Bulletin of the American Physical Society
77th Annual Gaseous Electronics Conference
Monday–Friday, September 30–October 4 2024; San Diego, California
Session HW6: Poster Session II (4:00pm-6:00pm)
4:00 PM,
Wednesday, October 2, 2024
Room: Great Room 1-4
Abstract: HW6.00052 : Effects of Liquid Composition on Cold Atmospheric Plasma Jet Discharge characteristics studied using Collisional Radiative Model
Presenter:
Abhijit Mishra
(Indian Institute of Technology Jodhpur)
Authors:
Abhijit Mishra
(Indian Institute of Technology Jodhpur)
Ram Prakash
(Indian Institute of Technology Jodhpur)
Collaborations:
Shikha Pandey, Yasir Hussain Siddique, Sushma Jangra, Ritesh Mishra
In this work an effort has been made to study the impact of liquid composition on a bipolar pulsed powered CAP jet discharge characteristics using Collisional Radiative (CR) Model. The CAP jet, based on dielectric barrier discharge (DBD), is tuned for applied voltage, frequency, power consumption, and gas flow rate. Using optical emission spectroscopy (OES), key plasma properties are examined and reactive species generated are analysed when plasma contacts with differing composition and conductivities of liquids like deionized (DI) water, tap water, seawater, waste water. The CR model along with the Line ratio method and deviation parameter (Δ) is employed to extract the electron temperature (Te) and electron density (ne) from the spectra, while the cross-section data sourced from Open-ADAS [4]. Our findings indicate that varying liquid composition significantly influences plasma behaviour. High conductivity liquids enhance the electric field at the plasma-liquid interface, resulting in increased ne. Conversely, lower conductivity liquids like DI water produce more diffuse plasmas with lower ne.
The results highlight the critical role of liquid composition in determining the efficiency and characteristics of CAP jets. This study provides a foundational understanding of plasma-liquid interactions, insights for optimizing plasma systems for specific applications.
References
[1] P. J. Bruggeman, et al., Plasma Sources Sci Technol 25, 053002 (2016).
[2] C. Nau-Hix, T. M. Holsen, and S. M. Thagard, J Appl Phys 130, (2021).
[3] S. Pandey, R. Jangra, K. Ahlawat, R. Mishra, A. Mishra, S. Jangra, and R. Prakash, Phys Lett A 474, 128832 (2023).
[4] R. Prakash, P. Vasu, V. Kumar, R. Manchanda, M. B. Chowdhuri, and M. Goto, J Appl Phys 97, 43301 (2005).
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