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Earth's mantle

earth science Maturity 7-9

The Earth has a big middle part.

Earth Internal Structure.svg
Earth Internal Structure.svg
It is made of rock. It is very hot and deep. This part helps the ground move. It is a big part of our world. Can you imagine a world so deep?

63 words

The Earth has a thick middle layer.

Earth Internal Structure.svg
Earth Internal Structure.svg
This part is made of rock. It is between the crust and the core. It is very heavy and big. Most of the Earth is made of this rock.
Convection-snapshot.png
Convection-snapshot.png
The rock is mostly solid. But it can move very slowly. It flows like thick caramel. Hot rock rises up. Cool rock sinks down. This movement helps the ground move. It is a very busy place deep below us.

79 words

The Earth has a huge middle layer called the mantle.

Earth Internal Structure.svg
Earth Internal Structure.svg
It sits between the thin crust and the outer core. This layer is very big. It makes up 86% of the Earth's mass. It also holds 84% of the Earth's volume.
Convection-snapshot.png
Convection-snapshot.png

The mantle is mostly solid rock. However, it acts like a thick liquid over a long time. Some people say it feels like caramel. This happens because of heat and pressure. Heat from the core makes rock rise in plumes. Cooler rock sinks back down. This slow flow is called convection. This movement helps move the plates on the surface.

Scientists study the mantle by looking at special rocks. Sometimes, pieces of the mantle are found inside volcanic rocks. These are called xenoliths.

Peridotite mantle xenoliths in phonotephrite (Peridot Mesa Flow, Middle Pleistocene, 580 ka; Peridot Mesa, San Carlos Volcanic Field, Arizona, USA) 32.jpg
Peridotite mantle xenoliths in phonotephrite (Peridot Mesa Flow, Middle Pleistocene, 580 ka; Peridot Mesa, San Carlos Volcanic Field, Arizona, USA) 32.jpg
These rocks help us know what the mantle is made of. It is mostly made of a rock called peridotite. The mantle is very hot. It can reach 3,900 °C near the core.

182 words

The Earth has a massive middle layer called the mantle. It sits between the thin outer crust and the liquid outer core. This layer is incredibly large and heavy. It makes up 86% of the total mass of our planet. It also takes up about 84% of the Earth's volume.

Earth Internal Structure.svg
Earth Internal Structure.svg
This huge layer is mostly made of solid silicate rock. Even though it is solid, it behaves like a thick liquid over very long periods of time. Some scientists say it has the consistency of caramel.
Convection-snapshot.png
Convection-snapshot.png

Heat and pressure make the mantle move in a way called convection. Heat from the core makes hot material rise up in shapes called plumes. As this material reaches the top, it cools down. This cooler, heavier material then sinks back toward the bottom. This slow, circular movement is a constant thing that happens deep underground. This process is a key part of how tectonic plates move on the surface.

Convection-snapshot.png
Convection-snapshot.png
The movement of these plates is linked to the mantle's flow. When material sinks at subduction zones, it helps drive this cycle.

Scientists have worked for a long time to understand this hidden layer. In 1909, a scientist named Andrija Mohorovičić found the boundary between the crust and the mantle. This boundary is now called the Moho.

Earth Internal Structure.svg
Earth Internal Structure.svg
We cannot easily visit the mantle because it is so deep and hot. Instead, we study it using seismic waves from earthquakes. We also look at special rocks called xenoliths. These are pieces of mantle rock that get carried to the surface by volcanic eruptions.
Peridotite mantle xenoliths in phonotephrite (Peridot Mesa Flow, Middle Pleistocene, 580 ka; Peridot Mesa, San Carlos Volcanic Field, Arizona, USA) 32.jpg
Peridotite mantle xenoliths in phonotephrite (Peridot Mesa Flow, Middle Pleistocene, 580 ka; Peridot Mesa, San Carlos Volcanic Field, Arizona, USA) 32.jpg

The mantle is divided into different layers based on how deep they go. The upper mantle contains a layer called the asthenosphere, which is very easy to move. Below that, the mantle becomes more rigid again. The transition zone is a middle area where minerals like wadsleyite and ringwoodite are stable. The lower mantle is much deeper and contains minerals like bridgmanite.

Earth Internal Structure.svg
Earth Internal Structure.svg
At the very bottom, there is a special region called D-double-prime. This area sits just above the core-mantle boundary. It has very unusual properties that scientists are still studying.

