Fracture corridors as seal-bypass systems in siliciclastic reservoir-cap rock successions: Field-based insights from the Jurassic Entrada Formation (SE Utah, USA)

被引:78
作者
Ogata, Kei [1 ]
Senger, Kim [1 ,2 ,3 ]
Braathen, Alvar [1 ]
Tveranger, Jan [2 ]
机构
[1] Univ Ctr Svalbard, Dept Arct Geol, N-9171 Longyearbyen, Norway
[2] Uni CIPR, Ctr Integrated Petr Res, Uni Res, N-5007 Bergen, Norway
[3] Univ Bergen, Dept Earth Sci, N-5007 Bergen, Norway
关键词
Fracture corridors; Bleaching; Fracture-related fluid flow; Reservoir-cap rock interconnectivity; NATURAL CO2 RESERVOIR; NAVAJO SANDSTONE; FLUID-FLOW; SPATIAL-DISTRIBUTION; DEFORMATION BANDS; HIGH-POROSITY; GREEN RIVER; FAULTS; HISTORY; STORAGE;
D O I
10.1016/j.jsg.2014.05.005
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Closely spaced, sub-parallel fracture networks contained within localized tabular zones that are fracture corridors may compromise top seal integrity and form pathways for vertical fluid flow between reservoirs at different stratigraphic levels. This geometry is exemplified by fracture corridors found in outcrops of the Jurassic Entrada Formation in Utah (USA). These fracture corridors exhibit discolored (bleached) zones, interpreted as evidence of ancient fracture-enhanced circulation of reducing fluids within an exhumed siliciclastic reservoir-cap rock succession. Extensive structural and stratigraphic mapping and logging provided fracture data for analysis with respect to their occurrence and relationships to larger faults and folds. Three types of fracture corridors, representing end-members of a continuum of possibly interrelated structures were identified: 1) fault damage zone including segment relays; 2) fault-tip process zone; and 3) fold-related crestal-zone fracture corridors. The three types exhibit intrinsic orientations and patterns, which in sum define a local- to regional network of inferred vertical and lateral, high-permeability conduits. The results from our analysis may provide improved basis for the evaluation of trap integrity and flow paths across the reservoir-cap rock interface, applicable to both CO2 storage operations and the hydrocarbon industry. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:162 / 187
页数:26
相关论文
共 62 条
  • [1] Allis R, 2005, P 4 ANN C CARB CAPT
  • [2] Anderson O.J., 1994, MESOZOIC SYSTEMS ROC, P299
  • [3] [Anonymous], 2005, FRACTURE MECH FUNDAM
  • [4] Fracture spacing in layered rocks: a new explanation based on the stress transition
    Bai, TX
    Pollard, DD
    [J]. JOURNAL OF STRUCTURAL GEOLOGY, 2000, 22 (01) : 43 - 57
  • [5] Bleaching of Jurassic Navajo Sandstone on Colorado Plateau Laramide highs: Evidence of exhumed hydrocarbon supergiants?
    Beitler, B
    Chan, MA
    Parry, WT
    [J]. GEOLOGY, 2003, 31 (12) : 1041 - 1044
  • [6] Belayneh M, 2007, GEOL SOC SPEC PUBL, V272, P499, DOI 10.1144/GSL.SP.2007.272.01.25
  • [7] SYNTHESIS OF LATE PALEOZOIC AND MESOZOIC EOLIAN DEPOSITS OF THE WESTERN INTERIOR OF THE UNITED-STATES
    BLAKEY, RC
    PETERSON, F
    KOCUREK, G
    [J]. SEDIMENTARY GEOLOGY, 1988, 56 (1-4) : 3 - &
  • [8] Braathen A., 2000, 7 NGU, V7
  • [9] Man-made versus natural CO2 leakage: A 400 k.y. history of an analogue for engineered geological storage of CO2
    Burnside, Neil M.
    Shipton, Zoe K.
    Dockrill, Ben
    Ellam, Rob M.
    [J]. GEOLOGY, 2013, 41 (04) : 471 - 474
  • [10] Chan MA, 2000, AAPG BULL, V84, P1281