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Laser cutting

technology Maturity 7-9

A laser is a bright light.

Lasercutting-video.ogg
Lasercutting-video.ogg
It can cut things. It can cut wood or metal. The light is very hot. It melts the edge. This makes a shape.
Laser-and-CNC-Control.jpg
Laser-and-CNC-Control.jpg
Do you like bright lights?

36 words

A laser is a very strong light.

Lasercutting-video.ogg
Lasercutting-video.ogg
It can cut through many things. It can cut wood, plastic, or metal.

A computer tells the light where to go.

Laser-and-CNC-Control.jpg
Laser-and-CNC-Control.jpg
The light is so hot that it melts the edge. Sometimes, a blast of gas blows the melted bits away. This leaves a very smooth edge.

People use these machines in many places. Schools and small shops use them too. It is a very helpful tool for making shapes.

79 words

Laser cutting is a way to cut shapes into materials.

Lasercutting-video.ogg
Lasercutting-video.ogg
It uses a very strong beam of light. This beam is called a laser. A computer guides the laser using CNC. CNC stands for computer numerical control. It is a way for a computer to direct the machine.
Laser-and-CNC-Control.jpg
Laser-and-CNC-Control.jpg

To start, the laser makes a small hole. This is called a pierce. It can take 5 to 15 seconds for stainless steel. Then, the beam moves to follow a pattern. The light is so hot it can melt or burn the material. Sometimes, a jet of gas blows the melted bits away. This is called melt and blow. This leaves a very smooth edge.

Many machines use different types of lasers. Some use gas, like CO2 lasers. Others use solid parts, like fiber lasers. Fiber lasers are very good at cutting shiny metals. They use less power and work fast.

CNC Laser Cutting Machine.jpg
CNC Laser Cutting Machine.jpg
People use these tools in schools and big factories. They can cut wood, plastic, and many metals.

173 words

Laser cutting is a special way to shape materials.

Lasercutting-video.ogg
Lasercutting-video.ogg
It uses a beam of light to cut through things. This light is very strong and carries a lot of heat. Many different people use this tool today. It is used in big factories for making parts. It is also used in schools and by hobbyists.
Laser cutting CAD and physical part.png
Laser cutting CAD and physical part.png
This technology helps make shapes that are very precise.

The way it works begins with a computer. A system called CNC, or computer numerical control, guides the beam.

Laser-and-CNC-Control.jpg
Laser-and-CNC-Control.jpg
The machine follows a pattern called G-code. First, the laser must make a small hole called a pierce. For stainless steel, this might take 5 to 15 seconds. Then, the focused beam hits the material. The heat can melt, burn, or vaporize the material. Sometimes, a jet of gas blows the melted bits away. This leaves a very smooth edge on the part.

People have been using lasers to cut things for a long time. The first production laser cutting machine appeared in 1965. The Western Electric Engineering Research Center made it. They used it to drill holes in diamond dies. In 1967, people in Britain used oxygen jets to help cut metal. By the early 1970s, lasers were used to cut titanium for planes. At that time, CO2 lasers were used to cut things like cloth. They were not strong enough to cut metal back then.

There are different types of lasers for different jobs.

CNC Laser Cutting Machine.jpg
CNC Laser Cutting Machine.jpg
CO2 lasers use a mix of gases like carbon dioxide and nitrogen. Fiber lasers are a newer type that uses a solid material. Fiber lasers are great because they can cut shiny metals like copper. They are also very fast and use less energy. Some lasers use 1500 watts of power. Newer industrial machines can use up to 6000 watts. This helps them cut through much thicker pieces of metal.

You can think of a laser like a very tiny, hot knife. Instead of a metal blade, it uses light to do the work. This is better than old mechanical tools because the laser does not wear down. It also does not get dirty from the material it cuts.

Industrial 4kW laser with flying optics system.jpg
Industrial 4kW laser with flying optics system.jpg
Lasers can cut many things like wood, plastic, and aluminum. They can even cut glass by making tiny cracks. This makes them a very important tool in our modern world.

407 words

Laser cutting is an industrial technology that uses a concentrated beam of light to vaporize or melt materials. This process creates precise edges in a wide variety of substances. While once limited to specialized factories, laser cutting is now common in schools, small businesses, and architecture.

Lasercutting-video.ogg
Lasercutting-video.ogg
This technology is valued because it offers high precision and reduces material contamination. Unlike mechanical tools, a laser beam does not wear down during use. This allows for consistent accuracy throughout the entire cutting process.

