Skip to main content

Research Repository

Advanced Search

2D measurements of plasma electron density using coherence imaging with a pixelated phase mask

Allcock, J.S.; Silburn, S.A.; Sharples, R.M.; Harrison, J.R.; Conway, N.J.; Vernimmen, J.W.M.

2D measurements of plasma electron density using coherence imaging with a pixelated phase mask Thumbnail


Authors

J.S. Allcock

S.A. Silburn

J.R. Harrison

N.J. Conway

J.W.M. Vernimmen



Abstract

In this paper, the pixelated phase mask (PPM) method of interferometry is applied to coherence imaging (CI)—a passive, narrowband spectral imaging technique for diagnosing the edge and divertor regions of fusion plasma experiments. Compared to previous CI designs that use a linear phase mask, the PPM method allows for a higher possible spatial resolution. The PPM method is also observed to give a higher instrument contrast (analogous to a more narrow spectrometer instrument function). A single-delay PPM instrument is introduced as well as a multi-delay system that uses a combination of both pixelated and linear phase masks to encode the coherence of the observed radiation at four different interferometer delays simultaneously. The new methods are demonstrated with measurements of electron density ne, via Stark broadening of the Hγ emission line at 434.0 nm, made on the Magnum-PSI linear plasma experiment. A comparison of the Abel-inverted multi-delay CI measurements with Thomson scattering shows agreement across the 3 × 1019 < ne < 1 × 1021 m−3 range. For the single-delay CI results, agreement is found for ne > 1 × 1020 m−3 only. Accurate and independent interpretation of single-delay CI data at lower ne was not possible due to Doppler broadening and continuum emission.

Citation

Allcock, J., Silburn, S., Sharples, R., Harrison, J., Conway, N., & Vernimmen, J. (2021). 2D measurements of plasma electron density using coherence imaging with a pixelated phase mask. Review of Scientific Instruments, 92(7), Article 073506. https://doi.org/10.1063/5.0050704

Journal Article Type Article
Acceptance Date Jun 30, 2021
Online Publication Date Jul 16, 2021
Publication Date 2021-07
Deposit Date Oct 26, 2021
Publicly Available Date Oct 27, 2021
Journal Review of Scientific Instruments
Print ISSN 0034-6748
Electronic ISSN 1089-7623
Publisher American Institute of Physics
Peer Reviewed Peer Reviewed
Volume 92
Issue 7
Article Number 073506
DOI https://doi.org/10.1063/5.0050704

Files

Accepted Journal Article (2.9 Mb)
PDF

Copyright Statement
This article may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. This article appeared in (citation of published article) and may be found at https://doi.org/10.1063/5.0050704





You might also like



Downloadable Citations