Stress fields associated with oceanic transform faults

被引:45
作者
Gudmundsson, A
机构
[1] Nordic Volcanological Institute, University of Iceland, Reykjavik, Geoscience Building
关键词
D O I
10.1016/0012-821X(95)00164-8
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
Although their formation is commonly attributed to shear stresses, oceanic transform faults contain many structural elements indicating extension across them. Examples include transform-parallel tension fractures, normal faults, grabens, dykes and small-scale spreading centres. At the junctions between transform faults and adjacent ridge segments there are commonly sets of oblique fractures. A detailed field study of oblique fractures in the vicinity of a junction between a mid-ocean ridge and an oceanic fracture zone in North Iceland shows that they are mostly tension fractures and normal faults. This paper presents the results of a boundary-element study of the stress field associated with the junction between an oceanic transform fault and its ridge segments. The results show mat uniaxial tensile loading (plate pull) parallel with the transform fault tends to lock it but also gives rise to shear-stress concentration in a zone that coincides with the fault. This shear stress is primarily responsible for the strike-slip faulting and associated earthquakes in the transform fault. To generate the transform-parallel fracture-zone graben, normal faults, tensile fractures, dykes and spreading centres, however, requires tensile loading parallel with the ridge axis. The results suggest that biaxial (ridge-parallel and ridge-perpendicular) tensile loading generates a stress field that: (1) unlocks and makes slip easier on the transform faults; and (2) explains the oblique fractures at the ridge-transform junctions.
引用
收藏
页码:603 / 614
页数:12
相关论文
共 35 条
[1]   DISTORTIONS, ROTATIONS AND CRUSTAL THINNING AT RIDGE TRANSFORM INTERSECTIONS [J].
ALLERTON, S .
NATURE, 1989, 340 (6235) :626-628
[2]   OBSERVATION OF SECTIONS OF OCEANIC-CRUST AND MANTLE CROPPING OUT ON THE SOUTHERN WALL OF KANE FZ (N-ATLANTIC) [J].
AUZENDE, JM ;
CANNAT, M ;
GENTE, P ;
HENRIET, JP ;
JUTEAU, T ;
KARSON, J ;
LAGABRIELLE, Y ;
MEVEL, C ;
TIVEY, M .
TERRA NOVA, 1994, 6 (02) :143-148
[3]   THE ORIGIN OF BATHYMETRIC HIGHS AT RIDGE-TRANSFORM INTERSECTIONS - A MULTIDISCIPLINARY CASE-STUDY AT THE CLIPPERTON FRACTURE-ZONE [J].
BARTH, GA ;
KASTENS, KA ;
KLEIN, EM .
MARINE GEOPHYSICAL RESEARCHES, 1994, 16 (01) :1-50
[4]   ON THE STRENGTH OF OCEANIC FRACTURE-ZONES AND THEIR INFLUENCE ON THE INTRAPLATE STRESS-FIELD [J].
BERGMAN, EA ;
SOLOMON, SC .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1992, 97 (B11) :15365-15377
[5]   THERMAL CONTRACTION JOINTS IN A SPREADING SEAFLOOR AS ORIGIN OF FRACTURE ZONES [J].
COLLETTE, BJ .
NATURE, 1974, 251 (5473) :299-300
[6]   MORPHOLOGY OF THE BLANCO TRANSFORM-FAULT ZONE-NE PACIFIC - IMPLICATIONS FOR ITS TECTONIC EVOLUTION [J].
EMBLEY, RW ;
WILSON, DS .
MARINE GEOPHYSICAL RESEARCHES, 1992, 14 (01) :25-&
[7]  
FJDDER K, 1994, J STRUCT GEOL, V16, P109
[8]   STRUCTURE AND TOPOGRAPHY OF THE SIQUEIROS TRANSFORM-FAULT SYSTEM - EVIDENCE FOR THE DEVELOPMENT OF INTRA-TRANSFORM SPREADING CENTERS [J].
FORNARI, DJ ;
GALLO, DG ;
EDWARDS, MH ;
MADSEN, JA ;
PERFIT, MR ;
SHOR, AN .
MARINE GEOPHYSICAL RESEARCHES, 1989, 11 (04) :263-299
[9]   RELATIVE IMPORTANCE OF DRIVING FORCES OF PLATE MOTION [J].
FORSYTH, D ;
UYEDA, S .
GEOPHYSICAL JOURNAL OF THE ROYAL ASTRONOMICAL SOCIETY, 1975, 43 (01) :163-200
[10]  
FOX PJ, 1986, GEOLOGY N AM, VM, P157