Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG Laser

This research studies the orbital dynamics of space debris in near-earth orbit and calculates its respective lifetime. The orbital dynamics of space debris is closely examined in near-earth orbit whereby (apogee altitude ha=1200 km and perigee altitude hp=200 km). In addition, the lifetime of the s...

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Main Authors: H. K. Al-Zaidi, C.R. Phipps, M. J. Al-Bermani
Format: Article
Language:English
Published: University of Kufa 2020-12-01
Series:Journal of Kufa-Physics
Subjects:
Online Access:https://journal.uokufa.edu.iq/index.php/jkp/article/view/7445
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author H. K. Al-Zaidi
C.R. Phipps
M. J. Al-Bermani
author_facet H. K. Al-Zaidi
C.R. Phipps
M. J. Al-Bermani
author_sort H. K. Al-Zaidi
collection DOAJ
description This research studies the orbital dynamics of space debris in near-earth orbit and calculates its respective lifetime. The orbital dynamics of space debris is closely examined in near-earth orbit whereby (apogee altitude ha=1200 km and perigee altitude hp=200 km). In addition, the lifetime of the space debris is calculated using the influence of the friction force exerted on the atmospheric particles with debris dimensions measuring between (1-10 cm). In this study, the Drag Thermospheric Models (DTM78 and DTM94) are used because of their dependence on solar and geomagnetic activities, and pulsed lasers are utilized to interact with Aluminum 2024 particles which are frequently employed in the structure of spacecraft and aerospace designs. A numerical analysis program (NaP1) was built to calculate the lifetime of space debris and its time of return to the atmosphere. It is then integrated with a second numerical analysis program (NaP2) developed using the Lax-Wendroff finite difference method to simulate the laser material interaction model. A high-power Nd:YAG laser was applied to produce shock wave pressure in the target. The results show that the maximum peak pressure occurs at 50 μm depth and then slowly decays, the peak pressure increases with the increase of the laser intensity, and the optimum value of the momentum coupling coefficient (Cm) for the aluminum debris of size range (1-10 cm) is 6.5 dyn.s/j.
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spelling doaj.art-fa4d0ae18a2048a989ecefb95ec4d3952024-03-16T01:18:15ZengUniversity of KufaJournal of Kufa-Physics2077-58302312-66712020-12-01120210.31257/2018/JKP/2020/120204Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG LaserH. K. Al-ZaidiC.R. PhippsM. J. Al-Bermani This research studies the orbital dynamics of space debris in near-earth orbit and calculates its respective lifetime. The orbital dynamics of space debris is closely examined in near-earth orbit whereby (apogee altitude ha=1200 km and perigee altitude hp=200 km). In addition, the lifetime of the space debris is calculated using the influence of the friction force exerted on the atmospheric particles with debris dimensions measuring between (1-10 cm). In this study, the Drag Thermospheric Models (DTM78 and DTM94) are used because of their dependence on solar and geomagnetic activities, and pulsed lasers are utilized to interact with Aluminum 2024 particles which are frequently employed in the structure of spacecraft and aerospace designs. A numerical analysis program (NaP1) was built to calculate the lifetime of space debris and its time of return to the atmosphere. It is then integrated with a second numerical analysis program (NaP2) developed using the Lax-Wendroff finite difference method to simulate the laser material interaction model. A high-power Nd:YAG laser was applied to produce shock wave pressure in the target. The results show that the maximum peak pressure occurs at 50 μm depth and then slowly decays, the peak pressure increases with the increase of the laser intensity, and the optimum value of the momentum coupling coefficient (Cm) for the aluminum debris of size range (1-10 cm) is 6.5 dyn.s/j. https://journal.uokufa.edu.iq/index.php/jkp/article/view/7445Reentry space debris Low earth orbit Pulsed laser Lifetime
spellingShingle H. K. Al-Zaidi
C.R. Phipps
M. J. Al-Bermani
Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG Laser
Journal of Kufa-Physics
Reentry space debris
Low earth orbit
Pulsed laser
Lifetime
title Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG Laser
title_full Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG Laser
title_fullStr Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG Laser
title_full_unstemmed Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG Laser
title_short Reentry of Space Debris from Low Earth Orbit by Pulsed Nd:YAG Laser
title_sort reentry of space debris from low earth orbit by pulsed nd yag laser
topic Reentry space debris
Low earth orbit
Pulsed laser
Lifetime
url https://journal.uokufa.edu.iq/index.php/jkp/article/view/7445
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