The Earth's skin is in pieces.
The Earth's outer shell is in large pieces. 
Sometimes plates pull apart. This makes new ground. Other times plates crash together. This can build big mountains. They can also make volcanoes.
Plates can also slide past each other. This can make the ground shake. These shakes are called earthquakes. The plates are always moving. It is a slow, steady dance.
The Earth's outer shell is not one solid piece. It is broken into large parts. These parts are called tectonic plates. 
Plates meet at edges called boundaries. There are three main ways they move. At divergent boundaries, plates slide apart. This makes new ground at the bottom of the sea. At convergent boundaries, plates crash together. One plate may sink under another. This is called subduction. Subduction can make deep trenches or tall mountains.
Earth's outer shell is not a single solid piece. It is broken into several large pieces called tectonic plates. 
These plates move because of what happens deep inside the Earth. The plates float on a layer called the asthenosphere. This layer is hotter and flows more easily than the plates. Heat from the mantle creates convection currents. These are slow, creeping motions in the solid mantle. As the plates move, they create different types of boundaries. At divergent boundaries, plates slide apart from each other. This creates new ground through seafloor spreading. At convergent boundaries, plates move toward each other. One plate might slide under another in a process called subduction.
Scientists have studied these movements for a long time. The idea of moving continents was discussed in the early 20th century. Alfred Wegener was a scientist who worked on these ideas. 
There are many important facts about how these plates act. At some places, like the Mid-Atlantic Ridge, plates move very slowly. At other places, like the Nazca plate, they move about 16 cm a year.
Plate tectonics connects many things we see in nature. Most of the world's active volcanoes happen at plate boundaries. The Pacific plate has a famous area called the Ring of Fire.
Plate tectonics is the scientific theory describing the movement of Earth's lithosphere. The lithosphere is the rigid outer shell of our planet. It includes the crust and the uppermost part of the mantle. This shell is not a solid piece but is fractured into several large tectonic plates. There are seven or eight major plates and many smaller platelets. These plates move slowly over billions of years. This constant movement shapes the surface of our world.
The plates move because they float on the asthenosphere. The asthenosphere is a hotter, more ductile layer of the mantle. It flows more easily than the rigid lithosphere above it. Heat from the mantle creates convection currents. These are slow, creeping motions within the solid mantle. As the mantle moves, it carries the plates with it. One major driver is the sinking of dense oceanic crust. At subduction zones, cold and dense crust sinks into the mantle. This process pulls the rest of the plate along with it. 
There are three main types of plate boundaries. The first type is a divergent boundary, also called a constructive boundary. Here, two plates slide apart from each other. This happens at seafloor spreading centers like the Mid-Atlantic Ridge. As the plates separate, new oceanic crust forms to fill the gap. The second type is a convergent boundary, or a destructive boundary. This occurs when plates move toward each other. One plate may slide under another in a process called subduction. This can create deep marine trenches or volcanic island arcs.
In a convergent zone, two continental plates might collide instead of subducting. Because continental crust is less dense, neither plate sinks easily. Instead, the edges are compressed and folded upward. This process builds massive mountain ranges like the Himalayas or the Alps. The third type is a transform boundary, or a conservative boundary. At these sites, plates grind past each other horizontally. They do not create or destroy crust. Instead, they slide along transform faults. The San Andreas Fault in California is a famous example of this motion.
Scientific understanding of these movements has changed over time. In the early 20th century, scientists began discussing the idea of moving continents. Alfred Wegener was a key figure in these early decades. However, the theory of plate tectonics was not fully accepted until later. In the mid-to-late 1960s, geoscientists validated the concept of seafloor spreading. This discovery provided the evidence needed to prove the plates were moving. 
Plate movement varies significantly depending on the location. At the Mid-Atlantic Ridge, plates move at about 2.5 cm per year. This is roughly the speed at which human fingernails grow. The Nazca plate moves faster, at about 16 cm per year. This is similar to the speed of hair growth. The plates consist of different types of crustal material. Oceanic crust is denser because it contains more heavy elements. Continental crust is less dense and contains more silicon and aluminium. This density difference explains why oceanic crust sits below sea level.
Plate tectonics is connected to many powerful natural events. Most active volcanoes occur along plate boundaries. The Pacific plate contains the Ring of Fire, a very active zone. Earthquakes also frequently happen where plates interact. These movements can create mountains, volcanoes, and deep oceanic trenches. Even other worlds show signs of similar activity. Jupiter's moon Europa has an ice crust with moving plates. This suggests that tectonic-like processes may exist elsewhere in our solar system.
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