NVIDIA Blog 10月29日 03:32
AI赋能核聚变:数字孪生加速能源未来
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人工智能正以前所未有的速度推动核聚变能源的研究。NVIDIA、General Atomics及国际合作伙伴共同构建了一个高保真、AI驱动的核聚变反应堆数字孪生。该数字孪生利用NVIDIA Omniverse平台和GPU计算能力,将原本需要数周的模拟时间缩短至数秒,使研究人员能够实时交互式地探索和测试各种运行场景,显著加速了实现实用核聚变能源的进程。这一突破性进展有望为我们带来几乎无限的清洁能源。

💡 AI驱动的数字孪生:通过集成传感器数据、物理模拟、工程模型和AI替代模型,NVIDIA与General Atomics构建了一个高保真的核聚变反应堆(DIII-D)数字孪生。该孪生模型在NVIDIA Omniverse平台上运行,提供了一个统一、实时的交互环境,能够快速辅助决策,将原本数周的模拟时间缩短至数秒。这使得研究人员能够以极快的速度测试和验证想法,大幅加速了通往实用核聚变能源的道路。

🚀 模拟时间大幅缩短:传统上,模拟等离子体行为在最快的超级计算机上都需要数周时间。而现在,利用AI替代模型(如EFIT、CAKE和ION ORB),研究人员能够在数秒内预测等离子体行为,并保持其稳定。这不仅降低了反应堆损坏的风险,还极大地加快了研究进程,使研究人员能够进行更多“假设”场景的探索,而无需冒物理损坏的风险。

🌟 加速商业化进程:AI与数字孪生的结合,将核聚变研究从纯粹的物理学挑战转变为计算和智能算法驱动的领域。通过实现近乎实时的交互式响应,该数字孪生充当了真正的“聚变加速器”,为快速测试新想法、优化反应堆设计提供了平台,从而有望更快地实现商业聚变能源的部署。这标志着核聚变研究方法的一次根本性转变。

The race to bottle a star now runs on AI.

NVIDIA, General Atomics and a team of international partners have built a high-fidelity, AI-enabled digital twin for a fusion reactor with interactive performance, with technical support from San Diego Supercomputer Center at UC San Diego School of Computing, Information and Data Sciences, the Argonne Leadership Computing Facility (ACLF) at Argonne National Laboratory and National Energy Research Scientific Computing Center (NERSC) at Lawrence Berkeley National Laboratory.

The effort, announced today at the NVIDIA GTC Washington, D.C., conference, used Polaris at the ALCF and Perlmutter at NERSC supercomputing systems to train three distinct AI surrogate models at scale.

This groundbreaking project uses the NVIDIA Omniverse platform, NVIDIA CUDA-X libraries and data center GPUs to help researchers tackle one of science’s toughest problems: making fusion energy work on Earth.

Here’s why this matters: fusion promises virtually limitless, clean energy by replicating the process that powers the sun.

“The ability to explore scenarios virtually through this interactive digital twin is a game-changer,” said Raffi Nazikian, fusion data science lead at General Atomics. “Working with NVIDIA, we can now test, refine and verify our ideas orders of magnitude faster, accelerating the path toward practical fusion energy.”

But controlling plasma at extreme temperatures — think hundreds of millions of degrees — and predicting its behavior fast enough to keep reactors running is a massive challenge.

Plasma is the fourth state of matter, a swirling soup of charged particles that behaves like a living thing. It’s what stars are made of.

In fusion reactors, plasma is the fuel — the stuff that, if tamed, could power cities with the energy of the sun. Imagine trying to bottle a star. That’s the metaphor fusion scientists love, and for good reason: it’s poetic and accurate.

That’s where AI comes in. By reducing simulation times from weeks to seconds, AI enables researchers to interact with the reactor virtually, exploring scenarios that may damage the reactor without risk, and accelerate the path to commercial fusion power.

At the forefront of this effort, General Atomics is developing an AI-enabled digital twin as part of their research at the US Department of Energy’s DIII-D National Fusion Facility to push fusion research forward.

AI: Turning Weeks to Seconds

Traditionally, simulating plasma behavior takes weeks on even the fastest supercomputers.

General Atomics is now using AI surrogate models — trained on decades of real-world data — to predict plasma behavior in seconds, all of which continue to be improved.

These models, including EFIT (for plasma equilibrium), CAKE (for plasma boundary) and ION ORB (for heat density of escaping ions), can help operators keep the plasma stable in real time, reducing the risk of damage and speeding up research.

Running on NVIDIA GPUs, these models deliver accurate predictions faster than physics-based simulations. They’re among the many models used to help simulate the behavior of fusion reactors and control them, which can be accelerated by AI.

SUBHEAD: The Digital Twin

NVIDIA and General Atomics are building a fully interactive digital twin of the DIII-D inside NVIDIA Omniverse, powered by NVIDIA RTX PRO Servers and NVIDIA DGX Spark, with supporting contributions from San Diego Supercomputer Center, ALCF and NERSC.

This virtual reactor dynamically fuses sensor data, physics-based simulations, engineering models and AI surrogate models — creating a unified, real-time interactive environment that can quickly inform decisions.

The digital twin is synchronized with the physical DIII-D, allowing the international team of 700 scientists from 100 different organizations to test ideas and run “what-if” scenarios without touching the real machine.

Key controls can be explored in the digital twin to refine the science before running real experiments, enabling rapid optimization and faster progress toward commercial fusion.

Why It Matters

This approach fundamentally shifts fusion research from a pure physics challenge to one also powered by computing and smart algorithms.

By moving from weeks-long simulations to near-real-time, interactive answers in seconds, the digital twin acts as a true “fusion accelerator” — a platform to rapidly test new ideas, optimize reactor designs and put commercial fusion energy on a faster track.

Learn more about how NVIDIA and partners are advancing AI innovation in the U.S. by watching the NVIDIA GTC Washington, D.C., keynote by Jensen Huang.

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核聚变 AI 数字孪生 NVIDIA General Atomics 清洁能源 Fusion Energy AI Digital Twin NVIDIA General Atomics Clean Energy
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