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Steelmaking

technology Maturity 11-13 evolution
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People make steel from iron.

SteelMill interior.jpg
SteelMill interior.jpg
It is a very strong metal. We use it for many things. It helps build our world. Do you see steel near you?
Bethlehem Steel.jpg
Bethlehem Steel.jpg

32 words

Steel is a very strong metal.

SteelMill interior.jpg
SteelMill interior.jpg
It is made from iron and a little bit of carbon.
Evolution convertisseurs.svg
Evolution convertisseurs.svg
People melt iron to turn it into steel. This is called primary steelmaking. Next, they add other things to the metal. This helps make different kinds of steel.
Bethlehem Steel.jpg
Bethlehem Steel.jpg
Finally, they shape the hot metal. It can become long bars or flat sheets. This is how we make things like wires. Steel helps us build a big world.

80 words

Steel is a strong and useful metal.

SteelMill interior.jpg
SteelMill interior.jpg
It is made by mixing iron with a little carbon. This carbon helps make the metal strong.
Evolution convertisseurs.svg
Evolution convertisseurs.svg
Making steel happens in three main steps.

First is primary steelmaking. This is the way workers melt iron. One common way is basic oxygen steelmaking. This uses pure oxygen to turn iron into steel. Another way uses electric arc furnaces. These furnaces use scrap steel to make new metal.

Bethlehem Steel.jpg
Bethlehem Steel.jpg

Second is secondary steelmaking. In this step, workers use large tools called ladles. They add other elements to the liquid metal. This helps make different grades of steel.

Third is tertiary steelmaking. This is when the metal is shaped. Most steel uses continuous casting. The hot metal flows into a mold. It comes out as a long, red-hot strand. Then, heavy rollers squeeze the metal. This makes it flat or into long bars.

Steelmaking is a very big industry. It uses a lot of power. It also lets out gases that can change the Earth's air. Scientists are looking for new ways to make steel using hydrogen. This might help keep the air cleaner.

193 words

Steel is a very strong and useful metal.

SteelMill interior.jpg
SteelMill interior.jpg
It is made by mixing iron with a small amount of carbon. Pure iron is not very strong on its own. Adding less than 1 percent carbon makes it much tougher. This metal is malleable, which means it is easy to shape. Workers can also add other elements like nickel or chromium. These additions create different grades of steel for different jobs.
Evolution convertisseurs.svg
Evolution convertisseurs.svg

Modern steelmaking follows three main steps. First is primary steelmaking, where iron is melted into steel. One way is basic oxygen steelmaking (BOS). In this method, pure oxygen is blown through liquid pig-iron. This removes excess carbon and other impurities. Another way is the electric arc furnace (EAF). This method uses scrap steel or direct reduced iron to make new metal.

Bethlehem Steel.jpg
Bethlehem Steel.jpg

After the metal is melted, it moves to secondary steelmaking. This step often uses large tools called ladles. Workers use these ladles to add or remove specific elements. They might add alloys to change the metal's properties. They also use it to remove dissolved gases. This careful control helps produce high-quality steel with very exact traits. The final stage is tertiary steelmaking, where the metal is shaped.

Högbo bruk 07.jpg
Högbo bruk 07.jpg

Making steel has a long and interesting history. People in China, India, and Rome used early methods. In the 11th century, people in East Asia used a method to remove carbon. A government official named Shen Kuo described this in 1075. Later, the Bessemer process changed everything in the 1850s. This allowed steel to be made in huge amounts. It made steel a vital part of the global economy.

MandelsloJAC1228.JPG
MandelsloJAC1228.JPG

Today, steelmaking is a massive global industry. It is also a very large source of greenhouse gas emissions. In 2020, it was responsible for 7% of energy sector emissions. Making 1 ton of steel can emit 1.8 tons of carbon dioxide. Because of this, scientists are looking for cleaner ways to work. They are testing ways to use green hydrogen instead of coal. This could help make the process much better for our planet.

349 words

Steel is a versatile and incredibly strong material used in almost every part of modern life.

