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Investigation of Nitrogen Soft X-ray Emission from Dense Plasma Focus with Anode with Curved Tip Using the Lee Model
Journal of Fusion Energy,
2023
DOI:10.1007/s10894-022-00339-3
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[2]
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Investigation of Nitrogen Soft X-ray Emission from Dense Plasma Focus with Anode with Curved Tip Using the Lee Model
Journal of Fusion Energy,
2023
DOI:10.1007/s10894-022-00339-3
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[3]
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Hardening AISI 316 steel using INTI dense plasma focus machine
PROCEEDINGS OF THE 1ST INTERNATIONAL CONFERENCE ON FRONTIER OF DIGITAL TECHNOLOGY TOWARDS A SUSTAINABLE SOCIETY,
2023
DOI:10.1063/5.0120927
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[4]
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Investigation of Nitrogen Soft X-ray Emission from Dense Plasma Focus with Anode with Curved Tip Using the Lee Model
Journal of Fusion Energy,
2023
DOI:10.1007/s10894-022-00339-3
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[5]
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Operation of Plasma Focus Chamber as a Part of a Subkilojoule Pulsed Neutron Generator
Plasma Physics Reports,
2023
DOI:10.1134/S1063780X2360041X
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[6]
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Dynamics of the Current Sheath in a Self-Compressible Plasma Discharge with an Additional Gas Injection
Physics of Atomic Nuclei,
2023
DOI:10.1134/S1063778823070062
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[7]
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Argon Soft X-Ray Scaling Curves for the Amirkabir Plasma Focus Device
Journal of Fusion Energy,
2022
DOI:10.1007/s10894-022-00322-y
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[8]
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Update on the Scientific Status of the Plasma Focus
Plasma,
2021
DOI:10.3390/plasma4030033
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[9]
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Using the Modified Lee Model Code to Calculate the Optimum Length of NiZn Ferrite to Enhance the DPF Argon SXR Emission
Plasma Physics Reports,
2020
DOI:10.1134/S1063780X20020014
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[10]
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Research with plasma foci in countries of Asia, Africa, and Latin America
Reviews of Modern Plasma Physics,
2020
DOI:10.1007/s41614-020-0041-1
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[11]
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The Effects of Ferrites on Dense Plasma Focus Device: Using a Modification to the Lee Model
Journal of Fusion Energy,
2019
DOI:10.1007/s10894-019-00210-y
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[12]
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A Plasma Focus device as ultra-high dose rate pulsed radiation source. Part I: Primary electron beam characterization
Radiation Physics and Chemistry,
2019
DOI:10.1016/j.radphyschem.2019.02.027
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[13]
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Comparative numerical study of the dynamics, ion beam and flow energetics of fast and slow focus modes in a 2 kJ plasma focus operated in various gases
Vacuum,
2019
DOI:10.1016/j.vacuum.2019.04.042
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[14]
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Experimental Dependence of the Neutron Yield on the Discharge Current for Plasma Focus Chambers Filled with Deuterium and Deuterium–Tritium
Plasma Physics Reports,
2019
DOI:10.1134/S1063780X19030073
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[15]
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Application of medium energy plasma focus device in study of radioisotopes
Physics Letters A,
2018
DOI:10.1016/j.physleta.2018.09.015
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[16]
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The Effect of the Shape of the Anode Head on the Nitrogen Soft X-Ray Emission from a Dense Plasma Focus Device: a Numerical Investigation Using the Modified Lee Model Code Accompanied by Experiments
Journal of Fusion Energy,
2018
DOI:10.1007/s10894-018-0207-9
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[17]
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Observation of Plasma Dynamics in Axial and Radial Phase of DPF Device with Varying Gas Pressure
2018 International Conference on Innovation in Engineering and Technology (ICIET),
2018
DOI:10.1109/CIET.2018.8660826
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[18]
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Effect of the Variation of Pressure on the Dynamics and Neutron Yield of Plasma Focus Machines
IEEE Transactions on Plasma Science,
2017
DOI:10.1109/TPS.2017.2715802
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[19]
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Plasma Science and Technology for Emerging Economies
2017
DOI:10.1007/978-981-10-4217-1_3
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[20]
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PF1000 High-Energy Plasma Focus Device Operated With Neon as a Copious Soft X-Ray Source
