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oped during the 1960s which describes the movement of continents by way of the separation and collision of crustal plates it is in a sense structural geology on a planet scale and is used throughout structural geology as a framework to analyze and understand global regional and local scale features 3 methods edit structural geologists use a variety of methods to first measure rock geometries second reconstruct their deformational histories and third estimate the stress field that resulted in that deformation geometries edit primary data sets for structural geology are collected in the field structural geologists measure a variety of planar features bedding planes foliation planes fold axial planes fault planes and joints and linear features stretching lineations in which minerals are ductilely extended fold axes and intersection lineations the trace of a planar feature on another planar surface illustration of measurement conventions for planar and linear structures measurement conventions edit the inclination of a planar structure in geology is measured by strike and dip the strike is the line of intersection between the planar feature and a horizontal plane taken according to the right hand convention and the dip is the magnitude of the inclination below horizontal at right angles to strike for example striking 25 degrees east of north dipping 45 degrees southeast recorded as n25e 45se alternatively dip and dip direction may be used as this is absolute dip direction is measured in 360 degrees generally clockwise from north for example a dip of 45 degrees towards 115 degrees azimuth recorded as 45 115 note that this is the same as above the term hade is occasionally used and is the deviation of a plane from vertical i e 90 dip fold axis plunge is measured in dip and dip direction strictly plunge and azimuth of plunge the orientation of a fold axial plane is measured in strike and dip or dip and dip direction lineations are measured in terms of dip and dip direction if possible often lineations occur expressed on a planar surface and can be difficult to measure directly in this case the lineation may be measured from the horizontal as a rake or pitch upon the surface rake is measured by placing a protractor flat on the planar surface with the flat edge horizontal and measuring the angle of the lineation clockwise from horizontal the orientation of the lineation can then be calculated from the rake and strike dip information of the plane it was measured from using a stereographic projection if a fault has lineations formed by movement on the plane e g slickensides this is recorded as a lineation with a rake and annotated as to the indication of throw on the fault generally it is easier to record strike and dip information of planar structures in dip dip direction format as this will match all the other structural information you may be recording about folds lineations etc although there is an advantage to using different formats that discriminate between planar and linear data plane fabric fold and deformation conventions edit the convention for analysing structural geology is to identify the planar structures often called planar fabrics because this implies a textural formation the linear structures and from analysis of these unravel deformations planar structures are named according to their order of formation with original sedimentary layering the lowest at s0 often it is impossible to identify s0 in highly deformed rocks so numbering may be started at an arbitrary number or given a letter s a for instance in cases where there is a bedding plane foliation caused by burial metamorphism or diagenesis this may be enumerated as s0a if there are folds these are numbered as f 1 f 2 etc generally the axial plane foliation or cleavage of a fold is created during folding and the number convention should match for example an f 2 fold should have an s 2 axial foliation deformations are numbered according to their order of formation with the letter d denoting a deformation event for example d 1 d 2 d 3 folds and foliations because they are formed by deformation events should correlate with these events for example an f 2 fold with an s 2 axial plane foliation would be the result of a d 2 deformation metamorphic events may span multiple deformations sometimes it is useful to identify them similarly to the structural features for which they are responsible e g m 2 this may be possible by observing porphyroblast formation in cleavages of known deformation age by identifying metamorphic mineral assemblages created by different events or via geochronology intersection lineations in rocks as they are the product of the intersection of two planar structures are named according to the two planar structures from which they are formed for instance the intersection lineation of a s 1 cleavage and bedding is the l 1 0 intersection lineation also known as the cleavage bedding lineation stretching lineations may be difficult to quantify especially in highly stretched ductile rocks where minimal foliation information is preserved where possible when correlated with deformations as few are formed in folds and many are not strictly associated with planar foliations they may be identified similar to planar surfaces and folds e g l 1 l 2 for convenience some geologists prefer to annotate them with a subscript s for example l s1 to differentiate them from intersection lineations though this is generally redundant stereographic projections edit diagram showing the use of lower hemisphere stereographic projection in structural geology using an example of a fault plane and a slickenside lineation observed within the fault plane stereographic projection is a method for analyzing the nature and orientation of deformation stresses lithological units and penetrative fabrics wherein linear and planar features structural strike and dip readings typically taken using a compass clinometer passing through an imagined sphere are plotted on a two dimensional grid projection facilitating more holistic analysis of a set of measurements stereonet 4 developed by richard w allmendinger is widely used in the structural geology community rock macro structures edit on a large scale structural geology is the study of the three dimensional interaction and relationships of stratigraphic units within terranes of rock or geological regions this branch of structural geology deals mainly with the orientation deformation and relationships of stratigraphy bedding which may have been faulted folded or given a foliation by some tectonic event this is mainly a geometric science from which cross sections and three dimensional block models of rocks regions terranes and parts of the earth s crust can be generated study of regional structure is important in understanding orogeny plate tectonics and more specifically in the oil gas and mineral exploration industries as structures such as faults folds and unconformities are primary controls on ore mineralisation and oil traps modern regional structure is being investigated using seismic tomography and seismic reflection in three dimensions providing unrivaled images of the earth s interior its faults and the deep crust further information from geophysics such as gravity and airborne magnetics can provide information on the nature of rocks imaged to be in the deep crust rock microstructures edit main article texture geology rock microstructure or texture of rocks is studied by