A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge Applications

Background and Objectives: Dielectric Barrier discharge (DBD) is a suitable method to generating Non-thermal plasma at atmospheric pressure, which utilizes Pulsed power supplies as exciters. Increasing pulse voltage range and frequency and compactness are important issues that should be taking into...

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Main Authors: A. Nejadmalayeri, H. Bahrami, َA. Bali Lashak, I. Soltani
Format: Article
Language:English
Published: Shahid Rajaee Teacher Training University 2021-07-01
Series:Journal of Electrical and Computer Engineering Innovations
Subjects:
Online Access:https://jecei.sru.ac.ir/article_1544_bfc33c067989e3a4a6abcd032d36e4e3.pdf
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author A. Nejadmalayeri
H. Bahrami
َA. Bali Lashak
I. Soltani
author_facet A. Nejadmalayeri
H. Bahrami
َA. Bali Lashak
I. Soltani
author_sort A. Nejadmalayeri
collection DOAJ
description Background and Objectives: Dielectric Barrier discharge (DBD) is a suitable method to generating Non-thermal plasma at atmospheric pressure, which utilizes Pulsed power supplies as exciters. Increasing pulse voltage range and frequency and compactness are important issues that should be taking into consideration.Methods: The high voltage pulse generators which are introduced in the literature have some disadvantages and complexities such as need of additional winding to reset the transformer core and operating under hard switching which increases electromagnetic noise and loss. The leakage inductance of the high voltage transformer increases the rise time of the pulse which is undesirable for DBD applications. The energy stored in the leakage inductance causes the voltage spike across the switch, witch necessitates the use of snubber circuits. The main contribution of this paper is a new high voltage pulse generator with the following characteristics, 1) a capacitor is paralleled with the main switch to reset the transformer core and to provide the soft switching condition for the switch. 2) The resonant charging technique is used which doubles the secondary winding voltage which reduces the turns ratio of high voltage transformer for a certain output pulse peak. 3) The sharpening circuit using magnetic switch produces a sharp high voltage pulse.Results: The proposed high voltage pulse generator is designed and simulated using Pspice software. To verify the theoretical results,  a prototype with the input voltage 48 V, the output voltage pulse 1.5 kV, and the rise time of the output pulse 50 ns is constructed and tested.Conclusion: This paper proposes a new pulse generator (PG). The proposed PG uses three techniques named forward, resonant charging, and magnetic switch to produce a high-voltage nanosecond pulse. The resonant charging double the secondary voltage of the pulse transformer, which causes reduction in turn ratio of the pulse transformer and decreases the weigh, volume, and price of the PT. The magnetic switch section finally produces a nanosecond high-voltage pulse. The magnitude of the output pulse can be varied using the input source voltage, the MS reset current and the duty cycle. The core of the pulse transformer resets by using a capacitor paralleled with the switch and the PG does not need any additional reset winding like the conventional DC-DC forward converter.
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spelling doaj.art-2b2e27390eab4933b054d07934375ce92022-12-22T02:35:43ZengShahid Rajaee Teacher Training UniversityJournal of Electrical and Computer Engineering Innovations2322-39522345-30442021-07-019223924810.22061/jecei.2021.7519.4001544A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge ApplicationsA. Nejadmalayeri0H. Bahrami1َA. Bali Lashak2I. Soltani3Faculty of Electrical Engineering, Malek-Ashtar University of Technology (MUT), Tehran, IranFaculty of Electrical Engineering, Malek-Ashtar University of Technology (MUT), Tehran, IranFaculty of Electrical Engineering, Malek-Ashtar University of Technology (MUT), Tehran, IranSupreme National Defense University and institute for Strategic Research, Tehran, Iran.Background and Objectives: Dielectric Barrier discharge (DBD) is a suitable method to generating Non-thermal plasma at atmospheric pressure, which utilizes Pulsed power supplies as exciters. Increasing pulse voltage range and frequency and compactness are important issues that should be taking into consideration.Methods: The high voltage pulse generators which are introduced in the literature have some disadvantages and complexities such as need of additional winding to reset the transformer core and operating under hard switching which increases electromagnetic noise and loss. The leakage inductance of the high voltage transformer increases the rise time of the pulse which is undesirable for DBD applications. The energy stored in the leakage inductance causes the voltage spike across the switch, witch necessitates the use of snubber circuits. The main contribution of this paper is a new high voltage pulse generator with the following characteristics, 1) a capacitor is paralleled with the main switch to reset the transformer core and to provide the soft switching condition for the switch. 2) The resonant charging technique is used which doubles the secondary winding voltage which reduces the turns ratio of high voltage transformer for a certain output pulse peak. 3) The sharpening circuit using magnetic switch produces a sharp high voltage pulse.Results: The proposed high voltage pulse generator is designed and simulated using Pspice software. To verify the theoretical results,  a prototype with the input voltage 48 V, the output voltage pulse 1.5 kV, and the rise time of the output pulse 50 ns is constructed and tested.Conclusion: This paper proposes a new pulse generator (PG). The proposed PG uses three techniques named forward, resonant charging, and magnetic switch to produce a high-voltage nanosecond pulse. The resonant charging double the secondary voltage of the pulse transformer, which causes reduction in turn ratio of the pulse transformer and decreases the weigh, volume, and price of the PT. The magnetic switch section finally produces a nanosecond high-voltage pulse. The magnitude of the output pulse can be varied using the input source voltage, the MS reset current and the duty cycle. The core of the pulse transformer resets by using a capacitor paralleled with the switch and the PG does not need any additional reset winding like the conventional DC-DC forward converter.https://jecei.sru.ac.ir/article_1544_bfc33c067989e3a4a6abcd032d36e4e3.pdfmagnetic pulse compression (mpc)dielectric barrier discharge (dbd)high voltage pulse generator (hvpg)
spellingShingle A. Nejadmalayeri
H. Bahrami
َA. Bali Lashak
I. Soltani
A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge Applications
Journal of Electrical and Computer Engineering Innovations
magnetic pulse compression (mpc)
dielectric barrier discharge (dbd)
high voltage pulse generator (hvpg)
title A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge Applications
title_full A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge Applications
title_fullStr A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge Applications
title_full_unstemmed A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge Applications
title_short A High Voltage Isolated Pulse Generator using Magnetic Pulse Compression and Resonant Charging Techniques for Dielectric Barrier Discharge Applications
title_sort high voltage isolated pulse generator using magnetic pulse compression and resonant charging techniques for dielectric barrier discharge applications
topic magnetic pulse compression (mpc)
dielectric barrier discharge (dbd)
high voltage pulse generator (hvpg)
url https://jecei.sru.ac.ir/article_1544_bfc33c067989e3a4a6abcd032d36e4e3.pdf
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