Basin and petroleum system modelling of the East Coast Basin, New Zealand: a test of overpressure scenarios in a convergent margin

被引:37
|
作者
Burgreen-Chan, Blair [1 ]
Meisling, Kristian E. [1 ]
Graham, Stephan [1 ]
机构
[1] Stanford Univ, Geol & Environm Sci, 450 Serra Mall,Bldg 320, Stanford, CA 94305 USA
关键词
HIKURANGI SUBDUCTION MARGIN; SOUTHERN HAWKES BAY; PLATE-BOUNDARY; PORE PRESSURE; DEFORMATIONAL HISTORY; FLUID PRESSURES; MARINE TERRACES; MAHIA PENINSULA; PACIFIC PLATE; KINETIC-MODEL;
D O I
10.1111/bre.12121
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
In the East Coast Basin (ECB), an active convergent margin of the North Island, New Zealand, the smectite-rich Eocene Wanstead Formation forms an effective regional seal, creating high overpressure in the underlying Cretaceous through Palaeocene units due to disequilibrium compaction. This study examines the evolution of pore pressure and porosity in Hawke Bay of the ECB based on stepwise structural reconstruction of a stratigraphic and structural framework derived from interpretation of a regional two-dimensional seismic line. This framework is incorporated into a basin and petroleum system model to predict the generation, distribution, and dissipation of overpressure, and examine the influence of faults, erosion, structural thickening, and seal effectiveness of the Wanstead Formation on pore pressure evolution. We find that natural hydraulic fracturing is likely occurring in sub-Wanstead source rocks, which makes it a favourable setting for potential shale gas plays. We use poroelastic modelling to investigate the impact of horizontal bulk shortening due to tectonic compression on pore pressure and the relative order of principal stresses. We find that shortening modestly increases pore pressure. When 5% or greater shortening occurs, the horizontal stress may approach and exceed vertical stress in the last 4 Myr of the basin's history. Shortening impacts both the magnitude and relative order of principal stresses through geological time. Due to the overpressured nature of the basin, we suggest that subtle changes in stress regime are responsible for the significant changes in structural deformational styles observed, enabling compressional, extensional, and strike-slip fault regimes to all occur during the tectonic history and, at times, simultaneously.
引用
收藏
页码:536 / 567
页数:32
相关论文
共 50 条
  • [1] Overpressure associated with a convergent plate margin: East Coast Basin, New Zealand
    Darby, D
    Funnell, RH
    PETROLEUM GEOSCIENCE, 2001, 7 (03) : 291 - 299
  • [2] Petroleum system modeling of the East Coast Basin, Hawke Bay, New Zealand
    Burgreen-Chan, Blair
    Graham, Stephan A.
    AAPG BULLETIN, 2018, 102 (04) : 587 - 612
  • [3] Basin architecture and petroleum system of Krishna Godavari Basin, east coast of India
    Gupta, S.K.
    Leading Edge (Tulsa, OK), 2006, 25 (07): : 830 - 837
  • [4] A new modelling approach to sediment bypass prediction applied to the East Coast Basin, New Zealand
    Crisostomo-Figueroa, Adriana
    McArthur, Adam D.
    Dorrell, Robert M.
    Amy, Lawrence
    McCaffrey, William D.
    GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2021, 133 (7-8) : 1734 - 1748
  • [5] Interest rising in New Zealand's East Coast basin
    White, Angel
    OIL & GAS JOURNAL, 2007, 105 (29) : 37 - 37
  • [6] New Zealand to see more drilling in East Coast basin
    不详
    OIL & GAS JOURNAL, 2000, 98 (48) : 36 - 37
  • [7] A Neogene gravity based tectonic system described in New Zealand East Coast basin
    Haskell, T. R.
    OIL & GAS JOURNAL, 2011, 109 (06) : 42 - +
  • [8] New insights into the Exmouth Sub-basin from basin and petroleum system modelling
    Schenk O.
    Dempsey C.
    Benson R.
    Cheng M.
    Tewari S.
    Karvelas A.
    Bancalà G.
    Exploration Geophysics, 2019, 2019 (01)
  • [9] A geochemical appraisal of oil seeps from the East Coast Basin, New Zealand
    Rogers, KM
    Collen, JD
    Johnston, JH
    Elgar, NE
    ORGANIC GEOCHEMISTRY, 1999, 30 (07) : 593 - 605
  • [10] Petroleum systems of the East Coast region, New Zealand
    Field, BD
    Funnell, R
    Killops, S
    Rogers, K
    Uruski, CL
    WATER-ROCK INTERACTION, 1998, : 317 - 319