Interaction between Crustal-Scale Darcy and Hydrofracture Fluid Transport: A Numerical Study

被引:9
|
作者
de Riese, Tamara [1 ]
Bons, Paul D. [1 ,2 ]
Gomez-Rivas, Enrique [3 ]
Sachau, Till [1 ]
机构
[1] Eberhard Karls Univ Tubingen, Dept Geosci, Tubingen, Germany
[2] China Univ Geosci Beijing, Xueyuan Rd 29, Beijing 100083, Peoples R China
[3] Univ Barcelona, Dept Mineral Petrol & Appl Geol, Barcelona, Spain
关键词
CONTINENTAL-CRUST; PERMEABILITY ENHANCEMENT; CHEMICAL EVOLUTION; VEIN FORMATION; FRACTURE; FLOW; DEFORMATION; PRESSURE; FAULT; BRECCIAS;
D O I
10.1155/2020/8891801
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
Crustal-scale fluid flow can be regarded as a bimodal transport mechanism. At low hydraulic head gradients, fluid flow through rock porosity is slow and can be described as diffusional. Structures such as hydraulic breccias and hydrothermal veins both form when fluid velocities and pressures are high, which can be achieved by localized fluid transport in space and time, via hydrofractures. Hydrofracture propagation and simultaneous fluid flow can be regarded as a "ballistic" transport mechanism, which is activated when transport by diffusion alone is insufficient to release the local fluid overpressure. The activation of a ballistic system locally reduces the driving force, through allowing the escape of fluid. We use a numerical model to investigate the properties of the two transport modes in general and the transition between them in particular. We developed a numerical model in order to study patterns that result from bimodal transport. When hydrofractures are activated due to low permeability relative to fluid flux, many hydrofractures form that do not extend through the whole system. These abundant hydrofractures follow a power-law size distribution. A Hurst factor of similar to 0.9 indicates that the system self-organizes. The abundant small-scale hydrofractures organize the formation of large-scale hydrofractures that ascend through the whole system and drain fluids in large bursts. As the relative contribution of porous flow increases, escaping fluid bursts become less frequent, but more regular in time and larger in volume. We propose that metamorphic rocks with abundant veins, such as in the Kodiak accretionary prism (Alaska) and Otago schists (New Zealand), represent regions with abundant hydrofractures near the fluid source, while hydrothermal breccias are formed by the large fluid bursts that can ascend the crust to shallower levels.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] NUMERICAL STUDY OF HYDRODYNAMIC INTERACTION BETWEEN A ROW OF SPHEROIDS IN A STEADY STREAM OF VISCOUS FLUID
    Kotsev, Tsvetan
    COMPTES RENDUS DE L ACADEMIE BULGARE DES SCIENCES, 2022, 75 (01): : 19 - 25
  • [42] Experimental and numerical study of interaction between particle loaded fluid and a rough wall with micropillars
    Mikulich, V.
    Nassauer, B.
    Kuna, M.
    Bruecker, C.
    TRIBOLOGY INTERNATIONAL, 2015, 83 : 42 - 50
  • [43] Dating metamorphic reactions and fluid flow:: application to exhumation of high-P granulites in a crustal-scale shear zone, western Canadian Shield
    Mahan, KH
    Goncalves, P
    Williams, ML
    Jercinovic, MJ
    JOURNAL OF METAMORPHIC GEOLOGY, 2006, 24 (03) : 193 - 217
  • [44] Complexity gradients in the Yilgarn Craton: fundamental controls on crustal-scale fluid flow and the formation of world-class orogenic-gold deposits
    Hodkiewicz, PF
    Weinberg, RF
    Gardoll, SJ
    Groves, DI
    AUSTRALIAN JOURNAL OF EARTH SCIENCES, 2005, 52 (06) : 831 - 841
  • [45] Crustal-scale fluid circulation and co-seismic shallow comb-veining along the longest normal fault of the central Apennines, Italy
    Smeraglia, Luca
    Bernasconi, Stefano M.
    Berra, Fabrizio
    Billi, Andrea
    Boschi, Chiara
    Caracausi, Antonio
    Carminati, Eugenio
    Castorina, Francesca
    Doglioni, Carlo
    Italiano, Francesco
    Rizzo, Andrea Luca
    Uysal, I. Tonguc
    Zhao, Jian-xin
    EARTH AND PLANETARY SCIENCE LETTERS, 2018, 498 : 152 - 168
  • [46] Repeated slip along a major decoupling horizon between crustal-scale nappes of the Central Western Carpathians documented in the Ochtina tectonic melange
    Novotna, N.
    Jerabek, P.
    Pitra, P.
    Lexa, O.
    Racek, M.
    TECTONOPHYSICS, 2015, 646 : 50 - 64
  • [47] Insights Into the Crustal-Scale Dynamics of a Doubly Vergent Orogen From a Quantitative Analysis of Its Forelands: A Case Study of the Eastern Pyrenees
    Grool, Arjan R.
    Ford, Mary
    Verges, Jaume
    Huismans, Ritske S.
    Christophoul, Frederic
    Dielforder, Armin
    TECTONICS, 2018, 37 (02) : 450 - 476
  • [48] A numerical method for interaction problems between fluid and membranes with arbitrary permeability for fluid
    Miyauchi, Suguru
    Takeuchi, Shintaro
    Kajishima, Takeo
    JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 345 : 33 - 57
  • [49] From Crystals to Crustal-Scale Seismic Anisotropy: Bridging the Gap Between Rocks and Seismic Studies With Digital Geologic Map Data in Colorado
    Frothingham, Michael G.
    Mahan, Kevin H.
    Schulte-Pelkum, Vera
    Caine, Jonathan Saul
    Vollmer, Frederick W.
    TECTONICS, 2022, 41 (01)
  • [50] Long-lived crustal-scale fluid flow: the hydrothermal mega-breccia of Hidden Valley, Mt. Painter Inlier, South Australia
    Weisheit, Anett
    Bons, Paul D.
    Elburg, Marlina A.
    INTERNATIONAL JOURNAL OF EARTH SCIENCES, 2013, 102 (05) : 1219 - 1236