This tool makes a hot flame. 

This tool makes a hot flame. 

Gas flows up through a tube. Small holes let air in. When the air and gas mix, the flame gets hot. This makes a blue flame.
A blue flame is very hot. It does not leave black marks. A yellow flame is cooler. It is bright but can be dirty. 
Scientists use it to heat things. They also use it to clean tools. It is a helpful tool for science.
A Bunsen burner is a tool used in science labs. 
The burner uses gas to work. This gas can be natural gas or propane. The gas flows through a tube. 
You can change how the flame looks. If you let in more air, the flame turns blue. A blue flame is very hot. It is also clean and leaves no soot. If you close the air slots, the flame turns yellow. We call this a luminous flame. 
To use it, scientists often place the burner under a tripod. A tripod is a three-legged stand. It holds a beaker or a jar over the heat. You should always use a heatproof mat. This keeps the lab bench safe from the heat.
A Bunsen burner is a special tool used in science labs. 

To make a flame, gas flows through a metal tube. 
Robert Bunsen helped create this design in Germany. 
There are different ways the flame can look. A blue flame is very hot and clean. This happens when you let in plenty of air. A yellow flame is much cooler. This is called a luminous flame. It is bright because of tiny soot particles. However, this yellow flame can leave black carbon on things. You can also use different types of burners. The Meker burner can reach 1,200 °C. The Tirrill burner can reach even higher at 1,560 °C.
Using a Bunsen burner is a bit like using a stove. You might use a tripod to hold a beaker over the heat. 
A Bunsen burner is a specialized piece of laboratory equipment used to produce a single open gas flame. 

The operation of the burner relies on a continuous stream of flammable gas. This gas might be natural gas, which is mostly methane. It could also be a liquefied petroleum gas, such as propane or butane. The gas travels through a hose connected to a nozzle on a laboratory bench. It flows up through the base of the burner via a small hole in the barrel. 
Users can control the flame by adjusting the amount of air that enters the barrel. This is done by opening or closing the air slots at the base. This mechanism works similarly to a choke in a carburettor. If the collar is adjusted to allow more air, the flame burns hotter and appears blue. This is a complete combustion reaction because the gas has a stoichiometric amount of oxygen. However, if the air holes are closed, the gas only mixes with air at the point of combustion. This results in an incomplete reaction that produces a cooler, bright yellow flame. This is often called a luminous flame or a "safety flame." The yellow light comes from small soot particles being heated to incandescence. This "dirty" flame is known to leave a layer of carbon on the objects it heats.
The history of this device began in 1852 at the University of Heidelberg. Robert Bunsen was hired by the university and promised a new laboratory building. The city was installing coal-gas street lighting, and gas lines were laid to the new lab. The building designers wanted to use gas for both lighting and laboratory fuel. Bunsen wanted to create a burner that was economical, simple, and reached high temperatures. He sought to minimize luminosity, as luminosity represents lost heating energy. In late 1854, Bunsen suggested design principles to a mechanic named Peter Desaga. Desaga built a prototype based on these ideas. When the building opened in 1855, Desaga had produced 50 burners for Bunsen's students. Bunsen published a description of the design two years later, and it was soon adopted worldwide.
There are several different types of burners based on this same principle. The Teclu burner has a conical lower tube with a round screw nut. This nut regulates the air influx and can achieve higher temperatures than a standard Bunsen burner. The Meker burner is wider and features more openings to allow for better air mixing. It has a wire grid at the top that separates the flame into an array of smaller flames. This grid also prevents flashback, which is a risk when using high air-to-fuel ratios. A Meker burner can reach temperatures between 1,100 and 1,200 °C. Finally, the Tirrill burner includes a needle valve at the base. This allows the user to regulate the gas intake directly at the burner. This model can reach a maximum temperature of 1,560 °C.
When using a burner, safety and stability are very important. A burner is typically placed underneath a laboratory tripod. 
The Bunsen burner connects to many different scientific fields. It is a fundamental tool in chemistry for studying reactions and combustion. In biology, it is essential for maintaining sterile environments. The ability to control flame temperature and cleanliness makes it versatile for many experiments. Whether using a standard model or a high-temperature Tirrill burner, the device remains a staple of modern science.
🖼️ Images & Media (3)
More to explore
✨ What else?
Related topics you might enjoy
What is Nepedia?
A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.