Dalla roccia al prodotto, tracciato
The Materials Atlas
Materiali Miniere e giacimenti Lavorazione e raffinazione Percorsi di custodia Filiere produttive Aziende Paesi Notizie
Materiali per scaffale Materiali per batterie Elementi delle terre rare Rame ed elettrico Materiali per semiconduttori Materiali nucleari Aerospazio e difesa Metalli preziosi Acciaio e metalli da lega Minerali industriali Minerali per l'agricoltura Materie prime energetiche Minerali mena Tavola periodica
Domanda Mercati finali Tecnologie Calcolatore di materiali Mappe Screener
Approfondisci e strumenti ApprofondisciGlossario Interroga i datiAgenti AI Ricerca e datiAPI ★ Salvato
Informazioni Chi siamoMetodologia Fonti dei datiContatti Avvertenza
Opzioni di lettura
🧭 Vista guidata Nuovo a tutto questo — tenori di minerale, concentrato, raffinazione, sottoprodotti? Spieghiamo ogni termine mentre navighi, in linguaggio chiaro. Stessi dati, con il supporto integrato.
⚡ Vista esperto Conosci già il settore. Solo i dati — puliti, rapidi e compatti, senza spiegazioni aggiuntive. Questa è la visualizzazione predefinita.
Tema
Lingua dell'interfaccia
Profondità Le pagine dei materiali sono scritte a quattro livelli. Selezionane uno in qualsiasi pagina di materiale: la scelta viene memorizzata.
★ Salvato Ricerca e dati
Talc & Pyrophyllite

Minerali industriali

Talc & Pyrophyllite

The softest mineral there is — a fingernail scratches it — used as a filler that makes plastics stiffer and paper smoother.

Talc-386099 · John Krygier · Public domain · Wikimedia Commons

Che cos'è?

The softest mineral there is — a fingernail scratches it — used as a filler that makes plastics stiffer and paper smoother.

Perché è importante?

Talc is a functional filler by the hundred thousand tonnes: it is in car bumpers, paint, ceramics and roofing far more than in cosmetics.

Where it is in the Earth

Talc and pyrophyllite are both phyllosilicate minerals — sheet silicates whose atoms are arranged in flat, repeating layers, which is what gives them their characteristic slipperiness. Talc is magnesium-rich; pyrophyllite replaces that magnesium with aluminium. Both form by a process called hydrothermal alteration or metamorphism, in which hot, water-rich fluids or heat and pressure from burial transform pre-existing rocks into something chemically and structurally different. Talc most commonly grows when magnesium-bearing rocks — particularly ultramafic rocks such as dunite or serpentinite, which formed originally from the Earth's mantle — are infiltrated by silica-carrying fluids. Those fluids react with the magnesium silicates already present and convert them, over geological time, into talc. Pyrophyllite, by contrast, tends to form where aluminium-rich rocks or hydrothermal systems interact with acidic fluids under moderate temperature and pressure, often in zones associated with ancient volcanic activity.

The deposits that end up large enough to mine tend to share a common feature: a substantial body of the right precursor rock, combined with a plumbing system — faults, fractures, or permeable contacts between rock types — through which reactive fluids could circulate for long enough to transform meaningful volumes. Many of the world's talc deposits follow the traces of ancient mountain belts, where once-deep ultramafic rocks were pushed to the surface by tectonic collision and then exposed to hydrothermal circulation. The Appalachian belt in the eastern United States, the Himalayan foothills of India and Pakistan, the Alpine terranes of France and Italy, and the cratons of southern Africa all fit this picture. Pyrophyllite deposits in East Asia, particularly in Korea and Japan, are more often associated with ancient volcanic arcs where acidic hydrothermal systems altered volcanic and sedimentary rocks over large areas.

The result is that both minerals tend to occur as irregular lenses, pods, or bands within a host rock rather than as uniform, predictable layers. The grade — meaning the proportion of actual talc or pyrophyllite in the material extracted — varies considerably within a single deposit, which has real consequences for how mining is planned and how much of what is dug up can actually be sold.

Getting it out

Most talc and pyrophyllite is mined in open pits, which are essentially large terraced excavations cut into the surface of the ground. Open-pit mining is preferred where the ore body is near enough to the surface that removing the overlying rock — the waste material that must be stripped away before ore can be reached, called overburden — is economically manageable. Because talc deposits are often irregular in shape, the boundary between ore-grade material and waste can shift across short distances, and miners must sample and test the rock as they go to decide what to send to the processing plant and what to leave in the waste pile. Some deeper or narrower deposits are worked underground, using tunnels driven into the ore body, but this is less common.

