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Title: Real and complex valued geometrical optics inverse ray-tracing for inline field calculations

Abstract

In this work, a 3-D ray based model for computing laser fields in dissipative and amplifying media is presented. The eikonal equation is solved using inverse ray-tracing on a dedicated nonstructured 3-D mesh. Inverse ray-tracing opens the possibility of using Complex Geometrical Optics (CGO), for which we propose a propagation formalism in a finite element mesh. Divergent fields at caustics are corrected using an etalon integral method for fold-type caustics. This method is successfully applied in dissipative media by modifying the ray-ordering and root selection rules, thereby allowing one to reconstruct the field in the entire caustic region. In addition, we demonstrate how caustics in the CGO framework can disappear entirely for sufficiently dissipative media, making the complex ray approach valid in the entire medium. CGO is shown to offer a more precise modeling of laser refraction and absorption in a dissipative medium when compared to Geometrical Optics (GO). In the framework of Inertial Confinement Fusion (ICF), this occurs mostly at intermediate temperatures or at high temperatures close to the critical density. Additionally, GO is invalid at low temperatures if an approximated expression of the permittivity is used. The inverse ray-tracing algorithm for GO and CGO is implemented in themore » IFRIIT code, in the framework of a dielectric permittivity described in 3-D using a piecewise linear approximation in tetrahedrons. Fields computed using GO and CGO are compared to results from the electromagnetic wave solver LPSE. Excellent agreement is obtained in 1-D linear and nonlinear permittivity profiles. Good agreement is also obtained for ICF-like Gaussian density profiles in 2-D. Finally, we demonstrate how the model reproduces Gaussian beam diffraction using CGO. The IFRIIT code will be interfaced inline to 3-D radiative hydrodynamic codes to describe the nonlinear laser plasma interaction in ICF and high-energy-density plasmas.« less

Authors:
ORCiD logo [1]; ORCiD logo [1];  [1]; ORCiD logo [1];  [1]
  1. Univ. of Rochester, NY (United States). Lab. for Laser Energetics
Publication Date:
Research Org.:
Univ. of Rochester, NY (United States). Lab. for Laser Energetics
Sponsoring Org.:
USDOE National Nuclear Security Administration (NNSA)
Contributing Org.:
Univ. of Rochester, NY (United States). Lab. for Laser Energetics
OSTI Identifier:
1505766
Report Number(s):
2018-307; 1481
Journal ID: ISSN 1070-664X; 2018-308, 1481, 2440
Grant/Contract Number:  
NA0003856
Resource Type:
Accepted Manuscript
Journal Name:
Physics of Plasmas
Additional Journal Information:
Journal Volume: 26; Journal Issue: 3; Journal ID: ISSN 1070-664X
Publisher:
American Institute of Physics (AIP)
Country of Publication:
United States
Language:
English
Subject:
70 PLASMA PHYSICS AND FUSION TECHNOLOGY

