Project data
Authors Md. Motakabbir Rahman
Joshua M. Pearce
Location London, ON, Canada
OKH Manifest Download

The Plasma Discharge System consists of a voltage regulator, a plasma generator unit, and a reactor. It is typically employed for conducting arc discharge, dielectric barrier discharge, and glow discharge tests in various atmospheres such as air, oxygen, nitrogen, and other inert gases.

The objective of this project is to build a power supply for the experimental plasma discharge setup. The application-specific solar power supply includes an MPPT (Maximum Power Point Tracker) and an inverter specifically designed for this application. These components will be integrated into a single compact, cost-effective, and open-source package.

Description plasma discharge experimental setup

Plasma discharge system setup

Plasma Generator Setup
Plasma Generator Setup


Product composition

1. CTP 2000K Plasma power supply.

2. TDGC2-1 Contact Voltage Regulator (Resistive).

3. DBD Reactor.

Proposed power supply unit

Specifications of the power supply unit
S.L. Type Specification
1 PV 200W
2 MPPT 20A
3 Inverter 230V, 50Hz (500W)
4 Battery 24V, 50Ahr

Literature review on "Open source solar power supply unit for plasma generator"

Applications of plasma discharge

1. Hydrogen Production from Hydrocarbons with Use of Plasma Discharges Under High Pressure Condition[1]

Yasushi Nishida et al. are developing a novel H2 production system utilizing plasma discharges, specifically designed for high-pressure conditions exceeding 1.5 atm. The system, intended for installation in moving vehicles, currently explores methane and propane, achieving an approximate 60% H2 yield in comparison to residual CH4 with 138 Whr input energy.

2.    Large capacity hydrogen production by microwave discharge plasma in liquid fuels ethanol[2]

Bing Sun et al. investigate large-capacity hydrogen production through microwave discharge plasma in liquid ethanol. Their study with a direct standing wave coupling reactor explores optimized conditions, achieving a hydrogen flow rate of 72.48 g/h, a concentration of 58.1%, and an energy yield of 48.32 g/kWh.

3.    Hydrogen generation by glow discharge plasma electrolysis of methanol solutions[3]

Zong Cheng Yan et al. delve into hydrogen generation through glow discharge plasma electrolysis of methanol solutions. The study highlights the dominance of H2 and HCHO in methanol decomposition, with higher hydrogen yield and significantly lower energy consumption in cathodic GDPE compared to anodic GDPE, particularly at 700 V discharge voltage.

4.    Application of a non-thermal surface plasma discharge in wet condition for gas exhaust treatment: NOx removal[4]

J. Jolibois et al. investigate the application of a non-thermal surface plasma discharge for NOx removal in wet conditions, studying its efficiency in gas exhaust treatment under low flow rates (1 L/min) and 100 ppm of NO.

5.    Characterization of DBD plasma source for biomedical applications[5]

M. Kuchenbecker et al. characterize a Dielectric Barrier Discharge (DBD) plasma source for biomedical applications. This DBD plasma source, featuring a ceramic-covered electrode, operates under steady-state conditions without additional gas flow and is studied for potential treatment of biological objects.

6.    High-Frequency Underwater Plasma Discharge Application in Antibacterial Activity[6]

M.W. Ahmed et al. explore the antibacterial activity of high-frequency underwater plasma discharge. Using a neon transformer, they achieve effective inactivation of Gram-negative Escherichia coli in aqueous systems, with no remarkable E. coli rebirth even after 72 hours of plasma treatment.

Solar powered Plasma generators

There are very few literature's available that describes the design of a complete solar-powered plasma generation system. This section will only cover those literature:

7. Compact Microsecond Pulsed Power Generator Driven by Solar Energy for Dielectric Barrier Discharge Applications[7]

Zhi Fang et al. designed a compact solar-powered plasma generator system for driving a DBD reactor. The pulsed power supply is capable of delivering high voltage pulses up to 20 kV, with a pulse repetitive frequency ranging from 1 Hz to 2 kHz and a maximum output power of 150 W.

8. Design of Adjustable High Voltage Pulse Power Supply Driven by Photovoltaic Cells for Cold Plasma generation[8]

Mengqi Li et al. designed a solar-powered plasma generator that employs a multi-stage boost converter to adequately increase the voltage. They utilize a Marx generator to adjust the frequency (ranging from 500Hz to 5kHz) and, subsequently, a transformer to elevate the voltage to up to 10kV for plasma generation.

9. A solar powered handheld plasma source for microbial decontamination applications.[9]

Y Ni, M J Lynch et al. Mengqi Li et al. designed a handheld plasma source for microbial decontamination.

10. Solar powered decentralized water systems: A cleaner solution of the industrial wastewater treatment and clean drinking water supply challenges[10]

Ainy Hafeez, Zufishan Shamair et al. designed the decentralized waste water treatment using solar power plasma system.

Solar power system for individual purposes

11. Portable autonomous solar power plant for individual use[11]
Javoxir Toshov et. al. designed a portable solar power plant based on solar battery.

12. Off-Grid Hybrid Online Solar Power Conditioning Unit for Domestic Purposes[12]
Mohit Chaudhari et. al. designed a UPS that supplies power to the grid from battery and uses MPPT charge controller to utilize solar power.

13. Solar Power Inverters[13]
Regine Mallwitz et. al. from SMA Solar Technology AG, which is global acting market leader for solar inverters with more than 4 GW worldwide installed power, classified the grid connected inverters in three generation and discussed their packaging and configurations in this paper.

