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Published on: July 25, 2025
Modeling and optimization of argon-based floating helix electrode cold plasma.
G Divya Deepak1, Gajanan Anne1, Subraya Krishna Bhat2
1Department of Mechanical and Industrial Engineering , Manipal Institute of Technology Manipal Academy of Higher Education , Karnataka, 576104, Manipal, India.
This study models and optimizes cold atmospheric pressure plasma (CAP) devices using machine learning. The developed artificial neural network (ANN) accurately predicts CAP performance, ensuring safe, non-thermal operation for potential biomedical applications.
Area of Science:
- Biomedical Engineering
- Plasma Physics
- Machine Learning
Background:
- Cold atmospheric pressure plasma (CAP) offers non-thermal treatment crucial for biomedical applications.
- Existing CAP devices require precise control to maintain the non-thermal regime.
Purpose of the Study:
- To develop a machine learning-based model for process optimization of a novel floating-helix electrode CAP device.
- To ensure the device operates within the safe cold plasma regime for biomedical use.
Main Methods:
- Developed an artificial neural network (ANN) model to correlate process parameters (supply voltage, frequency) with performance metrics (power consumption, jet lengths).
- Employed the composite desirability method for multi-response optimization.
- Utilized logistic regression machine learning models (ANN classifier, K-NN, SVM) to classify discharge types.
Main Results:
- The ANN model demonstrated generality and robustness, validated through experimental data and predictions.
- The machine learning classifiers successfully identified discharge types within the cold plasma operating range.
- The study established a framework for optimizing CAP devices for biomedical applications.
Conclusions:
- The coupled machine learning and statistical approach effectively models and optimizes CAP devices.
- The validated models ensure operation within the non-thermal plasma regime, critical for safety in biomedical applications.
- Further biological testing is required to confirm the potential of this CAP system for biomedical use.
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