Laser-generated shock wave attenuation aimed at microscale pyrotechnic device design

To meet the rising demand for miniaturizing the pyrotechnic device that consists of donor/acceptor pair separated by a bulkhead or a thin gap, the shock initiation sensitivity in the microscale gap test configuration is investigated. For understanding the shock attenuation within a gap sample (304 s...

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Main Authors: Hyeonju Yu, Jack J. Yoh
Format: Article
Language:English
Published: AIP Publishing LLC 2016-05-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4950855
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spelling doaj-88f4fb545fca489899a989e47bf077c32020-11-25T00:03:08ZengAIP Publishing LLCAIP Advances2158-32262016-05-0165055314055314-1310.1063/1.4950855052605ADVLaser-generated shock wave attenuation aimed at microscale pyrotechnic device designHyeonju Yu0Jack J. Yoh1Department of Mechanical and Aerospace Engineering Seoul National University, 1 Gwanakro, Gwanakgu, Seoul, Korea 151-742Department of Mechanical and Aerospace Engineering Seoul National University, 1 Gwanakro, Gwanakgu, Seoul, Korea 151-742To meet the rising demand for miniaturizing the pyrotechnic device that consists of donor/acceptor pair separated by a bulkhead or a thin gap, the shock initiation sensitivity in the microscale gap test configuration is investigated. For understanding the shock attenuation within a gap sample (304 stainless steel) thickness of 10∼800 μm, the laser-generated shock wave in water confinement is adopted. The shock properties are obtained from the free surface velocity by making use of a velocity interferometer system for any reflector (VISAR). Analytical models for plasma generation in a confined geometry and for evolution and decay of shock waves during the propagation are considered. The shape and amplitude of the laser-driven initial pressure load and its attenuation pattern in the gap are effectively controlled for targeting the microscale propagation distance and subsequent triggering pressure for the acceptor charge. The reported results are important in the precise controlling of the shock strength during the laser initiation of microscale pyrotechnic devices.http://dx.doi.org/10.1063/1.4950855
collection DOAJ
language English
format Article
sources DOAJ
author Hyeonju Yu
Jack J. Yoh
spellingShingle Hyeonju Yu
Jack J. Yoh
Laser-generated shock wave attenuation aimed at microscale pyrotechnic device design
AIP Advances
author_facet Hyeonju Yu
Jack J. Yoh
author_sort Hyeonju Yu
title Laser-generated shock wave attenuation aimed at microscale pyrotechnic device design
title_short Laser-generated shock wave attenuation aimed at microscale pyrotechnic device design
title_full Laser-generated shock wave attenuation aimed at microscale pyrotechnic device design
title_fullStr Laser-generated shock wave attenuation aimed at microscale pyrotechnic device design
title_full_unstemmed Laser-generated shock wave attenuation aimed at microscale pyrotechnic device design
title_sort laser-generated shock wave attenuation aimed at microscale pyrotechnic device design
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2016-05-01
description To meet the rising demand for miniaturizing the pyrotechnic device that consists of donor/acceptor pair separated by a bulkhead or a thin gap, the shock initiation sensitivity in the microscale gap test configuration is investigated. For understanding the shock attenuation within a gap sample (304 stainless steel) thickness of 10∼800 μm, the laser-generated shock wave in water confinement is adopted. The shock properties are obtained from the free surface velocity by making use of a velocity interferometer system for any reflector (VISAR). Analytical models for plasma generation in a confined geometry and for evolution and decay of shock waves during the propagation are considered. The shape and amplitude of the laser-driven initial pressure load and its attenuation pattern in the gap are effectively controlled for targeting the microscale propagation distance and subsequent triggering pressure for the acceptor charge. The reported results are important in the precise controlling of the shock strength during the laser initiation of microscale pyrotechnic devices.
url http://dx.doi.org/10.1063/1.4950855
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AT jackjyoh lasergeneratedshockwaveattenuationaimedatmicroscalepyrotechnicdevicedesign
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