具有较低临界溶液温度的微加热器-溶液系统在强大的局部热冲击下的响应。实验方法

IF 0.5 4区 工程技术 Q4 MECHANICS
A. A. Igol’nikov, S. B. Ryutin, P. V. Skripov
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引用次数: 0

摘要

本文描述了一种实验方法,用于研究微探针在较低临界溶液温度的双组分溶液中的强热释放。给出了水- ppg -425溶液中液-液旋量的过热度和热对体系稳定性的影响的实验数据。对于PPG-425的近临界质量分数为30%的溶液,可以得出以下结论:尽管通过加热器表面的热流密度很高(9.2-13.7 MW/m2),但其温度稳定在超过液-液体系平衡温度约150k的值。结果表明,随着加热参数的变化,换热过程是稳定的:溶液的换热性质保持不变。结果表明,其传热系数比水的传热系数大几倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

RESPONSE OF A MICROHEATER–SOLUTION SYSTEM WITH A LOWER CRITICAL SOLUTION TEMPERATURE UNDER A POWERFUL LOCAL HEAT IMPACT. EXPERIMENTAL METHODOLOGY

RESPONSE OF A MICROHEATER–SOLUTION SYSTEM WITH A LOWER CRITICAL SOLUTION TEMPERATURE UNDER A POWERFUL LOCAL HEAT IMPACT. EXPERIMENTAL METHODOLOGY

The paper describes a methodology for the experimental study of a powerful heat release in a microsized probe immersed in a two-component solution with a lower critical solution temperature. Experimental data on superheating relative to the liquid–liquid spinodal and thermal impact on the stability of the system for a water–PPG-425 solution are presented. The following conclusion is made for a solution whose near-critical mass fraction of PPG-425 is 30%: despite the high density of the heat flux through the heater surface (9.2–13.7 MW/m2), its temperature stabilizes at a value exceeding the equilibrium temperature of the liquid–liquid system by approximately 150 K. It is shown that the heat exchange process is stable against changes in the heating parameters: the nature of heat transfer by the solution remains the same. It is revealed that the heat transfer coefficient is several times greater than the corresponding value obtained for water.

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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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