Slow wavespeeds and fluid overpressure in a region of shallow geodetic locking and slow slip, Hikurangi subduction margin, New Zealand

被引:68
作者
Bassett, Dan [1 ]
Sutherland, Rupert [2 ]
Henrys, Stuart [2 ]
机构
[1] Univ Oxford, S Parks Rd, Oxford, England
[2] GNS Sci, Lower Hutt 5040, New Zealand
关键词
slow slip; pore-pressure; seismic refraction; petroleum; CENTRAL NORTH-ISLAND; RAUKUMARA PENINSULA; CONTINENTAL-CRUST; SEISMOGENIC ZONE; PLATE BOUNDARY; BARBADOS RIDGE; FRICTIONAL-PROPERTIES; ACCRETIONARY WEDGE; SEISMIC VELOCITY; WAVE VELOCITIES;
D O I
10.1016/j.epsl.2013.12.021
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
Travel times recorded onshore from active-source marine seismic surveys were used to determine Hikurangi forearc wavespeeds. Ray-path midpoints sample forearc crust above the shallow (<10-12 km) subduction thrust. The southern region is locked to c. 30 km depth, exhibits slow slip at 30-45 km depth, and is similar to other subduction zones. Our 1D southern model has a rapid increase in seismic velocity (V-p) from the seabed to 4 km depth, consistent with rapidly-deposited clastic sediments, and nearconstant V-P = 5.0 +/- 0.2 km/s at depths of 4-10 km within the forearc. The northern region has slow-slip events at shallow depths of c. 5-15 km, beneath the volume sampled by our analysis. Average travel times at offsets of 20-80 km are >1 s more than at equivalent offsets in the south, and V-p increases with depth within the forearc from 3.5 +/- 0.1 km/s at 4 km depth to 4.5 +/- 0.2 km/s at > 10 km depth. We interpret the low wavespeeds in terms of compaction disequilibrium and compare seismic inferences of anomalously-high porosity (>10%) with hydrostatic reference compaction models to show effective stress is low in both the north (27 +/- 10 Mpa) and south (36 +/- 14 MPa). In the south, pore space and conduits have a high chance of being localized on faults or sand layers, the wedge is clearly compressionally critical, and we suggest the higher seismic velocities recorded primarily reflect higher effective stress levels transmitted through the rock framework. The observed wedge geometry and our estimate of fluid pressure within the wedge (X = 0.87 +/- 0.05) suggest a weak overpressured subduction thrust. In the north, we suggest high fluid pressure is maintained by a large fluid inventory from subducting sediment, a pore-space geometry characterized by pervasively-fractured rock and mudstone, and a lower mean stress due to its stable and non-critical wedge geometry. We consider both end-member assumptions of convergent and tensile failure, the latter of which reveals the possibility of near-lithostatic fluid pressure on the north Hikurangi subduction interface, although this remains unproven. Our observations are consistent with high fluid pressures encountered in petroleum wells at depths <3 km and we observe a clear spatial correlation between the distribution of residual travel-times and the maximum depth of geodetic coupling and slow-slip. Our observations provide evidence for a causative link between high fluid pressure and anomalously-shallow slow slip events and depth of geodetic locking. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:1 / 13
页数:13
相关论文
共 149 条
[1]  
[Anonymous], 1930, AAPG B
[2]   Seismic evidence for overpressured subducted oceanic crust and megathrust fault sealing [J].
Audet, Pascal ;
Bostock, Michael G. ;
Christensen, Nikolas I. ;
Peacock, Simon M. .
NATURE, 2009, 457 (7225) :76-78
[3]   SEISMIC VELOCITIES FROM THE BARBADOS RIDGE COMPLEX - INDICATORS OF HIGH PORE FLUID PRESSURES IN AN ACCRETIONARY COMPLEX [J].
BANGS, NLB ;
WESTBROOK, GK ;
LADD, JW ;
BUHL, P .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1990, 95 (B6) :8767-8782
[4]   Geometry of the Hikurangi subduction thrust and upper plate, North Island, New Zealand [J].
Barker, Daniel H. N. ;
Sutherland, Rupert ;
Henrys, Stuart ;
Bannister, Stephen .
GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2009, 10
[5]   Tectonic and geological framework for gas hydrates and cold seeps on the Hikurangi subduction margin, New Zealand [J].
Barnes, Philip M. ;
Lamarche, Geoffroy ;
Bialas, Joerg ;
Henrys, Stuart ;
Pecher, Ingo ;
Netzeband, Gesa L. ;
Greinert, Jens ;
Mountjoy, Joshu J. ;
Pedley, Katherine ;
Crutchley, Gareth .
MARINE GEOLOGY, 2010, 272 (1-4) :26-48
[6]   Rates and mechanics of rapid frontal accretion along the very obliquely convergent southern Hikurangi margin, New Zealand [J].
Barnes, PM ;
deLepinay, BM .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1997, 102 (B11) :24931-24952
[7]   Three-dimensional velocity structure of the northern Hikurangi margin, Raukumara, New Zealand: Implications for the growth of continental crust by subduction erosion and tectonic underplating [J].
Bassett, Daniel ;
Sutherland, Rupert ;
Henrys, Stuart ;
Stern, Tim ;
Scherwath, Martin ;
Benson, Adrian ;
Toulmin, Suzannah ;
Henderson, Mark .
GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2010, 11
[8]  
Beavan J, 2007, IAG SYMP, V130, P438
[9]   Episodic and constant flow models for the origin of low-chloride waters in a modern accretionary complex [J].
Bekins, BA ;
McCaffrey, AM ;
Dreiss, SJ .
WATER RESOURCES RESEARCH, 1995, 31 (12) :3205-3215
[10]   A SIMPLIFIED ANALYSIS OF PARAMETERS CONTROLLING DEWATERING IN ACCRETIONARY PRISMS [J].
BEKINS, BA ;
DREISS, SJ .
EARTH AND PLANETARY SCIENCE LETTERS, 1992, 109 (3-4) :275-287