Scale dependence of oblique plate-boundary partitioning: New insights from LiDAR, central Alpine fault, New Zealand

被引:51
作者
Barth, Nicolas C. [1 ]
Toy, Virginia G. [1 ]
Langridge, Robert M. [2 ]
Norris, Richard J. [1 ]
机构
[1] Univ Otago, Dept Geol, Dunedin, New Zealand
[2] GNS Sci, Lower Hutt, New Zealand
关键词
CENTRAL SOUTH ISLAND; SLIP RATE; STRUCTURAL EVOLUTION; ACTIVE FAULT; WESTLAND; ZONE; DEFORMATION; EARTHQUAKES; ALPS; EXHUMATION;
D O I
10.1130/L201.1
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
We combine recently acquired airborne light detection and ranging (LiDAR) data along a portion of the Alpine fault with previous work to define the ways in which the plate-boundary structures partition at three different scales from <10(6) to 10(0) m. At the first order (<10(6)-10(4) m), the Alpine fault is a remarkably straight and unpartitioned structure controlled by inherited and active weakening processes at depth. At the second order (10(4)-10(3) m), motion is serially partitioned in the upper similar to 1-2 km onto oblique-thrust and strike-slip fault segments that arise at the scale of major river valleys due to stress perturbations from hanging-wall topographic variations and river incision destabilization of the hanging-wall critical wedge, concepts proposed by previous workers. The resolution of the LiDAR data refines second-order mapping and reveals for the first time that at a third order (10(3)-10(0) m), the fault is parallel-partitioned into asymmetric positive flower structures, or fault wedges, in the hanging wall. These fault wedges are bounded by dextral-normal and dextral-thrust faults rooted at shallow depths (<600 m) on a planar, moderately southeast-dipping, dextral-reverse fault plane. The fault wedges have widths of similar to 300 m and are bounded by and contain kinematically stable fault traces that define a surface-rupture hazard zone. Newly discovered anticlinal ridges between fault traces indicate that a component of shallow shortening within the fault wedge is accommodated through folding. A fault kinematic analysis predicts the fault trace orientations observed and indicates that third-order fault trace locations and kinematics arise independently of topographic controls. We constructed a slip stability analysis that suggests the new strike-slip faults will easily accommodate displacement within the hanging-wall wedge, and that thrust motion is most easily accommodated on faults oblique to the overall strike of the Alpine fault. We suggest that the thickness of footwall sediments and width of the fault damage zone (i.e., presence of weaker, more isotropic materials) are major factors in defining the width, extent, and geometry of third-order near-surface fault wedges.
引用
收藏
页码:435 / 448
页数:14
相关论文
共 47 条
  • [31] Record of plate boundary metamorphism during Gondwana breakup from Lu-Hf garnet geochronology of the Alpine Schist, New Zealand
    Briggs, Sophie I.
    Cottle, John M.
    Smit, Matthijs A.
    [J]. JOURNAL OF METAMORPHIC GEOLOGY, 2018, 36 (07) : 821 - 841
  • [32] Potentially active faults in the rapidly eroding landscape adjacent to the Alpine Fault, central Southern Alps, New Zealand
    Cox, Simon C.
    Stirling, Mark W.
    Herman, Frederic
    Gerstenberger, Matthew
    Ristau, John
    [J]. TECTONICS, 2012, 31
  • [33] Deriving a long paleoseismic record from a shallow-water Holocene basin next to the Alpine fault, New Zealand
    Clark, K. J.
    Cochran, U. A.
    Berryman, K. R.
    Biasi, G.
    Langridge, R.
    Villamor, P.
    Bartholomew, T.
    Litchfield, N.
    Pantosti, D.
    Marco, S.
    Van Dissen, R.
    Turner, G.
    Hemphill-Haley, M.
    [J]. GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2013, 125 (5-6) : 811 - 832
  • [34] Clay mineral formation and fabric development in the DFDP-1B borehole, central Alpine Fault, New Zealand
    Schleicher, A. M.
    Sutherland, R.
    Townend, J.
    Toy, V. G.
    van der Pluijm, B. A.
    [J]. NEW ZEALAND JOURNAL OF GEOLOGY AND GEOPHYSICS, 2015, 58 (01) : 13 - 21
  • [35] 3-D P- and S-wave velocity structure along the central Alpine Fault, South Island, New Zealand
    Guo, B.
    Thurber, C. H.
    Roecker, S. W.
    Townend, J.
    Rawles, C.
    Chamberlain, C. J.
    Boese, C. M.
    Bannister, S.
    Feenstra, J.
    Eccles, J. D.
    [J]. GEOPHYSICAL JOURNAL INTERNATIONAL, 2017, 209 (02) : 935 - 947
  • [36] Effect of strain-weakening on Oligocene-Miocene self-organization of the Australian-Pacific plate boundary fault in southern New Zealand: Insights from numerical modelling
    Feng, Xiaojun
    Jessell, Mark Walter
    Amponsah, Prince Ofori
    Martin, Roland
    Ganne, Jerome
    Liu, Daqing
    Batt, Geoffrey E.
    [J]. JOURNAL OF GEODYNAMICS, 2016, 100 : 130 - 143
  • [37] A 2000 yr rupture history for the Alpine fault derived from Lake Ellery, South Island, New Zealand
    Howarth, Jamie D.
    Fitzsimons, Sean J.
    Norris, Richard J.
    Langridge, Robert
    Vandergoes, Marcus J.
    [J]. GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2016, 128 (3-4) : 627 - 643
  • [38] Shallow fault segmentation of the Alpine fault zone, New Zealand revealed from 2-and 3-D GPR surveying
    McClymont, Alastair F.
    Green, Alan G.
    Kaiser, Anna
    Horstmeyer, Heinrich
    Langridge, Robert
    [J]. JOURNAL OF APPLIED GEOPHYSICS, 2010, 70 (04) : 343 - 354
  • [39] Influence of topography and basement depth on surface rupture morphology revealed from LiDAR and field mapping, Hope Fault, New Zealand
    Khajavi, Narges
    Quigley, Mark
    Langridge, Robert Max
    [J]. TECTONOPHYSICS, 2014, 630 : 265 - 284
  • [40] Late quaternary displacement rate, paleoseismicity, and geomorphic evolution of the Alpine Fault: Evidence from Hokuri Creek, South Westland, New Zealand
    Sutherland, R
    Norris, RJ
    [J]. NEW ZEALAND JOURNAL OF GEOLOGY AND GEOPHYSICS, 1995, 38 (04) : 419 - 430