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Cinder cone

earth science Maturity 11-13

A volcano can make a hill.

Cinder cone diagram.gif
Cinder cone diagram.gif
Hot rocks fly into the air. They fall down in a pile. This makes a steep shape.
CindersFromCone.JPG
CindersFromCone.JPG
It looks like a cone. Do you want to see one?

38 words

A volcano can make a hill.

Cinder cone diagram.gif
Cinder cone diagram.gif

Hot rocks fly into the air. They fall down in a pile. This makes a steep shape.

CindersFromCone.JPG
CindersFromCone.JPG

These hills look like a cone. They often have a bowl on top.

SP Crater.jpg
SP Crater.jpg

Sometimes the rocks have tiny air bubbles. This happens when they cool fast.

They can grow in a corn field. One grew in Mexico for nine years. It was very tall.

73 words

A cinder cone is a steep hill made of volcanic rock.

Cinder cone diagram.gif
Cinder cone diagram.gif
These hills grow around a single vent. A vent is an opening in the ground. During an eruption, gas-filled lava shoots into the air. The lava breaks into small pieces. These pieces are called scoria. They are also called cinders. The pieces cool fast and fall around the vent. They pile up to make a cone shape. Most cones have a bowl at the top. This bowl is called a crater.
Scoria Cone - Cross-section Diagram.jpg
Scoria Cone - Cross-section Diagram.jpg

Cinder cones can be small or big. They range from tens to hundreds of meters tall. Sometimes, the lava is very thick. It does not shoot into the air. Instead, it oozes out at the bottom. This lava can flow around the base of the cone.

CindersFromCone.JPG
CindersFromCone.JPG

Some cones come from just one eruption. These are called monogenetic cones. The eruption might last weeks or many years. A famous cone is Parícutin in Mexico. It grew out of a corn field in 1943. It erupted for nine years.

Sunset Crater 2.jpg
Sunset Crater 2.jpg

181 words

A cinder cone is a steep hill made of loose volcanic rock.

Cinder cone diagram.gif
Cinder cone diagram.gif
These landforms build up around a single volcanic vent. They are often shaped like a symmetrical cone with a circular base. Most of these cones have a bowl-shaped crater at the very top.
Scoria Cone - Cross-section Diagram.jpg
Scoria Cone - Cross-section Diagram.jpg
The slopes of a cinder cone usually sit between 30 and 40 degrees. They are different from spatter cones because they are made of loose fragments. These fragments are called scoria, cinders, or clinkers.

Cinder cones grow through a specific way it works during an eruption. First, gas-filled lava is blown violently into the air from a vent. This lava breaks into small pieces while it is flying. These pieces solidify and fall back down around the vent. They pile up to form the cone shape.

CindersFromCone.JPG
CindersFromCone.JPG
Sometimes, the lava pieces are larger than 64 mm. These larger pieces are called volcanic bombs. As the eruption ends, the lava loses its gas. This heavy lava often flows out from the bottom of the cone instead of the top.

Many people know about cinder cones because of famous eruptions in history. One famous example is Parícutin in Mexico. It grew out of a corn field in 1943. This eruption lasted for nine years. It built a cone that reached a certain height and covered a large area with lava.

Sunset Crater 2.jpg
Sunset Crater 2.jpg
Another active place is Cerro Negro in Nicaragua. It has erupted more than 20 times since 1850. It most recently erupted in 1995 and 1999. These stories show how quickly these hills can change.

Scientists find these cones in many different places. They are common on the sides of shield volcanoes. For example, there are nearly 100 cinder cones on the flanks of Mauna Kea in Hawaii. We even see evidence of them in space.

SP Crater.jpg
SP Crater.jpg
On Mars, cinder cones appear near Pavonis Mons. Some structures on the Moon might also be lunar cinder cones. The size of a cone can change based on gravity or air pressure. On Mars, the cones seem to be two times wider than those on Earth.

Some cinder cones are monogenetic, which means they come from one short eruption. These eruptions might last only weeks or months. Sometimes they can last for fifteen years or more. Parícutin and Diamond Head are examples of these types. Other cones are not monogenetic and have eruptions separated by thousands of years. This happens when the supply of magma is very low. Each eruption must find its own new path to the surface.

