Home > Research > Publications & Outputs > Two-dimensional numerical simulation of O-mode ...

Associated organisational unit

Electronic data

  • ModeConversionPaper_PCannon

    Accepted author manuscript, 7.73 MB, PDF document

  • Cannon_et_al-2016-Journal_of_Geophysical_Research-_Space_Physics

    Rights statement: ©2016. The Authors.This is an open access article under the terms of the Creative Commons Attribution License, which permits use,distribution and reproduction in any medium, provided the original work is properly cited.

    Final published version, 5.43 MB, PDF document

    Available under license: CC BY: Creative Commons Attribution 4.0 International License

Links

Text available via DOI:

View graph of relations

Two-dimensional numerical simulation of O-mode to Z-mode conversion in the ionosphere

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Published

Standard

Two-dimensional numerical simulation of O-mode to Z-mode conversion in the ionosphere. / Cannon, Patrick; Honary, Farideh; Borisov, N.
In: Journal of Geophysical Research: Space Physics, Vol. 121, No. 3, 22.03.2016, p. 2755-2782.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Cannon, P, Honary, F & Borisov, N 2016, 'Two-dimensional numerical simulation of O-mode to Z-mode conversion in the ionosphere', Journal of Geophysical Research: Space Physics, vol. 121, no. 3, pp. 2755-2782. https://doi.org/10.1002/2015JA022105

APA

Vancouver

Cannon P, Honary F, Borisov N. Two-dimensional numerical simulation of O-mode to Z-mode conversion in the ionosphere. Journal of Geophysical Research: Space Physics. 2016 Mar 22;121(3):2755-2782. Epub 2016 Feb 17. doi: 10.1002/2015JA022105

Author

Cannon, Patrick ; Honary, Farideh ; Borisov, N. / Two-dimensional numerical simulation of O-mode to Z-mode conversion in the ionosphere. In: Journal of Geophysical Research: Space Physics. 2016 ; Vol. 121, No. 3. pp. 2755-2782.

Bibtex

@article{5119e839488048fdb88f5ccbc20b1e27,
title = "Two-dimensional numerical simulation of O-mode to Z-mode conversion in the ionosphere",
abstract = "Experiments in the illumination of the F region of the ionosphere via radio frequency waves polarized in the ordinary mode (O-mode) have revealed that the magnitude of artificial heating-induced effects depends strongly on the inclination angle of the pump beam, with a greater modification to the plasma observed when the heating beam is directed close to or along the magnetic zenith direction. Numerical simulations performed using a recently developed finite-difference time-domain (FDTD) code are used to investigate the contribution of the O-mode to Z-mode conversion process to this effect. The aspect angle dependence and angular size of the radio window for which conversion of an O-mode pump wave to the Z-mode occurs is simulated for a variety of plasma density profiles including 2-D linear gradients representative of large-scale plasma depletions, density-depleted plasma ducts, and periodic field-aligned irregularities. The angular shape of the conversion window is found to be strongly influenced by the background plasma profile. If the Z-mode wave is reflected, it can propagate back toward the O-mode reflection region leading to resonant enhancement of the electric field in this region. Simulation results presented in this paper demonstrate that this process can make a significant contribution to the magnitude of electron density depletion and temperature enhancement around the resonance height and contributes to a strong dependence of the magnitude of plasma perturbation with the direction of the pump wave.",
author = "Patrick Cannon and Farideh Honary and N. Borisov",
year = "2016",
month = mar,
day = "22",
doi = "10.1002/2015JA022105",
language = "English",
volume = "121",
pages = "2755--2782",
journal = "Journal of Geophysical Research: Space Physics",
issn = "2169-9402",
publisher = "Blackwell Publishing Ltd",
number = "3",

}

RIS

TY - JOUR

T1 - Two-dimensional numerical simulation of O-mode to Z-mode conversion in the ionosphere

AU - Cannon, Patrick

AU - Honary, Farideh

AU - Borisov, N.

PY - 2016/3/22

Y1 - 2016/3/22

N2 - Experiments in the illumination of the F region of the ionosphere via radio frequency waves polarized in the ordinary mode (O-mode) have revealed that the magnitude of artificial heating-induced effects depends strongly on the inclination angle of the pump beam, with a greater modification to the plasma observed when the heating beam is directed close to or along the magnetic zenith direction. Numerical simulations performed using a recently developed finite-difference time-domain (FDTD) code are used to investigate the contribution of the O-mode to Z-mode conversion process to this effect. The aspect angle dependence and angular size of the radio window for which conversion of an O-mode pump wave to the Z-mode occurs is simulated for a variety of plasma density profiles including 2-D linear gradients representative of large-scale plasma depletions, density-depleted plasma ducts, and periodic field-aligned irregularities. The angular shape of the conversion window is found to be strongly influenced by the background plasma profile. If the Z-mode wave is reflected, it can propagate back toward the O-mode reflection region leading to resonant enhancement of the electric field in this region. Simulation results presented in this paper demonstrate that this process can make a significant contribution to the magnitude of electron density depletion and temperature enhancement around the resonance height and contributes to a strong dependence of the magnitude of plasma perturbation with the direction of the pump wave.

AB - Experiments in the illumination of the F region of the ionosphere via radio frequency waves polarized in the ordinary mode (O-mode) have revealed that the magnitude of artificial heating-induced effects depends strongly on the inclination angle of the pump beam, with a greater modification to the plasma observed when the heating beam is directed close to or along the magnetic zenith direction. Numerical simulations performed using a recently developed finite-difference time-domain (FDTD) code are used to investigate the contribution of the O-mode to Z-mode conversion process to this effect. The aspect angle dependence and angular size of the radio window for which conversion of an O-mode pump wave to the Z-mode occurs is simulated for a variety of plasma density profiles including 2-D linear gradients representative of large-scale plasma depletions, density-depleted plasma ducts, and periodic field-aligned irregularities. The angular shape of the conversion window is found to be strongly influenced by the background plasma profile. If the Z-mode wave is reflected, it can propagate back toward the O-mode reflection region leading to resonant enhancement of the electric field in this region. Simulation results presented in this paper demonstrate that this process can make a significant contribution to the magnitude of electron density depletion and temperature enhancement around the resonance height and contributes to a strong dependence of the magnitude of plasma perturbation with the direction of the pump wave.

U2 - 10.1002/2015JA022105

DO - 10.1002/2015JA022105

M3 - Journal article

VL - 121

SP - 2755

EP - 2782

JO - Journal of Geophysical Research: Space Physics

JF - Journal of Geophysical Research: Space Physics

SN - 2169-9402

IS - 3

ER -