We get metal from rocks. 
We get metal from special rocks. 
First, we use very high heat. We also add a special material. This material helps pull the metal out. It takes the oxygen away from the rock.
Sometimes, we must heat the rock first. This is called roasting. It gets rid of the bad parts. 
Next, we use a big furnace. The heat makes the metal separate. The unwanted parts turn into a waste called slag. 
Now we have pure metal! We use it for many things.
We get metals from special rocks called ores. 
Sometimes, we must heat the ore first. This step is called roasting. Roasting gets rid of sulfur. It leaves behind an oxide. This makes it easier to get the metal later. 
During smelting, we often add flux. Flux is a material that binds to unwanted parts. These parts turn into a waste called slag. Slag is easy to remove. 
Smelting is a way to get pure metals out of rocks called ores. 

The way it works involves several important steps. First, some ores undergo roasting. This means heating the ore with air to turn sulfur into a gas. This leaves behind an oxide, which is easier to change into metal. Next comes reduction, the final high-heat step. A carbon source, like coke, creates carbon monoxide gas. This gas pulls oxygen atoms away from the ore. This leaves behind the pure metal. 
Humans have been smelting for a very long time. People in the Old World started doing this over 8,000 years ago. This discovery changed history by creating the Bronze Age and the Iron Age. In the Americas, people in the Andes mastered copper and silver smelting long ago. They did this at least six centuries before Europeans arrived in the 1500s. They were very skilled, even if they did not smelt iron for weapons. This shows that different groups of people learned these hard jobs on their own.
There are many different kinds of smelters used today. Some are custom smelters that treat ore for many different customers. Other ones are integrated smelters that sit right next to a mine. A blast furnace is a famous type used to make pig iron. For aluminum, plants use electricity in special cells. 
You can see how smelting connects to the tools you use every day. The steel in a spoon or a building often starts as iron from a furnace. Even the wires in a computer might come from copper that was smelted. Ancient people used lead pipes to move water in Greece and Rome. They even used lead as a mortar to hold stones together in buildings. Learning how to use heat to change rocks helped humans build the modern world. It turned simple stones into the metal objects we rely on now.
Smelting is a specialized form of extractive metallurgy used to obtain pure metals from ores. In nature, most metals do not exist in their pure, elemental form. Instead, they are usually found as chemical compounds. These compounds often consist of a metal bonded to elements like oxygen, sulfur, or carbon. Smelting uses extreme heat and a chemical reducing agent to break these chemical bonds. This process decomposes the ore and drives off unwanted elements as gases or slag. By doing this, workers can extract essential base metals like iron, copper, silver, tin, lead, and zinc. 
The process often begins with a step called roasting. This is especially important for sulfide ores, which are common sources of copper, zinc, and lead. Roasting involves heating the ore in an environment filled with oxygen from the air. This process oxidizes the ore and turns the sulfur into sulfur dioxide gas. By removing the sulfur, the ore is converted into an oxide. Oxides are much easier to reduce into pure metal during the next stage. 
Reduction is the final, high-temperature step in the smelting sequence. During reduction, the metal oxide is transformed into elemental metal. This requires a reducing environment, which is often created by carbon monoxide gas. This gas is produced through the incomplete combustion of a carbon source, such as coke or charcoal, in an air-starved furnace. The carbon source acts as a chemical reactant. It pulls oxygen atoms away from the ore. This happens because the chemical potential energy of the bonds in carbon dioxide is lower than the bonds in the ore. As the carbon monoxide reacts with the ore, it releases carbon dioxide and leaves the purified metal behind. 
To ensure the metal is high quality, workers often add a material called flux. Fluxes, such as limestone or dolomite, are added to the ore to catalyze reactions. They chemically bind to unwanted impurities, such as silicon, phosphorus, or sulfur. These impurities combine with the flux to create a substance called slag. Slag is a waste product that can be easily separated and discarded. Additionally, the molten slag provides a protective cover on the purified metal. This layer prevents the hot metal from touching oxygen, which stops new impurities from forming.
Smelters are generally classified into two distinct business types. Custom smelters treat ore on behalf of various customers or buy ore specifically for treatment. These facilities often receive ore concentrates from many different mines. In contrast, integrated smelters depend on one specific mining operation. Because of this close relationship, integrated smelters are typically located directly next to the mine. There are also many different technological varieties of furnaces used today. For example, flash smelters are very common and account for over 50% of the world's copper smelters. Other types include the Noranda furnace, the Isasmelt furnace, and the Mitsubishi smelting reactor. 
The history of smelting is deeply tied to the development of human civilization. In the Old World, humans learned to smelt metals over 8,000 years ago. This ability allowed societies to transition from the Stone Age into the Bronze Age and the Iron Age. Copper was likely the first metal to be smelted, possibly starting in pottery kilns. The earliest evidence of copper smelting comes from Serbia, dating between 5500 BC and 5000 BC. In the Americas, pre-Inca civilizations in the Andes mastered copper and silver smelting at least six centuries before Europeans arrived. While they were experts at these metals, they did not master iron smelting for weapons. 
Different metals have unique properties and historical uses. Iron smelting often occurred in a bloomery, which kept temperatures low enough so the iron did not melt. This produced a spongy mass called a bloom, which workers had to hammer into wrought iron. Lead was also widely used, though it was too soft for weapons. In Ancient Greece and Rome, people used lead for water pipes and as mortar in stone buildings. Even today, the scale of smelting is massive. For instance, iron oxide can be turned into metallic iron at roughly 1250 °C. This is nearly 300 degrees below the actual melting point of iron, which is 1538 °C. This shows how much chemistry is required to manage these powerful elements.
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