Theoretical and numerical analysis of large-scale heat transfer problems with temperature-dependent pore-fluid densities

被引:9
作者
Zhao, CB [1 ]
Hobbs, B
Ord, A
Lin, G
Mühlhaus, HB
机构
[1] CSIRO, Div Explorat & Mining, Bentley, WA, Australia
[2] Cent S Univ, Computat Geosci Res Ctr, Changsha 410083, Peoples R China
[3] Chinese Acad Sci, Guangzhou Inst Geochem, Guangzhou, Peoples R China
关键词
numerical analysis; boundary layers; heat transfer;
D O I
10.1108/02644400510585501
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Purpose - In many scientific and engineering fields, large-scale heat transfer problems with temperature-dependent pore-fluid densities are commonly encountered. For example, heat transfer from the mantle into the upper crust of the Earth is a typical problem of them. The main purpose of this paper is to develop and present a new combined methodology to solve large-scale heat transfer problems with temperature-dependent pore-fluid densities in the lithosphere and crust scales. Design/methodology/approach - The theoretical approach is used to determine the thickness and the related thermal boundary conditions of the continental crust on the lithospheric scale, so that some important information can be provided accurately for establishing a numerical model of the crustal scale. The numerical approach is then used to simulate the detailed structures and complicated geometries of the continental crust on the crustal scale. The main advantage in using the proposed combination method of the theoretical and numerical approaches is that if the thermal distribution in the crust is of the primary interest, the use of a reasonable numerical model on the crustal scale can result in a significant reduction in computer efforts. Findings - From the ore body formation and mineralization points of view, the present analytical and numerical solutions have demonstrated that the conductive-and-advective lithosphere with variable pore-fluid density is the most favorite lithosphere because it may result in the thinnest lithosphere so that the temperature at the near surface of the crust can be hot enough to generate the shallow ore deposits there. The upward throughflow (i.e. mantle mass flux) can have a significant effect on the thermal structure within the lithosphere. In addition, the emplacement of hot materials from the mantle may further reduce the thickness of the lithosphere. Originality/value - The present analytical solutions can be used to: validate numerical methods for solving large-scale heat transfer problems; provide correct thermal boundary conditions for numerically solving ore body formation and mineralization problems on the crustal scale; and investigate the fundamental issues related to thermal distributions within the lithosphere. The proposed finite element analysis can be effectively used to consider the geometrical and material complexities of large-scale heat transfer problems with temperature-dependent fluid densities.
引用
收藏
页码:232 / 252
页数:21
相关论文
共 26 条
[1]  
[Anonymous], 1997, GEOCHEMISTRY HYDROTH
[2]   NONLINEAR-WAVES IN COMPACTING MEDIA [J].
BARCILON, V ;
RICHTER, FM .
JOURNAL OF FLUID MECHANICS, 1986, 164 :429-448
[3]   CONVECTION BENEATH YOUNG OCEANIC LITHOSPHERE - IMPLICATIONS FOR THERMAL STRUCTURE AND GRAVITY [J].
BUCK, WR ;
PARMENTIER, EM .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1986, 91 (B2) :1961-1974
[4]   Compaction-driven fluid flow in viscoelastic rock [J].
Connolly, JAD ;
Podladchikov, YY .
GEODINAMICA ACTA, 1998, 11 (2-3) :55-84
[5]   Temperature-dependent viscoelastic compaction and compartmentalization in sedimentary basins [J].
Connolly, JAD ;
Podladchikov, YY .
TECTONOPHYSICS, 2000, 324 (03) :137-168
[6]   Mantle convection and stability of depleted and undepleted continental lithosphere [J].
Doin, MP ;
Fleitout, L ;
Christensen, U .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1997, 102 (B2) :2771-2787
[7]  
Hawley E., 2000, HLTH RELATED AEROBIC, V367
[8]   THE GENERATION AND COMPACTION OF PARTIALLY MOLTEN ROCK [J].
MCKENZIE, D .
JOURNAL OF PETROLOGY, 1984, 25 (03) :713-765
[9]   THE COMPACTION OF IGNEOUS AND SEDIMENTARY-ROCKS [J].
MCKENZIE, DP .
JOURNAL OF THE GEOLOGICAL SOCIETY, 1987, 144 :299-307
[10]  
NIEDL DA, 1992, CONVECTION POROUS ME