Structural Geology Tectonic Stresses Large Scale Strain of the Crust i.e., Geologic Structures...

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Tectonic Stresses Large Scale Strain of the Crust i.e., Geologic Structures Inner core: Solid iron Outer core: Liquid iron, convecting (magnetic field) Mantle (Asthenosphere) : Solid iron-magnesium silicate, plastic, convecting Crust (Lithosphere): Rigid, thin 5-30km Crust: Rigid, Thin Mantle: Plastic, Convectin g

Transcript of Structural Geology Tectonic Stresses Large Scale Strain of the Crust i.e., Geologic Structures...

Page 1: Structural Geology Tectonic Stresses  Large Scale Strain of the Crust i.e., Geologic Structures Inner core: Solid iron Outer core: Liquid iron, convecting.

Structural GeologyTectonic Stresses Large Scale Strain of the Crust i.e., Geologic Structures

Inner core: Solid iron Outer core: Liquid iron,

convecting (magnetic field)

Mantle (Asthenosphere) : Solid iron-magnesium silicate, plastic, convecting

Crust (Lithosphere): Rigid, thin5-30km

Crust: Rigid, Thin

Mantle: Plastic, Convecting

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Tectonics and Structural Geology

Tectonic Stresses resulting fromInternal Energy (heat driving convection) Strains (deforms) the Mantle and Crust

Bends Rocks, i.e., ductile strain (Folds)Breaks Rock, i.e., brittle strain (Joints) and Moves large blocks along Faults andReleases energy Earthquakes

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Folds and Faults (Palmdale, Ca)

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Eastern PennsylvaniaEastern Pennsylvania

NorthwesternAfrica

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MetamorphicGrade

High

Low

NortheasternNorth America

NorthwesternAfrica

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Strike and Dip of Planar Feature

Two methods of reporting planar orientation Quadrant: N15oE, 45oS (geologists) Azmuthal: 195o/45o (engineers)

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Stikes and Dips are used to identify geologic structures

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Brunton Pocket Transit

Clinometer Azimuthal Compass Transit

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Stresses at Plate

Boundaries Divergent (Tensional)

| Convergent (Compressional) | Transform (Shear)

e.g., Pacific NWKehew, Fig. 1-20Lab. Man., Fig. 21-2

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Geologic Structures Different stresses result in

various forms of strain (geologic structures) Folds (compressive

stresses may cause ductile strain)

Faults (Any type of stress may cause brittle strain. The type of fault depends on the type of stress)

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Anticline (fold)

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Syncline (fold)

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Plunging Anticline

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Eastern PennsylvaniaEastern Pennsylvania Folds and faults resulting from

compressive stresses Anticlines (many plunging) Synclines (many plunging) Reverse faults Thrust faults

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Domes and Basins

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Bedrock Geology of the Michigan Basin During and after

the deposition of Michigan’s sedimentary rocks

The crust warped downward

Exposing younger rocks in the center and

Older rocks on the rim (e.g. Toledo)

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When shallow crust is strained rocks tend to exhibit brittle strain

Brittle Strain Joints

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Sheet Joints (due to Expansion and Exfoliation)

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Fault: Movement occurring along a discontinuity Brittle strain and subsequent movement as a

result of stress Fault

terminology

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Faults

Fault: When movement occurs along a discontinuity

Fault type depends on the type of stress

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Normal Faults

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Normal Faults, Horsts and Grabens

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Structures at Divergent Boundaries

Tensional Stresses cause brittle strain and formation of sets of normal faults

i.e., Horsts and Grabens

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Horsts and Grabens Older Rocks are exposed along the ridges

formed by the horsts

Younger rocks lie beneath the grabens Sediment fills in the linear valleys

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Nevada

“Washboard topography” is the result of Horsts and Grabens

A.k.a, Basin and Range

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Structural Oil Traps

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Reverse and Thrust Faults

Compressive stress causes the hanging wall to move upward relative to the foot wall Reverse Fault

At convergent plate boundaries ancient rocks can be thrust over younger rocks Thrust Fault

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Thrust Fault: Glacier NP, Montana

Old

Younger

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Structures at a Convergent Boundary

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Structures within Mountain Belts

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Compressional and TensionalStructures

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E.g., The Apls

Intense folding and thrusting of sedimentary rocks

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Strike Slip Faults

Physiographic Features

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San Andreas Fault

What type of fault is this? What other features are

associated with the fault?

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