The Earth is divided into layers by density. As the Earth solidified during the formation of the...

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PLATE TECTONICS

Transcript of The Earth is divided into layers by density. As the Earth solidified during the formation of the...

Page 1: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

PLATE TECTONICS

Page 2: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

The Earth is divided into layers by density.

As the Earth solidified during the formation of the solar system elements with higher density were drawn toward the center of the Earth by gravity.

Page 3: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

EARTH’S CRUST

Oceanic crust is comprised mainly of the rock basalt

Page 4: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

EARTH’S CRUST

Continental crust makes up the land masses. This thicker, less dense material allows the continents to rise above sea level and remain dry for very long periods Continental crust is made primarily of the rock granite

Page 5: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

As the very hot core heats the material in the Mantle it causes the material to move in a circular pattern. The mantle material heats up and rises and then cools and sinks. This circular pattern of movement within the mantle (called a convection current) pushes the lithospheric plates as they float. The movement and interaction of these plates causes most of the large scale changes on Earth's surface.

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Page 7: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

CONTINENTAL DRIFT

Alfred Wegener a German scientist was the first to propose this theory to the scientific community in the early 1900’s

Page 8: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

CONTINENTAL DRIFT

Pangea was the name for this supercontinent that began to break up about 200 million years ago

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CONTINENTAL DRIFT

Wegener’s theories were not accepted at the time because his explanations were not supported by physicists

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CONTINENTAL DRIFT

His explanation for movement was that the continents plowed through the seafloor crust like moving islands

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CONTINENTAL DRIFT

His explanation for the reason why the continents moved was the spinning of the earth

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EVIDENCE OF CONTINENTAL DRIFT

Although his explanations for the reason the continents drifted were incorrect there was still convincing evidence that they were indeed once together.

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EVIDENCE OF CONTINENTAL DRIFT

Rock formations in the Appalachian Mountains matched up with ones in Greenland.

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EVIDENCE OF CONTINENTAL DRIFT

Fossil evidence found in South America and Africa were especially strong

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EVIDENCE OF CONTINENTAL DRIFT

Bones from the Mesosaurus and Kannemeyerid were found in the same rock formations in Brazil and Chad

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EVIDENCE OF CONTINENTAL DRIFT

Even glacial striations from ancient Ice ages were found to match perfectly

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EVIDENCE OF CONTINENTAL DRIFT

Climatic evidence found that there were coal deposits in Antarctica suggesting that continent was at one time much closer to the equator

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SEA FLOOR SPREADING

In the early 1960’s new evidence revealed the process on how the continents could indeed move

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SEA FLOOR SPREADING

Advances in sonar technology in the 1940’s and 50’s allowed us to begin to accurately map the seafloor

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SEA FLOOR SPREADING

This evidence proved that the seafloor was not flat and featureless as once thought. Vast underwater mountain chains and deep trenches were discovered.

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SEA FLOOR SPREADING

Earthquakes and volcanic activity was prevalent in certain parts and missing in others

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SEA FLOOR SPREADING

The ocean floor was found to be much younger than the continental crust

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SEA FLOOR SPREADING

The thickness of the layers of sediments increased with the distance on either side of the ocean ridges

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PALEOMAGNETISM

Once scientists were able to bring sea floor samples to the surface they were able to determine that a record of the seafloor was being kept by Earth’s magnetic field

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PALEOMAGNETISM

Paleomagnetism is the study of this magnetic record using data gathered from iron-bearing minerals

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PALEOMAGNETISM

The magnetic records for the seafloor on either side of the mid-ocean ridges matched perfectly showing that the seafloor was growing outward from the ridges in both directions

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THE THEORY OF PLATE TECTONICS

Theory of Plate Tectonics states that the Earth’s crust and rigid upper mantle are broken into enormous slabs called plates.

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THE THEORY OF PLATE TECTONICS

There are 17 known plates

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THE THEORY OF PLATE TECTONICS

The plates do not remain still. They slide across the partially molten mantle material of the asthenosphere as a result of convection currents deep in the Earth’s interior.

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PLATE BOUNDARIES

Tectonic plates interact at places called plate boundaries.

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PLATE BOUNDARIES

Typically, since the Earth is spherical the plate boundaries would appear as the threads of a baseball weaving through the mid-ocean rifts and around the smaller plates.

