Fault Gouge
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Fault gouge is a type of fault rock best defined by its grain size. It is found as incohesive fault rock (rock which can be broken into its component granules at the present outcrop, only aided with fingers/pen-knife), with less than 30% clasts >2mm in diameter. Fault gouge forms in near-surface fault zones with brittle deformation mechanisms. There are several properties of fault gouge that influence its strength including composition, water content, thickness, temperature, and the strain rate conditions of the fault.


Formation

Fault gouge forms from localization of strain within fault zones under brittle conditions near the Earth’s surface. The grinding and milling from the two sides of the fault moving along each other results in grain size reduction and fragmentation. First, a
fault breccia Fault breccia, or tectonic breccia, is a breccia (a rock type consisting of angular clasts) that was formed by tectonic forces. Fault breccia is a tectonite formed by localized zone of brittle deformation (a fault zone) in a rock. Brecciation in ...
will form with more fragmental material and with continued grinding the rock will transition into a fault gouge with fewer and smaller fragments, enhancing fluid-rock interaction to alter some minerals and produce clay. Both the rate and manner of slip in a fault zone, as well as the available fluids, can determine the formation of different fault rock varieties.


Role of pore fluids

The formation of faults is determined by the stress conditions in the Earth’s crust. Pore fluid pressure in a rock can significantly reduce the stress needed to induce faulting by reducing the effective normal stress. Fault gouge formation can decrease permeability of the rock through creation of clay minerals, leading to higher pore fluid pressures in a localized zone and to slip localization within the gouge.


Cataclastic deformation

Cataclastic deformation is one of the main modes of fault gouge formation, as fault gouge is a common product of cataclasis at low pressure and temperature conditions. It is dependent on friction and is considered a brittle deformation mechanism. To further elucidate, cataclasis involves the granulation of grains due to both brittle fracture and rigid body rotation—where rigid body rotation is when mineral grains exhibit rotation in agreement with the fault plane shear sense. The corresponding cataclasis intensity is exhibited by a decrease in median grain size. As well, the development of fault gouge may also be accompanied by a degradation in sorting.


Classification

Fault rocks may be classified in terms of their textures, although the divisions are often gradational. After the classification scheme proposed by Sibson, fault gouge is defined as an incohesive fault with randomly oriented fabric and less than 30% visible fragments comprising the rock. An incohesive fault rock with more than 30% fragments is a fault breccia and cohesive fault rocks are either of the cataclasite series (non foliated) or the mylonite series (foliated). This was later modified to include foliated cataclasite. This classification scheme was further simplified for ease of the classification in the field. It defined fault gouge as having less than 30% clasts > 2mm and is found as incohesive fault rock at the present outcrop. Based on this classification scheme, fault breccias can undergo subdivision (as chaotic, mosaic, and crackle breccias). This subdivision allows for fault breccias to be foliated or non foliated, cohesive or incohesive, as well as found to contain a fine-grained matrix, small clasts, and even crystalline cement in varying proportions.


Properties, friction and fault strength

The fault strength of a gouge is dependent on its composition, its water content, its thickness, temperature and it can easily be affected by any changes in effective
normal stress In continuum mechanics, stress is a physical quantity that describes forces present during deformation. For example, an object being pulled apart, such as a stretched elastic band, is subject to ''tensile'' stress and may undergo elongati ...
and slip rate. These parameters all have an effect on the
coefficient of friction Friction is the force resisting the relative motion of solid surfaces, fluid layers, and material elements sliding against each other. Types of friction include dry, fluid, lubricated, skin, and internal -- an incomplete list. The study of t ...
.


Byerlee's law

Byerlee’s law is what is used to describe the frictional strength of a rock. It is as follows:\tau = \mu* \sigmaWhere: * \tau =
shear stress Shear stress (often denoted by , Greek alphabet, Greek: tau) is the component of stress (physics), stress coplanar with a material cross section. It arises from the shear force, the component of force vector parallel to the material cross secti ...
* \mu = coefficient of friction * \sigma = normal stress


Composition

The composition will have an impact on the slip behavior of a fault. A high frictional strength is associated with a composition high in strong minerals such as quartz and feldspar. The composition and concentration of clay minerals will affect the fault behavior in the brittle crust. Gouges dominated by clay minerals (montmorillonite, illite, and chlorite) are consistently weaker. Those with a high concentration in montmorillonite are significantly weaker than those with a composition high in chlorite or illite.


Permeability

The composition also impacts the permeability of a gouge. It is an important parameter controlling fault mechanics and frictional stability. The presence of water will reduce the frictional resistance between the grains of phyllosilicate minerals Also, the permeability before shearing is usually higher than after the deformation. However, the influence of shearing varies depending on the composition. For example, with montmorillonite or illite, a sharp decrease is visible in post-shear permeability. However, with minerals such as chlorite, the higher permeability will be maintained even after shearing. Because chlorite crystals form at higher pressure and temperature, it is most likely to remain as larger aggregates in shear zones compared to the smaller size of montmorillonite or illite grains which explains why the permeability is less affected. Fault gouges rich in chlorite and quartz keep their high permeability to a significant depth. On the other hand, fault gouges with a low permeability such as gouges high in clay minerals are more susceptible to develop high pore pressures because fluid flow is unable to diffuse.


Gouge thickness

Gouge thickness increases over time with accumulation of slip events along a fault. A larger thickness of fault gouge is associated with higher degrees of pore fluid pressure.


