Intrusive Igneous Rock

Intrusive igneous rock is rock formed when molten magma cools and solidifies below Earth’s surface, producing important records of geological history and landscape development. Because underground magma loses heat slowly, minerals have time to grow into visible crystals, commonly creating coarse-grained rocks such as granite, diorite, and gabbro. In environmental sciences, identifying intrusive rocks helps explain terrain stability, soil formation, groundwater movement, and the distribution of mineral resources. Their resistance to weathering can shape ridges and uplands, while fractures within these rocks may provide pathways for groundwater or influence contaminant transport.

Intrusive Igneous Rock - Related Videos

Education

JoVE Science Education - Environmental Sciences

Igneous Intrusive Rock

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2023

Source: Laboratory of Alan Lester - University of Colorado Boulder Igneous rocks are products of the cooling and crystallization of high temperature liquid rock, called magma. Magmatic temperatures typically range from approximately 800 °C to 1,200 °C. Molten rock is, perhaps luckily for humans, an anomaly on planet Earth. If a random and imaginary drill hole were made in the Earth, it would most likely not reach a region of truly and totally molten material until the outer core, at nearly...

Igneous Volcanic Rock

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2023

Source: Laboratory of Alan Lester - University of Colorado Boulder Igneous rocks are the products of cooling and crystallization of magma. Volcanic rocks are a particular variety of igneous rock, forming as a consequence of magma breaching the surface, then cooling and crystallizing in the subaerial environment. Magma is molten rock that typically ranges in temperature from approximately 800 °C to 1,200 °C (Figure 1). Magma itself is produced within the Earth via three primary melting...

Determining Spatial Orientation of Rock Layers with the Brunton Compass

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2023

Source: Laboratory of Alan Lester - University of Colorado Boulder Most rock units exhibit some form of planar surfaces or linear features. Examples include bedding-, fault-, fracture-, and joint-surfaces, and various forms of foliation and mineral alignment. The spatial orientation of these features form the critical raw data used to constrain models addressing the origin and subsequent deformation of rock units. Although now over 100 years since its invention and introduction, the Brunton...

Research

JoVE Journal - Environment

Stress Distribution During Cold Compression of Rocks and Mineral Aggregates Using Synchrotron-based X-Ray Diffraction

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Cited by 1 •

2018

We report detailed procedures for compression experiments on rocks and mineral aggregates within a multi-anvil deformation apparatus coupled with synchrotron X-radiation. Such experiments allow quantification of the stress distribution within samples, that ultimately sheds light on compaction processes in geomaterials.

Synchrotron X-ray Microdiffraction and Fluorescence Imaging of Mineral and Rock Samples

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Cited by 8 •

2018

We describe a beamline setup meant to carry out rapid two-dimensional x-ray fluorescence and x-ray microdiffraction mapping of single crystal or powder samples using either Laue (polychromatic radiation) or powder (monochromatic radiation) diffraction. The resulting maps give information about strain, orientation, phase distribution, and plastic deformation.

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