THERMAL SHOCK AND DYNAMIC THERMOELASTICITY

This paper considers the problem of thermal shock in the case of a massive body in different conditions of heating and cooling. The most dangerous mode of heating was identified. The influence of inertial effects on the value of emerging thermal stress was investigated. A new equation of compatibili...

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Main Authors: A. Yu. Strigunova, E. M. Kartashov
Format: Article
Language:Russian
Published: MIREA - Russian Technological University 2016-02-01
Series:Тонкие химические технологии
Subjects:
Online Access:https://www.finechem-mirea.ru/jour/article/view/10
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author A. Yu. Strigunova
E. M. Kartashov
author_facet A. Yu. Strigunova
E. M. Kartashov
author_sort A. Yu. Strigunova
collection DOAJ
description This paper considers the problem of thermal shock in the case of a massive body in different conditions of heating and cooling. The most dangerous mode of heating was identified. The influence of inertial effects on the value of emerging thermal stress was investigated. A new equation of compatibility of stress with the inertial effects, which generalizes the known Beltrami-Mitchell relation for quasi-static cases, was obtained by methods of the tensor algebra. The theory of thermal shock in solids was developed in terms of dynamic problems of thermoelasticity in different forms of heat stress: temperature heating; thermal heating; heating medium. Equations for the calculation the jumps in the front of thermoelastic waves were obtained. The most dangerous mode of thermal shock was identified. The effect of relaxation in thermal problems was described in the context of the investigation of thermal stress state of a massive body. It was shown that an increase in relaxation time, i.e. heating rates of the boundary surface of the body, causes a reduction of thermal stress maxima. Original results of the thermal reaction of a solid to cooling were obtained. It was shown that, in comparison with the heating mode, the cooling mode is more devastating, especially for nearsurface layers of solids. The role of the relaxation temperature in the cooling mode was identified. New functional structures were proposed as analytical solutions to the major dynamic problems of thermomechanics on the basis of the use of the Kar functions, which are relatively new.
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institution Kabale University
issn 2410-6593
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language Russian
publishDate 2016-02-01
publisher MIREA - Russian Technological University
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series Тонкие химические технологии
spelling doaj-art-aa29d2c5820040eca83772ceaf6b33912025-08-20T03:42:45ZrusMIREA - Russian Technological UniversityТонкие химические технологии2410-65932686-75752016-02-01111677410.32362/2410-6593-2016-11-67-7410THERMAL SHOCK AND DYNAMIC THERMOELASTICITYA. Yu. Strigunova0E. M. Kartashov1Moscow Technological University (Institute of Fine Chemical Technologies)Moscow Technological University (Institute of Fine Chemical Technologies)This paper considers the problem of thermal shock in the case of a massive body in different conditions of heating and cooling. The most dangerous mode of heating was identified. The influence of inertial effects on the value of emerging thermal stress was investigated. A new equation of compatibility of stress with the inertial effects, which generalizes the known Beltrami-Mitchell relation for quasi-static cases, was obtained by methods of the tensor algebra. The theory of thermal shock in solids was developed in terms of dynamic problems of thermoelasticity in different forms of heat stress: temperature heating; thermal heating; heating medium. Equations for the calculation the jumps in the front of thermoelastic waves were obtained. The most dangerous mode of thermal shock was identified. The effect of relaxation in thermal problems was described in the context of the investigation of thermal stress state of a massive body. It was shown that an increase in relaxation time, i.e. heating rates of the boundary surface of the body, causes a reduction of thermal stress maxima. Original results of the thermal reaction of a solid to cooling were obtained. It was shown that, in comparison with the heating mode, the cooling mode is more devastating, especially for nearsurface layers of solids. The role of the relaxation temperature in the cooling mode was identified. New functional structures were proposed as analytical solutions to the major dynamic problems of thermomechanics on the basis of the use of the Kar functions, which are relatively new.https://www.finechem-mirea.ru/jour/article/view/10thermal shockheat mode of loadingcoolingabrupt change in temperaturevoltage
spellingShingle A. Yu. Strigunova
E. M. Kartashov
THERMAL SHOCK AND DYNAMIC THERMOELASTICITY
Тонкие химические технологии
thermal shock
heat mode of loading
cooling
abrupt change in temperature
voltage
title THERMAL SHOCK AND DYNAMIC THERMOELASTICITY
title_full THERMAL SHOCK AND DYNAMIC THERMOELASTICITY
title_fullStr THERMAL SHOCK AND DYNAMIC THERMOELASTICITY
title_full_unstemmed THERMAL SHOCK AND DYNAMIC THERMOELASTICITY
title_short THERMAL SHOCK AND DYNAMIC THERMOELASTICITY
title_sort thermal shock and dynamic thermoelasticity
topic thermal shock
heat mode of loading
cooling
abrupt change in temperature
voltage
url https://www.finechem-mirea.ru/jour/article/view/10
work_keys_str_mv AT ayustrigunova thermalshockanddynamicthermoelasticity
AT emkartashov thermalshockanddynamicthermoelasticity