Understanding the mantle helps us learn how the whole Earth works. The way the mantle moves is much like how thick syrup moves in a jar. It is too slow to see with our eyes, but it shapes our world. For example, partial melting in the mantle helps create the ocean floor. It also helps create the continents we live on.

Peridotite mantle xenoliths in phonotephrite (Peridot Mesa Flow, Middle Pleistocene, 580 ka; Peridot Mesa, San Carlos Volcanic Field, Arizona, USA) 32.jpg
Peridotite mantle xenoliths in phonotephrite (Peridot Mesa Flow, Middle Pleistocene, 580 ka; Peridot Mesa, San Carlos Volcanic Field, Arizona, USA) 32.jpg
Even the way our mountains form is linked to these deep, slow movements. The Earth is a living, moving system from the surface to the core.

489 words

The Earth's mantle is a massive layer of silicate rock. It sits between the thin outer crust and the liquid outer core. This layer is vital to how our planet functions. It accounts for 86% of the Earth's total mass. It also makes up about 84% of the Earth's total volume.

Earth Internal Structure.svg
Earth Internal Structure.svg
Although the mantle is predominantly solid, it behaves like a viscous fluid over geologic time scales. Scientists often compare its consistency to thick caramel. This slow, flowing movement is what drives many of the geological processes we see on the surface.

Heat and pressure drive the movement of the mantle through a process called convection. Heat from the core causes thermal expansion in the material at the bottom. This expansion reduces the density of the rock. As a result, hot material rises in shapes known as mantle plumes. When this material reaches the surface, it cools down. This cooler, heavier material then sinks back toward the bottom.

Convection-snapshot.png
Convection-snapshot.png
This continuous circulation is an integral part of how tectonic plates move. The sinking of lithosphere at subduction zones is an essential component of this convective cycle.

The mantle is divided into distinct layers based on its physical properties and seismic velocity. The upper mantle begins at the Mohorovičić discontinuity, or "Moho." This boundary was first noted by Andrija Mohorovičić in 1909. The upper mantle is split into two rheological layers. The first is the rigid lithospheric mantle. The second is the more ductile asthenosphere. The lithosphere and the crust together form the tectonic plates. These plates move over the flowing asthenosphere. Below the asthenosphere, the mantle becomes relatively rigid again.

Deep below the upper mantle lies the transition zone. This zone exists between approximately 410 and 660 kilometers deep. In this region, minerals like wadsleyite and ringwoodite are stable. These minerals can store a large amount of water within their crystal structures. Below this is the lower mantle, which extends to the core-mantle boundary. The lower mantle is composed primarily of bridgmanite and ferropericlase. At the very bottom, in the last 200 kilometers, lies the D" (D-double-prime) region. This area has anomalous seismic properties and may contain unique mineral forms like post-perovskite.

The composition of the mantle is difficult to study directly because it is inaccessible. Most estimates come from sampling the uppermost mantle. One common rock found there is peridotite. This rock is made of minerals like olivine and pyroxene. Scientists also study the mantle through xenoliths. These are fragments of mantle rock embedded in volcanic rocks like basalt. Other mantle sections can be found in ophiolites, where oceanic lithosphere has been pushed onto a continent.

Extreme conditions exist throughout the mantle. Temperatures range from 230 °C at the top to 4,200 K at the core-mantle boundary. Pressure also increases significantly with depth. It rises from a few hundred megapascals at the Moho to 135 gigapascals at the bottom. Even though temperatures exceed the melting point of surface rocks, the mantle stays mostly solid. This is because the enormous lithostatic pressure increases the temperature required for melting. However, partial melting does occur at mid-ocean ridges and subduction zones. This melting produces both oceanic and continental crust.

Recent scientific discoveries have added even more mystery to the deep mantle. Seismic images show two continent-sized anomalies in the lowermost mantle. These zones have low seismic velocities and are denser than the surrounding material. Some scientists believe these might be remnants of Theia. Theia was an impactor that collided with Earth during the Moon-forming event.

Earth Internal Structure.svg
Earth Internal Structure.svg
This connection links the deep mantle to the very beginning of our planet's history. Understanding these deep layers helps us connect the movements of the surface to the ancient history of the Earth.

643 words
🖼️ Images & Media (3)
File:Earth Internal Structure.svg
Earth Internal Structure.svg
File:Peridotite mantle xenoliths in phonotephrite (Peridot Mesa Flow, Middle Pleistocene, 580 ka; Peridot Mesa, San Carlos Volcanic Field, Arizona, USA) 32.jpg
Peridotite mantle xenoliths in...
File:Convection-snapshot.png
Convection-snapshot.png
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