4.7 Article

Current distribution monitoring enables quench and damage detection in superconducting fusion magnets

期刊

SCIENTIFIC REPORTS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-022-26592-2

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资金

  1. US Department of Energy
  2. US Department of Energy Office of Fusion Energy Sciences
  3. US Department of Energy Office of High Energy Physics
  4. [DE-AC02-05CH11231]
  5. [DE-SC0019934]
  6. [DE-SC0014009]

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This research proposes a protection framework for fusion magnets using limited inter-cable current sharing, which detects conductor damage and defines safe operating limits through current distribution monitoring and predictive models. It shows potential for quality control and real-time quench detection in bundled CORC (R) cables.
Fusion magnets made from high temperature superconducting ReBCO CORC (R) cables are typically protected with quench detection systems that use voltage or temperature measurements to trigger current extraction processes. Although small coils with low inductances have been demonstrated, magnet protection remains a challenge and magnets are typically operated with little knowledge of the intrinsic performance parameters. We propose a protection framework based on current distribution monitoring in fusion cables with limited inter-cable current sharing. By employing inverse Biot-Savart techniques to distributed Hall probe arrays around CORC (R) Cable-In-Conduit-Conductor (CICC) terminations, individual cable currents are recreated and used to extract the parameters of a predictive model. These parameters are shown to be of value for detecting conductor damage and defining safe magnet operating limits. The trained model is then used to predict cable current distributions in real-time, and departures between predictions and inverse Biot-Savart recreated current distributions are used to generate quench triggers. The methodology shows promise for quality control, operational planning and real-time quench detection in bundled CORC (R) cables for compact fusion reactors.

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