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Geography / Geology — Study Notes

Textures of Igneous Rocks

A complete, exam-ready chapter with definitions, diagrams, examples & key points  |  virtualstudycircle.com

1. Introduction to Texture

Definition

Texture of an igneous rock refers to the overall physical appearance and arrangement of its mineral grains/crystals — including their size, shape, degree of crystallization, and the relationship of one crystal to another within the rock.

Texture is one of the most important features used to identify and classify igneous rocks in the field, because it directly tells us the cooling history of the magma or lava that formed the rock — i.e., how fast and where it cooled.

Why texture matters

Two rocks can have the exact same chemical/mineral composition but look completely different because of texture. For example, Granite and Rhyolite have almost identical composition, but Granite is coarse-grained (cooled slowly, deep underground) while Rhyolite is fine-grained (cooled quickly, on the surface).

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2. Factors Controlling Texture

The texture of an igneous rock is controlled mainly by four factors:

  1. Rate of Cooling — the single most important factor. Slow cooling allows large, well-formed crystals to grow; fast cooling produces tiny crystals or no crystals at all.
  2. Viscosity of Magma — thick/viscous (silica-rich) magma resists the free movement of ions, restricting crystal growth; thin/fluid (silica-poor) magma allows ions to move and form larger crystals more easily.
  3. Gas / Volatile Content — dissolved gases (like water vapour, CO₂) escaping from lava as it nears the surface create holes/cavities, producing vesicular textures.
  4. Mode of Occurrence (Depth of Solidification) — magma solidifying deep underground cools slowly (coarse texture); lava erupted on the surface cools rapidly (fine/glassy texture).
Rate of Cooling → Crystal Size → Very Slow (Plutonic) Granite Moderate (Hypabyssal) Dolerite Very Fast (Volcanic) VIRTUALSTUDYCIRCLE.COM
Fig. 1 — As the rate of cooling increases, crystal/grain size decreases (inverse relationship).
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3. Classification of Textures

Textures of igneous rocks are classified under several different heads. This chapter covers the four major classification bases used in geology and geography textbooks.

A. Degree of Crystallization B. Grain Size C. Grain Shape D. Fabric / Mutual Relationship

A. On the Basis of Degree of Crystallization

This tells us how much of the rock is made of actual crystals versus glass (non-crystalline material).

  • Holocrystalline — the entire rock is made up of crystals; no glass present at all. Typical of slow-cooled plutonic rocks. Example: Granite, Gabbro.
  • Hypocrystalline (Merocrystalline) — the rock is a mixture of crystals and glass. Typical of rocks that cooled at an intermediate rate. Example: Andesite.
  • Holohyaline (Vitreous) — the entire rock is glass, with no crystals at all, because cooling was too rapid for any crystals to form. Example: Obsidian.

B. On the Basis of Grain Size

  • Phaneritic (Coarse-grained) — crystals are large enough to be seen and identified with the naked eye (>5mm). Formed by slow cooling deep underground. Example: Granite, Gabbro, Diorite.
  • Aphanitic (Fine-grained) — crystals are too small to be seen without a microscope (<1mm). Formed by rapid cooling at/near the surface. Example: Basalt, Rhyolite.
  • Pegmatitic (Very coarse-grained) — exceptionally large crystals (sometimes several cm to metres long), formed from water-rich residual magma that cooled extremely slowly in the final stage of crystallization. Example: Pegmatite.

C. On the Basis of Grain Shape (Crystal Form)

This describes how well-formed (well-bounded by flat crystal faces) each individual crystal is.

Euhedral Perfect crystal faces (well-formed) Subhedral Partly-formed faces Anhedral No crystal faces (irregular outline) VIRTUALSTUDYCIRCLE.COM
Fig. 2 — Crystal shape spectrum: Euhedral (perfect) → Subhedral (partial) → Anhedral (no faces).
  • Euhedral — crystal is completely bound by its own well-developed flat faces. Forms when a crystal grows freely without obstruction.
  • Subhedral — crystal is partly bound by its own faces and partly by irregular surfaces, because growth was slightly obstructed by neighbouring crystals.
  • Anhedral — crystal has no original faces at all; its shape is entirely irregular, because it was the last to crystallize and had to fill in the leftover space between earlier-formed crystals.
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D. On the Basis of Fabric / Mutual Relationship Between Grains

This is the most detailed classification, describing the special arrangement/relationship between different minerals in a rock.

