This is a dark rock. 

Amphibolite is a dark rock. 


Amphibolite is a dark and heavy rock. 

This rock forms through metamorphism. Metamorphism is a way that heat and pressure change rocks. Deep in the Earth, heat and weight change older rocks. One common starting rock is basalt. When basalt changes, it becomes ortho-amphibolite. If it starts as a sedimentary rock, it becomes para-amphibolite.
To make this rock, temperatures must pass 500 °C. The rock also needs high pressure. If the rocks get even hotter, they might start to melt. People like this rock because it is hard. It can be polished to look very nice. Builders use it for paving and for walls. 
Amphibolite is a special kind of metamorphic rock. Metamorphism is a process where heat and pressure change existing rocks. 

This rock forms in a specific way. It often starts as a mafic igneous rock like basalt. When basalt undergoes metamorphism, it becomes amphibolite. Scientists use different names based on the starting material. If it starts as an igneous rock, it is called ortho-amphibolite. If it starts as a sedimentary rock, it is called para-amphibolite.
To make this rock, the Earth must be very hot. The temperature must go above 500 °C. The pressure must also be quite high. This specific set of conditions is called the amphibolite facies.
There are many specific types of these rocks. For example, hornblendite is an igneous rock made mostly of hornblende. Some people call metamorphosed ortho-amphibolite "epidiorite." 

People have used amphibolite for a long time. In the early Neolithic period, people used it to make tools. Specifically, they made tools called adzes in Central Europe. 

Amphibolite is a dense, dark-colored metamorphic rock. Metamorphism is the process where existing rocks change due to heat and pressure. 

The way amphibolite forms depends on its protolith. A protolith is the original rock that existed before metamorphism began. Most amphibolite forms from mafic igneous rocks, such as basalt. When basalt undergoes metamorphism, it creates metabasalt. Other materials like certain volcanic sediments or "dirty marls" can also transform into amphibolite. Even deposits containing dolomite and siderite can yield amphibolite. This often happens through contact metamorphism. This occurs when rocks are heated by nearby granitic masses.
Geologists categorize amphibolite into two main types based on their origin. If the protolith was an igneous rock, it is called ortho-amphibolite. These rocks contain amphibole and plagioclase, along with minerals like epidote, zoisite, or magnetite. If the protolith was a sedimentary rock, it is called para-amphibolite. Para-amphibolite usually has more biotite, quartz, and calcite. To tell them apart, scientists look at field relationships. They check if the rock cuts across bedding surfaces. If it does, it was likely an igneous dyke. Scientists also use whole rock geochemistry to identify the exact origin. The term metabasalt is sometimes used to avoid confusion between these two types.
Amphibolite also describes a specific set of environmental conditions. These conditions are known as the amphibolite facies. This facies occurs at temperatures exceeding 500 °C. It also requires pressures of less than 1.2 GPa. These conditions fall within the ductile deformation field. This means the rock behaves like a very thick liquid under pressure. Because of this, the rock may show gneissic textures or mylonite zones. You might also see stretching lineations in the structure. It is important to ensure the amphibole is a prograde metamorphic product. Prograde means the mineral formed as temperature and pressure increased.
Different protoliths produce different mineral assemblages within the amphibolite facies. For example, high-magnesia basalt produces ortho-amphibolite that may contain anthophyllite. This is a magnesium-rich amphibole. Ultramafic rocks can produce tremolite, talc, and pyroxene. Sedimentary para-amphibolite often includes garnet, calcite, or wollastonite. Pelite, a type of fine-grained sedimentary rock, can produce staurolite or sillimanite. The journey of these rocks follows specific paths. They often follow the Barrovian Facies Sequence. This happens through continued burial and thermal heating. If the rocks get even hotter, they may reach eclogite facies. If they reach 650 to 700 °C with water, they might begin to melt.
There are several specialized versions of these rocks. Hornblendite is a plutonic igneous rock made mostly of hornblende. Lamprophyres are igneous rocks with more than 90% amphiboles. In some parts of Europe, people use the archaic term epidiorite. This refers to an ortho-amphibolite that started as diorite or gabbro. In these rocks, pyroxene is replaced by a fibrous mineral called uralite. This process is called hydrothermal alteration. Another unique form is urallite, which is a hydrothermally altered pyroxenite. In urallite, the pyroxene is replaced by fuzzy, radially arranged actinolite. 
Humans have found many uses for amphibolite throughout history. During the early Neolithic period in Central Europe, people used it for tools. Specifically, they made adzes, which are cutting tools. 

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