SteelMill interior.jpg
SteelMill interior.jpg
While pure iron is not very strong, adding a small amount of carbon changes its properties. If the carbon concentration is kept below 1 percent, the metal becomes malleable and tough. This means it can be shaped and formed without breaking easily. To create specific grades of steel, manufacturers remove impurities like nitrogen, silicon, phosphorus, and sulfur. They also add alloying elements such as manganese, nickel, chromium, and vanadium. These precise chemical adjustments allow steel to be customized for different industrial needs.

Modern steelmaking is organized into three distinct stages: primary, secondary, and tertiary. Primary steelmaking is the first step where iron is melted to create steel. Secondary steelmaking follows this by refining the metal through the addition or removal of elements. Finally, tertiary steelmaking involves casting and shaping the molten metal into finished products.

Evolution convertisseurs.svg
Evolution convertisseurs.svg
This structured process ensures that the metal reaches the exact strength and quality required for its eventual use.

In the primary stage, two major commercial methods are used: Basic Oxygen Steelmaking (BOS) and Electric Arc Furnace (EAF) steelmaking. BOS involves melting carbon-rich pig iron, which is produced in a blast furnace. Pure oxygen is blown through the molten pig iron to oxidize the carbon. This chemical reaction turns the iron into steel. To protect the vessel from the intense heat and corrosive metal, the container is lined with refractories like calcium oxide and magnesium oxide. In 2013, the BOS method accounted for 70% of global steel output.

Bethlehem Steel.jpg
Bethlehem Steel.jpg
Alternatively, the EAF method uses scrap steel or direct reduced iron (DRI) as its main feed. These furnaces typically have a 100-tonne capacity and can produce steel every 40 to 50 minutes.

Once the primary melting is complete, the metal moves to secondary steelmaking. This stage often takes place in large tools called ladles. Operators perform several critical tasks here, such as de-oxidation, which is also called "killing" the steel. They may also use vacuum degassing to remove dissolved gases or add specific alloys to the mix. This step allows for tight control over the metallurgy. By managing the chemistry in these gas-stirred ladles, manufacturers can produce high-grade steel with very narrow tolerances.

The final stage is tertiary steelmaking, where the liquid metal is solidified and shaped. The most common method is continuous casting, which is used for over 95% of global production. In this process, molten steel flows from a ladle into a tundish and then through a water-cooled copper mold. The steel emerges as a continuous, red-hot strand that is straightened and cut into shapes like slabs, blooms, or billets.

Högbo bruk 07.jpg
Högbo bruk 07.jpg
An older method called ingot casting is still used for extremely large components, such as generator shafts, or for specific high-alloy steels that exceed the capacity of continuous casters.

The history of steelmaking shows a long evolution from small-scale arts to massive industrial processes. Early methods existed in China, India, and Rome, using simple tools like the bloomery. In the 11th century, the Song dynasty in China developed a method of "partial decarbonization" through repeated forging. This was described by the official Shen Kuo in 1075. In Europe, the cementation process involved heating iron with charcoal for up to a week to create blister steel. Later, Benjamin Huntsman developed the crucible technique in 1740, which greatly improved quality.

MandelsloJAC1228.JPG
MandelsloJAC1228.JPG
The Bessemer process, commercialized in the 1850s, revolutionized the industry by allowing steel to be made in high quantities and at a much lower cost.

Despite its importance, steelmaking is a major source of environmental impact. The industry is one of the most carbon emission-intensive sectors in the world. In 2020, it was responsible for 7% of greenhouse gas emissions in the energy sector. On average, making 1 ton of steel emits about 1.8 tons of carbon dioxide. Much of this comes from using coal in the blast furnace process. To address this, scientists are exploring new technologies. These include the HIsarna process, which is more energy-efficient, and the use of renewable hydrogen to reduce iron ore without using fossil fuels.

687 words
🖼️ Images & Media (5)
File:SteelMill interior.jpg
SteelMill interior.jpg
File:Bethlehem Steel.jpg
Bethlehem Steel.jpg
File:MandelsloJAC1228.JPG
MandelsloJAC1228.JPG
File:Högbo_bruk_07.jpg
Högbo_bruk_07.jpg
File:Evolution convertisseurs.svg
Evolution convertisseurs.svg
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