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¿Cómo funciona un láser de fibra??

Fiber Laser Work

Láseres de fibra are highly efficient, Herramientas precisas utilizadas en diversas industrias para tareas como cortar., grabado, and marking. Understanding how they work requires exploring their history, components, and the science behind laser technology.


What Are Fiber Lasers?

Láseres de fibra are a specific type of laser where the active medium that generates the laser beam is an optical fiber. These fibers are doped with rare earth elements like erbium, iterbio, or neodymium, which allow the fiber to amplify the light inside. Unlike CO2 lasers that use gas, fiber lasers rely on these elements to enhance and guide light into a fine, concentrated beam.

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When Was the Fiber Laser Invented? The History of LASERS

The foundation of láser de fibra technology dates back to the early 1960s with the invention of the laser itself. El término “LASERstands for Light Amplification by Stimulated Emission of Radiation, a concept first demonstrated by Theodore Maiman in 1960. While early lasers were primarily gas-based (like CO2 lasers), tecnología láser de fibra was introduced later, around the 1980s, as advancements in optical fibers and rare-earth doping emerged. Fiber lasers quickly gained popularity for their high efficiency and low maintenance.

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Bassov (bien) and Prokhorov (left) show Towns (center) around their lab

How a Laser Works

A laser works by amplifying light and emitting it as a coherent, highly concentrated beam. It starts with a photon that excites atoms in the gain medium (in the case of fiber lasers, the optical fiber doped with rare earth elements). As these atoms return to their ground state, they release photons, which in turn stimulate more photons, creating a cascade effect that amplifies light.

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The Importance of Refraction

Refraction is crucial in laser technology as it helps guide the light within the optical fiber. The optical fiber’s core, with a higher refractive index than the cladding, traps light and forces it to propagate along the fiber’s length, even around bends. This total internal reflection ensures that the light remains confined until it exits as a powerful, focused beam.

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How Is Light Amplified?

Light amplification in fiber lasers happens when energy is introduced into the fiber through a pump diode. This energy excites the rare-earth atoms, causing them to release photons. These photons travel through the fiber core, stimulating other atoms to release even more photons in a chain reaction, ultimately producing a highly amplified and coherent laser beam.

How Is Light Turned Into a Focused Beam?

After amplification, the laser beam is collimated and focused using lentes. A collimator ensures the light travels in a parallel direction, while a focusing lens brings the laser beam to a tight focal point. This concentrated energy allows the fiber laser to cut, grabar, or mark materials with incredible precision, especially metals like stainless steel or aluminum.

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What Are the Types of Fiber Lasers?

Fiber lasers come in various types, each suited for different applications:

  • Continuous Wave (CW) Láseres de fibra: Emit a continuous beam of laser light, ideal for cutting or welding.
  • Pulsed Fiber Lasers: Emit laser pulses at set intervals, perfect for precision tasks like marking or engraving.
  • MOPA (Amplificador de potencia del oscilador maestro) Láseres de fibra: These offer more control over pulse durations and frequency, enabling detailed engraving on reflective materials like metals.
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What’s the Difference Between Fiber Lasers and CO2 Lasers?

Fiber lasers and CO2 lasers differ significantly in terms of their operational mechanisms and applications. Láseres de CO2 use gas (carbon dioxide) as the laser medium, making them excellent for cutting non-metals like wood, acrílico, o plásticos. Sin embargo, they struggle with metals. Láseres de fibra, por otro lado, are better suited for metal applications due to their shorter wavelength (~1.06 µm), which is more effectively absorbed by metal surfaces. Además, fiber lasers tend to have higher energy efficiency and lower maintenance requirements compared to CO2 lasers.


What is a Fiber Laser Engraver?

A grabador láser de fibra is a specialized machine that uses fiber laser technology to mark or engrave various materials, particularmente metales. Its precision makes it ideal for intricate designs, números seriales, códigos de barras, and logos on items like jewelry, herramientas, y componentes industriales. Unlike traditional engraving methods, a grabador láser de fibra uses a non-contact approach, minimizing wear and tear while ensuring detailed, permanent engravings.

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How Long Does a Fiber Laser Last?

One of the significant advantages of fiber lasers is their long operational life. De media, a fiber laser can last 50,000 a 100,000 horas before any major components need replacement. This longevity makes fiber lasers highly reliable and cost-effective over time, especially compared to other laser types that may require more frequent maintenance.

What Are the Components of a Fiber Laser?

A typical fiber laser consists of the following key components:

  • Pump Diode: Supplies the energy that excites the atoms in the optical fiber.
  • Optical Fiber: Doped with rare-earth elements like ytterbium or erbium, this fiber amplifies the light.
  • Resonator: Mirrors that reflect the light back and forth, increasing its intensity.
  • Collimator/Focusing Lens: Used to direct and focus the laser beam onto the workpiece.
  • Cooling System: Essential for managing the heat generated during laser operation, ensuring the system runs efficiently.
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What Are the Laser Parameters?

The performance of a fiber laser can be adjusted by modifying various parameters, incluido:

  • Salida de energía: Measured in watts, determines how much energy the laser emits.
  • Duración del pulso: In pulsed lasers, this refers to how long each laser pulse lasts.
  • Frecuencia: The number of laser pulses emitted per second.
  • Calidad del haz (M² factor): Determines the focusability of the laser beam, which directly impacts the precision of the engraving or cutting process.
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How Much Does a Fiber Laser Marking Machine Cost?

The price of a máquina de marcado láser de fibra varies depending on the power, características, y marca. Por ejemplo, el Marcador B4 grabador láser de fibra is available in different models, with prices typically ranging from $1,000 a $8,000 depending on the wattage and additional accessories. El B4-60W model offers higher power and precision for cutting thicker metals, mientras que el B4-20W model is a more affordable option for detailed engraving tasks.

Máquina de grabado láser de fibra B4 20W JPT MOPA

$3,221 $2,577 Ahorrar:$644

Portátil & Asequible: Máquina de grabado láser de fibra B4 MOPA 20W, con un peso de 18 kg y dimensiones compactas. Elevación eléctrica: Motor incorporado para un enfoque preciso. Grabado versátil: Colores sobre acero inoxidable, blanco y negro sobre aluminio, además de grabado profundo y 3D en metal y roca. Área de trabajo espaciosa: lentes duales (110milímetro, 200milímetro) con calibración precisa de punto rojo. Mejorado…

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D69 Giratorio
rotatorio D80
rotatorio de rodillos
110V
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Where to Buy a Fiber Laser Marker Machine?

If you’re looking to purchase a reliable máquina de marcado láser de fibra, Marcador B4 offers high-performance options suited for both small businesses and industrial use. You can buy the ComMarker B4 series directly from the official ComMarker website, where you can explore different models like the B4-60W and B4-20W. These machines are also available on e-commerce platforms or through authorized distributors.

Acerca de David Lee

Hola, soy david lee, Soy un grabador láser comercial profesional apasionado y creativo y especialista en marcado con una gran experiencia y una amplia gama de conocimientos.. sobre el pasado 10 años, Me he centrado en grabadores láser y soluciones de marcado para diversos proyectos comerciales. Soy sensible a las nuevas tecnologías y tendencias de diseño. ,Buscando constantemente la mejor experiencia en grabado láser y marcado.

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