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Diatomite

Minéraux industriels

Diatomite

Rock made from the glass skeletons of microscopic algae, so porous that a lump of it floats on water.

Diatomite (diatomaceous earth) Monterey Formation at a diat… · James St. John · CC BY 2.0 · Wikimedia Commons

Qu'est-ce que c'est ?

Rock made from the glass skeletons of microscopic algae, so porous that a lump of it floats on water.

Pourquoi est-ce important ?

It is the standard filter medium for beer, wine, sugar and swimming pools, and a mild abrasive and absorbent.

Where it is in the Earth

Diatomite begins with living organisms. Diatoms are single-celled algae that build their cell walls from dissolved silica drawn out of water. When a diatom dies its soft organic parts decompose, but the silica skeleton — called a frustule — sinks to the lake or sea floor and is preserved. Given the right conditions over millions of years, these skeletons accumulate layer upon layer into a sedimentary deposit thick enough to mine. The resulting rock is composed almost entirely of amorphous, or non-crystalline, silica, and it is extraordinarily light and porous because each tiny frustule is itself riddled with microscopic holes.

The conditions that favour thick accumulations are fairly specific. A body of water needs to be nutrient-rich enough to sustain dense diatom blooms but calm enough that the fragile frustules are not broken up before they settle. Many of the world's better deposits formed in enclosed or semi-enclosed Miocene-age lakes and shallow coastal seas, periods when the silica supply was plentiful and the water chemistry stable. Volcanic regions are often productive settings: volcanic glass weathering in the catchment area releases silica into the water column, feeding the diatoms. This is why productive deposits in the western United States, parts of Turkey, and parts of South America are frequently associated with ancient volcanic lake beds.

Because the deposit is essentially a settled sediment, diatomite beds tend to be broadly flat and relatively shallow, which has an important bearing on how they are mined. The thickness and purity of the deposit varies with proximity to the ancient shoreline, the pattern of sediment input, and subsequent geological disturbance. Clay layers interbedded with the diatomite, and volcanic ash falls that punctuated the accumulation period, are the main sources of contamination that determine whether a given section of a deposit is usable without heavy processing.

Getting it out

Because diatomite deposits are sedimentary and relatively shallow, open-pit mining is almost universal. Overburden — the soil and rock sitting above the diatomite — is stripped away with bulldozers and scrapers, exposing the pale, chalky deposit beneath. The diatomite itself is often soft enough that it can be dug directly with a front-end loader or scraped loose without blasting. This softness is one of the material's defining characteristics: the frustules that create its useful porosity also make it mechanically weak, so the ore comes out of the ground as a crumbly, low-density material rather than as hard rock.

What matters most to the miner is not grade in the conventional sense of metal content, but purity. The proportion of the deposit that is actual diatom silica versus contaminating clay, sand, volcanic ash, or calcium carbonate determines whether the product will meet the strict specifications that filter applications demand. High-clay zones may be left in place or stockpiled separately for lower-value uses such as absorbents or fillers. Waste-to-product ratios are therefore highly site-specific: a deposit with thin clay partings and consistent purity generates relatively little reject material, while a more variable orebody requires selective extraction and generates considerably more.

Water content is a practical concern from the moment the ore is dug. Fresh diatomite can carry a great deal of moisture — it is highly absorbent by nature — and wet ore is heavy and difficult to process. Drying begins at the mine face in dry climates, but in wetter regions the first stage of processing is simply removing water. Transportation costs are sensitive to moisture content, which is why large diatomite operations typically process the ore close to the mine rather than shipping it in its raw state.

What pulls on it

The largest single pull on diatomite is filtration. Brewers, winemakers, sugar refiners, and operators of swimming pools and water treatment systems all use diatomite as a filter aid — a material that builds up on a filter septum and traps fine particles that would otherwise pass through. The mechanism depends on the frustule structure: the labyrinth of tiny pores in each skeleton traps solids while allowing liquid to flow. No other naturally occurring mineral combines the right pore size range, flow-through characteristics, and chemical inertness quite as conveniently, which is why the food and beverage industries adopted it widely and have not abandoned it.

Beyond filtration, diatomite is used as a mild abrasive in polishes — its hardness is just sufficient to scratch tarnish from metal but not to damage the surface — and as an absorbent in industrial applications ranging from spill cleanup to pesticide carriers. It also acts as a functional filler and anti-caking agent in paints, rubber, and animal feed. These non-filtration uses tend to consume lower grades of material and are generally less sensitive to purity specifications, which is why they absorb the fines and reject fractions from the processing plant.