430 words

A cinder cone, also known as a scoria cone, is a steep landform built from loose volcanic fragments.

Cinder cone diagram.gif
Cinder cone diagram.gif
These structures form around a single volcanic vent, which is typically a cylindrical opening. They are characterized by a symmetrical shape with slopes between 30° and 40°. Most cinder cones feature a bowl-shaped crater at their summit and a nearly circular base. They are distinct from spatter cones, which are made of fused volcanic bombs rather than loose material. Cinder cones are important for understanding how volcanic gases and magma interact during an eruption.

The formation of a cinder cone relies on the presence of gas-charged lava. During an eruption, this gas-rich lava is blown violently into the air from the vent. As the lava flies through the air, it breaks into small fragments. These fragments solidify quickly and fall back to the ground around the vent. This material is known as scoria, cinder, or clinker.

Scoria Cone - Cross-section Diagram.jpg
Scoria Cone - Cross-section Diagram.jpg
When the fragments are larger than 64 mm, they are called volcanic bombs. Over time, these accumulating pieces build the conical shape of the landform.

Scientists divide the growth of a cinder cone into four distinct stages. In the first stage, a low-rimmed scoria ring forms around the erupting vent. The second stage involves building up this rim and forming a talus slope on the outside. In the third stage, the original rim may be destroyed by blasts or slumping. Finally, the fourth stage is defined by the buildup of talus beyond the ballistic zone, which is the area where cinders fall.

CindersFromCone.JPG
CindersFromCone.JPG
This sequence describes how the physical structure of the cone evolves during activity.

As an eruption begins to wane, the magma loses much of its gas content. This gas-depleted magma is denser than the bubble-rich cinders that formed the cone. Because the loose cinders are too weak to support the pressure of rising molten rock, the lava rarely issues from the top. Instead, the dense lava often burrows out along the bottom of the cone. It lifts the less dense cinders like corks on water and advances outward. This process creates a lava flow around the base of the cone. If the crater is fully breached, the remaining walls look like an amphitheater.

Cinder cones appear in many different geological settings. They are common in association with alkaline magmatism, where lava is enriched in sodium and potassium oxides. They are often found on the flanks of larger volcanoes, such as shield volcanoes or stratovolcanoes. For instance, geologists have identified nearly 100 cinder cones on the flanks of Mauna Kea in Hawaii.

Sunset Crater 2.jpg
Sunset Crater 2.jpg
These cones often represent the final stages of activity for a larger mafic volcano.

History provides famous examples of how these cones form and change. Parícutin in Mexico is one of the most famous cinder cones. It grew out of a corn field in 1943 from a new vent. The eruption lasted for nine years, building a cone and producing lava flows. Another highly active example is Cerro Negro in Nicaragua. Since its initial eruption in 1850, it has erupted more than 20 times, with recent activity in 1995 and 1999.

SP Crater.jpg
SP Crater.jpg
These events show the rapid growth possible in monogenetic systems.

Some cinder cones are monogenetic, meaning they form from a single short eruptive episode. These episodes might last only weeks or months, though they can occasionally last over fifteen years. Examples include Diamond Head and Punchbowl Crater. This happens when the magma supply is very low, preventing a permanent plumbing system from forming. In these cases, each eruption must find an independent path to the surface. This explains why some ancient cones show soil formation between eruptions separated by thousands of years.

Environmental conditions also influence the final appearance of these landforms. On Mars, cinder cones appear to be more than two times wider than those on Earth. This is likely because lower atmospheric pressure and lower gravity allow particles to disperse over larger areas. On Earth, strong prevailing winds can also cause cinders to accumulate more on the downwind side. This shows that the size and shape of a cinder cone are tied to the physics of the environment.

702 words
🖼️ Images & Media (5)
File:Cinder cone diagram.gif
Cinder cone diagram.gif
File:Scoria Cone - Cross-section Diagram.jpg
Scoria Cone - Cross-section Diagram.jpg
File:CindersFromCone.JPG
CindersFromCone.JPG
File:SP Crater.jpg
SP Crater.jpg
File:Sunset Crater 2.jpg
Sunset Crater 2.jpg
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