Talc is the softest mineral on the standard geological hardness scale — the Mohs scale, which runs from one to ten — so the rock containing it is usually not especially hard to break. Drilling and blasting are still used in most operations to fragment the rock mass, but the energy required is modest compared with hard-rock mining for metals. The mineral's softness is also a disadvantage in one respect: it means talc particles are easily generated by any mechanical contact during handling and transport, raising dust-management considerations throughout the operation.

The ratio of waste moved to ore produced varies enormously depending on deposit geometry and where in the pit the operation is working at any given time. In a well-defined, high-grade lens the stripping ratio — tonnes of overburden removed for each tonne of ore extracted — can be low. In irregular deposits it can be considerably higher. Because talc and pyrophyllite are relatively low-value commodities measured per tonne, keeping the stripping ratio under control is a significant part of what makes a deposit economical to work.

What pulls on it

Talc's primary commercial value is as a functional filler — a material added to a product not merely to bulk it out cheaply but because it changes the product's properties in useful ways. In plastics, particularly polypropylene used in car bumpers, dashboards, and appliance housings, talc platelet particles stiffen the material and reduce how much it shrinks or warps during moulding. In paper, a coating of fine talc improves how ink sits on the surface and makes the sheet feel smoother. In ceramics, talc contributes to the flux chemistry of the body, helping it mature at lower firing temperatures. Roofing products, particularly asphalt-based shingles, use talc to prevent sheets sticking together during manufacture and storage. Paints use it to control rheology — the way a paint flows and levels out — and to fill volume without the cost of more expensive white pigments. Cosmetics, despite their visibility in public perception of talc, account for a modest share of total consumption compared with these industrial uses.

Demand tends to track broadly with manufacturing activity in the economies that consume most of it. Growth in automotive production, construction, and paper manufacturing in Asia has supported demand there over recent decades. In Western markets, the long decline in newsprint and publication paper has reduced one traditional end-market, while growth in lightweight automotive components and in plastics-intensive consumer goods has partially offset that. Pyrophyllite, whose aluminium-rich chemistry makes it more suitable for high-temperature ceramics and refractories — materials used to line furnaces and other high-heat industrial equipment — follows a somewhat different demand pattern, tied more closely to steel and glass production.

A meaningful shift in demand in either direction would require a change in the industries that consume it rather than in any property of talc itself. A substantial reduction in internal combustion engine vehicle production, for instance, would remove one of the significant polypropylene-compounding applications. Conversely, growth in lightweight thermoplastic composites in construction or in electric vehicle body components could add demand. Neither shift depends on anything intrinsic to talc — the mineral is a passive participant in those larger industrial transitions.

Leggere correttamente i numeri. Gross weight; crude and beneficiated grades combined. Lump, granular and micronised grades.
Per questo materiale è pubblicata più di una serie. L'USGS riporta questi dati separatamente perché misurano cose diverse — produzione mineraria e produzione di raffineria, o basi chimiche differenti. Sono presentati come tabelle separate e non devono mai essere sommati.

Mine production

Mine productionthousand metric tons 2025 (stimato) Totale mondiale 6,900 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Gross weight; crude and beneficiated grades combined. · fonte ↗

Scorrere la tabella lateralmente per visualizzare le colonne rimanenti.

PaeseProduzione Quota mondiale
Turkey 300.0 4.3%
South Africa 300.0 4.3%
Korea, Republic of 300.0 4.3%
Finland 200.0 2.9%
Afghanistan 200.0 2.9%
Japan 130.0 1.9%
Totale mondiale 6,900100%

Mine production: crude

Mine production: crudethousand metric tons 2025 (stimato)

USGS Mineral Commodity Summaries 2026 · Gross weight; crude and beneficiated grades combined. · fonte ↗

Scorrere la tabella lateralmente per visualizzare le colonne rimanenti.

PaeseProduzione Quota mondiale
United States 490.0
France 300.0

Mine production: crude and beneficiated

Mine production: crude and beneficiatedthousand metric tons 2025 (stimato)

USGS Mineral Commodity Summaries 2026 · Gross weight; crude and beneficiated grades combined. · fonte ↗

Scorrere la tabella lateralmente per visualizzare le colonne rimanenti.