Citation Formats

Colaïtis, A., Palastro, J. P., Follett, R. K., Igumenschev, I. V., and Goncharov, V. Real and complex valued geometrical optics inverse ray-tracing for inline field calculations. United States: N. p., 2019. Web. doi:10.1063/1.5082951.
Colaïtis, A., Palastro, J. P., Follett, R. K., Igumenschev, I. V., & Goncharov, V. Real and complex valued geometrical optics inverse ray-tracing for inline field calculations. United States. https://doi.org/10.1063/1.5082951
Colaïtis, A., Palastro, J. P., Follett, R. K., Igumenschev, I. V., and Goncharov, V. Fri . "Real and complex valued geometrical optics inverse ray-tracing for inline field calculations". United States. https://doi.org/10.1063/1.5082951. https://www.osti.gov/servlets/purl/1505766.
@article{osti_1505766,
title = {Real and complex valued geometrical optics inverse ray-tracing for inline field calculations},
author = {Colaïtis, A. and Palastro, J. P. and Follett, R. K. and Igumenschev, I. V. and Goncharov, V.},
abstractNote = {In this work, a 3-D ray based model for computing laser fields in dissipative and amplifying media is presented. The eikonal equation is solved using inverse ray-tracing on a dedicated nonstructured 3-D mesh. Inverse ray-tracing opens the possibility of using Complex Geometrical Optics (CGO), for which we propose a propagation formalism in a finite element mesh. Divergent fields at caustics are corrected using an etalon integral method for fold-type caustics. This method is successfully applied in dissipative media by modifying the ray-ordering and root selection rules, thereby allowing one to reconstruct the field in the entire caustic region. In addition, we demonstrate how caustics in the CGO framework can disappear entirely for sufficiently dissipative media, making the complex ray approach valid in the entire medium. CGO is shown to offer a more precise modeling of laser refraction and absorption in a dissipative medium when compared to Geometrical Optics (GO). In the framework of Inertial Confinement Fusion (ICF), this occurs mostly at intermediate temperatures or at high temperatures close to the critical density. Additionally, GO is invalid at low temperatures if an approximated expression of the permittivity is used. The inverse ray-tracing algorithm for GO and CGO is implemented in the IFRIIT code, in the framework of a dielectric permittivity described in 3-D using a piecewise linear approximation in tetrahedrons. Fields computed using GO and CGO are compared to results from the electromagnetic wave solver LPSE. Excellent agreement is obtained in 1-D linear and nonlinear permittivity profiles. Good agreement is also obtained for ICF-like Gaussian density profiles in 2-D. Finally, we demonstrate how the model reproduces Gaussian beam diffraction using CGO. The IFRIIT code will be interfaced inline to 3-D radiative hydrodynamic codes to describe the nonlinear laser plasma interaction in ICF and high-energy-density plasmas.},
doi = {10.1063/1.5082951},
journal = {Physics of Plasmas},
number = 3,
volume = 26,
place = {United States},
year = {Fri Mar 01 00:00:00 EST 2019},
month = {Fri Mar 01 00:00:00 EST 2019}
}

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Works referenced in this record:

The role of hot electrons in the dynamics of a laser-driven strong converging shock
journal, November 2017

  • Llor Aisa, E.; Ribeyre, X.; Duchateau, G.
  • Physics of Plasmas, Vol. 24, Issue 11
  • DOI: 10.1063/1.5003814

Fresnel zones of hyperbolic type from the physical point of view
journal, January 1988


Full-wave and ray-based modeling of cross-beam energy transfer between laser beams with distributed phase plates and polarization smoothing
journal, October 2017

  • Follett, R. K.; Edgell, D. H.; Froula, D. H.
  • Physics of Plasmas, Vol. 24, Issue 10
  • DOI: 10.1063/1.4998713

Complex ray-tracing algorithms with application to optical problems
journal, January 2001

  • Egorchenkov, Roman A.; Kravtsov, Yury A.
  • Journal of the Optical Society of America A, Vol. 18, Issue 3
  • DOI: 10.1364/JOSAA.18.000650

Modeling of the cross-beam energy transfer with realistic inertial-confinement-fusion beams in a large-scale hydrocode
journal, January 2015


Interplay of Laser-Plasma Interactions and Inertial Fusion Hydrodynamics
journal, January 2017


Complex Rays with an Application to Gaussian Beams
journal, January 1971

  • Keller, Joseph B.; Streifer, William
  • Journal of the Optical Society of America, Vol. 61, Issue 1
  • DOI: 10.1364/JOSA.61.000040

A class of methods for solving nonlinear simultaneous equations
journal, January 1965


Crossed-beam energy transfer in direct-drive implosions
journal, May 2012

  • Igumenshchev, I. V.; Seka, W.; Edgell, D. H.
  • Physics of Plasmas, Vol. 19, Issue 5, Article No. 056314
  • DOI: 10.1063/1.4718594

Ablation Pressure Driven by an Energetic Electron Beam in a Dense Plasma
journal, December 2012


Laser Compression of Matter to Super-High Densities: Thermonuclear (CTR) Applications
journal, September 1972

  • Nuckolls, John; Wood, Lowell; Thiessen, Albert
  • Nature, Vol. 239, Issue 5368, p. 139-142
  • DOI: 10.1038/239139a0

Complex rays and complex caustics
journal, January 1971

  • Kravtsov, Yu. A.
  • Radiophysics and Quantum Electronics, Vol. 10, Issue 9-10
  • DOI: 10.1007/BF01031601

A tesselation-based model for intensity estimation and laser plasma interactions calculations in three dimensions
journal, March 2018

