Gennadiy O. Kovalov , Mykola O. Chyzh , Vyacheslav Yu Globa , Oleksandr F. Todrin , Galyna V. Shustakova , Eduard Yu Gordiyenko , Yuliya V. Fomenko , Oleh V. Ivakhnenko , Polina O. Kofman , Sergey N. Shevchenko
{"title":"通过冰观察热量:在冷冻应用过程中,红外摄像机监测水凝胶的冻结和解冻","authors":"Gennadiy O. Kovalov , Mykola O. Chyzh , Vyacheslav Yu Globa , Oleksandr F. Todrin , Galyna V. Shustakova , Eduard Yu Gordiyenko , Yuliya V. Fomenko , Oleh V. Ivakhnenko , Polina O. Kofman , Sergey N. Shevchenko","doi":"10.1016/j.cryobiol.2025.105259","DOIUrl":null,"url":null,"abstract":"<div><div>Cryosurgery employs a safe and relatively simple technique of exposure and is an advantageous and highly rated method. For its effective application, it is necessary to control both the volume of the expanding freezing zone and volumetric thermal field dynamics. The aim of this study was to perform a thermal imaging study of freezing and thawing in a model system (gel phantom) to predict the dynamics of the freezing zone during cryodestruction of biological tissues in vivo. Here, the thermal imager is an effective tool for demonstrating the surface temperature distribution. We have studied how the observed infrared image relates to the distribution and change of the thermal field in depth. For this purpose, we created test measuring equipment for simultaneous analysis of the dynamics of thermal fields on the surface, video recording of freezing and thawing on the surface as well as in the depth of the gel phantom, measuring the temperature at any given point in the depth and modeling in the zone of low temperature exposure of vessels with different blood flow parameters. It was revealed that with a modelled vessel in the low-temperature exposure zone, the surface thermal fields deformed and they gained the shape of butterfly wings. 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For this purpose, we created test measuring equipment for simultaneous analysis of the dynamics of thermal fields on the surface, video recording of freezing and thawing on the surface as well as in the depth of the gel phantom, measuring the temperature at any given point in the depth and modeling in the zone of low temperature exposure of vessels with different blood flow parameters. It was revealed that with a modelled vessel in the low-temperature exposure zone, the surface thermal fields deformed and they gained the shape of butterfly wings. 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Viewing heat through ice: An infrared camera monitors hydrogel freezing and thawing during cryoapplication
Cryosurgery employs a safe and relatively simple technique of exposure and is an advantageous and highly rated method. For its effective application, it is necessary to control both the volume of the expanding freezing zone and volumetric thermal field dynamics. The aim of this study was to perform a thermal imaging study of freezing and thawing in a model system (gel phantom) to predict the dynamics of the freezing zone during cryodestruction of biological tissues in vivo. Here, the thermal imager is an effective tool for demonstrating the surface temperature distribution. We have studied how the observed infrared image relates to the distribution and change of the thermal field in depth. For this purpose, we created test measuring equipment for simultaneous analysis of the dynamics of thermal fields on the surface, video recording of freezing and thawing on the surface as well as in the depth of the gel phantom, measuring the temperature at any given point in the depth and modeling in the zone of low temperature exposure of vessels with different blood flow parameters. It was revealed that with a modelled vessel in the low-temperature exposure zone, the surface thermal fields deformed and they gained the shape of butterfly wings. Our experimental study in a gel phantom is supported by numerical calculations, demonstrating how the freezing zone and thermal isotherms on the surface and in depth evolve under real conditions, thereby providing a basis for assessing the cryoeffect time and intensity in practice.
期刊介绍:
Cryobiology: International Journal of Low Temperature Biology and Medicine publishes research articles on all aspects of low temperature biology and medicine.
Research Areas include:
• Cryoprotective additives and their pharmacological actions
• Cryosurgery
• Freeze-drying
• Freezing
• Frost hardiness in plants
• Hibernation
• Hypothermia
• Medical applications of reduced temperature
• Perfusion of organs
• All pertinent methodologies
Cryobiology is the official journal of the Society for Cryobiology.