• Matter and Radiation at Extremes
  • Vol. 4, Issue 2, 27401 (2019)
M. F. Yilmaz1、*, Y. Danisman2, M. Ozdemir1, B. Karl?k3, and J. Larour4
Author Affiliations
  • 1Basic Sciences, Engineering Department, Imam Abdulrahman Bin Faisal University, Dammam, Saudi Arabia
  • 2Department of Mathematics and Computer Sciences, Queensborough Community College, CUNY, Bayside, New York 11364, USA
  • 3Neurosurgical Simulation Research and Training Centre, Department of Neurosurgery, Montreal Neurological Institute and Hospital, McGill University, Montreal, Quebec H3A 2B4, Canada
  • 4Laboratoire de Physique des Plasmas (LPP), Ecole Polytechnique, UPMC, CNRS, Palaiseau, France
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    DOI: 10.1063/1.5081676 Cite this Article
    M. F. Yilmaz, Y. Danisman, M. Ozdemir, B. Karl?k, J. Larour. Investigation of electron beam effects on L-shell Mo plasma produced by a compact LC generator using pattern recognition[J]. Matter and Radiation at Extremes, 2019, 4(2): 27401 Copy Citation Text show less

    Abstract

    In this paper, the effects of an electron beam on X-pinch-produced spectra of L-shell Mo plasma are investigated for the first time by principal component analysis (PCA); this analysis is compared with that of line ratio diagnostics. A spectral database for PCA extraction is arranged using a non-Local Thermodynamic Equilibrium (non-LTE) collisional radiative L-shell Mo model. PC vector spectra of L-shell Mo, including F, Ne, Na and Mg-like transitions are studied to investigate the polarization types of these transitions. PC1 vector spectra of F, Ne, Na and Mg-like transitions result in linear polarization of Stokes Q profiles. Besides, PC2 vector spectra show linear polarization of Stokes U profiles of 2p53s of Ne-like transitions which are known as responsive to a magnetic field [Tr?bert, Beiersdorfer, and Crespo López-Urrutia, Nucl. Instrum Methods Phys. Res., Sect. B 408, 107–109 (2017)]. A 3D representation of PCA coefficients demonstrates that addition of an electron beam to the non-LTE model generates quantized, collective clusters which are translations of each other that follow V-shaped cascade trajectories, except for the case f = 0.0. The extracted principal coefficients are used as a database for an Artificial Neural Network (ANN) to estimate the plasma electron temperature, density and beam fractions of the time-integrated, spatially resolved L-shell Mo X-pinch plasma spectrum. PCA-based ANNs provide an advantage in reducing the network topology, with a more efficient backpropagation supervised learning algorithm. The modeled plasma electron temperature is about Te ~ 660 eV and density ne = 1 × 1020 cm?3, in the presence of the fraction of the beams with f ~ 0.1 and centered energy of 5 keV.
    w1=|v·(|PC1)t(1)

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    w2=|v·(|PC2)t,(2)

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    w3=|v·(|PC3)t,(3)

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    M. F. Yilmaz, Y. Danisman, M. Ozdemir, B. Karl?k, J. Larour. Investigation of electron beam effects on L-shell Mo plasma produced by a compact LC generator using pattern recognition[J]. Matter and Radiation at Extremes, 2019, 4(2): 27401
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