Faults and fault properties in hydrocarbon flow models

被引:142
作者
Manzocchi, T. [1 ]
Childs, C. [1 ]
Walsh, J. J. [1 ]
机构
[1] Univ Coll Dublin, UCD Sch Geol Sci, Fault Anal Grp, Dublin 4, Ireland
关键词
capillary threshold pressure; fault seal; faults; flow model; hydrocarbon migration; hydrocarbon production; transmissibility multiplier; PRODUCTION SIMULATION-MODELS; FLUID-FLOW; PHYSICAL CONSTRAINTS; NORTH-SEA; DAMAGE ZONES; RELAY RAMPS; SHALE SMEAR; MOAB FAULT; PERMEABILITY; FIELD;
D O I
10.1111/j.1468-8123.2010.00283.x
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
The petroleum industry uses subsurface flow models for two principal purposes: to model the flow of hydrocarbons into traps over geological time, and to simulate the production of hydrocarbon from reservoirs over periods of decades or less. Faults, which are three-dimensional volumes, are approximated in both modelling applications as planar membranes onto which predictions of the most important fault-related flow properties are mapped. Faults in porous clastic reservoirs are generally baffles or barriers to flow and the relevant flow properties are therefore very different to those which are important in conductive fracture flow systems. A critical review and discussion is offered on the work-flows used to predict and model capillary threshold pressure for exploration fault seal analysis and fault transmissibility multipliers for production simulation, and of the data from which the predictions derive. New flow simulation models confirm that failure of intra-reservoir sealing faults can occur during a reservoir depressurization via a water-drive mechanism, but contrary to anecdotal reports, published examples of production-induced seal failure are elusive. Ignoring the three-dimensional structure of fault zones can sometimes have a significant influence on production-related flow, and a series of models illustrating flow associated with relay zones are discussed.
引用
收藏
页码:94 / 113
页数:20
相关论文
共 144 条
  • [71] GAUTHIER BDM, 1993, AAPG BULL, V77, P761
  • [72] GIBSON RG, 1994, AAPG BULL, V78, P1372
  • [73] Gibson RG., 1998, GEOL SOC SPEC PUBL, V127, P83
  • [74] Gilham R., 2005, PETROLEUM GEOLOGY N, P663, DOI DOI 10.1144/0060663
  • [75] GRAULS D, 2002, NORWEGIAN PETROLEUM, V11, P127
  • [76] Geophysics - A moving fluid pulse in a fault zone
    Haney, MM
    Snieder, R
    Sheiman, J
    Losh, S
    [J]. NATURE, 2005, 437 (7055) : 46 - 46
  • [77] Harris SD, 2007, GEOL SOC SPEC PUBL, V292, P353, DOI 10.1144/SP292.20
  • [78] Predicting the three-dimensional population characteristics of fault zones: a study using stochastic models
    Harris, SD
    McAllister, E
    Knipe, RJ
    Odling, NE
    [J]. JOURNAL OF STRUCTURAL GEOLOGY, 2003, 25 (08) : 1281 - 1299
  • [79] HEATH AE, 1994, N SEA OIL GAS RESERV, V3, P173
  • [80] A fluid dynamic classification of hydrocarbon entrapment
    Heum, OR
    [J]. PETROLEUM GEOSCIENCE, 1996, 2 (02) : 145 - 158