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PLATE BOUNDARIES

Notice that ALL of the major plates include both continental and oceanic crust

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PLATE MOTIONS

Some plates move towards each other, some move away, and some slide horizontally past each other. Each interaction results in geologic process and characteristics that we can now associate with it.

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PLATE MOTIONS

Divergent boundaries are places where tectonic plates are moving apart

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PLATE MOTIONS

Most divergent boundaries are found on the seafloor where they form mid-ocean ridges

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PLATE MOTIONS

Iceland is a continuation of the Atlantic mid-ocean ridge

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PLATE MOTIONS

The Arabian Peninsula is an example of a newly formed divergent boundary as it separates from the rest of Africa

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PLATE MOTIONS

Convergent boundaries are where plates move toward each other.

These boundaries give us the most interesting geologic features. There are three types of convergent boundaries

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PLATE MOTIONS

Oceanic crust to oceanic crust results in the subduction of one of the two plates and an island arc

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PLATE MOTIONS

Subduction is the process of one plate descending beneath the other

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PLATE MOTIONS

The Phillippines are a noticeable example

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PLATE MOTIONS

Oceanic to continental convergence also results in the subduction of the oceanic crust

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PLATE MOTIONS

A volcanic mountain range such as the western portions of North and South America is the result

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PLATE MOTIONS

The oceanic crust always subducts because it is denser than continental crust

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PLATE MOTIONS

Continental to continental convergence results in folded mountains

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PLATE MOTIONS

The Himilayas are an active folded mountain chain

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PLATE MOTIONS Transform boundaries occur where

plates slide horizontally past each other. They rarely are seen on the continents however the San Andreas Fault in California is an exception

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EARTHQUAKES

Most earthquakes occur when rocks fracture deep within the Earth

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EARTHQUAKES

Compression decreases the volume of a material

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EARTHQUAKES

Tension pulls the material apart

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EARTHQUAKES

Shear causes a material to twist

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EARTHQUAKES WAVES

The vibrations in the ground during an earthquake are called seismic waves

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EARTHQUAKES WAVES

Primary Waves (P-waves) squeeze and pull rocks in the same direction along which the waves are traveling

Page 54: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

EARTHQUAKES WAVES

P-waves travel the fastest and CAN travel through liquids

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EARTHQUAKES WAVES

Secondary Waves (S-waves) cause rocks to move at right angles to the direction of travel

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EARTHQUAKES WAVES

S-waves travel slower than P-waves and CANNOT travel through liquids

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EARTHQUAKES WAVES

Surface Waves (L-waves) travel only on the surface in two directions causing an up-and-down and side-to side motion

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EARTHQUAKES WAVES

Most of the damage we see on the surface from earthquakes is caused by surface waves

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EARTHQUAKES WAVES

Most of our knowledge of Earth’s interior comes from the study of seismic waves. The relationship between P-waves and S-waves allows us to measure the size of the inner and outer cores

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MEASURING AND LOCATING EARTHQUAKES More than one million earthquakes

occur each year. More than 90 percent of these are not even felt by humans.

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MEASURING AND LOCATING EARTHQUAKES Magnitude is the amount of energy

released by an earthquake

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MEASURING AND LOCATING EARTHQUAKES Richter Scale is the numerical scale to

measure magnitude based on the size of the largest seismic waves generated

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MEASURING AND LOCATING EARTHQUAKES Each number on the Richter scale

represents an increase in amplitude by a factor of 10

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MEASURING AND LOCATING EARTHQUAKES 8 is ten times the amplitude of 7

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MEASURING AND LOCATING EARTHQUAKES Modified Mercalli Scale measures the

amount of damage done by the earthquake in Roman numerals I - - X II

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MEASURING AND LOCATING EARTHQUAKES Earthquakes are located by tracking

the seismic waves registered at different locations and plotting circles based on the speed of the waves and time elapsed

Page 67: The Earth is divided into layers by density. As the Earth solidified during the formation of the solar system elements with higher density were drawn.

MEASURING AND LOCATING EARTHQUAKES Seismometers are sensitive

instruments used to detect and record even the slightest vibrations of the earth’s surface

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MEASURING AND LOCATING EARTHQUAKES Focus is the point of initial fault rupture

and the location where the earthquake originates

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MEASURING AND LOCATING EARTHQUAKES

Epicenter is the point on the surface directly above the focus

Focus is the point of initial fault rupture and the location where the earthquake originates