Русский

Germany Developed Short Wave Green Laser Underwater Cutting Technology

143
2023-09-18 15:22:48
Посмотреть перевод

With the prominent energy issues in various countries around the world, the utilization and development of energy have become a hot topic, and the demand for renewable energy is constantly increasing. The existing underwater infrastructure is no longer sufficient and needs to be dismantled using appropriate modern technology. For example, in order to increase the power of offshore wind power plants, it is necessary to first dismantle the old steel frame structure that is currently below sea level and rebuild more advanced equipment.

Researchers at the Fraunhofer Institute of Materials and Beam Technology (IWS) have developed a shortwave green laser cutting method for seabed cutting, which has multiple advantages compared to commonly used technologies such as saws, automatic wire saws, and plasma cutting machines.

Researchers have stated that a short wave green laser with a power exceeding kilowatt level is a necessary condition for this technology to achieve cutting. In the future, shorter wavelength blue lasers can also be used to achieve this.

Short wave green laser cuts steel under seabed conditions. Source: Fraunhofer IWS

Since its inception, laser cutting technology has made significant progress and has been widely used in the manufacturing industry. However, infrared or other longwave lasers are usually used for cutting in dry environments, assisting in coaxial gas and beam cutting to remove molten metal generated during the cutting process. However, in the marine environment, the degree of absorption, reflection, and scattering of light of different wavelengths by seawater varies, and most lasers are dissipated after a short distance. Auxiliary gases also require complex pipeline systems.

Using green lasers with shorter wavelengths than most industrial lasers to penetrate seawater does not result in significant loss, reducing power loss. Therefore, this type of laser is also more suitable for marine environments. While existing green lasers operate in water, water can discharge the resulting melt from the incision under pressure. This abundant medium in the ocean can replace the cutting gas required in dry environments, thereby eliminating the need for natural gas pipelines.

In addition, gases and gas mixtures (such as air) used in laser cutting applications in dry environments need to be pre compressed, but water does not need to be compressed. Therefore, using seawater as the cutting medium, this technology can conveniently remove melt residues at the interface.

Patrick Herwig, project leader of the Fraunhofer IWS laser cutting team, stated that this method can also be applied to small underwater robots with laser accessories. Because underwater robots can operate underwater in complex environments with high risk, pollution, and even zero visibility, achieving more efficient cutting operations than existing automatic sawing and cutting machines.

On the other hand, laser underwater cutting technology is also more environmentally friendly. The dismantling team does not need to load new blades or other consumables onto the cutting laser, and this system does not generate waste or release hazardous substances into the atmosphere. This performance advantage is particularly important when dismantling old nuclear power plants. If gas is used as the cutting medium, radioactive waste is likely to be expelled from the water surface with bubbles.

At present, the technology is still in the laboratory testing stage. Next, researchers hope to develop the validation scale of the laboratory into a practical application system.

This article is compiled by Optoelectronics based on the content of photonics

Связанные рекомендации
  • Researchers have placed photon filters and modulators on standard chips for the first time

    Researchers at the University of Sydney combined photon filters and modulators on a single chip, enabling them to accurately detect signals on the broadband RF spectrum. This work brings photonic chips closer to one day, potentially replacing larger and more complex electronic RF chips in fiber optic networks.The Sydney team utilized stimulated Brillouin scattering technology, which involves conve...

    2023-12-26
    Посмотреть перевод
  • Progress in the study of ultrafast electron dynamics using short light pulses

    When electrons move in molecules or semiconductors, their time scale is unimaginably short. The Swedish German team, including Dr. Jan Vogelsang from the University of Oldenburg, has made significant progress in these ultrafast processes: researchers are able to track the dynamics of electrons released on the surface of zinc oxide crystals using laser pulses with nanoscale spatial resolution and p...

    2024-01-08
    Посмотреть перевод
  • Photovoltaic converters for power transmission systems

    Scientists from the University of Hahn in Spain and the University of Santiago de Compostela conducted research to determine the most suitable semiconductor materials for high-power light transmission in terrestrial and underwater environments.HPOT, also known as laser power transfer, is a method of transmitting continuous power to a remote system using a monochromatic light source through an opti...

    2023-12-29
    Посмотреть перевод
  • Ultra fast laser tracking the "ballistic" motion of electrons in graphene

    Figure 1. The setup of Hui Zhao and his team at the University of Kansas Ultra Fast Laser Laboratory.A team of researchers from the University of Kansas's ultrafast laser laboratory recently managed to capture real-time ballistic transmission of electrons in graphene, which could lead to faster, more powerful, and more energy-efficient electronic devices in the future.The motion of electrons is of...

    2024-01-09
    Посмотреть перевод
  • The influence of laser beam drift on SLM thin-walled TC11 specimens at high scanning speed

    AbstractDue to the width of the laser melt pool and the sintering effect on the surrounding powder, the experimental size of the selective laser melting (SLM) sample will be larger than the design size, which will greatly affect the dimensional accuracy and surface quality of the thin-walled sample. In order to obtain SLM thin-walled TC11 specimens with precise dimensions, an orthogonal experiment...

    02-24
    Посмотреть перевод