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Oceanic crust

earth science Maturity 7-9

The ocean floor is made of rock.

Continental and oceanic crust.png
Continental and oceanic crust.png
It is under the deep blue sea. This rock is very heavy. It is thinner than the land. It stays under the water. It is a big part of our world. Do you like the sea?
Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png

56 words

The ocean floor is made of rock.

Continental and oceanic crust.png
Continental and oceanic crust.png
This rock is very heavy. It is thinner than the land.

New rock forms at ridges in the sea. Hot liquid rock rises up. It cools to make new floor.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png

This floor moves away from the ridges. The new rock gets older as it moves. The youngest rock is at the ridge.

Small bits of sand and shells sit on top. They make a soft layer. This layer can be thick or thin.

Most of this rock is about 7 kilometers thick. It is a big part of our world.

110 words

The ocean floor is made of oceanic crust.

Continental and oceanic crust.png
Continental and oceanic crust.png
This crust is the top layer of the ocean plates. It is thinner than the land we live on. Most of it is less than 10 kilometers thick. However, it is much heavier than continental crust. It is mostly made of mafic rocks. These rocks are rich in iron and magnesium.

New crust is made at mid-ocean ridges. At these ridges, hot magma rises up. The magma cools to make new rock. As the plates move, the new rock gets older. The youngest rocks are at the ridges.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png
The oldest rocks are far away from the ridges.

Oceanic crust has three main layers. The first layer is made of soft sediment. This can be volcanic ash or tiny shells. The second layer is made of volcanic rock. The third layer is the thickest part. It is made of gabbro, which is a coarse rock. This layer makes up most of the crust.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png

Eventually, old crust sinks back into the Earth. This happens at places called subduction zones. This cycle keeps the ocean floor fresh.

204 words

The ocean floor is made of a layer called oceanic crust.

Continental and oceanic crust.png
Continental and oceanic crust.png
This layer sits on top of the rigid upper mantle. Together, the crust and the mantle make up the oceanic lithosphere. The crust is much thinner than the land we live on. It is usually less than 10 kilometers thick. However, it is much heavier than continental crust. This heavy crust has a density of about 3.0 grams per cubic centimeter.
Continental and oceanic crust.png
Continental and oceanic crust.png
Continental crust is lighter, with a density of about 2.7 grams per cubic centimeter.

New crust forms through a steady way it works at mid-ocean ridges.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png
At these ridges, plates move apart. This allows hot magma to rise up from the mantle. The magma enters a spreading center made of partly solid crystal mush. Some magma cools quickly to form pillow lavas on the surface. Other magma stays deep and cools slowly to form thick layers. As the plates move away from the ridge, the rocks get older. The youngest rocks are always found right at the ridge.

Scientists know about this layer by looking at different pieces of evidence. They study ophiolites, which are sections of crust pushed onto land. They also use submersibles to take samples from the deep ocean floor.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png
Researchers use drilling to pull up rock samples from the seabed. They can also study how seismic waves move through the rock. This helps them see the different layers without being there. Even though we have not drilled through the whole crust, we know a lot.

Oceanic crust is mostly made of three distinct layers. The first layer is a thin layer of sediment. This can be volcanic ash or tiny shells from marine life. The second layer is about 2 kilometers thick. It includes a volcanic layer of basalt and a layer of dikes.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png
The third layer is the largest part of the crust. It is about 5 kilometers thick and made of gabbro. This layer forms when magma cools very slowly deep underground.

This crust is part of a giant cycle called the Wilson Cycle.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png
Old crust eventually sinks back into the Earth at subduction zones. This happens because the heavy oceanic crust sinks under lighter continental crust. Because of this, most oceanic crust is not more than 200 million years old. Some very old remnants might exist in the Mediterranean Sea. These parts may be from an ancient ocean called the Tethys. This cycle keeps the ocean floor constantly changing and renewing.

454 words

Oceanic crust is the uppermost layer of the tectonic plates that lie beneath the world's oceans.

