Development of a model of electric impedance in the contact between the skin and a capacitive active electrode when measuring electrocardiogram in combustiology
DOI:
https://doi.org/10.15587/1729-4061.2021.228735Keywords:
electrocardiography, capacitive electrodes, burn injury, biomedical electrodes, impedance modelingAbstract
Long-term ECG (electrocardiogram) measurement in patients with burns is a complicated problem since the overlapping of surface contact electrodes can lead to additional injuries. The possibility of ECG recording in patients with burns using capacitive electrodes was not proved, and there are no models of the electrode contact with a patient’s body while rehabilitation means are used.
In this paper, the model of the contact between capacitive electrodes and the skin was modified and the circuit model of the contact: skin – bandages (saline solution) – film – active capacitive electrode, was described. The influence of the parameters of a capacitive electrode on the amplitude-frequency characteristics (AFC) of the contact of an electrode with skin was assessed. It was found that contact capacitance is crucial to obtain a high-quality ECG signal. The parameters of the impedance of bandages, saline solution, a dielectric film were calculated, and their effect on the AFC was studied. Based on the modified model, the AFC contact was modeled taking into consideration all the calculated parameters; it was found that the resulting AFC of the contact corresponds to the frequency range of the ECG signal. Analysis of the calculations proves the possibility of using capacitive electrodes when applying various rehabilitation means. It was found that at a change in the impedance of the saline solution from 0.1 gigaohms to 1 gigaohm, the changes in the AFC of the contact are not crucial for the final quality of the received signal.
All calculations were carried out by modeling in the Qucs environment (ngspice SPICE).
Simulation results can be used in the development of new types of capacitive electrocardiographic electrodes. The proposed model can be used to study other wound covers, as well as to model physiological processes when putting artificial skin and wound covers
References
- Burns (2018). World Health Organization. Available at: https://www.who.int/en/news-room/fact-sheets/detail/burns
- Kozynets, H. P., Sliesarenko, S. V., Sorokina, O. Yu., Klyhunenko, O. M., Tsyhankov, V. P. (2008). Opikova travma ta yii naslidky. Dnipropetrovsk, 224.
- Perederiy, V. H., Tkach, S. M. (2010). Osnovy vnutrishnoi medytsyny. Vol. 3. Vinnytsia, 1006.
- Lin, B.-S., Chou, W., Wang, H.-Y., Huang, Y.-J., Pan, J.-S. (2013). Development of Novel Non-Contact Electrodes for Mobile Electrocardiogram Monitoring System. IEEE Journal of Translational Engineering in Health and Medicine, 1, 1–8. doi: https://doi.org/10.1109/jtehm.2013.2253598
- Wannenburg, J., Malekian, R., Hancke, G. P. (2018). Wireless Capacitive-Based ECG Sensing for Feature Extraction and Mobile Health Monitoring. IEEE Sensors Journal, 18 (14), 6023–6032. doi: https://doi.org/10.1109/jsen.2018.2844122
- Sullivan, T. J., Deiss, S. R., Cauwenberghs, G. (2007). A Low-Noise, Non-Contact EEG/ECG Sensor. 2007 IEEE Biomedical Circuits and Systems Conference. doi: https://doi.org/10.1109/biocas.2007.4463332
- Chi, Y. M., Jung, T.-P., Cauwenberghs, G. (2010). Dry-Contact and Noncontact Biopotential Electrodes: Methodological Review. IEEE Reviews in Biomedical Engineering, 3, 106–119. doi: https://doi.org/10.1109/rbme.2010.2084078
- Sun, Y., Yu, X. B. (2016). Capacitive Biopotential Measurement for Electrophysiological Signal Acquisition: A Review. IEEE Sensors Journal, 16 (9), 2832–2853. doi: https://doi.org/10.1109/jsen.2016.2519392
- Nahaichuk, V. I. (2010). Suchasni pidkhody do nadannia dopomohy khvorym z opikamy. Mystetstvo likuvannia. Suchasni preparaty ta tekhnolohiyi, 5 (71), 24–27. Available at: http://www.health-medix.com/articles/misteztvo/2010-05-27/10VINHZO.pdf
- Volume Resistivity (2021). Specialchem. Available at: https://omnexus.specialchem.com/polymer-properties/properties/volume-resistivity
- Precision Micropower, Low Noise CMOS, Rail-to-Rail Input/Output Operational Amplifiers (2008). AD8603/AD8607/AD8609. Analog Devices, Inc. Available at: https://www.analog.com/media/en/technical-documentation/data-sheets/AD8603_8607_8609.pdf
- ADS111x Ultra-Small, Low-Power, I2C-Compatible, 860-SPS, 16-Bit ADCs With Internal Reference, Oscillator, and Programmable Comparator (2018). Texas Instruments. Available at: https://www.ti.com/lit/ds/symlink/ads1113.pdf?ts=1613353031876&ref_url=https%253A%252F%252Fwww.ti.com%252Fproduct%252FADS1113
- Kwon, O., Jeong, J., Kim, H. B., Kwon, I. H., Park, S. Y., Kim, J. E., Choi, Y. (2018). Electrocardiogram Sampling Frequency Range Acceptable for Heart Rate Variability Analysis. Healthcare Informatics Research, 24 (3), 198. doi: https://doi.org/10.4258/hir.2018.24.3.198
- Karki, J. (2020). Understanding Operational Amplifier Specifications. Texas Instruments Incorporated. Available at: https://www.ti.com/lit/pdf/sloa011
- Tenenhaus, M., Rennekampff, H.-O. (2020). Topical agents and dressings for local burn wound care. UpToDate, Inc. Available at: https://www.uptodate.com/contents/topical-agents-and-dressings-for-local-burn-wound-care?search=Topical%20agents%20and%20dressings%20for%20local%20burn%20wound%20care&source=search_result&selectedTitle=1~150&usage_type=default&display_rank=1
- Kovalenko, О. M. (2010). Modern Coverage of Wound (Review). Suchasni medychni tekhnolohiyi, 4, 88–97.
- Douglas, H. E., Wood, F. (2017). Burns dressings. Australian Family Physician, 46 (3), 94–97.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2021 Арсен Васильевич Савчук
This work is licensed under a Creative Commons Attribution 4.0 International License.
The consolidation and conditions for the transfer of copyright (identification of authorship) is carried out in the License Agreement. In particular, the authors reserve the right to the authorship of their manuscript and transfer the first publication of this work to the journal under the terms of the Creative Commons CC BY license. At the same time, they have the right to conclude on their own additional agreements concerning the non-exclusive distribution of the work in the form in which it was published by this journal, but provided that the link to the first publication of the article in this journal is preserved.
A license agreement is a document in which the author warrants that he/she owns all copyright for the work (manuscript, article, etc.).
The authors, signing the License Agreement with TECHNOLOGY CENTER PC, have all rights to the further use of their work, provided that they link to our edition in which the work was published.
According to the terms of the License Agreement, the Publisher TECHNOLOGY CENTER PC does not take away your copyrights and receives permission from the authors to use and dissemination of the publication through the world's scientific resources (own electronic resources, scientometric databases, repositories, libraries, etc.).
In the absence of a signed License Agreement or in the absence of this agreement of identifiers allowing to identify the identity of the author, the editors have no right to work with the manuscript.
It is important to remember that there is another type of agreement between authors and publishers – when copyright is transferred from the authors to the publisher. In this case, the authors lose ownership of their work and may not use it in any way.