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    Home»Technology»Faster Fusion Reactor Calculations Thanks to AI
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    Faster Fusion Reactor Calculations Thanks to AI

    By Eindhoven University of TechnologyApril 4, 20215 Comments3 Mins Read
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    Fusion Reactor Tokamak
    Researchers utilize machine learning techniques to accelerate the numerical simulation of turbulent transport in core plasma.

    A neural network model reduced plasma simulation time, offering fast, accurate support for fusion reactor development.

    Fusion reactor technologies are well-positioned to contribute to our future power needs in a safe and sustainable manner. Numerical models can provide researchers with information on the behavior of the fusion plasma, as well as valuable insight on the effectiveness of reactor design and operation. However, to model the large number of plasma interactions requires a number of specialized models that are not fast enough to provide data on reactor design and operation.

    Aaron Ho from the Science and Technology of Nuclear Fusion group in the Department of Applied Physics at Eindhoven University of Technology has explored the use of machine learning approaches to speed up the numerical simulation of core plasma turbulent transport. Ho defended his thesis on March 17th.

    The ultimate goal of research on fusion reactors is to achieve a net power gain in an economically viable manner. To reach this goal, large intricate devices have been constructed, but as these devices become more complex, it becomes increasingly important to adopt a predict-first approach regarding its operation. This reduces operational inefficiencies and protects the device from severe damage.

    To simulate such a system requires models that can capture all the relevant phenomena in a fusion device, are accurate enough such that predictions can be used to make reliable design decisions, and are fast enough to quickly find workable solutions.

    Model Based on Neural Networks

    For his PhD research, Aaron Ho developed a model to satisfy these criteria by using a model based on neural networks. This technique effectively allows a model to retain both speed and accuracy at the cost of data collection. The numerical approach was applied to a reduced-order turbulence model, QuaLiKiz, which predicts plasma transport quantities caused by microturbulence. This particular phenomenon is the dominant transport mechanism in tokamak plasma devices. Unfortunately, its calculation is also the limiting speed factor in current tokamak plasma modeling.

    Ho successfully trained a neural network model with QuaLiKiz evaluations while using experimental data as the training input. The resulting neural network was then coupled into a larger integrated modeling framework, JINTRAC, to simulate the core of the plasma device.

    Simulation Time Reduced From 217 Hours to Only Two Hours

    Performance of the neural network was evaluated by replacing the original QuaLiKiz model with Ho’s neural network model and comparing the results. In comparison to the original QuaLiKiz model, Ho’s model considered additional physics models, duplicated the results to within an accuracy of 10%, and reduced the simulation time from 217 hours on 16 cores to two hours on a single core.

    Then to test the effectiveness of the model outside of the training data, the model was used in an optimization exercise using the coupled system on a plasma ramp-up scenario as a proof-of-principle. This study provided a deeper understanding of the physics behind the experimental observations, and highlighted the benefit of fast, accurate, and detailed plasma models.

    Finally, Ho suggests that the model can be extended for further applications such as controller or experimental design. He also recommends extending the technique to other physics models, as it was observed that the turbulent transport predictions are no longer the limiting factor. This would further improve the applicability of the integrated model in iterative applications and enable the validation efforts required to push its capabilities closer towards a truly predictive model.

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    Artificial Intelligence Eindhoven University of Technology Energy Fusion Energy Fusion Reactor Machine Learning
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    5 Comments

    1. The 10th Man on April 4, 2021 7:14 am

      You go AI. Your going to explain it all one day. But right now you need to get busy.

      Reply
    2. Fred on April 4, 2021 7:47 pm

      I’d really like to understand or see how you expect this thing to work.
      I’ve got some questions pertaining to plasma being held in check with magnetic fields.

      Reply
    3. Alpha Beanie on April 5, 2021 12:05 am

      Ok I am happy for the faster math and all, but can we actually build, and start up the reactor. Not asking for much, just results.

      Reply
    4. bevin brett on April 11, 2021 2:41 am

      Simple rule of computer programming – if I’m allowed to get the wrong answer, I can result get it ten times faster.

      If we changed the non ai algorithms only get an answer within 10% I bet they could go a lot faster also

      Reply
    5. Martin on April 11, 2021 8:57 am

      Once they can produce a plasma reaction will that lead to plasma weapons.

      Reply
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