Landscapes
Rocks: Materials of the Solid Earth
Chapter 2 Lecture
Natalie Bursztyn
Utah State University
Foundations of Earth Science
Eighth Edition
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1
Sketch, label, and explain the rock cycle.
Focus Question 2.1
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Focus Question 2.1
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The rock cycle describes the interactions between the components of the Earth system
Origin of igneous, sedimentary, and metamorphic rocks and how they are connected
Any rock can be transformed into any other rock type under the right conditions
Earth as a System: The Rock Cycle
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The rock cycle begins with magma
Forms from melting in Earth’s crust and upper mantle
Less dense magma rises toward the surface
Erupts at surface as lava or cools within crust
Cooling is called crystallization or solidification
Igneous rocks are crystallized from
Magma (within the crust)
Or lava (at Earth’s surface)
The Basic Cycle
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Igneous rocks exposed at Earth's surface undergo weathering
Atmosphere decomposes rock
Generates loose material or dissolves it
Loose material is called sediment
Transported by gravity, running water, glaciers, wind, waves, etc.
Most sediment is transported to the ocean, but some is deposited in other environments
The Basic Cycle
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Deposited sediment undergoes lithification
“Conversion into rock” by
Compaction
Cementation
Deformed by great heat and pressure if deeply buried or incorporated into a mountain chain
Metamorphism
Eventually enough heat will melt the rock and generate magma
The Basic Cycle
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The Basic Cycle
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Rocks are not stable unchanging masses over geologic time scales
Rock cycle happens over millions or billions of years
Different stages of the rock cycle are occurring today all over Earth’s surface
New igneous rocks are forming in Hawaii
The Colorado Rockies are eroding and material is being carried to the Gulf of Mexico
The Basic Cycle
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Rocks do not always go through the rock cycle from igneous to sedimentary to metamorphic
Igneous rocks may remain deeply buried and then become metamorphosed
Sedimentary and metamorphic rocks may be uplifted and eroded into sediment instead of melted
The rock cycle is driven by Earth’s internal heat and external processes, including weathering and erosion
Alternative Paths
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Describe the two criteria used to classify igneous rocks.
Explain how the rate of cooling influences the crystal size of minerals.
Focus Questions 2.2
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Igneous rocks form when magma or lava cools and crystallizes
Magma is generated most commonly by melting in the mantle, but some is generated by melting the crust
Rises because it is less dense than surrounding rock
Magma that reaches Earth’s surface is known as lava
Igneous Rocks: “Formed by Fire”
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Solidification of lava at Earth’s surface creates extrusive or volcanic igneous rocks
Most volcanic eruptions are not violent
Abundant in the northwest (Cascades, Columbia Plateau)
Many oceanic islands are volcanic (Hawaii)
Igneous Rocks: “Formed by Fire”
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Most magma never reaches the surface, and instead solidifies as intrusive or plutonic igneous rocks
Only exposed at the surface by uplift and erosion
Mount Washington (New Hampshire)
Stone Mountain (Georgia)
Mount Rushmore and the Black Hills (South Dakota)
Yosemite National Park (California)
Igneous Rocks: “Formed by Fire”
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Igneous Rocks: “Formed by Fire”
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Magma contains ions including silicon and oxygen, gas (water vapor) confined by pressure, and some solid crystals
Crystallization occurs as mobile ions arrange into orderly patterns during cooling
As cooling continues, more ions are added to the crystals until all of the liquid becomes a solid mass of interlocking crystals
From Magma to Crystalline Rock
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Rate of cooling strongly influences crystal size
Slow cooling results in fewer, larger crystals
Quick cooling results in a large number of small intergrown crystals
Instantaneous cooling (“quenching”) results in randomly distributed atoms, no crystal growth, and formation of volcanic glass
Volcanic ash is actually tiny shards of glass
Crystallization is also influenced by magma composition and dissolved gas
From Magma to Crystalline Rock
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Igneous rocks are mainly composed of silicate minerals
Silicon and oxygen + Al, Ca, Na, K, Mg, and Fe make up 98% of most magmas
Also includes small amounts of trace elements
Titanium, manganese, gold, silver, uranium, etc.