IEEE Transactions on Plasma Science,
2017
DOI:10.1109/TPS.2017.2761843
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[21]
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Numerical study on the variation of pressure on India Bhabha Atomic Research Center (BARC) and Imperial College plasma focus machines
2017
DOI:10.1063/1.4978820
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[22]
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Numerical Experiments on IR-MPF-100 Plasma Focus Operated in Neon and Deuterium Gases
Journal of Fusion Energy,
2017
DOI:10.1007/s10894-017-0129-y
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[23]
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Dynamics of two microscale DPF devices
Journal of Physics D: Applied Physics,
2016
DOI:10.1088/0022-3727/49/5/055201
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[24]
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Conditions for Radiative Cooling and Collapse in the Plasma Focus Illustrated With Numerical Experiments on PF1000
IEEE Transactions on Plasma Science,
2016
DOI:10.1109/TPS.2015.2497269
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[25]
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A 109 neutrons/pulse transportable pulsed D-D neutron source based on flexible head plasma focus unit
Review of Scientific Instruments,
2016
DOI:10.1063/1.4942666
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[26]
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Measurement of Radiative Collapse in 2.2 kJ PF: Achieving High Energy Density (HED) Conditions in a Small Plasma Focus
Journal of Fusion Energy,
2016
DOI:10.1007/s10894-016-0095-9
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[27]
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A 109 neutrons/pulse transportable pulsed D-D neutron source based on flexible head plasma focus unit
Review of Scientific Instruments,
2016
DOI:10.1063/1.4942666
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[28]
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Comparison of Measured Soft X-Ray Yield Versus Pressure for NX1 and NX2 Plasma Focus Devices Against Computed Values Using Lee Model Code
Journal of Fusion Energy,
2015
DOI:10.1007/s10894-015-9872-0
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[29]
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Results of Ultracompact Plasma Focus Operating in Repetitive Burst-Mode
IEEE Transactions on Plasma Science,
2015
DOI:10.1109/TPS.2015.2445354
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[30]
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Neutron Yield Scaling With Inductance in Plasma Focus
IEEE Transactions on Plasma Science,
2015
DOI:10.1109/TPS.2015.2440335
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[31]
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Comparison of Measured Neutron Yield Versus Pressure Curves for FMPF-3, NX2 and NX3 Plasma Focus Machines Against Computed Results Using the Lee Model Code
Journal of Fusion Energy,
2015
DOI:10.1007/s10894-014-9824-0
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[32]
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Neutron energy distribution and temporal correlations with hard x-ray emission from a hundreds of joules plasma focus device
Plasma Physics and Controlled Fusion,
2015
DOI:10.1088/0741-3335/57/3/035008
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[33]
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Effects of Approximation and Close-Fitting Technique of Corona Model on Neon Soft X-Ray Emission in 3-kJ Plasma Focus
IEEE Transactions on Plasma Science,
2015
DOI:10.1109/TPS.2015.2433301
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[34]
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The Effect of Specific Heat Ratio on Neutron Yield
IEEE Transactions on Plasma Science,
2014
DOI:10.1109/TPS.2013.2288945
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[35]
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Numerical Experiments on PF1000 Neutron Yield
Journal of Fusion Energy,
2014
DOI:10.1007/s10894-014-9731-4
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[36]
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Investigation of the Plasma Behavior in Filippov-Type Plasma Focus Using the State Space of Sing Lee’s Model
Journal of Fusion Energy,
2014
DOI:10.1007/s10894-014-9667-8
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[37]
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Properties of Ion Beams Generated by Nitrogen Plasma Focus
Journal of Fusion Energy,
2014
DOI:10.1007/s10894-013-9660-7
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[38]
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Some Generalised Characteristics of the Electro-dynamics of the Plasma Focus in Its Axial Phase: Illustrated by an Application to Independantly Determine the Drive Current Fraction and the Mass Swept-Up Fraction
Journal of Fusion Energy,
2014
DOI:10.1007/s10894-013-9658-1
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[39]
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Developing a plasma focus research training system for the fusion energy age
International Journal of Modern Physics: Conference Series,
2014
DOI:10.1142/S2010194514603135
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[40]
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Plasma focus ion beam-scaling laws