Granular
Crystals of roughly similar (equal) size fit tightly together, like a mosaic. Example: Granite.
Porphyritic
Large crystals (phenocrysts) embedded in a fine-grained groundmass, showing two-stage cooling. Example: Porphyry.
Ophitic
Small lath-shaped plagioclase crystals are fully enclosed within larger pyroxene crystals. Example: Dolerite.
Poikilitic
Numerous small crystals of one mineral are randomly enclosed within a single large crystal of another mineral (host).
Graphic
Quartz crystals arranged within feldspar in a pattern resembling cuneiform/ancient script. Example: Graphic granite.
Vesicular
Rock is full of small rounded holes/cavities left by escaping gas bubbles. Example: Pumice, Scoria.
Amygdaloidal
Same as vesicular, but the holes are later filled with secondary minerals like zeolite, calcite or quartz.
Spherulitic
Radiating, needle-like crystals arranged outward from a common centre, forming spherical clusters. Example: some Rhyolites.
Pyroclastic
Made of fragmented volcanic material (ash, cinders, blocks) explosively ejected and later compacted. Example: Tuff, Volcanic breccia.
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4. Master Comparison Table of Textures

TextureBasisKey FeatureExample Rock
HolocrystallineCrystallization degree100% crystals, no glassGranite
HypocrystallineCrystallization degreeMix of crystals + glassAndesite
HolohyalineCrystallization degree100% glass, no crystalsObsidian
PhaneriticGrain sizeCoarse, visible crystalsGranite, Gabbro
AphaniticGrain sizeFine, invisible crystalsBasalt, Rhyolite
PegmatiticGrain sizeExtremely large crystalsPegmatite
Euhedral / Subhedral / AnhedralCrystal shapeDegree of well-formed facesVaries by mineral
PorphyriticFabricBig phenocrysts in fine groundmassPorphyry
OphiticFabricSmall crystals enclosed in larger onesDolerite
VesicularFabricGas-bubble holesPumice, Scoria
AmygdaloidalFabricHoles filled with secondary mineralsAmygdaloidal basalt
PyroclasticFabricFragmented, explosively ejected materialTuff

5. Key Points & Quick Revision

Points to remember
  • Texture = size + shape + arrangement of crystals; it reflects the cooling history of the rock.
  • Slower cooling → larger, better-formed crystals (Phaneritic, Euhedral); faster cooling → smaller/no crystals (Aphanitic, Glassy).
  • Porphyritic texture indicates two distinct stages of cooling — slow at first (forming phenocrysts), then fast (forming the fine groundmass).
  • Vesicular texture forms due to trapped gas; when those holes get filled later with secondary minerals, it becomes Amygdaloidal.
  • Order of crystal formation: earliest-formed crystals tend to be Euhedral; last-formed crystals (filling leftover gaps) tend to be Anhedral.
Slow cooling = Coarse + Euhedral Fast cooling = Fine/Glassy Gas escape = Vesicular Two-stage cooling = Porphyritic
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6. Practice / Revision Questions

  1. Define texture of an igneous rock. Name the four factors that control it.
  2. Differentiate between Holocrystalline, Hypocrystalline, and Holohyaline textures with examples.
  3. What is Porphyritic texture? Explain how it forms, using a labelled sketch.
  4. Differentiate between Euhedral, Subhedral, and Anhedral crystal forms.
  5. What is the difference between Vesicular and Amygdaloidal texture?
  6. Why does Granite have a coarse-grained texture while Basalt has a fine-grained texture, despite both being igneous rocks?
  7. Explain Ophitic and Poikilitic textures with suitable examples.
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