PaeseProduzione Quota mondiale
Brazil 570.0

Mine production: includes crude

Mine production: includes crudethousand metric tons 2025 (stimato)

USGS Mineral Commodity Summaries 2026 · Gross weight; crude and beneficiated grades combined. · fonte ↗

Scorrere la tabella lateralmente per visualizzare le colonne rimanenti.

PaeseProduzione Quota mondiale
Other countries 790.0

Mine production: includes steatite

Mine production: includes steatitethousand metric tons 2025 (stimato)

USGS Mineral Commodity Summaries 2026 · Gross weight; crude and beneficiated grades combined. · fonte ↗

Scorrere la tabella lateralmente per visualizzare le colonne rimanenti.

PaeseProduzione Quota mondiale
Italy 170.0

Mine production: steatite

Mine production: steatitethousand metric tons 2025 (stimato)

USGS Mineral Commodity Summaries 2026 · Gross weight; crude and beneficiated grades combined. · fonte ↗

Scorrere la tabella lateralmente per visualizzare le colonne rimanenti.

PaeseProduzione Quota mondiale
India 1,500
Pakistan 200.0

Mine production: unspecified minerals

Mine production: unspecified mineralsthousand metric tons 2025 (stimato)

USGS Mineral Commodity Summaries 2026 · Gross weight; crude and beneficiated grades combined. · fonte ↗

Scorrere la tabella lateralmente per visualizzare le colonne rimanenti.

PaeseProduzione Quota mondiale
China 1,300
Canada 150.0

«Withheld» significa che l'USGS ha soppresso il dato per evitare di divulgare informazioni relative a una singola azienda — non equivale a zero. I valori per paese non sempre sommano al totale mondiale perché la fonte arrotonda ciascun dato in modo indipendente e non sempre disaggrega la voce «altri paesi».

Chi detiene le riserve

«Riserve» è un termine preciso. Indica la parte di un giacimento noto che potrebbe essere estratta economicamente oggi, con i prezzi attuali e le tecnologie attuali — non tutto ciò che esiste nel sottosuolo. Le riserve crescono quando i prezzi salgono o viene inventato un nuovo processo, e diminuiscono quando scendono.

Reserves

Reservesthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · fonte ↗

PaeseRiserveQuota mondiale
Japan 100,000
Korea, Republic of 81,000
Turkey 15,000
South Africa Not applicable
Afghanistan Large
Finland Large
Totale mondiale Large100%

Reserves: crude

Reserves: crudethousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · fonte ↗

PaeseRiserveQuota mondiale
United States 140,000
France Large

Reserves: crude and beneficiated

Reserves: crude and beneficiatedthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · fonte ↗

PaeseRiserveQuota mondiale
Brazil 48,000

Reserves: includes crude

Reserves: includes crudethousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · fonte ↗

PaeseRiserveQuota mondiale
Other countries Large

Reserves: includes steatite

Reserves: includes steatitethousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · fonte ↗

PaeseRiserveQuota mondiale
Italy Not applicable

Reserves: steatite

Reserves: steatitethousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · fonte ↗

PaeseRiserveQuota mondiale
India 110,000
Pakistan Not applicable

Reserves: unspecified minerals

Reserves: unspecified mineralsthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · fonte ↗

PaeseRiserveQuota mondiale
China 60,000
Canada Not applicable

Prezzo

average, milled, dollars per metric ton

Media annualedollars per metric ton

2021 · 322.0 alto 333.0 dollars per metric ton 2025 · 330.0

Base: average, milled, dollars per metric ton. Medie annuali pubblicate in USGS Mineral Commodity Summaries 2026 · fonte ↗. Queste sono medie annuali di riferimento, non quotazioni di mercato in tempo reale.

Materiali

Tutti i materiali Minerali critici Terre rare Materiali per batterie Minerali mena Tavola periodica Screener

Il sottosuolo

Miniere e giacimenti Lavorazione e raffinazione Paesi Mappe

L'economia

Percorsi di custodia Filiere produttive Mercati finali Tecnologie Aziende Calcolatore di materiali

Approfondisci

ApprofondisciGlossario Interroga i datiAgenti AI Ricerca e datiAPI aperta Notizie★ Salvato

Chi siamo

Chi siamoContatti MetodologiaFonti dei dati Politica editoriale Informativa sulla privacyCondizioni d'uso Avvertenza