During crystallization, these elements combine to form two major groups of silicate minerals
Igneous Compositions
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Dark silicates are rich in iron and/or magnesium and relatively low in silica
Olivine, pyroxene, amphibole, biotite mica
Light silicates contain greater amounts of potassium, sodium and calcium and are richer in silica
Quartz, muscovite mica, feldspars
Feldspars are most abundant mineral group
40% of most igneous rocks
Igneous Compositions
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Igneous rocks can be divided into broad groups according to proportions of light and dark minerals
Igneous Compositions
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Granitic (felsic) rocks
Igneous rocks of granitic composition are made up almost entirely of light-colored silicates
Quartz and potassium feldspar
Felsic = feldspar + silica
Most contain ~10% dark silicate minerals
Biotite mica, amphibole
~70% silica
Major constituent of continental crust
Igneous Rocks: “Formed by Fire”
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Basaltic (mafic) rocks
Contain at least 45% dark silicate minerals and Ca-rich plagioclase but no quartz
Mafic = magnesium + ferrum (iron)
Darker and more dense than granitic rocks because of iron content
Igneous Rocks: “Formed by Fire”
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Andesitic (intermediate) rocks
Andesitic falls between granitic and basaltic composition
Mixture of both light- and dark-colored minerals
Contain at least 25% dark-silicate minerals
Amphibole and plagioclase feldspar
Associated with volcanic activity at continental margins
Igneous Rocks: “Formed by Fire”
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Ultramafic rocks
Contain mostly dark-colored minerals
Olivine and pyroxene
For example, peridotite and dunite
Rare at Earth’s surface
Main constituent of upper mantle
Igneous Rocks: “Formed by Fire”
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The texture of a rock is described based on the size, shape, and arrangement of mineral grains
Texture can be used to make inferences about a rock’s origin, for example:
Large crystals indicate slow cooling
Slow cooling is common in magma chambers deep in the crust
A rock with large crystals probably formed deep in the crust
What Can Igneous Textures Tell Us?
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Fine-grained texture
Cooled rapidly at the surface or in small masses in the upper crust
Individual crystals are too small to see with the naked eye
Coarse-grained texture
Solidified at depth while insulated by surrounding rock
Masses of interlocking crystals roughly the same size (large enough to be seen by the naked eye)
What Can Igneous Textures Tell Us?
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Porphyritic texture
Different minerals crystallize under different temperature and pressure conditions
One mineral can reach a large size before other minerals start to form
Large crystals (phenocrysts) in a matrix of smaller crystals (groundmass)
Vesicular texture
Exhibits voids left by gas bubbles that remained when lava solidified
Form in upper zone of a lava flow
What Can Igneous Textures Tell Us?
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What Can Igneous Textures Tell Us?
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Glassy texture
Develops when rocks cool rapidly
Ions freeze in place before they can arrange themselves in an orderly crystalline structure
Pyroclastic (fragmental) texture
Composed of individual rock fragments ejected during explosive volcanic eruptions
Particles could be very fine ash, molten blobs, or large angular blocks
What Can Igneous Textures Tell Us?
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What Can Igneous Textures Tell Us?
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Igneous rocks are classified by texture and mineral composition
Texture results from cooling history
Mineral composition derives from parent magma and environment of crystallization
Common Igneous Rocks
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Common Igneous Rocks
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Granite
Coarse-grained
Forms when magma solidified slowly at depth
Uplifted during mountain building
Common Igneous Rocks
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Common Igneous Rocks
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Rhyolite
Extrusive fine-grained equivalent of granite
Light-colored silicates, usually buff, pink, or light grey
Frequently contains voids and fragments of volcanic glass
Cooled rapidly at Earth’s surface
Common Igneous Rocks
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Obsidian
Natural volcanic glass
Dark in color (from metallic ions), but felsic composition
Common Igneous Rocks
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Pumice
Vesicular volcanic glass
Gas escape from molten lava forms a frothy, gray rock
Many pieces float in water because of vesicles
Common Igneous Rocks
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Andesite
Medium-gray extrusive igneous rock
Fine-grained or porphyritic with phenocrysts of plagioclase feldspar or amphibole
Major constituent of volcanos along the Pacific Rim
Andes Mountains
Cascade Range
Diorite
Coarse-grained intrusive equivalent of andesite
Few or no visible quartz crystals
Common Igneous Rocks
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Basalt
Most common extrusive igneous rock
Dark green to black, fine-grained
Contains pyroxene, olivine, and plagioclase feldspar
Relatively common at Earth’s surface
Volcanic islands (e.g., Hawaii, Iceland)
Upper layers of the oceanic crust
Central Oregon and Washington
Gabbro
Coarse-grained intrusive equivalent of basalt
Not commonly exposed at Earth’s surface
Significant component of oceanic crust
Common Igneous Rocks
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Common Igneous Rocks
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Common Igneous Rocks
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Magma can evolve
Different rock types can be generated from the same melt
Bowen’s reaction series describes which minerals solidify at specific temperatures
First to crystallize is olivine, then pyroxene and plagioclase
Amphibole and biotite at intermediate temperatures
Muscovite and potassium feldspar during late cooling
Quartz is last to solidify
Minerals that form in the same temperature range tend to be associated in the same igneous rocks
How Different Igneous Rocks Form
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How Different Igneous Rocks Form
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Magmatic differentiation is the formation of one or more secondary magmas from a single parent magma
Explains diversity of igneous rocks
Magma composition continually changes during cooling
As crystals form, certain elements are selectively removed, resulting in a depleted magma
Crystal settling occurs when dense minerals sink to the bottom of a magma chamber
How Different Igneous Rocks Form
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Igneous Rocks: “Formed by Fire”
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Define weathering.
