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Yu. M. Gasparyan

Publications and source records attributed to Yu. M. Gasparyan.

2 recordsLinked to original sources

Gas release from metals under irradiation with elliptic Gaussian laser beam during LID-QMS analysis

Laser-induced-desorption quadrupole-mass-spectrometry (LID-QMS) diagnostics is considered as one of the candidate methods for the remote control of tritium inventory in the ITER first wall. Studies involving LID-QMS generally assume the circular shape of the laser spot on the analyzed surface. At the same time, the diagnostics laser source cannot be always positioned so as to irradiate tokamak tiles under normal angles, which results in the laser spot shape differing from the circular one. In this contribution, we analyze the tritium removal process under sample irradiation by an elliptic Gaussian laser beam, extending the results of our previous analysis [Stepanenko, Gasparyan, Physica Scripta 99 (8), 085604 (2025)]. The thermal desorption model governing the heat transport and tritium removal from the solid is formulated. The new analytical expression describing the sample temperature dynamics is derived. The developed model is used to examine the impact of the laser beam/spot ellipticity on the tritium desorption process from a tungsten sample. The conditions, under which the elliptic beam can be approximated with the circular one for the rapid assessment of the amount of desorbed tritium, are assessed.

physics.plasm-ph↗

Analysis of sample temperature dynamics under pulsed laser irradiation during laser-induced-desorption diagnostic

The accurate assessment of the local tritium concentration in the tokamak first wall by means of the laser-induced desorption (LID) diagnostic is sought as one the key solutions to monitoring the local radioactive tritium content in the first wall of the fusion reactor ITER. Numerical models of gas desorption from solids used for LID simulation are usually closed with the one-dimensional heat transport models. In this study, the temperature dynamics of a target irradiated by a short laser pulse during LID are analyzed by means of the two-dimensional heat transport model to assess the validity of using one-dimensional approximation for recovering the diagnostic signal. The quantitative estimates for the parameters governing the heat transfer are presented. The analytical expressions for the sample temperature distribution resolved both in time and space are derived. The sensitivity analysis of the obtained relations to uncertainties in the experimental parameters is performed. It is shown that, depending of the ratio between the laser spot radius and heat diffusion length, the one-dimensional approach can noticeably overestimate the sample temperature in the limit of small laser spot radius, resulting in more than 100 % larger amounts of tritium desorbed from the irradiated target, compared to the two-dimensional approximation. In the limit of large laser spot radius, both approaches yield comparable amounts of desorbed tritium.

physics.plasm-ph↗