SIGNIFICANCE OF K-AR AGES OF AUTHIGENIC ILLITIC CLAY-MINERALS IN SANDSTONES AND SHALES FROM THE NORTH-SEA

被引:20
作者
MATTHEWS, JC [1 ]
VELDE, B [1 ]
JOHANSEN, H [1 ]
机构
[1] INST ENERGITEKNIKK,N-2007 KJELLER,NORWAY
关键词
D O I
10.1180/claymin.1994.029.3.09
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Petrographic, X-ray diffraction, and microprobe analyses have been used to assess the significance of illite K-Ar ages from sandstones of two North Sea wells. Three closely spaced samples in one well from the upper Statfjord Formation yield similar ages (69-79 Ma) although the illites formed from different precursor minerals. Pore-filling illite in the upper Brent and the Upper Skagerrak Formations from a second well formed by replacing groundmass clays and other detrital minerals. The average layer charge and K+ content increase slightly with depth (0.69-0.80 K+) due to minor reaction and crystal growth during burial diagenesis. These K-Ar ages increase from 15 to 33 Ma within a 500 m depth interval. The K-Ar age vs. depth relationship for these samples corresponds to the burial rate during the middle Tertiary. In examples of extensive illitization of pore-filling clays in sandstones with little subsequent evolution of the clay minerals, the K-Ar ages indicate the age of diagenetic events. In contrast, illitic minerals in shales from the Skagerrak Formation in the second well yield an age (108 Ma) that is much older than the clays in the sandstones, but is still younger than stratigraphic age. The K-Ar ages from illitic clay in shales reported in the literature can get younger, older, or remain essentially unchanged with increasing depth. These age vs. depth trends reflect the complex interplay of crystal growth and dissolution during diagenesis, as well as probable contamination by non-recrystallized detrital illites. The K-Ar ages of illitic clays, therefore. evolve in a different manner in shales than in sandstones.
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页码:379 / 389
页数:11
相关论文
共 26 条
[1]  
ARONSON JL, 1976, GEOL SOC AM BULL, V87, P738, DOI 10.1130/0016-7606(1976)87<738:MOBMOA>2.0.CO
[2]  
2
[3]  
Bjorlykke K., 1992, ORIGIN DIAGENESIS PE, V47, P65, DOI [DOI 10.2110/PEC.92, 10.2110/pec.92.47.0065, DOI 10.2110/PEC.92.47.0065]
[4]  
Bjorlykke K., 1986, HABITAT HYDROCARBONS, P275
[5]   K-AR GEOCHRONOLOGY AND THE TIMING OF DETRITAL I/S CLAY ILLITIZATION AND AUTHIGENIC ILLITE PRECIPITATION IN THE PIPER AND TARTAN FIELDS, OUTER MORAY FIRTH, UK NORTH-SEA [J].
BURLEY, SD ;
FLISCH, M .
CLAY MINERALS, 1989, 24 (02) :285-315
[6]   FORMATION OF DIAGENETIC ILLITE IN SANDSTONES OF THE GARN FORMATION, HALTENBANKEN AREA, MID-NORWEGIAN CONTINENTAL-SHELF [J].
EHRENBERG, SN ;
NADEAU, PH .
CLAY MINERALS, 1989, 24 (02) :233-253
[7]   DEPTH-DEPENDENT TRANSFORMATION OF KAOLINITE TO DICKITE IN SANDSTONES OF THE NORWEGIAN CONTINENTAL-SHELF [J].
EHRENBERG, SN ;
AAGAARD, P ;
WILSON, MJ ;
FRASER, AR ;
DUTHIE, DML .
CLAY MINERALS, 1993, 28 (03) :325-352
[8]   SHALE DIAGENESIS IN THE BERGEN HIGH AREA, NORTH-SEA [J].
GLASMANN, JR ;
LARTER, S ;
BRIEDIS, NA ;
LUNDEGARD, PD .
CLAYS AND CLAY MINERALS, 1989, 37 (02) :97-112
[9]   GEOCHEMICAL EVIDENCE FOR THE HISTORY OF DIAGENESIS AND FLUID MIGRATION - BRENT SANDSTONE, HEATHER FIELD, NORTH-SEA [J].
GLASMANN, JR ;
LUNDEGARD, PD ;
CLARK, RA ;
PENNY, BK ;
COLLINS, ID .
CLAY MINERALS, 1989, 24 (02) :255-284
[10]   K-AR DATING OF ILLITE IN HYDROCARBON RESERVOIRS [J].
HAMILTON, PJ ;
KELLEY, S ;
FALLICK, AE .
CLAY MINERALS, 1989, 24 (02) :215-231