Temperature

As mentioned earlier, the frictional resistance of a gouge can change as temperature varies. However, its effect differs based on the mineral composition. For example, in the case of quartz gouges, an increase in temperature will most likely decrease the coefficient of friction while a decrease in temperature leads to an increase in the coefficient of friction.


Examples

Bonita Fault: Found in New Mexico, near Tucumcari, this normal fault is also an example of quartz gouge. Its gouge is found in the Mesa Rica Sandstone, within 40m of the fault contact. This fault also exhibits many subsidiary faults and shear fractures within its fault zone (60m wide)
Hurricane Fault The Hurricane Fault is an intracrustal seismic fault that runs along the boundary between the Colorado Plateau block and the Basin and Range geologic province of western North America. It is a 250-km-long, north–south striking, high-angle, dow ...
: This fault is found in Pintura, Utah, with its gouge found in the Coconino Sandstone. This is another example of quartz gouge.
Nojima Fault is a fault that was responsible for the Great Hanshin earthquake of 1995 (Kobe Quake). It cuts across Awaji Island, Japan and it is a branch of the Japan Median Tectonic Line which runs the length of the southern half of Honshu island. The f ...
Gouge: This fault produced thin oscillating
foliations Foliation may refer to: * Foliation, a geometric device used to study manifolds * Foliation (geology), a property of certain rocks * A pagination system in book production * Vernation, the growth and arrangement of Leaf, leaves * In architecture, ...
of psudotachylite and fine fault gouge from
granite Granite ( ) is a coarse-grained (phanerite, phaneritic) intrusive rock, intrusive igneous rock composed mostly of quartz, alkali feldspar, and plagioclase. It forms from magma with a high content of silica and alkali metal oxides that slowly coo ...
at a depth of 3 km.
San Andreas Fault The San Andreas Fault is a continental Fault (geology)#Strike-slip faults, right-lateral strike-slip transform fault that extends roughly through the U.S. state of California. It forms part of the tectonics, tectonic boundary between the Paci ...
Gouge: Consists of two active
shear zone In geology, a shear zone is a thin zone within the Earth's crust or upper mantle that has been strongly deformed, due to the walls of rock on either side of the zone slipping past each other. In the upper crust, where rock is brittle, the shear ...
s: the southwest deforming zone and the central deforming zone. At the San Andreas Fault Observatory at Depth (SAFOD) they are overarchingly composed of
serpentinite Serpentinite is a metamorphic rock composed predominantly of serpentine group minerals formed by serpentinization of mafic or ultramafic rocks. The ancient origin of the name is uncertain; it may be from the similarity of its texture or color ...
porphyroclast image:garnet porphyroblast.JPG, 350px, A mylonite showing a number of (rotated) porphyroclasts: a clear red garnet left in the picture while smaller white feldspar porphyroclasts can be found all over. ''Location'': the tectonics, tectonic contact b ...
s and sedimentary rock amongst a Magnesium-rich clay
matrix Matrix (: matrices or matrixes) or MATRIX may refer to: Science and mathematics * Matrix (mathematics), a rectangular array of numbers, symbols or expressions * Matrix (logic), part of a formula in prenex normal form * Matrix (biology), the m ...
.
Saponite Saponite is a trioctahedral mineral of the smectite group. Its chemical formula is . It is soluble in sulfuric acid. It was first described in 1840 by Lars Fredrik Svanberg, Svanberg. Varieties of saponite are griffithite, bowlingite and sobotk ...
, corresite,
quartz Quartz is a hard, crystalline mineral composed of silica (silicon dioxide). The Atom, atoms are linked in a continuous framework of SiO4 silicon–oxygen Tetrahedral molecular geometry, tetrahedra, with each oxygen being shared between two tet ...
, and
feldspar Feldspar ( ; sometimes spelled felspar) is a group of rock-forming aluminium tectosilicate minerals, also containing other cations such as sodium, calcium, potassium, or barium. The most common members of the feldspar group are the ''plagiocl ...
s compose the southwest deforming zone.
Saponite Saponite is a trioctahedral mineral of the smectite group. Its chemical formula is . It is soluble in sulfuric acid. It was first described in 1840 by Lars Fredrik Svanberg, Svanberg. Varieties of saponite are griffithite, bowlingite and sobotk ...
,
quartz Quartz is a hard, crystalline mineral composed of silica (silicon dioxide). The Atom, atoms are linked in a continuous framework of SiO4 silicon–oxygen Tetrahedral molecular geometry, tetrahedra, with each oxygen being shared between two tet ...
, and
calcite Calcite is a Carbonate minerals, carbonate mineral and the most stable Polymorphism (materials science), polymorph of calcium carbonate (CaCO3). It is a very common mineral, particularly as a component of limestone. Calcite defines hardness 3 on ...
compose the central deforming zone. Muddy Mountain Thrust: This fault is located in the southeast of Nevada, USA and represents tens of kilometers of transport at near-surface or surface conditions. The fault gouge contains less than 30% fragments of hanging wall dolomite and footwall sandstone clasts within a yellow-stained aggregate matrix with granular to foliated texture.


See also

*
Fault breccia Fault breccia, or tectonic breccia, is a breccia (a rock type consisting of angular clasts) that was formed by tectonic forces. Fault breccia is a tectonite formed by localized zone of brittle deformation (a fault zone) in a rock. Brecciation in ...
*
Fault (geology) In geology, a fault is a Fracture (geology), planar fracture or discontinuity in a volume of Rock (geology), rock across which there has been significant displacement as a result of rock-mass movements. Large faults within Earth's crust (geology ...


References

{{Reflist Rocks Tectonics