14. Research and Design of Inverter Applied in Solar PV Systems Connected to Distribution Grid[14]
Nguyen Duc Minh et. simulated and designed experimental prototype of 5kW grid connected PV smart inverter.

15. Design and Validation of a Modular Control Platform for a Voltage Source Inverter[15]
Hernan Lezcano et. al. presented a modular design for signal acquisition and control hardware design for IGBT based commercial VSI converter for isolated and grid connected system.

Page data
Keywords FAST literature reviews, PV Nano grid, Solar power supply unit
License CC-BY-SA-4.0
Language English ()
Related 0 subpages, 0 pages link here
Views 315 page views (analytics)
Created April 24, 2023 by Md. Motakabbir Rahman
Last edit January 8, 2026 by MetadescriptionsBot
  1. ↑ Y. Nishida, C.-Z. Cheng, K. Iwasaki, Hydrogen Production From Hydrocarbons With Use of Plasma Discharges Under High Pressure Condition, IEEE Transactions on Plasma Science. 42 (2014) 3674–3680. https://doi.org/10.1109/TPS.2014.2337351.
  2. ↑ B. Sun, X. Zhao, Y. Xin, X. Zhu, Large capacity hydrogen production by microwave discharge plasma in liquid fuels ethanol, International Journal of Hydrogen Energy. 42 (2017) 24047–24054. https://doi.org/10.1016/j.ijhydene.2017.08.052.
  3. ↑ Z.C. Yan, C. Li, W.H. Lin, Hydrogen generation by glow discharge plasma electrolysis of methanol solutions, International Journal of Hydrogen Energy. 34 (2009) 48–55. https://doi.org/10.1016/j.ijhydene.2008.09.099.
  4. ↑ J. Jolibois, K. Takashima, A. Mizuno, Application of a non-thermal surface plasma discharge in wet condition for gas exhaust treatment: NOx removal, Journal of Electrostatics. 70 (2012) 300–308. https://doi.org/10.1016/j.elstat.2012.03.011.
  5. ↑ M. Kuchenbecker, N. Bibinov, A. Kaemlimg, D. Wandke, P. Awakowicz, W. Viöl, Characterization of DBD plasma source for biomedical applications, J. Phys. D: Appl. Phys. 42 (2009) 045212. https://doi.org/10.1088/0022-3727/42/4/045212.
  6. ↑ M.W. Ahmed, S. Choi, K. Lyakhov, U. Shaislamov, R.K. Mongre, D.K. Jeong, R. Suresh, H.J. Lee, High-frequency underwater plasma discharge application in antibacterial activity, Plasma Phys. Rep. 43 (2017) 381–392. https://doi.org/10.1134/S1063780X17030011.
  7. ↑ Z. Fang, Y. Shi, F. Liu, and R. Zhou, “Compact microsecond pulsed power generator driven by solar energy for dielectric barrier discharge applications,” IEEE Trans. Dielectr. Electr. Insul., vol. 26, no. 2, pp. 390–396, Apr. 2019, doi: 10.1109/TDEI.2018.007725.
  8. ↑ M. Li, K. Luo, and Z. Xiong, “Design of Adjustable High Voltage Pulse Power Supply Driven by Photovoltaic Cells for Cold Plasma Generation,” in 2021 IEEE 4th International Electrical and Energy Conference (CIEEC), May 2021, pp. 1–6. doi: 10.1109/CIEEC50170.2021.9510416.
  9. ↑ Y. Ni, M.J. Lynch, M. Modic, R.D. Whalley, J.L. Walsh, A solar powered handheld plasma source for microbial decontamination applications, J. Phys. D: Appl. Phys. 49 (2016) 355203. https://doi.org/10.1088/0022-3727/49/35/355203.
  10. ↑ A. Hafeez, Z. Shamair, N. Shezad, F. Javed, T. Fazal, S. ur Rehman, A.A. Bazmi, F. Rehman, Solar powered decentralized water systems: A cleaner solution of the industrial wastewater treatment and clean drinking water supply challenges, Journal of Cleaner Production. 289 (2021) 125717. https://doi.org/10.1016/j.jclepro.2020.125717.
  11. ↑ J. Toshov and E. Saitov, “Portable autonomous solar power plant for individual use,” E3S Web Conf., vol. 139, p. 01087, 2019, doi: 10.1051/e3sconf/201913901087.
  12. ↑ M. Chaudhari, K. Babu, S. W. Khubalkar, and S. Talokar, “Off-Grid Hybrid Online Solar Power Conditioning Unit for Domestic Purposes,” in 2019 International Conference on Computing, Power and Communication Technologies (GUCON), Sep. 2019, pp. 121–126.
  13. ↑ R. Mallwitz and B. Engel, “Solar power inverters,” in 2010 6th International Conference on Integrated Power Electronics Systems, Mar. 2010, pp. 1–7.
  14. ↑ Nguyen Duc Minh, Trinh Trong Chuong, Bui Van Huy, Quach Duc Cuong, and Bui Dinh Thanh, “Research and Design of Inverter Applied in Solar PV Systems Connected to Distribution Grid,” J Electr. Eng., vol. 7, no. 1, Feb. 2019, doi: 10.17265/2328-2223/2019.01.006.
  15. ↑ H. Lezcano, J. Rodas, J. Pacher, M. Ayala, and C. Romero, “Design and Validation of a Modular Control Platform for a Voltage Source Inverter,” HardwareX, vol. 13, p. e00390, Mar. 2023, doi: 10.1016/j.ohx.2022.e00390.