DOI 10.17586/0021-3454-2024-67-7-615-621
UDC 681.382
THERMOELECTRIC DEVICE FOR THE TREATMENT OF PANARITIUM BY LOCAL HYPOTHERMIA
Dr. Sci., Associate Professor; Dagestan State Technical University, Department of Theoretical and General Electrical Engineering;
M. A. Ibragimova
Dagestan State Technical University, Department of Theoretical and General Electrical Engineering;
Z. M. Daiziev
Dagestan State Technical University, Department o Theoretical and General Electrical Engineering;
Reference for citation: Yevdulov O. V., Ibragimova A. M., Daiziev Z. M. Thermoelectric device for the treatment of panaritium by local hypothermia. Journal of Instrument Engineering. 2024. Vol. 67, N 7. P. 615–621 (in Russian). DOI:
10.17586/0021-3454-2024-67-7-615-621.
Abstract. A thermoelectric device for treating panaritium by local hypothermia of the affected area of the finger is considered. The design of the device is described, and its experimental studies are conducted. According to the results of the studies, the thermoelectric device fully provides the necessary thermal action modes for implementing the local hypothermia technique in treating panaritium. Comparison of theoretical and experimental data shows that their difference is 7–8%.
Abstract. A thermoelectric device for treating panaritium by local hypothermia of the affected area of the finger is considered. The design of the device is described, and its experimental studies are conducted. According to the results of the studies, the thermoelectric device fully provides the necessary thermal action modes for implementing the local hypothermia technique in treating panaritium. Comparison of theoretical and experimental data shows that their difference is 7–8%.
Keywords: thermoelectric device, thermoelectric module, panaritium, treatment, local hypothermia, temperature, prototype, experimental stand, measurement
Acknowledgement: the study was supported by the Russian Science Foundation, grant No. 23-29-00130; https://rscf. ru/project/23-29-00130/.
References:
Acknowledgement: the study was supported by the Russian Science Foundation, grant No. 23-29-00130; https://rscf. ru/project/23-29-00130/.
References:
- Sonis A.G., Kolyarov E.A., Alekseyev D.G., Besrukova M.A. Mоscоw Surgical Journal, 2020, no. 1(71), pp. 62–69. (in Russ.)
- Baranov D.A., Vecherkin V.A., Ptitsyn V.A., Koryashkin P.V., Zhila N.G. Russian Journal of Pediatric Surgery, Anesthesia and Intensive Care, 2023, no. 5(13), pp. 22. (in Russ.)
- Chepurnaya Y.L., Melkonyan G.G., Gulmuradova N.T., Sorokin A.A. Lazernaya Medicina, 2021, no. 1(25), pp. 55–64. (in Russ.)
- Yevdulov O.V., Yevdulov D.V., Isabekova T.I., Aminov G.I., Aminova I.Yu. Biomedical Engineering, 2022, no. 2(332), pp. 146–150.
- Snyder G.J., LeBlanc S., Crane D. et al. Future energy, 2021, vol. 5, рр. 748–751.
- Ismailov T.A., Yevdulov O.V., Magomadov R.A.-M. Okhlazhdayushchiye sistemy na baze sil'notochnykh termoelektricheskikh poluprovodnikovykh preobrazovateley (Cooling Systems Based on High-Current Thermoelectric Semiconductor Converters), St. Petersburg, 2020, 285 р. (in Russ.)
- Hu B., Shi X.-L., Chen Z.-G., Zou J. Chemical engineering journal, 2022, vol. 437, р. 135268.
- Zaferani S.H., Ghomashchi R., Sams M.W, Chen Z.-G. Nano energy, 2021, vol. 90, p. 106572.
- Finn P.-A., Asker C., Wan K. et al. Frontiers in electronic materials, 2021, vol. 1, рр. 1–13.
- Tan H., Fu H., Yu J. Applied Thermal Engineering, 2017, vol. 123, рр. 845–851.
- http://www.kryotherm.spb.ru. (in Russ.)
- https://www.gwinstek.com/en-global/products/index. (in Russ.)
- https://www.elemer.ru/. (in Russ.)
- Krasenkov Yu.V., Tatyanchenko V.K., Manulik N.A., Edilov A.V., Davydenko A.V., Bogdanov V.L. Moscow Surgical Journal, 2024, no. 1, pp. 78–84. (in Russ.)
- Yevdulov O.V., Magomadov R.A.M., Mirzemagomedova M.M., Mirzemagomedov R.G., Aminov G.I. Biomedical Engineering, 2022, no. 2(332), pp. 79–83.