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Soda Ash

工业矿物

Soda Ash

Sodium carbonate, mined from trona rock or made from salt, and the second ingredient in almost every sheet of glass.

Trona - USGS Mineral Specimens 1116 · Andrew Silver · Public domain · Wikimedia Commons

这是什么?

Sodium carbonate, mined from trona rock or made from salt, and the second ingredient in almost every sheet of glass.

为何重要?

Solar-panel glass, container glass and flat glass all pull on the same soda-ash supply.

Where it is in the Earth

Soda ash is sodium carbonate, and its geological story begins with water — specifically, ancient lakes that had no outlet to the sea. In a closed basin, water flows in carrying dissolved minerals leached from surrounding rocks, but it cannot flow out. Over thousands to millions of years, evaporation concentrates whatever the water holds. Where the catchment rocks were rich in sodium and carbonate, the lake brine eventually reached the point at which solid minerals began to crystallise on the lake floor. The most important of these minerals is trona, a hydrated sodium carbonate bicarbonate, which forms thick, laterally extensive beds interbedded with other evaporite minerals and mudstones. The process is directly analogous to the formation of halite (rock salt) beds, but it requires a particular chemistry in both the source rocks and the brine.

The result is that commercially significant trona deposits are geographically rare. The United States holds by far the largest known reserves, concentrated in the Green River Basin of Wyoming, where a chain of Eocene-age lakes — perhaps 50 million years old — left behind a sequence of trona beds lying beneath the surface. Turkey holds the second-largest reserves, at the Beypazari deposit near Ankara, which formed under broadly similar lacustrine conditions. East African examples in Kenya, Ethiopia and Botswana represent younger, and in some cases still-active, soda lakes in the Rift Valley system, where the same process of closed-basin evaporation continues today at shallower depths. Outside these settings, sodium carbonate does not naturally concentrate to mineable grades; everywhere else, soda ash must be manufactured synthetically from salt and limestone.

The synthetic route — the Solvay process, developed in the nineteenth century — dominates production in China and much of Europe and Asia, where natural trona deposits do not exist. The world production figures in the table reflect this split: of total global output, a substantial portion comes from the synthetic route, with the remainder from natural trona mining. Understanding which category a country falls into matters for cost structure, energy intensity and carbon footprint, since the Solvay process is considerably more energy-intensive than simply mining and calcining trona.

Getting it out

Where trona beds lie close enough to the surface, open-pit mining is possible, as at some of the East African soda-lake operations where mineralised brines or shallow crusts are worked directly. In Wyoming, however, the principal trona seams sit several hundred metres underground, which makes conventional room-and-pillar underground mining the standard method. In this technique, miners drive a network of rectangular tunnels through the ore seam, leaving behind rectangular columns — the pillars — to hold up the roof. The pillars represent ore that cannot be recovered, so the extraction ratio (the proportion of ore actually removed) is determined by the trade-off between recovery and ground stability. The beds at Green River are thick enough and consistent enough in grade that this method is highly productive.

A third approach, solution mining, is also used in Wyoming. Hot water is pumped underground through injection wells, dissolves the trona in place, and the resulting brine is pumped back to surface for processing. This avoids the cost and hazard of underground mining entirely and can access seams too deep or too thin for conventional methods. The trade-off is that not all of the trona dissolves cleanly, and the brine brought to surface carries impurities that require additional processing steps. In the East African Rift lakes, a simpler version of this logic applies: at Lake Natron in Tanzania and Lake Magadi in Kenya, trona and related minerals are harvested directly from the lake surface or shallow waters, a form of extraction that has more in common with salt harvesting than with hard-rock mining.

Because trona is a relatively soft, water-soluble evaporite mineral rather than a hard silicate rock, the waste rock ratios typical of metal mines do not apply in the same way. The challenge is less about separating ore from barren rock and more about removing water, impurities and associated minerals such as halite or nahcolite from a relatively pure sodium carbonate source. Grade in this context means the sodium carbonate equivalent content of the raw trona, and the conversion from trona to soda ash involves driving off water and carbon dioxide by heating — a step called calcination — rather than any chemical separation of the carbonate from a surrounding silicate matrix.

What pulls on it

Glass is the dominant use of soda ash, and this covers a wide range of products: container glass for food and beverages, flat glass for buildings and vehicles, and the borosilicate and speciality glasses used in cookware, laboratory equipment and display screens. In each case, sodium carbonate acts as a flux — it lowers the temperature at which silica sand melts, reducing the energy required to produce molten glass. Without soda ash, the melting points involved would make glass production far more expensive and energy-intensive than it already is. This flux function is not easily replicated by other cheap materials, which is why glass has consumed soda ash in large quantities for centuries and continues to do so.

The energy-transition connection runs through solar glass. Photovoltaic modules — both the crystalline silicon type and cadmium telluride thin-film panels — require high-quality flat glass for their cover layers or substrates. The intensity figures in the table show that each megawatt of installed solar capacity requires a significant quantity of soda ash, which means that rapid growth in solar manufacturing translates directly into additional soda ash demand. Container glass demand tends to track consumer goods production and, over longer timescales, population and income growth. Flat glass for construction follows building activity. Detergents and cleaning products represent another significant end use, since sodium carbonate is an effective water softener and alkali in its own right.

