Русский

Researchers use machine learning to optimize high-power laser experiments

820
2024-05-24 14:21:53
Посмотреть перевод

High intensity and high repetition lasers rapidly and continuously emit powerful bursts of light, capable of emitting multiple times per second. Commercial fusion energy factories and advanced compact radiation sources are common examples of systems that rely on such laser systems. However, humans are a major limiting factor as their response time is insufficient to manage such rapid shooting systems.

To address this challenge, scientists are searching for different ways to leverage the power of automation and artificial intelligence, which have real-time monitoring capabilities and can perform high-intensity operations.

A group of researchers from the Lawrence Livermore National Laboratory (LLNL), the Fraunhofer Laser Technology Institute (ILT), and the Aurora Infrastructure (ELI ERIC) are conducting an experiment at the ELI beamline facility in the Czech Republic to optimize high-power lasers using machine learning (ML).

Researchers trained LLNL's cognitive simulation development ML code on laser target interaction data, allowing researchers to adjust as the experiment progressed. The output is fed back to the ML optimizer, allowing it to fine tune the pulse shape in real time.

The laser experiment lasted for three weeks, each lasting about 12 hours. During this period, the laser fired 500 times at 5-second intervals. After every 120 shots, stop the laser to replace the copper target foil and check the vaporized target.

"Our goal is to demonstrate reliable diagnosis of laser accelerated ions and electrons from solid targets with high intensity and repeatability," said Matthew Hill, chief researcher at LLNL. "With the support of machine learning optimization algorithms' fast feedback to the laser front-end, the total ion yield of the system can be maximized."

Researchers have made significant progress in understanding the complex physics of laser plasma interactions using the most advanced high repetition rate advanced pulse laser system (L3-HAPLS) and innovative ML technology.

So far, researchers have relied on more traditional scientific methods, which require manual intervention and adjustment. With the help of machine learning capabilities, scientists are now able to analyze large datasets more accurately and make real-time adjustments during experiments.

The success of the experiment also highlights the ability of L3-HAPLS, L3-HAPLS is one of the most powerful and fastest high-intensity laser systems in the world. The experiment has proven that L3-HAPLS has excellent performance repeatability, focus quality, and extremely stable alignment.

Hill and his LLNL team spent about a year collaborating with the Fraunhofer ILT and ELI Beamlines teams to prepare for the experiment. The Livermore team utilized several new instruments developed under laboratory led research and development plans, including representative scintillation imaging systems and REPPS magnetic spectrometers.

The lengthy preparation work paid off as the experiment successfully generated reliable data that can serve as the foundation for progress in various fields including fusion energy, materials science, and medical treatment.

GenAI technology has always been at the forefront of scientific innovation and discovery. It is helping researchers break through the boundaries of scientific possibilities. Last week, researchers from MIT and the University of Basel in Switzerland developed a new machine learning framework to reveal new insights into materials science. Last week, artificial intelligence was proven to play an important role in drug discovery.

Source: Laser Net

Связанные рекомендации
  • Mazak will push economical laser cutting processing equipment to Europe

    Recently, Yamazaki Mazak, a well-known Japanese machine tool manufacturer, announced that it will unveil its economic laser processing star Optiplex 3015 Ez for the first time in the European market at the upcoming 2024 EuroBLECH exhibition. This carefully crafted laser processing machine not only combines high-quality processing capabilities with affordable prices, but also aims to open the doo...

    2024-09-25
    Посмотреть перевод
  • Significant progress has been made in the manufacturing and measurement of EUV lithography light source collection mirrors

    Summary:To filter out infrared light from the driving light source in the extreme ultraviolet lithography (EUVL) light source system, a rectangular grating structure needs to be fabricated on the surface of the collection mirror. However, the collection mirror grating usually undergoes deformation during the manufacturing process, resulting in a decrease in filtering efficiency. The process errors...

    04-02
    Посмотреть перевод
  • Measurement of Fine Structure and Spin Interaction of Quantum Materials through TriVista High Resolution Spectral Measurement System

    backgroundThe Jörg Debus team from the Technical University of Dortmund in Germany is dedicated to researching optical quantum information processing and quantum sensing in materials with potential applications. The team mainly studies the fine structure of materials under light fields, such as quantum dots, quantum effects of two-dimensional materials, semiconductor defects in diamonds, and ...

    2024-03-11
    Посмотреть перевод
  • Artists transform paper into meticulous laser cutting designs

    In the past few years, paper artists have demonstrated the versatility of their common fiber materials. Some people manually cut or carve paper, while others combine traditional craftsmanship with digital design. Ibbini Studio is in this situation. Abu Dhabi artist Julia Ibni collaborated with computer scientist Stephen Noye to create sculptural paper works inspired by decorative patterns such as ...

    2024-01-23
    Посмотреть перевод
  • Laser technology reveals hidden gases in complex mixtures

    Laser Network reported on January 11th that modern equipment has been fine tuned to detect highly specific gases, including trace gases found in the atmosphere, gases present in combustion exhaust emissions, and gases used in technology plasma applications.They achieve this by calculating the percentage of light at a certain wavelength that is absorbed or attenuated by the sample. This way, the co...

    2024-01-11
    Посмотреть перевод