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Continental crust

earth science Maturity 7-9

The land we walk on is very old.

Continental and oceanic crust.png
Continental and oceanic crust.png
It is made of hard rock. This rock stays above the sea. It helps plants and animals live. It is much thicker than the sea floor. Do you like to walk on land?

45 words

The land we walk on is the continental crust.

Continental and oceanic crust.png
Continental and oceanic crust.png
It is made of hard rock. Most of it stays above the sea. This land lets life grow.
World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg
This crust is very thick. It is thicker than the floor of the ocean. Some parts stay under the sea. These parts are called shelves. The land is always changing shape. It can pull apart or crash together.

77 words

The land we walk on is the continental crust.

Continental and oceanic crust.png
Continental and oceanic crust.png
This layer is made of many types of rock. It covers about 41% of Earth's surface. Most of it stays above the sea. This land helped life grow from the ocean to the land.
World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg

This crust is very thick. It averages 35 km in thickness. This is much thicker than the oceanic crust. The oceanic crust is the floor of the sea. The continental crust is also less dense. This means it is lighter than the ocean floor. Because it is light, it stays on top. When the two meet, the heavy ocean floor sinks. Scientists call this sinking subduction.

Continents are always changing. They can pull apart or crash together. Big crashes can make mountains. These mountains have a deep root beneath them. This root makes the crust even thicker. Most of the crust formed a long time ago. Some parts are very old. The Acasta Gneiss is the oldest intact piece. It is 4.01 billion years old.

180 words

The continental crust is the outer layer of our planet. It is made of many different types of rocks. These include igneous, metamorphic, and sedimentary rocks. This layer forms our large continents and shallow seabeds. These shallow areas near the shore are called continental shelves.

Continental and oceanic crust.png
Continental and oceanic crust.png
This crust is very important for life. Because it stays mostly above sea level, it allowed life to move from the ocean to the land. It also provides shallow water areas called epeiric seas. These places helped many complex living things grow during the Cambrian explosion.
World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg

This layer works in a special way to stay on top. The continental crust is less dense than the oceanic crust. This means it is lighter than the heavy ocean floor. When the two types of crust meet at a subduction zone, the heavy oceanic crust sinks into the mantle. The lighter continental crust stays up.

Continental and oceanic crust.png
Continental and oceanic crust.png
This crust is also much thicker than the ocean floor. It averages about 35 km in thickness. In contrast, the oceanic crust is only about 7 km thick. This thickness helps the continents stay afloat like big rafts on the mantle.

Scientists study how this crust was made long ago. Most of it comes from melts in the mantle, mainly basalt. This happens through a way it works called fractional differentiation. This means the melt changes as it cools. Another way is through the melting of old crust. These things mostly happen at magmatic arcs.

World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg
These areas are linked to subduction zones. Some scientists even debate if the total amount of crust stays the same over time. They wonder if it grows or shrinks as the Earth ages.

We can find very old clues in the rocks. There is little evidence of this crust before 3.5 billion years ago. By 3.0 billion years ago, about 20% of the current volume existed. A lot of growth happened between 3.0 and 2.5 billion years ago. During that time, about 60% of the crust formed.

World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg
The oldest intact piece is the Acasta Gneiss. It is 4.01 billion years old. This makes the continental crust a great archive of Earth's history.

Moving parts of the Earth keep the crust changing. Continents can pull apart or crash together in a cycle. When they crash, they create huge mountain ranges. This happens because of forces called orogeny. The crust gets thicker under these mountains. It forms a deep root or keel beneath the surface.

Continental and oceanic crust.png
Continental and oceanic crust.png
On the other hand, the crust can thin out in rift zones. This can eventually turn the land into new ocean floor. This constant change shapes the world we see today.

472 words

The continental crust is the outermost layer of Earth that forms our massive continents. It is composed of a complex mix of igneous, metamorphic, and sedimentary rocks. This layer also forms the shallow areas of the seabed near shores, known as continental shelves.

Continental and oceanic crust.png
Continental and oceanic crust.png
Because much of this crust sits above sea level, it allowed life to move from the oceans to the land. It also provided shallow epeiric seas that supported complex life during the Cambrian explosion. This makes the continental crust a vital part of Earth's biological history.

Scientists often refer to this layer as "sial" because of its chemical makeup. It is rich in aluminium silicates, or Al-Si. This composition makes the continental crust much less dense than the oceanic crust. The oceanic crust is called "sima" because it is richer in magnesium silicate minerals.

Continental and oceanic crust.png
Continental and oceanic crust.png
Because it is lighter, the continental crust stays afloat on the mantle. In contrast, the denser oceanic crust is often pushed down into the mantle at subduction zones. This density difference is why continents tend to persist while ocean floors are constantly recycled.

The physical structure of the crust varies significantly in thickness and composition. The continental crust has an average thickness of about 35 km. This is much thicker than the oceanic crust, which averages only about 7 km.

World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg
Within the continental crust, there is a sharp change at a depth called the Conrad discontinuity. Above this line, the crust is more felsic, meaning it has a different chemical character. Below it, the lower continental crust is more mafic. Much of the lower crust is metamorphic due to high heat and pressure.

Continental crust forms through complex geological processes involving mantle melts. Most of this crust originates from basaltic melts rising from the mantle. These melts undergo a process called fractional differentiation to change their composition. Another method is the assimilation, or remelting, of existing continental crust. These processes primarily occur at magmatic arcs associated with subduction zones. While scientists debate which process is more dominant, fractional differentiation is thought to play the largest role.

The history of the continental crust shows periods of rapid growth. There is very little evidence of this crust existing before 3.5 billion years ago (Ga). By 3.0 Ga, about 20% of the current volume had formed. A massive period of development occurred between 3.0 and 2.5 Ga. During this window, about 60% of the current volume was created.

World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg
This history suggests that crustal growth occurred in distinct, energetic episodes.

Geological forces constantly reshape the size and position of the continents. Large landmasses can rift apart or collide in a grand supercontinent cycle. When continents collide, they undergo orogeny, which is the process of mountain formation. This collision creates compressive forces that thicken the crust. The crust forms a deep "keel" or mountain root beneath the range.

World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal thickness.jpg
This thickened crust is kept buoyant by the principle of isostasy.

Conversely, the crust can also be thinned or lost through various mechanisms. In rift zones, detachment faulting can thin the crust until it is eventually replaced by oceanic crust. This creates passive margins, like the edges of the Atlantic Ocean. The crust can also be lost through tectonic erosion or subduction in collision zones.

Continental and oceanic crust.png
Continental and oceanic crust.png
Despite these losses, the continental crust remains an incredible archive of Earth's history. The oldest intact fragment is the Acasta Gneiss, which is 4.01 Ga old.

599 words
🖼️ Images & Media (2)
File:Continental and oceanic crust.png
Continental and oceanic crust.png
File:World relief map with isopachs of crustal thickness.jpg
World relief map with isopachs of crustal...
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