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Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves

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Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves. / Mahmoudian, A.; Mohebalhojeh, A. R.; Farahani, M. M. et al.
In: Journal of Geophysical Research: Space Physics, Vol. 122, No. 1, 01.2017, p. 843-856.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Mahmoudian, A, Mohebalhojeh, AR, Farahani, MM, Scales, WA & Kosch, MJ 2017, 'Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves', Journal of Geophysical Research: Space Physics, vol. 122, no. 1, pp. 843-856. https://doi.org/10.1002/2016JA02338

APA

Mahmoudian, A., Mohebalhojeh, A. R., Farahani, M. M., Scales, W. A., & Kosch, M. J. (2017). Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves. Journal of Geophysical Research: Space Physics, 122(1), 843-856. https://doi.org/10.1002/2016JA02338

Vancouver

Mahmoudian A, Mohebalhojeh AR, Farahani MM, Scales WA, Kosch MJ. Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves. Journal of Geophysical Research: Space Physics. 2017 Jan;122(1):843-856. Epub 2017 Jan 5. doi: 10.1002/2016JA02338

Author

Mahmoudian, A. ; Mohebalhojeh, A. R. ; Farahani, M. M. et al. / Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves. In: Journal of Geophysical Research: Space Physics. 2017 ; Vol. 122, No. 1. pp. 843-856.

Bibtex

@article{9da639ee9bfa4974883049aaf72ddea0,
title = "Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves",
abstract = "This paper presents the first study of the modulation of polar mesospheric winter echoes (PMWE) by artificial radio wave heating using computational modeling and experimental observation in different radar frequency bands. The temporal behavior of PMWE response to HF pump heating can be employed to diagnose the charged dust layer associated with mesospheric smoke particles. Specifically, the rise and fall time of radar echo strength as well as relaxation and recovery time after heater turn-on and turnoff are distinct parameters that are a function of radar frequency. The variation of PMWE strength with PMWE source region parameters such as electron-neutral collision frequency, photodetachment current, electron temperature enhancement ratio, dust density, and radius is considered. The comparison of recent PMWE measurements at 56 MHz and 224 MHz with computational results is discussed, and dust parameters in the PMWE generation regime are estimated. Predictions for HF PMWE modification and its connection to the dust charging process by free electrons is investigated. The possibility for remote sensing of dust and plasma parameters in artificially modified PMWE regions using simultaneous measurements in multiple frequency bands are discussed. {\textcopyright} 2016. American Geophysical Union. All Rights Reserved.",
keywords = "Active modulation, PMWE",
author = "A. Mahmoudian and Mohebalhojeh, {A. R.} and Farahani, {M. M.} and Scales, {W. A.} and Kosch, {Michael Jurgen}",
year = "2017",
month = jan,
doi = "10.1002/2016JA02338",
language = "English",
volume = "122",
pages = "843--856",
journal = "Journal of Geophysical Research: Space Physics",
issn = "2169-9402",
publisher = "Blackwell Publishing Ltd",
number = "1",

}

RIS

TY - JOUR

T1 - Remote sensing of mesospheric dust layers using active modulation of PMWE by high-power radio waves

AU - Mahmoudian, A.

AU - Mohebalhojeh, A. R.

AU - Farahani, M. M.

AU - Scales, W. A.

AU - Kosch, Michael Jurgen

PY - 2017/1

Y1 - 2017/1

N2 - This paper presents the first study of the modulation of polar mesospheric winter echoes (PMWE) by artificial radio wave heating using computational modeling and experimental observation in different radar frequency bands. The temporal behavior of PMWE response to HF pump heating can be employed to diagnose the charged dust layer associated with mesospheric smoke particles. Specifically, the rise and fall time of radar echo strength as well as relaxation and recovery time after heater turn-on and turnoff are distinct parameters that are a function of radar frequency. The variation of PMWE strength with PMWE source region parameters such as electron-neutral collision frequency, photodetachment current, electron temperature enhancement ratio, dust density, and radius is considered. The comparison of recent PMWE measurements at 56 MHz and 224 MHz with computational results is discussed, and dust parameters in the PMWE generation regime are estimated. Predictions for HF PMWE modification and its connection to the dust charging process by free electrons is investigated. The possibility for remote sensing of dust and plasma parameters in artificially modified PMWE regions using simultaneous measurements in multiple frequency bands are discussed. © 2016. American Geophysical Union. All Rights Reserved.

AB - This paper presents the first study of the modulation of polar mesospheric winter echoes (PMWE) by artificial radio wave heating using computational modeling and experimental observation in different radar frequency bands. The temporal behavior of PMWE response to HF pump heating can be employed to diagnose the charged dust layer associated with mesospheric smoke particles. Specifically, the rise and fall time of radar echo strength as well as relaxation and recovery time after heater turn-on and turnoff are distinct parameters that are a function of radar frequency. The variation of PMWE strength with PMWE source region parameters such as electron-neutral collision frequency, photodetachment current, electron temperature enhancement ratio, dust density, and radius is considered. The comparison of recent PMWE measurements at 56 MHz and 224 MHz with computational results is discussed, and dust parameters in the PMWE generation regime are estimated. Predictions for HF PMWE modification and its connection to the dust charging process by free electrons is investigated. The possibility for remote sensing of dust and plasma parameters in artificially modified PMWE regions using simultaneous measurements in multiple frequency bands are discussed. © 2016. American Geophysical Union. All Rights Reserved.

KW - Active modulation

KW - PMWE

U2 - 10.1002/2016JA02338

DO - 10.1002/2016JA02338

M3 - Journal article

VL - 122

SP - 843

EP - 856

JO - Journal of Geophysical Research: Space Physics

JF - Journal of Geophysical Research: Space Physics

SN - 2169-9402

IS - 1

ER -