The filtration market is the one most worth watching for structural change. Membrane filtration technology has been gradually displacing diatomite in some industrial processes, particularly in the dairy and pharmaceutical sectors, where the desire to eliminate the handling and disposal of spent filter cake is an operating concern. Crossflow and hollow-fibre membrane systems do not require a filter aid at all. However, membranes involve higher capital cost and are slower to displace established practice in cost-sensitive industries such as brewing. For diatomite demand to fall sharply, membrane adoption would need to accelerate across several large end-use sectors simultaneously, which has not occurred at any rapid pace to date.

Turning ore into product Niveau 3

Raw diatomite leaving the mine face is too wet, too variable in purity, and too coarse to meet product specifications directly. The first stage is crushing and drying, usually in rotary kilns or flash dryers, to drive off the bulk of the moisture and reduce the material to a workable particle size. Once dry, the crude ore is milled and air-classified — separated by particle size using a stream of air — to remove coarse contaminants such as sand grains and to segregate the finer diatom fraction. This beneficiation step largely determines the purity and filtration rating of the finished product.

From this point the flowsheet diverges depending on the end use. Natural or uncalcined product is simply dried, milled and bagged; it retains the original frustule structure and is used where a relatively fine pore size is acceptable. Calcined product is heated in a kiln to around 800–1000 °C, which burns off organic matter, lowers moisture, whitens the product, and partially fuses the frustule surfaces, producing a coarser, harder particle with higher flow rates through a filter bed. Flux-calcined product — the highest-grade filter aid — incorporates a small amount of soda ash or similar flux before the kiln step, causing the amorphous silica to partially convert to crystalline forms, particularly cristobalite. This produces very high filtration flow rates but introduces a health consideration because crystalline silica is regulated as a respiratory hazard, which requires controlled handling environments downstream. The calcination grade determines the price tier: flux-calcined product commands the highest value, natural the lowest.

Losses in the process are primarily fines that are too small or too contaminated to meet filter specifications. These are not wasted; they are sold into lower-value markets such as absorbents, soil amendments, or construction fillers. The economics of the operation therefore depend on finding buyers across the entire product range, not just for the premium filter grades. Energy costs dominate the processing cost structure because of the drying and calcination kilns, which creates sensitivity to fuel prices at the plant level.

Substitution and recycling Niveau 3

The closest functional substitute for diatomite as a filter aid is perlite, another volcanic mineral. Perlite is expanded by rapid heating, which creates a lightweight, porous particle somewhat similar to a calcined diatomite product. It performs acceptably in a range of filtration duties and is used interchangeably with diatomite in some applications, particularly where local supply or price makes it competitive. The performance difference is real but application-specific: diatomite generally offers a wider range of pore sizes and is the preferred choice where very fine filtration is required, while perlite can be adequate for coarser duties. Cellulose-based filter aids are used in some niche applications where the inorganic residue left by mineral filter aids is unwanted.

Recycling of spent diatomite filter cake is limited in practice. The used material is saturated with the organic content removed from the filtered liquid — yeast, proteins, pigments, microbes — which makes it difficult to regenerate economically. Some spent cake is used as a soil amendment or animal feed supplement, and a small amount is thermally regenerated in dedicated calcination equipment, but the economics only work at large scale. The main barrier to higher recycling rates is the cost of separating organic contamination from the mineral without destroying the frustule structure that gives diatomite its filtration properties. Until that is cheaper, the industry remains essentially linear: mine, process, filter, dispose.

Where the chain is fragile Niveau 4

The supply picture for diatomite is less concentrated than for many industrial minerals, but it is not without structural vulnerabilities. The United States accounts for 720,000 metric tons of the 2,500,000 metric ton world total recorded for 2025, and the production roster is dominated by a small number of countries — the United States, Denmark, France, and Argentina together account for the clear majority of output. Within each producing country, commercial-grade deposits are often controlled by one or two operators. This means that a disruption at a single large mine or processing plant can have a disproportionate effect on availability in a given grade tier, particularly the flux-calcined grades used in beverage filtration, which require specific processing equipment that cannot be substituted at short notice.