  • Colaïtis, A.; Chapman, T.; Strozzi, D.
  • Physics of Plasmas, Vol. 25, Issue 3
  • DOI: 10.1063/1.5020385

Influence of laser induced hot electrons on the threshold for shock ignition of fusion reactions
journal, July 2016

  • Colaïtis, A.; Ribeyre, X.; Le Bel, E.
  • Physics of Plasmas, Vol. 23, Issue 7
  • DOI: 10.1063/1.4958808

Wavelength-detuning cross-beam energy transfer mitigation scheme for direct drive: Modeling and evidence from National Ignition Facility implosions
journal, May 2018

  • Marozas, J. A.; Hohenberger, M.; Rosenberg, M. J.
  • Physics of Plasmas, Vol. 25, Issue 5
  • DOI: 10.1063/1.5022181

On variational problems in parametric form
journal, December 1991

  • Forbes, G. W.
  • American Journal of Physics, Vol. 59, Issue 12
  • DOI: 10.1119/1.16624

A wave-based model for cross-beam energy transfer in direct-drive inertial confinement fusion
journal, May 2017

  • Myatt, J. F.; Follett, R. K.; Shaw, J. G.
  • Physics of Plasmas, Vol. 24, Issue 5
  • DOI: 10.1063/1.4982059

Laser ray tracing and power deposition on an unstructured three-dimensional grid
journal, January 2000


Towards modeling of nonlinear laser-plasma interactions with hydrocodes: The thick-ray approach
journal, March 2014


Morphological filters--Part I: Their set-theoretic analysis and relations to linear shift-invariant filters
journal, August 1987

  • Maragos, P.; Schafer, R.
  • IEEE Transactions on Acoustics, Speech, and Signal Processing, Vol. 35, Issue 8
  • DOI: 10.1109/TASSP.1987.1165259

Crossed-beam energy transfer in implosion experiments on OMEGA
journal, December 2010

  • Igumenshchev, I. V.; Edgell, D. H.; Goncharov, V. N.
  • Physics of Plasmas, Vol. 17, Issue 12
  • DOI: 10.1063/1.3532817

SUNDIALS: Suite of nonlinear and differential/algebraic equation solvers
journal, September 2005

  • Hindmarsh, Alan C.; Brown, Peter N.; Grant, Keith E.
  • ACM Transactions on Mathematical Software, Vol. 31, Issue 3
  • DOI: 10.1145/1089014.1089020

Energy transfer between laser beams crossing in ignition hohlraums
journal, April 2009

  • Michel, P.; Divol, L.; Williams, E. A.
  • Physics of Plasmas, Vol. 16, Issue 4
  • DOI: 10.1063/1.3103788

Caustics, catastrophes, and wave fields
journal, December 1983


Observation of persistent species temperature separation in inertial confinement fusion mixtures
journal, January 2020


Caustics, catastrophes, and wave fields [Kaustiki, katastrofy i volnovye polya]
journal, January 1983


The role of hot electrons in the dynamics of a laser-driven strong converging shock
journal, November 2017

  • Llor Aisa, E.; Ribeyre, X.; Duchateau, G.
  • Physics of Plasmas, Vol. 24, Issue 11
  • DOI: 10.1063/1.5003814

Works referencing / citing this record:

Impact of the Langdon effect on crossed-beam energy transfer
journal, December 2019


Adaptive inverse ray-tracing for accurate and efficient modeling of cross beam energy transfer in hydrodynamics simulations
journal, July 2019

  • Colaïtis, A.; Follett, R. K.; Palastro, J. P.
  • Physics of Plasmas, Vol. 26, Issue 7
  • DOI: 10.1063/1.5108777

A unified modeling of wave mixing processes with the ray tracing method
journal, September 2019

  • Debayle, A.; Ruyer, C.; Morice, O.
  • Physics of Plasmas, Vol. 26, Issue 9
  • DOI: 10.1063/1.5110247

Adaptive inverse ray-tracing for accurate and efficient modeling of cross beam energy transfer in hydrodynamics simulations
journal, July 2019

  • Colaïtis, A.; Follett, R. K.; Palastro, J. P.
  • Physics of Plasmas, Vol. 26, Issue 7
  • DOI: 10.1063/1.5108777