4.5 Article

A dynamic monitoring approach for the surface morphology evolution measurement of plasma facing components by means of speckle interferometry

Journal

REVIEW OF SCIENTIFIC INSTRUMENTS
Volume 88, Issue 11, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.5012800

Keywords

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Funding

  1. National Science Foundation of China [11175035, 11475039]
  2. National Magnetic Confinement Fusion Science Program of China [2013GB109005]
  3. Chinesisch-Deutsches Forschungs Project [GZ768]
  4. Fundamental Research Funds for the Central Universities [DUT15RC(3)072, DUT16TD13]

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Plasma Facing Components (PFCs) in a magnetically confined fusion plasma device will be exposed to high heat load and particle fluxes, and it would cause PFCs' surface morphology to change due to material erosion and redeposition from plasma wall interactions. The state of PFCs' surface condition will seriously affect the performance of long-pulse or steady state plasma discharge in a tokamak; it will even constitute an enormous threat to the operation and the safety of fusion plasma devices. The PFCs' surface morphology evolution measurement could provide important information about PFCs' real-time status or damage situation and it would help to a better understanding of the plasma wall interaction process and mechanism. Meanwhile through monitoring the distribution of dust deposition in a tokamak and providing an upper limit on the amount of loose dust, the PFCs' surface morphology measurement could indirectly contribute to keep fusion operational limits and fusion device safety. Aiming at in situ dynamic monitoring PFCs' surface morphology evolution, a laboratory experimental platform DUT-SIEP (Dalian University of Technology-speckle interferometry experimental platform) based on the speckle interferometry technique has been constructed at Dalian University of Technology (DUT) in China. With directional specific designing and focusing on the real detection condition of EAST (Experimental Advanced Superconducting Tokamak), the DUT-SIEP could realize a variable measurement range, widely increased from 0.1 mu m to 300 mu m, with high spatial resolution (< 1 mm) and ultra-high time resolution (< 2 s for EAST measuring conditions). Three main components of the DUT-SIEP are all integrated and synchronized by a time schedule control and data acquisition terminal and coupled with a three-dimensional phase unwrapping algorithm, the surface morphology information of target samples can be obtained and reconstructed in real-time. A local surface morphology of the real divertor tiles adopted from EAST has been measured, and the feasibility and reliability of this new experimental platform have been demonstrated. Published by AIP Publishing.

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