The mechanism of laser cutting relies on high-power light and computer guidance. A system called Computer Numerical Control, or CNC, directs the laser beam. The machine follows a specific pattern known as G-code.

Laser-and-CNC-Control.jpg
Laser-and-CNC-Control.jpg
Before the main cut begins, the machine must perform a pierce. This involves using a high-power pulsed beam to create a starting hole. For stainless steel, this piercing process can take between 5 and 15 seconds. Once the hole is made, a lens focuses the laser into a tiny, intense spot. Depending on the material, the beam causes the surface to melt, burn, or vaporize. Often, a jet of gas is used to blow the molten material away from the edge. This leaves a high-quality surface finish on the workpiece.
Laser cutting CAD and physical part.png
Laser cutting CAD and physical part.png

There are several distinct methods used to cut different materials. Vaporization cutting is often used for non-melting materials like wood, carbon, or certain plastics. In this method, the beam heats the surface to a flashpoint to create a keyhole. As the material boils, the resulting vapor erodes the walls to enlarge the hole. Another method is melt and blow, or fusion cutting, which is common for metals. This process heats the material to its melting point and uses high-pressure gas to blow the molten bits out. For brittle materials like glass, engineers use thermal stress cracking. The laser causes localized heating and expansion, which creates a crack that can be guided along a path.

CNC Laser Cutting Machine.jpg
CNC Laser Cutting Machine.jpg

Different types of lasers serve different industrial needs. CO2 lasers use a gas mixture, such as carbon dioxide, helium, and nitrogen. These can be excited by passing a direct current (DC) through the gas or by using radio frequency (RF) energy. RF methods are becoming more popular because they use external electrodes. This prevents the erosion and plating issues found in DC designs. Another major type is the fiber laser, which is a solid-state laser. Instead of gas, it uses a solid gain medium and amplifies the beam within a glass fiber. Fiber lasers are highly efficient and can process reflective metals like copper and brass. They also produce an extremely small spot size, which can be 100 times smaller than a CO2 laser spot.

Industrial 4kW laser with flying optics system.jpg
Industrial 4kW laser with flying optics system.jpg

The history of this technology shows rapid advancement. The first production laser cutting machine was created in 1965 by the Western Electric Engineering Research Center. It was used to drill holes in diamond dies. In 1967, British researchers pioneered laser-assisted oxygen jet cutting for metals. By the early 1970s, the technology was used to cut titanium for the aerospace industry. At that time, CO2 lasers were primarily used for non-metals like textiles. This was because early CO2 lasers lacked the power to overcome the thermal conductivity of metals.

Laser cutting offers significant advantages in terms of precision and scale. Modern industrial lasers can reach power ratings of 6000 watts. This is a large increase from early machines that were rated at 1500 watts. Higher power allows lasers to approach the thickness capabilities of plasma cutting machines. However, the capital cost for these high-power lasers is much higher than plasma systems. In terms of accuracy, laser cutters can achieve a positioning accuracy of 10 micrometers. They also demonstrate high repeatability of 5 micrometers. This precision allows for tolerances as close as 0.001 inch.

Dual Pallet Flying Optics Laser.jpg
Dual Pallet Flying Optics Laser.jpg

Industrial machines are organized into three main configurations based on how they move. Moving material lasers keep the cutting head stationary and move the workpiece underneath. This method is often the slowest but requires fewer optics. Hybrid lasers use a table that moves in one axis, typically the X-axis, while the head moves along the Y-axis. This provides a more constant beam path and can reduce power loss. Finally, flying optics lasers feature a stationary table and a moving laser head. This configuration allows the beam to move across the material to perform the cut.

Industrial 4kW laser with flying optics system.jpg
Industrial 4kW laser with flying optics system.jpg

751 words
🖼️ Images & Media (7)
File:LaserCutter.jpg
LaserCutter.jpg
Lasercutting-video.ogg
File:Laser cutting CAD and physical part.png
Laser cutting CAD and physical part.png
File:Laser-and-CNC-Control.jpg
Laser-and-CNC-Control.jpg
File:CNC Laser Cutting Machine.jpg
CNC Laser Cutting Machine.jpg
File:Dual Pallet Flying Optics Laser.jpg
Dual Pallet Flying Optics Laser.jpg
File:Industrial 4kW laser with flying optics system.jpg
Industrial 4kW laser with flying optics system.jpg
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