Reserve figures introduce their own uncertainty. The published reserves for several significant producing countries — Japan, Mexico, Peru, Russia, and others — are listed as not available by the source, meaning the known resource base in those countries is not quantified in the standard reporting framework. The world total reserve is described qualitatively as large, which reflects the geological reality that diatomite is geographically widespread, but says nothing about how much of the in-ground resource meets the purity and thickness thresholds required by filter-grade specifications. The gap between total resource and mineable reserve is meaningful for diatomite because clay contamination, thin beds, and remoteness disqualify large volumes of otherwise adequate silica.

Permitting and the regulatory status of crystalline silica are the two non-geological risk factors most worth understanding. Flux-calcined diatomite contains cristobalite, a regulated form of crystalline silica, which subjects production facilities and downstream users to occupational health regulations that have tightened over time in major markets. Any further regulatory change affecting allowable exposure limits would raise compliance costs at processing plants and potentially at user facilities, adding friction to the supply chain without reducing the physical availability of the ore. Open-pit mine permitting in the western United States and parts of Europe involves environmental review processes whose timelines are measured in years, meaning that the lead time between identifying a new reserve and bringing it into production is long enough to create periods of tightness if existing mines deplete faster than anticipated.

Lire correctement les chiffres. Gross weight of processed diatomite. Natural, calcined and flux-calcined filter grades.

Qui le produit

Voir sur une carte →
Plusieurs séries sont publiées pour cette matière. L'USGS publie ces données séparément car elles mesurent des choses différentes — la production minière et la production d'affinerie, ou des bases chimiques différentes. Elles sont présentées sous forme de tableaux distincts et ne doivent jamais être additionnées.

Mine production

Mine productionthousand metric tons 2025 (estimé) Total mondial 2,500 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Gross weight of processed diatomite. · source ↗

Faire défiler le tableau latéralement pour afficher les colonnes restantes.

PaysProduction Part mondiale
United States 720.0 28.8%
France 250.0 10.0%
Argentina 190.0 7.6%
Other countries 160.0 6.4%
Turkey 150.0 6.0%
China 140.0 5.6%
Korea, Republic of 120.0 4.8%
Mexico 100.0 4.0%
Peru 99.00 4.0%
Germany 50.00 2.0%
Spain 50.00 2.0%
Russia 50.00 2.0%
Japan 40.00 1.6%
New Zealand 40.00 1.6%
Total mondial 2,500100%

Mine production: processed

Mine production: processedthousand metric tons 2025 (estimé)

USGS Mineral Commodity Summaries 2026 · Gross weight of processed diatomite. · source ↗

Faire défiler le tableau latéralement pour afficher les colonnes restantes.

PaysProduction Part mondiale
Denmark 380.0

« Withheld » signifie que l'USGS a supprimé le chiffre afin de ne pas divulguer les données d'une entreprise individuelle — cela ne signifie pas zéro. La somme des lignes par pays ne correspond pas toujours au total mondial, car la source arrondit chaque chiffre de manière indépendante et ne détaille pas toujours une ligne « autres pays ».

Qui détient les réserves

« Réserves » est un terme précis. Il désigne la part d'un gisement connu qui pourrait être extraite de manière économiquement rentable dans les conditions actuelles, aux prix et avec les technologies d'aujourd'hui — et non l'ensemble de ce qui existe dans le sous-sol. Les réserves augmentent lorsque les prix montent ou qu'un nouveau procédé est mis au point, et diminuent lorsqu'ils baissent.

Reserves

Reservesthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · source ↗

PaysRéservesPart mondiale
United States 250,000
China 120,000
Spain 57,000
Turkey 44,000
Korea, Republic of 2,200
New Zealand Not applicable
Peru Not applicable
Russia Not applicable
Mexico Not applicable
Argentina Not applicable
France Not applicable
Germany Not applicable
Japan Not applicable
Other countries Not applicable
Total mondial Large100%

Reserves: processed

Reserves: processedthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · source ↗

PaysRéservesPart mondiale
Denmark Not applicable

Prix

average value, f.o.b. plant, dollars per metric ton

Moyenne annuelledollars per metric ton

2021 · 410.0 élevé 580.0 dollars per metric ton 2025 · 580.0

Base: average value, f.o.b. plant, dollars per metric ton. Moyennes annuelles telles que publiées dans USGS Mineral Commodity Summaries 2026 · source ↗. Il s'agit de moyennes annuelles de référence, et non de cotations de marché en temps réel.

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