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Virtual Study CircleIgneous Petrology · Lecture 1
Lecture 01 · Geology Optional, Paper I

Igneous Petrology: Magma Genesis

How magmas are born, what makes them behave the way they do, and why the mantle melts where it does — the complete UPSC-ready treatment of magma genesis.

T P
5Core Topics
5Diagrams
13Self-Test Questions
100Marks Paper
I.

Physical-Chemical Properties of Magmas

Magma is not a simple liquid — it is a multiphase system whose behaviour (eruption style, crystallisation path, ascent rate) is dictated entirely by these properties.

What is magma?

Magma is naturally occurring, high-temperature molten or partly molten rock material generated within the Earth's crust or mantle, mobile enough to intrude or extrude, and from which igneous rocks crystallise on cooling. It is a three-phase system: a silicate melt (liquid) + suspended crystals (solid) + dissolved and/or exsolved volatiles (gas).

Chemical composition

Magmas are dominantly silicate liquids, classified by their SiO₂ content, which in turn governs almost every other physical property:

Magma typeSiO₂ contentExample rock
Ultramafic< 45%Komatiite
Mafic (Basaltic)45–52%Basalt
Intermediate52–63%Andesite
Felsic (Silicic)> 63%Rhyolite / Granite
Major oxides: SiO₂, Al₂O₃, FeO, MgO, CaO, Na₂O, K₂O

Volatile content

Magmas carry dissolved volatiles — chiefly H₂O, along with CO₂, SO₂, Cl and F — held in solution under the confining pressure at depth. As magma ascends and pressure drops, volatiles exsolve as gas bubbles (vesiculation); the rate and violence of this exsolution, controlled largely by viscosity, is what determines whether an eruption is effusive or explosive.

Density

Mafic (basaltic) magmas are denser (≈ 2.6–2.8 g/cm³) than felsic magmas (≈ 2.2–2.4 g/cm³). The density contrast between magma and surrounding country rock controls buoyant ascent; magma may pond and fractionate at a level of neutral buoyancy — often near the crust–mantle (Moho) boundary — before resuming ascent.

Exam TipAlways link composition → density → viscosity → eruptive style in a single connected chain — examiners specifically reward this integrated reasoning over isolated facts.
II.

Viscosity of Magmas

Viscosity — the internal resistance to flow — is the single most important control on how a magma erupts and what landform or rock texture it produces.

Controlling factors

  • Silica (SiO₂) content: SiO₄ tetrahedra polymerise into long chains and networks in silica-rich melts, raising viscosity sharply. This is the single strongest control.
  • Temperature: viscosity falls as temperature rises — a hotter melt flows more easily (inverse relationship).
  • Dissolved water content: H₂O breaks Si–O–Si polymer bonds (depolymerisation), dramatically lowering viscosity — even a small increase in dissolved water can lower viscosity by orders of magnitude.
  • Crystal content: suspended crystals mechanically impede flow, raising the effective (bulk) viscosity — described approximately by the Einstein–Roscoe relation.
  • Pressure: a minor effect; higher pressure keeps volatiles dissolved, indirectly keeping viscosity lower until the magma decompresses.
Basaltic
10–10² Pa·s
Andesitic
10²–10⁶ Pa·s
Rhyolitic
10⁸–10¹² Pa·s
Fig. Relative viscosity of the three principal magma types (log scale, bar heights schematic)

Consequence for eruptive style

Magma typeViscosityTypical behaviour
BasalticLowEffusive, fast-moving lava flows (pāhoehoe, ʻaʻā); gas escapes easily
AndesiticIntermediateModerately explosive; stratovolcano cone-building
RhyoliticHighHighly explosive (gas trapped) or forms thick, slow-moving domes
III.

Temperature of Magmas

Magma temperature is measured through mineral-pair geothermometry, melt-inclusion analysis, and direct lava measurement — and it falls steadily as a magma differentiates.

Typical eruption temperatures

Magma typeTemperature range
Basaltic1100–1250°C (hottest — direct mantle-derived melt)
Andesitic950–1100°C
Rhyolitic / Granitic650–850°C (coolest — most evolved / differentiated)

Why temperature falls with differentiation

As a basaltic parent magma undergoes fractional crystallisation (per Bowen's Reaction Series), early high-temperature mafic minerals (olivine, Ca-rich plagioclase, pyroxene) crystallise out first and are removed from the liquid. The residual melt progressively enriches in SiO₂, Na₂O and K₂O and correspondingly cools — meaning composition and temperature evolve together along a single differentiation trend, from hot mafic to cool felsic.

