,et al. Kinetics of moisture expansion in fired clay ceramics: a (time)(1/4) law. , 2003, Physical review letters.
[42] J. Brydon,et al. Dehydroxylation of microcrystalline muscovite. Kinetics, mechanism and energy change , 1968 .
[43] J. Carpenter,et al. OBSIDIAN DATING: RECENT ADVANCES IN THE EXPERIMENTAL DETERMINATION AND APPLICATION OF HYDRATION RATES , 1989 .
[44] J. Monteith,et al. Principles of Environmental Physics , 2014 .
[45] J. Prentice. Geology of Construction Materials , 1990 .
[46] S. Vyazovkin,et al. Kinetics in solids. , 1997, Annual review of physical chemistry.
[47] A. Rogers. Obsidian hydration dating: accuracy and resolution limitations imposed by intrinsic water variability , 2008 .
[48] A. Rogers. Field data validation of an algorithm for computing obsidian effective hydration temperature , 2008 .
[49] J. Collis. Excavations at Owslebury, Hants: An Interim Report , 1968, The Antiquaries Journal.