structural geologists on a small scale to provide detailed information mainly about metamorphic rocks and some features of sedimentary rocks most often if they have been folded textural study involves measurement and characterisation of foliations crenulations metamorphic minerals and timing relationships between these structural features and mineralogical features usually this involves collection of hand specimens which may be cut to provide petrographic thin sections which are analysed under a petrographic microscope kinematics edit geologists use rock geometry measurements to understand the history of strain in rocks strain can take the form of brittle faulting and ductile folding and shearing brittle deformation takes place in the shallow crust and ductile deformation takes place in the deeper crust where temperatures and pressures are higher stress fields edit by understanding the constitutive relationships between stress and strain in rocks geologists can translate the observed patterns of rock deformation into a stress field during the geologic past the following list of features are typically used to determine stress fields from deformational structures in perfectly brittle rocks faulting occurs at 30 to the greatest compressional stress according to byerlee s law the greatest compressive stress is normal to fold axial planes modeling edit for economic geology such as petroleum and mineral development as well as research modeling of structural geology is becoming increasingly important 2d and 3d models of structural systems such as anticlines synclines fold and thrust belts and other features can help better understand the evolution of a structure through time without modeling or interpretation of the subsurface geologists are limited to their knowledge of the surface geological mapping if only reliant on the surface geology major economic potential could be missed by overlooking the structural and tectonic history of the area characterization of the mechanical properties of rock edit the mechanical properties of rock play a vital role in the structures that form during deformation deep below the earth s crust the conditions in which a rock is present will result in different structures that geologists observe above ground in the field the field of structural geology tries to relate the formations that humans see to the changes the rock went through to get to that final structure knowing the conditions of deformation that lead to such structures can illuminate the history of the deformation of the rock temperature and pressure play a huge role in the deformation of rock at the conditions under the earth s crust of extreme high temperature and pressure rocks are ductile they can bend fold or break other vital conditions that contribute to the formation of structure of rock under the earth are the stress and strain fields stress strain curve edit stress is a pressure defined as a directional force over area when a rock is subjected to stresses it changes shape when the stress is released the rock may or may not return to its original shape that change in shape is quantified by strain the change in length over the original length of the material in one dimension stress induces strain which ultimately results in a changed structure elastic deformation refers to a reversible deformation in other words when stress on the rock is released the rock returns to its original shape reversible linear elasticity involves the stretching compressing or distortion of atomic bonds because there is no breaking of bonds the material springs back when the force is released this type of deformation is modeled using a linear relationship between stress and strain i e a hookean relationship ϵ σ e displaystyle epsilon frac sigma e where σ denotes stress ϵ displaystyle epsilon denotes strain and e is the elastic modulus which is material dependent the elastic modulus is in effect a measure of the strength of atomic bonds plastic deformation refers to non reversible deformation the relationship between stress and strain for permanent deformation is nonlinear stress has caused permanent change of shape in the material by involving the breaking of bonds one mechanism of plastic deformation is the movement of dislocations by an applied stress because rocks are essentially aggregates of minerals we can think of them as poly crystalline materials dislocations are a type of crystallographic defect which consists of an extra or missing half plane of atoms in the periodic array of atoms that make up a crystal lattice dislocations are present in all real crystallographic materials hardness edit hardness is difficult to quantify it is a measure of resistance to deformation specifically permanent deformation there is precedent for hardness as a surface quality a measure of the abrasiveness or surface scratching resistance of a material if the material being tested however is uniform in composition and structure then the surface of the material is only a few atomic layers thick and measurements are of the bulk material thus simple surface measurements yield information about the bulk properties ways to measure hardness include mohs scale dorry abrasion test deval abrasion test indentation hardness indentation hardness is used often in metallurgy and materials science and can be thought of as resistance to penetration by an indenter toughness edit toughness can be described best by a material s resistance to cracking during plastic deformation a material absorbs energy until fracture occurs the area under the stress strain curve is the work required to fracture the material the toughness modulus is defined as m t 2 3 σ u t s ϵ f displaystyle m_ t frac 2 3 sigma _ uts epsilon _ f where σ u t s displaystyle sigma _ uts is the ultimate tensile strength and ϵ f displaystyle epsilon _ f is the strain at failure the modulus is the maximum amount of energy per unit volume a material can absorb without fracturing from the equation for modulus for large toughness high strength and high ductility are needed these two properties are usually mutually exclusive brittle materials have low toughness because low plastic deformation decreases the strain low ductility ways to measure toughness include page impact machine and charpy impact test resilience edit resilience is a measure of the elastic energy absorbed of a material under stress in other words the external work performed on a material during deformation the area under the elastic portion of the stress strain curve is the strain energy absorbed per unit volume the resilience modulus is defined as m r σ y 2 2 e displaystyle m_ r frac sigma _ y 2 2e where σ y displaystyle sigma _ y is the yield strength of the material and e is the elastic modulus of the material to increase resilience one needs increased elastic yield strength and decreased modulus of elasticity see also edit earth science portal crenulation list of rock textures section restoration stereographic projection tectonophysics vergence geology hydrogeology references edit russell william l 1955 1 introduction structural geology for petroleum geologists new york mcgraw hill p 1 plate tectonics and people usgs livaccari richard f burke kevin scedilengör a m c 1981 was the laramide orogeny related to subduction of an oceanic plateau nature 289 5795 276 278 bibcode 1981natur 289 276l doi 10 1038 289276a0 s2cid 27153755 stereonet rick allmendinger s stuff retrieved 2022 12 23 further reading...
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