Characterizing Lossy Dielectric Materials in Shock Physics by Millimeter-Wave Interferometry Using One-Dimensional Convolutional Neural Networks and Nonlinear Optimization

Author:

Pham Ngoc Tuan12,Lefrançois Alexandre3,Aubert Hervé1

Affiliation:

1. Centre National de la Recherche Scientifique, Laboratoire d’Analyse et d’Architecture des Systèmes (CNRS-LAAS), Toulouse University, 7 Avenue du Colonel Roche, 31031 Toulouse, France

2. Institut National des Sciences Appliquées (INSA) Centre—Val de Loire, 88 boulevard Lahitolle, 18000 Bourges, France

3. Commissariat à l’Energie Atomique et aux Energies Alternatives—Direction des Applications Militaires (CEA-DAM), GRAMAT, BP80200, 46500 Gramat, France

Abstract

When a dielectric material undergoes mechanical impact, it generates a shock wave, causing changes in its refractive index. Recent demonstrations have proven that the modified refractive index can be determined remotely using a millimeter-wave interferometer. However, these demonstrations are based on the resolution of an inverse electromagnetic problem, which assumes that the losses in the material are negligible. This restrictive assumption is overcome in this article, in which a new approach is proposed to solve the inverse electromagnetic problem in lossy and shocked dielectric materials. Our methodology combines a one-dimensional convolutional neural network architecture, namely Inverse problem of Lossless or Lossy Shocked Wavefront Network (ILSW-Net), with a nonlinear optimization technique based on the Nelder–Mead algorithm to estimate losses within dielectric materials under a mechanical impact. Experimental results for both simulated and real signals show that our method can successfully predict the velocities and the refractive index while accurately estimating the shock wavefront.

Funder

CEA Gramat

Publisher

MDPI AG

Reference17 articles.

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2. Warthen, B., and Luther, G. (1994). A Microwave Interferometer to Measure Transient Properties, Los Alamos National Laboratory (LANL). Technical Report.

3. Microwave measurement of permittivity and electrical conductivity in shock compressed liquids;Hawke;Rev. Sci. Instrum.,1969

4. Glancy, B.C., and Krall, A.D. (1990). Microwave Interferometric Measurements of Particle and Wave Velocities in Porous Media, Naval Surface Warfare Center. Technical Report.

5. Microwave interferometry of shock wave. I. unreacting porous media;Krall;J. Appl. Phys.,1993

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