Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime

In dense plasma focus (DPF) machines, the high-pressure (HP) regime of operation can be used as alternative technique to short-circuit (SC) test as the current sheet motion is minimal. The SC test was performed to get the right values for the static parameters of the machine. HP shots of more than 3...

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Main Authors: Mohamed, A. E, Abdou, A. E, Ismail, M. I, Lee, S., Saw, S. H.
Format: Article
Language:English
Published: IEEE 2012
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Online Access:http://eprints.intimal.edu.my/125/1/5_ft.pdf
http://eprints.intimal.edu.my/125/
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spelling my-inti-eprints.1252016-04-06T10:12:48Z http://eprints.intimal.edu.my/125/ Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime Mohamed, A. E Abdou, A. E Ismail, M. I Lee, S. Saw, S. H. QC Physics In dense plasma focus (DPF) machines, the high-pressure (HP) regime of operation can be used as alternative technique to short-circuit (SC) test as the current sheet motion is minimal. The SC test was performed to get the right values for the static parameters of the machine. HP shots of more than 30 mbar were performed on the 2.5-kJ Kansas State University DPF machine to determine the deviation of HP values from SC values in computed static inductance and resistance. The test was performed using various gases over a wide range of molecular/atomic mass, starting from hydrogen as the lightest gas up to argon. It was found that the deviation in static inductance and resistance computed from HP method is inversely proportional to gas molecular mass at a certain pressure. The heavy gases like neon and argon were found to give the most accurate results. At 60 mbar of argon, the inductance deviation was 6.5%, and the resistance deviation was 14%. It was found also that increasing gas pressure over 30 mbar using heavy gases like Ar or Ne gives no effective improvement on the computed static impedance. Snowplow model was used to predict the axial position and the axial speed of the current sheet during the HP regime. The model showed that the average axial speed in heavy gases like argon was 0.8 cm/ μs, whereas in hydrogen, it was 1.6 cm/μs. IEEE 2012 Article PeerReviewed text en http://eprints.intimal.edu.my/125/1/5_ft.pdf Mohamed, A. E and Abdou, A. E and Ismail, M. I and Lee, S. and Saw, S. H. (2012) Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime. IEEE Transactions on Plasma Science, 40 (10). pp. 2736-2740. ISSN 0093-3813
institution INTI International University
building INTI Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider INTI International University
content_source INTI Institutional Repository
url_provider http://eprints.intimal.edu.my
language English
topic QC Physics
spellingShingle QC Physics
Mohamed, A. E
Abdou, A. E
Ismail, M. I
Lee, S.
Saw, S. H.
Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime
description In dense plasma focus (DPF) machines, the high-pressure (HP) regime of operation can be used as alternative technique to short-circuit (SC) test as the current sheet motion is minimal. The SC test was performed to get the right values for the static parameters of the machine. HP shots of more than 30 mbar were performed on the 2.5-kJ Kansas State University DPF machine to determine the deviation of HP values from SC values in computed static inductance and resistance. The test was performed using various gases over a wide range of molecular/atomic mass, starting from hydrogen as the lightest gas up to argon. It was found that the deviation in static inductance and resistance computed from HP method is inversely proportional to gas molecular mass at a certain pressure. The heavy gases like neon and argon were found to give the most accurate results. At 60 mbar of argon, the inductance deviation was 6.5%, and the resistance deviation was 14%. It was found also that increasing gas pressure over 30 mbar using heavy gases like Ar or Ne gives no effective improvement on the computed static impedance. Snowplow model was used to predict the axial position and the axial speed of the current sheet during the HP regime. The model showed that the average axial speed in heavy gases like argon was 0.8 cm/ μs, whereas in hydrogen, it was 1.6 cm/μs.
format Article
author Mohamed, A. E
Abdou, A. E
Ismail, M. I
Lee, S.
Saw, S. H.
author_facet Mohamed, A. E
Abdou, A. E
Ismail, M. I
Lee, S.
Saw, S. H.
author_sort Mohamed, A. E
title Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime
title_short Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime
title_full Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime
title_fullStr Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime
title_full_unstemmed Current sheet axial dynamics of 2.5-kJ KSU-DPF under high-pressure regime
title_sort current sheet axial dynamics of 2.5-kj ksu-dpf under high-pressure regime
publisher IEEE
publishDate 2012
url http://eprints.intimal.edu.my/125/1/5_ft.pdf
http://eprints.intimal.edu.my/125/
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score 13.211869