On the origin of mixed-layered clay minerals from the San Andreas Fault at 2.5-3 km vertical depth (SAFOD drillhole at Parkfield, California)

被引:50
作者
Schleicher, A. M. [1 ,3 ]
Warr, L. N. [2 ]
van der Pluijm, B. A. [3 ]
机构
[1] Univ Erlangen Nurnberg, Geozentrum Nordbayern, D-91054 Erlangen, Germany
[2] Univ Greifswald, Inst Geog & Geol, D-17487 Greifswald, Germany
[3] Univ Michigan, Dept Geol Sci, Ann Arbor, MI 48109 USA
基金
美国国家科学基金会;
关键词
SAFOD; Illite-smectite; Mixed-layered clays; San Andreas Fault; ILLITE-SMECTITE; DIAGENESIS; SHALES; ZONE; PHYLLOSILICATES; METAMORPHISM; COMPACTION; CONVERSION; MUDSTONES; EVOLUTION;
D O I
10.1007/s00410-008-0328-7
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A detailed mineralogical study is presented of the matrix of mudrocks sampled from spot coring at three key locations along the San Andreas Fault Observatory at depth (SAFOD) drill hole. The characteristics of authigenic illite-smectite (I-S) and chlorite-smectite (C-S) mixed-layer mineral clays indicate a deep diagenetic origin. A randomly ordered I-S mineral with ca. 20-25% smectite layers is one of the dominant authigenic clay species across the San Andreas Fault zone (sampled at 3,066 and 3,436 m measured depths/MD), whereas an authigenic illite with ca. 2-5% smectite layers is the dominant phase beneath the fault (sampled at 3,992 m MD). The most smectite-rich mixed-layered assemblage with the highest water content occurs in the actively deforming creep zone at ca. 3,300-3,353 m (true vertical depth of ca. 2.7 km), with I-S (70:30) and C-S (50:50). The matrix of all mudrock samples show extensive quartz and feldspar (both plagioclase and K-feldspar) dissolution associated with the crystallization of pore-filling clay minerals. However, the effect of rock deformation in the matrix appears only minor, with weak flattening fabrics defined largely by kinked and fractured mica grains. Adopting available kinetic models for the crystallization of I-S in burial sedimentary environments and the current borehole depths and thermal structure, the conditions and timing of I-S growth can be evaluated. Assuming a typical K+ concentration of 100-200 ppm for sedimentary brines, a present-day geothermal gradient of 35A degrees C/km and a borehole temperature of ca. 112A degrees C for the sampled depths, most of the I-S minerals can be predicted to have formed over the last 4-11 Ma and are probably still in equilibrium with circulating fluids. The exception to this simple burial pattern is the occurrence of the mixed layered phases with higher smectite content than predicted by the burial model. These minerals, which characterize the actively creeping section of the fault and local thin film clay coating on polished brittle slip surfaces, can be explained by the influence of either cooler fluids circulating along this segment of the fault or the flow of K+-depleted brines.
引用
收藏
页码:173 / 187
页数:15
相关论文
共 64 条
[1]   Influence of mechanical compaction and clay mineral diagenesis on the microfabric and pore-scale properties of deep-water Gulf of Mexico mudstones [J].
Aplin, Andrew C. ;
Matenaar, Ingo F. ;
McCarty, Douglas K. ;
van der Pluijm, Ben A. .
CLAYS AND CLAY MINERALS, 2006, 54 (04) :500-514
[3]   Constraining the exhumation and burial history of the SAFOD pilot hole with apatite fission track and (U-Th)/He thermochronometry -: art. no. L15S16 [J].
Blythe, AE ;
d'Alessio, MA ;
Bürgman, R .
GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (15) :L15S161-4
[4]   Mapping stress and structurally controlled crustal shear velocity anisotropy in California [J].
Boness, Naomi L. ;
Zoback, Mark D. .
GEOLOGY, 2006, 34 (10) :825-828
[5]   Mineralogic and textural analyses of drill cuttings from the San Andreas Fault Observatory at Depth (SAFOD) boreholes: Initial interpretations of fault zone composition and constraints on geologic models [J].
Bradbury, K. K. ;
Barton, D. C. ;
Solum, J. G. ;
Draper, S. D. ;
Evans, J. P. .
GEOSPHERE, 2007, 3 (05) :299-318
[6]   Diagenetic reorientation of phyllosilicate minerals in Paleogene mudstones of the Podhale Basin, southern Poland [J].
Day-Stirrat, Ruarri J. ;
Aplin, Andrew C. ;
Srodon, Jan ;
van der Pluijm, Ben A. .
CLAYS AND CLAY MINERALS, 2008, 56 (01) :100-111
[7]  
DICKINSON WR, 1966, GEOL SOC AM BULL, V77, P707, DOI 10.1130/0016-7606(1966)77[707:SROSAF]2.0.CO
[8]  
2
[9]  
Dong HL, 1997, AM MINERAL, V82, P379
[10]  
DRAPER SD, 2005, EOS T AGU, V24