Distinguish between the two main categories of weathering.
Focus Questions 2.3
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Weathering is the transformation of a rock to reach equilibrium with its environment
Natural response of materials to a new environment
Two basic categories: mechanical and chemical
Generally occur simultaneously
Erosion transports weathered rock
Weathering of Rocks to Form Sediment
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Mechanical weathering is the process of breaking down rocks into smaller pieces
Each piece retains the same physical properties of the original material
Increases surface area available for chemical weathering
Mechanical Weathering
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Mechanical Weathering
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Frost wedging
Ice expands ~9% when it freezes
Traditional explanation: water fills cracks in rocks and expands
Recent research: lenses of ice grow within cracks and pore spaces of rock until rock is weakened and fractures
Mechanical Weathering
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Mechanical Weathering
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Salt Crystal Growth
Sea spray or salty groundwater evaporate in rock’s crevices and pore spaces
Salt crystals grow larger and weaken the rock by pushing apart surrounding grains or enlarging tiny cracks
Common on rocky shorelines and in arid regions
Mechanical Weathering
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Sheeting occurs when concentric slabs of intrusive igneous rock break loose
Removal of overlying rock reduces pressure and outer layers expand and separate
Continued weathering results in exfoliation domes
Mechanical Weathering
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Mechanical Weathering
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Biological activity also breaks rocks apart
Plant roots grow into cracks and wedge the rock apart
Burrowing animals expose rock to increased weathering
Decaying organisms produce acids, which contribute to chemical weathering
Mechanical Weathering
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Chemical weathering alters the internal structure of minerals
Elements are removed or added
Original rock is transformed into new stable material
Makes outer portions of some rocks more susceptible to mechanical weathering
Water is most important agent of chemical weathering
Oxygen dissolved in water causes oxidation
Carbon dioxide dissolved in water is carbonic acid
Feldspar minerals are broken down into clay minerals
Silica is carried away by ground water
Quartz is very resistant to chemical weathering
Chemical Weathering
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Chemical weathering of a silicate rock by carbonic acid
Feldspar minerals are broken down into clay minerals
Silica is carried away by ground water
Quartz is very resistant to chemical weathering
Products of Chemical Weathering
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Products of Chemical Weathering
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List and describe the different categories of sedimentary rocks.
Discuss the processes that change sediment into sedimentary rock.
