一类脆性材料热弹性动态理论中热传导方程耦合的估算

IF 0.5 4区 工程技术 Q4 MECHANICS
V. A. Kirichek
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引用次数: 0

摘要

摘要 研究了热弹性耦合动态理论框架内的热传导方程。对初始温度恒定的空间的热传导方程中的耦合进行了估计。该空间包含一个以恒定速度传播的平面半无限裂缝,并且在该空间的边缘瞬间形成一个低于初始温度的恒定温度(热冲击)。裂缝的运动和裂缝边缘的热冲击决定了动态效应,在估算热传导方程中的耦合时应考虑到这些动态效应。研究表明,在带有裂缝的大质量体受到热冲击的实际条件下,对于满足一定热力学常数条件的材料,可以忽略动态效应和耦合。这大大简化了此类物体热弹性问题的求解过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

ESTIMATION OF COUPLING IN A HEAT CONDUCTION EQUATION WITHIN THE DYNAMIC THEORY OF THERMAL ELASTICITY FOR A CLASS OF BRITTLE MATERIALS

ESTIMATION OF COUPLING IN A HEAT CONDUCTION EQUATION WITHIN THE DYNAMIC THEORY OF THERMAL ELASTICITY FOR A CLASS OF BRITTLE MATERIALS

ESTIMATION OF COUPLING IN A HEAT CONDUCTION EQUATION WITHIN THE DYNAMIC THEORY OF THERMAL ELASTICITY FOR A CLASS OF BRITTLE MATERIALS

A heat conduction equation within the framework of the coupled dynamic theory of thermoelasticity is considered. Coupling in the heat conduction equation is estimated for a space with a constant initial temperature. This space contains a flat semi-infinite crack propagating at a constant velocity, and a constant temperature lower than an initial one (thermal shock) is instantly established on the edges of this space. The movement of the crack and the thermal shock on its shores determine dynamic effects that should be taken into account to estimate coupling in the heat conduction equation. It is demonstrated that, under real conditions of a thermal shock on massive bodies with cracks, one may ignore dynamic effects and coupling for materials that satisfy certain conditions imposed on their thermomechanical constants. This significantly simplifies the process of solving thermoelasticity problems for such bodies.

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来源期刊
CiteScore
1.20
自引率
16.70%
发文量
43
审稿时长
4-8 weeks
期刊介绍: Journal of Applied Mechanics and Technical Physics is a journal published in collaboration with the Siberian Branch of the Russian Academy of Sciences. The Journal presents papers on fluid mechanics and applied physics. Each issue contains valuable contributions on hypersonic flows; boundary layer theory; turbulence and hydrodynamic stability; free boundary flows; plasma physics; shock waves; explosives and detonation processes; combustion theory; multiphase flows; heat and mass transfer; composite materials and thermal properties of new materials, plasticity, creep, and failure.
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