Liquidus & solidus

The liquidus is the temperature above which a magma is entirely liquid; the solidus is the temperature below which it is entirely solid. The interval between them is the crystallisation interval, during which melt and crystals coexist — this interval is generally wider for more silicic, differentiated magmas.

Exam TipComposition, viscosity and temperature are not independent facts to memorise separately — draw them as one linked trend (mafic→felsic = hot,fluid→cool,viscous) and every viscosity/temperature question becomes trivial.
IV.

Origin of Primary Magmas

Not every magma erupted at the surface is "primary" — most have been chemically modified on the way up. Knowing the distinction is a frequently tested UPSC point.

Definition

A primary magma is one formed directly by partial melting of a source rock, and which has undergone no subsequent compositional modification — no fractional crystallisation, crustal contamination, or magma mixing — before being sampled or studied. It represents the unmodified composition of a partial melt straight from its source.

Conditions required for melting

A source rock begins to melt only when the ambient pressure–temperature conditions cross its solidus. This can be achieved by three broad routes — raising temperature, lowering pressure, or lowering the solidus itself by adding volatiles (detailed mechanism-by-mechanism in Section V).

Primary basaltic vs. primary granitic magma

Primary basaltic magma is common — generated directly by partial melting of mantle peridotite; basalts erupted at mid-ocean ridges are close to primary compositions. Primary granitic magma, by contrast, is rare in nature: most granite is the product of extensive fractional crystallisation of basaltic parent magma, or of partial melting (anatexis) of pre-existing crustal rocks rather than a simple, unmodified mantle melt.

Degree of partial melting

The percentage of source rock melted strongly controls magma composition. Low degrees of partial melting (a few %) yield melts strongly enriched in incompatible elements and alkalis (e.g. alkali basalt); higher degrees of partial melting (10–20%+) progressively dilute these enrichments, yielding more silica-poor, tholeiitic basaltic melts.

Low % melting → alkaline, enrichedHigh % melting → tholeiitic, depleted
V.

Mantle Melting Mechanisms

The mantle is overwhelmingly solid. Three distinct mechanisms explain the exceptions — where and why it partially melts to generate primary magma.

Depth /Pressure Temperature → Peridotite solidus Mantle adiabat (rising) Melting begins
Fig. Decompression melting: rising mantle follows the adiabat and crosses the solidus as pressure falls

1. Decompression melting (adiabatic upwelling)

Solid mantle rises — by convection at mid-ocean ridges, or within a buoyant mantle plume — fast enough that it loses very little heat (rises "adiabatically"). Because the peridotite solidus temperature drops faster with falling pressure than the rising mantle's own temperature drops, the upwelling material eventually crosses the solidus and begins to partially melt, even without any external heat input.

Mid-ocean ridgesMantle plumes / hotspots (e.g. Hawaii)

2. Flux melting (volatile-induced melting)

At subduction zones, the descending oceanic slab releases water (and other volatiles) from hydrous minerals as it heats up. This water rises into the overlying mantle wedge and lowers the peridotite solidus temperature — melting is triggered without needing higher temperature or decompression. This is the dominant mechanism generating magma beneath volcanic arcs.

Subduction-zone volcanic arcs (e.g. Andes, Japan)

3. Heat-induced melting

Direct addition of heat — for instance, hot basaltic magma "underplating" and ponding at the base of the crust, or heat conducted from an adjacent hot body — can raise crustal or mantle rock above its solidus. This mechanism is a relatively minor generator of primary mantle melt but is the principal driver of crustal anatexis (partial melting of crustal rocks to generate granitic magma).

Exam TipPair each mechanism with its tectonic setting in one line for full marks: Decompression → ridges/plumes; Flux → subduction arcs; Heat-induced → crustal anatexis via underplating.

Self-Test Paper — Lecture 2

13 questions across MCQ, short-answer and UPSC Mains-style long-answer format. Answer everything, then submit to reveal marking and model answers.

Total: 100 marks · MCQ 10 · Short 30 · Long 60
A.

Multiple Choice (5 × 2 marks)

B.

Short Answer (5 × 6 marks)

Answer in about 100–150 words each. Write in the space provided.

C.

Long Answer — UPSC Mains Style (3 × 20 marks)

Answer in about 250–300 words each, with a labelled diagram where relevant. Write in the space provided.

MCQs are auto-graded. Short/long answers reveal UPSC-style model answers + marking schemes for self-assessment.

A few answers are incomplete

Please attempt every MCQ and write at least 10 words for each short/long answer before submitting — this ensures the model answers are genuinely useful for your revision.

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