Focus Questions 2.4
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Sedimentary rocks form after weathering breaks rocks down, gravity and erosional agents transport and deposit the sediment, and the sediment becomes lithified
Most sedimentary rock is deposited by solid material settling out of a fluid
Sedimentary rocks make up ~5% of Earth’s outer 10 miles, but account for 75% of all continental rock outcrops
Used to reconstruct details about Earth’s history
Economically important
Coal, petroleum and natural gas, metals, fertilizer, construction materials
Sedimentary Rocks: Compacted and Cemented Sediment
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Sedimentary Rocks: Compacted and Cemented Sediment
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Sedimentary rocks are classified in two groups
Detrital sedimentary rocks form from solid particles weathered from other rocks
Chemical and biochemical sedimentary form from ions carried in solution
Types of Sedimentary Rocks
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Detrital sedimentary rocks
Contain a wide variety of minerals and rock fragments
Clay and quartz are most common
Distinguished by particle size
Also useful for determining environment of deposition
Higher energy carries larger particles
Mineral composition is also used to classify detrital sedimentary rocks
Types of Sedimentary Rocks
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Types of Sedimentary Rocks
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Chemical sedimentary rocks
Water carries ions in solution
Solid material precipitates to form chemical sediments
E.g. salt left behind when saltwater evaporates
Materials precipitated by organisms are known as biochemical sediments
E.g. shells and hard parts
Limestone is composed of calcite (CaCO3)
Nearly 90% is formed by organisms
Types of Sedimentary Rocks
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Types of Sedimentary Rocks
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Examples of chemical sedimentary rocks:
Coquina: loosely cemented shell fragments
Chalk: hard parts of microscopic organisms
Travertine: inorganic limestone that forms in caves
Chert, flint, jasper, and agate: microcrystalline quartz
Salt and gypsum form in evaporite deposits
Coal consists mostly of organic matter
Types of Sedimentary Rocks
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Types of Sedimentary Rocks
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Types of Sedimentary Rocks
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Types of Sedimentary Rocks
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Types of Sedimentary Rocks
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Types of Sedimentary Rocks
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Lithification is the process by which sediment is transformed into sedimentary rock
Compaction occurs when grains are pressed closer together so that pore space is reduced
Weight of accumulated sediment
Most significant in fine-grained rocks
Cementation occurs when water containing dissolved minerals moves through pores
Cement precipitates, fills pores, and joins particles together
Calcite, silica, and iron oxide are common cements
Significant in coarse-grained rocks
Lithification of Sediment
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Sedimentary rocks form in layers called strata or beds
Characteristic of sedimentary rocks
Thickness ranges from microscopic to tens of meters
Bedding planes ark the end of one episode of sedimentation and the beginning of another
Fossils are traces or remains of life found in some sedimentary rocks
Important clues of ancient environment
Can be used to match up rocks of the same age found in different places
Features of Sedimentary Rocks
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Sedimentary rocks provide evidence for deciphering past environments
Features of Sedimentary Rocks
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Define metamorphism.
Explain how metamorphic rocks form.
Describe the agents of metamorphism.
Focus Questions 2.5
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Metamorphic rocks are produced when preexisting parent rock is transformed
Parent rock can be igneous, sedimentary, or metamorphic
Metamorphism occurs when parent rock is subjected to a different physical or chemical environment
Elevated temperature and pressure
Changes mineralogy, texture, and sometimes chemical composition
Equilibrium with new environment
Metamorphism progresses incrementally
Low-grade (slight changes) to high-grade (substantial changes)
Metamorphic Rocks: New Rock from Old
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Metamorphic Rocks: New Rock from Old
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Most metamorphism occurs in one of two settings:
Contact metamorphism
Rock temperature increases because of intruding magma
Regional metamorphism
Pressure and high temperature during mountain building
Metamorphic Rocks: New Rock from Old
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Agents of metamorphism
Heat (from intrusion of magma or burial)
Chemical reactions and recrystallization of new minerals
Confining pressure (equal in all directions because of burial)
Compaction and recrystallization of new minerals
What Drives Metamorphism?
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Differential stress (greater in one direction because of mountain building)
Deformation and development of metamorphic textures
Rocks can react by breaking (brittle) or bending (ductile) depending on temperature
Chemically active fluids (hydrothermal fluid rich in ions)
Catalyze recrystallization reactions
Can dissolve a mineral from one area and precipitate it in another
Can change chemical composition of surrounding rock
What Drives Metamorphism?
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What Drives Metamorphism
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Metamorphism can change the texture of a rock
Low-grade metamorphism makes rocks compact and more dense
High-grade metamorphism causes recrystallization and growth of visible crystals
Metamorphic Textures
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Foliation is the development of a flat arrangement of mineral grains or structural features
Metamorphic Textures
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Foliation is characteristic of regional metamorphism
Driven by compressional stress
Causes mineral grains to develop parallel alignment
Includes:
Parallel alignment of micas
Parallel alignment of flattened pebbles
Separation of light and dark minerals
Development of rock cleavage
Metamorphic Textures
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Nonfoliated rocks occur when deformation is minimal and parent rock is composed largely of stable minerals
Metamorphic Rocks Textures
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Common Metamorphic Rocks
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Common foliated metamorphic rocks:
Slate has characteristic rock cleavage
From metamorphism of shale or volcanic ash
Phyllite has larger mineral grains than slate, which give it a glossy sheen and wavy surface
Schist is formed by regional metamorphism of shale
Gneiss is a banded metamorphic rock that may have intricate folds
Common Metamorphic Rocks
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Common Metamorphic Rocks
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Common nonfoliated metamorphic rocks:
Marble is a coarse crystalline rock
From metamorphism of limestone
Quartzite is very hard because of fused quartz grains
From metamorphosed quartz sandstone
Metamorphic Rocks: New Rock from Old
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