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Perlite

工業用鉱物

Perlite

A volcanic glass with water trapped inside it that pops like popcorn when heated, expanding to many times its size.

Expanded & popped perlite (Hollinger Quarry, Wilson Creek R… · James St. John · CC BY 2.0 · Wikimedia Commons

これは何か

A volcanic glass with water trapped inside it that pops like popcorn when heated, expanding to many times its size.

なぜ重要なのか

Expanded perlite is one of the cheapest ways to make something light and insulating — in plaster, in filters, and in the growing medium under most greenhouse crops.

Where it is in the Earth

Perlite is a form of volcanic glass — rhyolitic in composition, meaning it formed from silica-rich magma. When that magma erupted and cooled rapidly at the surface or near it, the resulting glassy rock trapped a small amount of water within its structure. That water is not liquid; it is chemically bound within the glass matrix, typically at a few per cent by weight. This combination of glassy structure and bound water is what makes perlite behave so differently from ordinary rock when it is heated.

The deposits tend to occur in geologically young volcanic arcs and rift zones, where silicic eruptions have taken place within the last few tens of millions of years. Older deposits are less common because volcanic glass is metastable: over geological time, groundwater and heat convert it into clay minerals and other secondary phases, destroying the glassy texture that gives perlite its commercial character. This is why the world's largest and most reliable deposits cluster around active or recently active tectonic margins — the Aegean region, the western United States, central China, and parts of Central America and the Pacific.

Not all volcanic glass qualifies. The deposit must be thick enough, laterally continuous enough, and close enough to the surface to mine economically. Hydration must be reasonably uniform, because pockets of devitrified or otherwise altered glass within a deposit reduce the expansion ratio of the product and must either be blended away or discarded. Greece's deposits on the island of Milos are among the largest and most homogeneous known, which explains why Greece holds by far the largest reported reserves and exports crude ore worldwide despite being a relatively small country.

Getting it out

Perlite is almost always mined by open-pit methods. The rock is close to the surface, relatively soft for a silicate, and occurs in large tabular or dome-shaped bodies that suit a simple strip-and-bench approach. Heavy equipment removes any overburden — soil, weathered rock, or altered volcanic material that will not expand usefully — and the crude perlite is then drilled, blasted, and loaded into trucks. Because the deposits are generally near-surface and the rock is not exceptionally hard, the ratio of waste moved to ore produced is lower than in many hard-rock mining operations, though it varies considerably with the geometry of each deposit and the thickness of the overburden.

Grade in perlite mining is expressed differently from most metallic ores. What matters is not the concentration of a target element but the expansion ratio — how many times the rock's volume increases when it is rapidly heated. A good crude perlite will expand to many times its original volume; material that expands less may still be mined but commands a lower price or is blended with better material. Moisture content of the crude ore also matters in practice, because excess surface moisture interferes with the furnace process downstream. For this reason, crude ore is often stockpiled and allowed to air-dry before shipment or processing.

Because expanded perlite is largely air by volume, it is uneconomic to ship long distances in its expanded state. The standard commercial logic is therefore to export crude ore and expand it at or near the point of use. This shapes the entire geography of the industry: a country like Greece ships crude ore in bulk across the world, while expansion plants are built close to the construction sites, horticultural operations, and filtration facilities that consume the product.

What pulls on it

Perlite is consumed in three broad areas: construction, horticulture, and industrial filtration. In construction it appears as a lightweight aggregate in plaster and ceiling tiles, and as a loose-fill insulation in cavity walls and around cryogenic tanks. In horticulture it is used as a growing medium component — mixed with peat, coir, or other substrates — because it retains air around plant roots while resisting compaction and biological decay. In filtration it acts as a filter aid, forming a porous cake through which liquids such as beer, wine, edible oils, and pharmaceuticals are clarified. These three markets pull on perlite for quite different reasons, which means demand is spread across sectors with different economic cycles.

Construction demand follows the level of building activity and renovation, particularly in regions where lightweight plaster systems are standard practice. Horticultural demand has been growing as controlled-environment agriculture — greenhouse cultivation in particular — expands to supply urban markets and to extend growing seasons in northern climates. The inert, repeatable character of perlite makes it attractive where growers need a substrate that does not introduce pathogens or variable nutrients. Filtration demand is relatively stable, tied to the production volumes of the food and beverage industries, though it is subject to competition from alternative filter aids.

A sharp change in demand would most likely follow either a major shift in construction methods away from lightweight plaster systems, or a sustained substitution of alternative substrates in horticulture. Neither appears imminent in the near term, but the horticultural sector is actively evaluating materials such as coir and expanded clay aggregate, and any significant cost advantage for those alternatives could erode perlite's position. Demand is also sensitive to energy costs at the expansion plant level: because the crude ore must be expanded near the point of use, a sharp rise in local energy prices can make the expanded product less competitive against substitutes.

数値の読み方に注意してください。 Gross weight of crude perlite, not the expanded product. Crude ore, then expanded on or near the point of use because it is uneconomic to ship air.

Production

Productionthousand metric tons 2025 (推定値) 世界合計 4,600 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Gross weight of crude perlite, not the expanded product. · 出典 ↗

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生産 世界に占める割合
China 1,500 32.6%
Turkey 1,400 30.4%
Greece 840.0 18.3%
United States 460.0 10.0%
Hungary 80.00 1.7%
Iran 70.00 1.5%
Slovakia 40.00 0.9%
Georgia 40.00 0.9%
Argentina 30.00 0.7%
Mexico 30.00 0.7%
Armenia 30.00 0.7%
Philippines 20.00 0.4%
New Zealand 20.00 0.4%
South Africa 10.00 0.2%
Other countries 10.00 0.2%
世界合計 4,600100%

「非開示」とは、個別企業のデータが特定されないようUSGSが数値を公表しなかったことを意味し、ゼロを意味するものではありません。出典が各数値を独立して丸め処理しており、「その他の国」の内訳を常に示しているわけではないため、各国の数値の合計が世界合計と一致しないことがあります。

埋蔵量の保有者

「埋蔵量」は厳密な用語です。既知の鉱床のうち、現在の価格と現在の技術で経済的に採掘できる部分を指し、地中に存在するすべてのものを意味するわけではありません。埋蔵量は、価格が上昇するか新たなプロセスが開発されると増加し、逆の場合は減少します。

Reserves

Reservesthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · 出典 ↗

埋蔵量世界に占める割合
Greece 180,000
United States 50,000
China 32,000
Slovakia 30,000
Iran 15,000
New Zealand Not applicable
Philippines Not applicable
South Africa Not applicable
Turkey Not applicable
Other countries Not applicable
Mexico Not applicable
Argentina Not applicable
Armenia Not applicable
Georgia Not applicable
Hungary Not applicable
世界合計 Not applicable100%

価格

average value, free on board mine, dollars per metric ton

年間平均dollars per metric ton

2021 · 64.00 高 78.00 dollars per metric ton 2025 · 78.00

基準: average value, free on board mine, dollars per metric ton. 以下に公表された年間平均値: USGS Mineral Commodity Summaries 2026 · 出典 ↗. これらは参照用の年間平均値であり、リアルタイムの市況相場ではない。

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