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How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

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Page 1: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

How Rocks DeformBrittle-Ductile BehaviorFaulting and Folding

Deformation of Rocks

Page 2: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Stress and Strain

• The keys to understanding any deformation are stress (the cause) and strain (the effect)

Page 3: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Compression

• Rocks are squeezed or compressed by forces directed toward one another.

• Rocks are shortened by folding or faulting

Page 4: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Plate Boundary: Convergence Zones

Page 5: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Tension

• Rocks are lengthened or pulled apart by forces acting in opposite directions

• Rocks are stretched and thinned

Page 6: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Plate Boundary: Divergence Zones

Page 7: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Shear

• Forces act parallel to one another but in opposite directions

• Results in displacement of adjacent layers along closely spaced planes

Page 8: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Plate Boundary: Transform Faults

Page 9: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Relationship between stress and strain

Strain

Stress

Elastic behavior

Ductile behavior

X

Fracture, breaks

Permanent strain

Rock

Rubber band

Page 10: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Relationship between stress and strain

Strain

Stress

Brittle behavior:Very little ductile deformation before fracturing

X

Fracture

X

Ductile behavior:Extensive ductile deformation before fracturing

Page 11: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Ductile Brittle

Page 12: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Ductile BehaviorFolding of Rocks

Brittle BehaviorFaulting of Rocks

Page 13: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

What controls brittle vs. ductile?

– Rate of deformation (fast = brittle)– Rock strength (strong = brittle)– Temperature (cold = brittle)– Confining pressure (shallow = brittle)

• Just remember deeper = ductile– Near surface= rocks are brittle– At depth= rocks are ductile

Page 14: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

What controls brittle vs. ductile?

Rate of deformation (strain rate)

Low strain rates Ductile (Mantle Convection)

High strain rates Brittle (Earthquake waves)

Page 15: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Yield stressElastic limit

Effects of Temperature and Strain Rate

Page 16: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Brittle-Ductile Transition

Mantle

Crust

surface

Low TemperatureLow Pressure 15-20 km

Brittle

DuctileHigher TemperatureHigher Pressure

Limits the depths of earthquakes

Page 17: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

schematic strength profile

through continental lithosphere

StrainS

tress Yield

strength=0

T=1300 C

Lithosphere-Asthenosphere

Page 18: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Deformation in Progress

Page 19: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Abrupt Movement along Faults

Page 20: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Uplifted sea floor at Cape Cleare, Montague Island, Prince William Sound. Uplift about 33 ft

Page 21: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Gradual Movement: Perspective view of the Los Angeles region with superimposed InSAR( Interferometric Synthetic Aperture Radar) measurements of ground motions between May and September 1999. Large regions of metropolitan Los Angeles are rising and falling by up to 11 cm annually, and a large portion of the city of Santa Ana is sinking at a rate of 12 mm per year.

upliftsubsidence

LA

SA

Page 22: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Past Deformation: Folding

Large scale and small scale folds

Page 23: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Folding: large and small scale

Page 24: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Past Deformation: Faulting

Large scale and small scale

Page 25: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Strike and Dip

Page 26: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Measuring Deformation in the Rocks Strike & Dip

Page 27: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Faults

• Fractures along which there is relativerelative motion parallel to the fracture

• The fracture is called the fault plane– Vertical motion (dip-slip) – horizontal (strike-slip). – Most faults have a combination of

both types of motion (oblique).

Page 28: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Types of Faults

Classified according to:

Dip of faultDirection of relative movement

Page 29: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Normal Fault (dip-slip)

Page 30: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Normal Faulting

Hanging wall

Foot wall

Page 31: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Tetons – fault range scale

Page 32: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Basin and Range

Normal FaultingHorst-Graben Structures

Death Valley, CA

Page 33: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks
Page 34: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Reverse Fault (dip slip)

> 45° dip

Page 35: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Reverse Faults

Page 36: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Thrust Fault (dip-slip)

< 45° dip

Page 37: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Older rocks

Younger rocks

Thrust Fault

Page 38: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Thrust Faults. Snake Range, Wy

Page 39: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Strike-Slip Fault (horizontal motion, no vertical motion)

Page 40: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Strike-Slip Fault

Page 41: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

San Andreas Fault

• Transform plate boundary (Pac / N.A.)

• System of right lateral faults

Page 42: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Offset Streams (San Andreas Fault)

A pair of streams that has been offset by right-lateral slip on the San Andreas fault (lineament extending from left to right edge of photograph). View northeastward across fault toward the Temblor Range. Photograph by Sandra Schultz Burford, U.S. Geological Survey.

Page 43: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Strike-slip fault

Off-set stream

Right-lateralStrike-slipStress: shear

Page 44: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Types of FoldsDuring mountain building or compressional

stress, rocks undergo ductile deformation to produce folds

anticline

syncline

Page 45: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Types of Folds

Page 46: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Anticline: Warped upwards. Limbs dip outward. When eroded, oldest rocks crop out in the center (assuming everything is right-side-up).

Page 47: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Syncline: Warped downwards. Limbs dip inward. When eroded, youngest rocks crop out in the center (assuming everything is right-side-up).

Page 48: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks
Page 49: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks
Page 50: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Basins and Domes resemble anticlines & synclines vertical motions instead of lateral motions

Page 51: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks
Page 52: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Stress, Strain & Plate Tectonics

• Plate collisions (convergent margins)– Compressive strsses– Folds & reverse faults

Page 53: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Stress, Strain & Plate Tectonics• Divergent plate boundaries

– Tensional stresses– Normal faults

Page 54: How Rocks Deform Brittle-Ductile Behavior Faulting and Folding Deformation of Rocks

Stress, Strain & Plate Tectonics

• Transform plate boundaries– Shear stress– Transform faults