Some rocks change deep in the ground. 
Some rocks change deep in the ground. 
This happens far below the surface. The rocks feel a lot of pressure. This pressure makes the tiny parts move. They change into new, small parts.
Some of these rocks look like sugar.
People use these rocks to learn. They show which way the ground moved. It is a very cool way to study the Earth.
Mylonite is a special type of rock. It forms deep in the Earth. It forms at least 4 km below the surface. 
These rocks form in fault zones. These are places where the ground moves. The rocks do not break into pieces. Instead, they change in a soft way. This is called ductile deformation. The minerals inside the rock change too. This change is called recrystallization. It makes the tiny parts, or grains, much smaller. This makes the rock look very tight and compact.
Scientists group mylonites by how they look. Protomylonites have large grains. They have not changed much. Mesomylonites have changed more. They have more small grains. Ultramylonites have changed the most. They are very hard and dark. They can even look like glass. 
People study these rocks to find the shear sense. This means the direction the ground moved. They look at shapes in the rock. These shapes are called kinematic indicators. They help us see how the Earth shifted.
Mylonite is a very special kind of metamorphic rock. It is a compact rock with very fine grains. 
Mylonites form in ductile fault zones. In these zones, the rock does not snap like a dry stick. Instead, it changes in a soft, flowing way. This is called ductile deformation. The minerals inside the rock go through a process called dynamic recrystallization. 
People have studied these rocks for a long time. The name comes from the Greek word "mylos." This word means "mill."
Scientists group mylonites into different types based on their grains. Protomylonites have changed the least. They have less than 50% small matrix grains.
Geologists use mylonites to find the shear sense. This means the direction the rocks moved. They look for special shapes called kinematic indicators. 
Mylonite is a fine-grained and compact metamorphic rock. It is created through a process called dynamic recrystallization. This process changes the minerals that make up the rock. As these minerals change, their grain size becomes much smaller. 
These rocks form in ductile fault zones. In these zones, the rock undergoes large shear strain. This means the rock is stretched and pushed in a flowing way.
Crystal-plastic deformation is the main way mylonites form. This involves two important processes: dislocation creep and diffusion creep. Dislocation creep increases the internal energy of the crystals. To fix this, the rock uses grain-boundary-migration recrystallization. This reduces internal energy by increasing the grain boundary area. It also reduces the grain volume by storing energy at the mineral grain surface. 
Geologists classify mylonites into several distinct types. Protomylonites have experienced limited grain-size reduction. In these rocks, the matrix grains make up less than 50% of the total. Because the process is incomplete, you can still see old grain textures.
Blastomylonites are another specific type of mylonite. They are coarse-grained and often look sugary. They do not have distinct tectonic banding. The history of the name mylonite is quite interesting. The name comes from the Greek word "mylos," which means "mill." 
Determining the movement of these rocks is a major task for geologists. This is called determining the shear sense. They look for structures called kinematic indicators to find the direction of movement. 
Common kinematic indicators include C/S fabrics and asymmetric porphyroclasts. Other indicators are vein and dike arrays, mantled porphyroclasts, and mineral fibers. These indicators have a monoclinic symmetry. This symmetry is directly related to the orientation of the finite strain axes. While structures like asymmetric folds exist, they are not considered reliable kinematic indicators. They can form from different strain paths. By studying these specific markers, scientists can map the complex history of the Earth's crust.
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