International Journal of Modern Physics: Conference Series,
2014
DOI:10.1142/S2010194514603172
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[41]
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Potential medical applications of the plasma focus in the radioisotope production for PET imaging
Physics Letters A,
2014
DOI:10.1016/j.physleta.2014.05.017
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[42]
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Plasma Focus Radiative Model: Review of the Lee Model Code
Journal of Fusion Energy,
2014
DOI:10.1007/s10894-014-9683-8
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[43]
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Numerical Study of Z-pinch Dynamics at Different Working Regimes
Journal of Fusion Energy,
2014
DOI:10.1007/s10894-014-9740-3
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[44]
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Influence of Kr doping on neon soft X-rays emission in fast miniature plasma focus device
Physics Letters A,
2014
DOI:10.1016/j.physleta.2014.01.020
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[45]
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Scaling Laws of Nitrogen Soft X-ray Yields from 1 to 200 kJ Plasma Focus
Journal of Fusion Energy,
2013
DOI:10.1007/s10894-012-9537-1
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[46]
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Non-destructive assay of fissile materials through active neutron interrogation technique using pulsed neutron (plasma focus) device
Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment,
2013
DOI:10.1016/j.nima.2012.11.027
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[47]
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Optimization of neon soft X-rays emission from 200 J fast miniature dense plasma focus device: A potential source for soft X-ray lithography
Physics Letters A,
2013
DOI:10.1016/j.physleta.2013.03.023
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[48]
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Plasma focus ion beam fluence and flux—For various gases
Physics of Plasmas,
2013
DOI:10.1063/1.4811650
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[49]
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Computational Study of Emitted Spectra from the Neon Plasma Focus
Journal of Fusion Energy,
2013
DOI:10.1007/s10894-013-9601-5
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[50]
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Numerical Experiments on Oxygen Plasma Focus: Scaling Laws of Soft X-Ray Yields
Journal of Fusion Energy,
2013
DOI:10.1007/s10894-013-9595-z
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[51]
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Soft X-ray Emission Optimization Studies with Krypton and Xenon Gases in Plasma Focus Using Lee Model
Journal of Fusion Energy,
2013
DOI:10.1007/s10894-013-9606-0
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[52]
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Concrete shielding of neutron radiations of plasma focus and dose examination by FLUKA
The European Physical Journal Plus,
2013
DOI:10.1140/epjp/i2013-13077-1
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[53]
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Plasma focus ion beam fluence and flux—For various gases
Physics of Plasmas,
2013
DOI:10.1063/1.4811650
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[54]
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Plasma focus ion beam fluence and flux—Scaling with stored energy
Physics of Plasmas,
2012
DOI:10.1063/1.4766744
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[55]
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Dependence of Plasma Focus Argon Soft X-Ray Yield on Storage Energy, Total and Pinch Currents
Journal of Fusion Energy,
2012
DOI:10.1007/s10894-011-9445-9
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[56]
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The plasma focus-trending into the future
International Journal of Energy Research,
2012
DOI:10.1002/er.1918
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[57]
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Statistical characterization of the reproducibility of neutron emission of small plasma focus devices
Physics of Plasmas,
2012
DOI:10.1063/1.4747444
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[58]
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Statistical characterization of the reproducibility of neutron emission of small plasma focus devices
Physics of Plasmas,
2012
DOI:10.1063/1.4747444
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[59]
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Plasma focus ion beam fluence and flux—Scaling with stored energy
Physics of Plasmas,
2012
DOI:10.1063/1.4766744
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[60]
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Current-Step Technique to Enhance Plasma Focus Compression and Neutron Yield
Journal of Fusion Energy,
2012
DOI:10.1007/s10894-012-9506-8
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[61]
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Numerical Experiments in Plasma Focus Operated in Various Gases
IEEE Transactions on Plasma Science,
2012
DOI:10.1109/TPS.2012.2220863
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