Continental and oceanic crust.png
Continental and oceanic crust.png
It sits directly above the rigid uppermost layer of the Earth's mantle. When the crust and this mantle layer are combined, they form the oceanic lithosphere. This layer is much thinner than the continental crust found under land. While continental crust is often thick, oceanic crust is generally less than 10 kilometers thick. However, it is much denser than the crust on land. Oceanic crust has a mean density of about 3.0 grams per cubic centimeter. In contrast, continental crust has a density of about 2.7 grams per cubic centimeter.
Continental and oceanic crust.png
Continental and oceanic crust.png

The formation of this crust is a continuous process driven by plate tectonics. Most of this activity happens at mid-ocean ridges, where tectonic plates move away from each other. As these plates diverge, magma rises from the mantle into the spreading center. This center is often a partly solidified crystal mush made from earlier magma injections. Some of this magma forms magma lenses, which then feed sheeted dikes. When the lava reaches the surface, it cools into pillow lavas.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png
These lavas are often chemically modified by contact with seawater as they cool. Most magma, however, crystallizes at depth within the lower part of the crust. This deep magma can mix and react with the pre-existing rocks and crystal mush.

Geologists have identified three distinct layers that make up the oceanic crust. The first layer is a thin layer of sediment, averaging only 0.4 km thick. Near continental margins, this sediment is terrigenous, which means it comes from the land. In the deep sea, these sediments are often made of tiny shells from marine organisms. These shells can be calcareous or siliceous. The second layer is about 2 km thick and is split into two parts. Layer 2A is a 0.5 km thick volcanic layer of glassy or finely crystalline basalt. Layer 2B is a 1.5 km thick layer composed of diabase dikes.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png

The third layer is the largest, making up over two-thirds of the total volume. It is about 5 km thick and forms from the slow cooling of magma deep beneath the surface. This layer consists of coarse-grained gabbro and ultramafic cumulates. Because it cools so slowly, the crystals have time to grow larger. Scientists have not yet drilled a complete section through the entire crust. To understand its composition, they use several different methods. They study ophiolites, which are sections of oceanic crust pushed onto continents. They also use submersibles, dredging, and drilling to collect samples from the seafloor.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png

The thickness of the crust can change depending on how fast the plates move. Most oceanic crust stays around 7 kilometers thick, with a variation of plus or minus 1 km. At very slow spreading ridges, such as the Gakkel Ridge in the Arctic Ocean, the crust is thinner. These ridges produce crust only 4 to 5 km thick because the mantle cools quickly. Conversely, crust can be much thicker above mantle plumes. Iceland is a notable example, with a crust thickness of about 20 km. This happens because the hotter mantle creates more melt at greater depths.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png

Oceanic crust is part of a massive recycling system known as the Wilson Cycle. This cycle involves the repeated creation and destruction of oceanic crust during the formation of super-continents. New crust is created at ridges, while old crust is consumed at convergent boundaries. At these boundaries, one plate subducts, or sinks, beneath another plate. If an oceanic plate meets a continental plate, the oceanic plate always subducts because it is denser. Because of this constant recycling, most oceanic crust is rarely more than 200 million years old.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png
The oldest large-scale crust is found in the west Pacific and northwest Atlantic. Some remnants in the eastern Mediterranean may be as old as 340 million years from the ancient Tethys Ocean.

A fascinating feature of the crust is its magnetic pattern. As magma cools at mid-ocean ridges, its magnetic polarity aligns with the Earth's magnetic poles. This magnetic signature is then frozen into the basaltic rock. As new magma pushes older rock away from the ridge, it creates a symmetrical pattern of magnetic lines. These lines appear as alternating positive and negative sections parallel to the ridge. This pattern provides a record of how the ocean floor has spread over time.

Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio Crameri.png

787 words
🖼️ Images & Media (2)
File:Global Map of Oceanic Plate Age by Fabio Crameri.png
Global Map of Oceanic Plate Age by Fabio...
File:Continental and oceanic crust.png
Continental and oceanic crust.png
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