For demand to change sharply downward, glass would need to be displaced at scale by alternative packaging or glazing materials — plastics in containers, organic films in solar panels — or the solar build-out would need to slow substantially. For a sharp increase, the scenario is simpler: continued acceleration of solar panel manufacturing would pull hard on soda ash supply, and there is no obvious short-term substitute for glass in that application. The growth in solar deployment in recent years has already made the energy-transition end use a more prominent part of the demand picture than it was a decade ago.

正确读取数据。 Natural and synthetic production combined, gross weight. Dense and light soda ash.

其在岩石中的来源

所有含矿矿物 →

实际承载以下内容的矿物: soda ash. 只有其中某种物质的富集程度足以覆盖开采成本,矿床才能成为矿体。

该材料已发布多个系列。 USGS 将这些数据分开报告,因为它们衡量的是不同事项——矿山产量与精炼厂产量,或不同的化学基准。它们以独立表格呈现,切勿将其合并相加。

Mine production: Natural

Mine production: Naturalthousand metric tons 2025 (估计值)

USGS Mineral Commodity Summaries 2026 · Natural and synthetic production combined, gross weight. · 来源 ↗

横向滚动表格以查看其余列。

国家/地区产量 占全球份额
United States 12,000
Turkey 6,000
Botswana 290.0
Kenya 270.0
Ethiopia 18.00
Other countries Not applicable

Mine production: natural and synthetic, rounded

Mine production: natural and synthetic, roundedthousand metric tons 2025 (估计值) 全球合计 71,000 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Natural and synthetic production combined, gross weight. · 来源 ↗

横向滚动表格以查看其余列。

国家/地区产量 占全球份额
全球合计 71,000100%

Mine production: natural, rounded

Mine production: natural, roundedthousand metric tons 2025 (估计值) 全球合计 19,000 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Natural and synthetic production combined, gross weight. · 来源 ↗

横向滚动表格以查看其余列。

国家/地区产量 占全球份额
全球合计 19,000100%

Mine production: synthetic

Mine production: syntheticthousand metric tons 2025 (估计值) 全球合计 52,000 thousand metric tons

USGS Mineral Commodity Summaries 2026 · Natural and synthetic production combined, gross weight. · 来源 ↗

横向滚动表格以查看其余列。

国家/地区产量 占全球份额
全球合计 52,000100%

"未披露"表示美国地质调查局(USGS)为避免泄露单个企业数据而对该数字进行了保密处理——并不意味着数值为零。各国行数之和不一定等于世界合计,原因在于来源对每个数字单独进行四舍五入处理,且并不总是单独列出"其他国家/地区"一行。

储量持有方

"储量"是一个严格的术语。它是指已知矿床中,按当前价格和当前技术,在经济上可行的可采部分——而非地下所有存量。当价格上涨或新工艺出现时,储量增加;当价格下跌时,储量减少。

Reserves: Natural

Reserves: Naturalthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · 来源 ↗

国家/地区储量占全球份额
United States 23,000,000
Turkey 840,000
Ethiopia 400,000
Other countries 280,000
Botswana 16,000
Kenya 7,000

Reserves: natural and synthetic, rounded

Reserves: natural and synthetic, roundedthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · 来源 ↗

国家/地区储量占全球份额
全球合计 Not available100%

Reserves: natural, rounded

Reserves: natural, roundedthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · 来源 ↗

国家/地区储量占全球份额
全球合计 25,000,000100%

Reserves: synthetic

Reserves: syntheticthousand metric tons 2025

USGS Mineral Commodity Summaries 2026 · 来源 ↗

国家/地区储量占全球份额
全球合计 Not available100%

价格

average unit value of sales (natural source), free on board (f.o.b.) mine or plant: Dollars per metric ton

年度平均值dollars per metric ton

2021 · 133.4 高 211.5 dollars per metric ton 2025 · 150.0

基准: average unit value of sales (natural source), free on board (f.o.b.) mine or plant: Dollars per metric ton. 年度平均值,来源: USGS Mineral Commodity Summaries 2026 · 来源 ↗. 以下为参考年度均价,非实时市场报价。

average unit value of sales (natural source), free on board (f.o.b.) mine or plant: Dollars per short ton

年度平均值dollars per short ton

2021 · 121.0 高 191.8 dollars per short ton 2025 · 140.0

基准: average unit value of sales (natural source), free on board (f.o.b.) mine or plant: Dollars per short ton. 年度平均值,来源: USGS Mineral Commodity Summaries 2026 · 来源 ↗. 以下为参考年度均价,非实时市场报价。

终端市场其在彼处的用途重要性
Solar Power Cover glass 重要

某项技术的需求用量

"强度"是指单位产品所含某种材料的用量。此处为参考区间——实际用量因制造商和年型而异,且随着工程师不断探索减量化设计,所有数值均呈下降趋势。
技术数量 报价基准
Cadmium Telluride Thin-Film Module 1,500–3,000 kg per MW of capacityGlass superstrate
Crystalline Silicon Solar Module 1,000–2,500 kg per MW of capacityCover glass

Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. 在物料计算器中按任意规模运行这些数据 →

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