Cooling by a Dispersed Flow Performing a Phase Transition of a Modifies Surface

IF 1.1 4区 物理与天体物理 Q4 PHYSICS, APPLIED
V. S. Shteling, A. T. Komov, P. P. Shcherbakov, A. V. Zakharenkov, A. P. Sliva
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Abstract

Cooling of a modified surface by a dispersed flow of distilled water has been investigated experimentally, and the results have been compared with cooling of an unmodified surface. The modification of the heat-exchange surface of the copper working region has been performed by processing with a high-energy electron beam; as a result, a unique microporous surface has been obtained. The macrograph of the modified surface has been obtained and profiles have been measured using a profile meter. Four series of experiments for various heat carrier parameters have been performed for the modified and unmodified surfaces. The excess pressure of the heat carrier at the sprayer input was (4–14) × 105 Pa, the mass flow rate of the heat carrier (distilled water) was (2.1–4.3) × 10–3 kg/s, and the spraying density varied in the limits (3.0–6.1) kg/(m2 s). The variations of the heat flux densities for these surfaces were compared. The convective component and the component of the phase transition of the removed heat flow during cooling the surface by a dispersed flow were estimated, and the conclusion was made concerning the key contribution of the phase transition to this process was made. The amount of evaporated liquid for the considered cooling modes were compared, and the dependence of this quantity on the heat flux density was obtained. The maximal heat flux density during the cooling of the surface by a dispersed flow attained 8.5 MW/m2.

Abstract Image

通过分散流的冷却使修饰表面发生相变
实验研究了用分散流动的蒸馏水对改性表面的冷却,并将结果与未改性表面的冷却进行了比较。利用高能电子束对铜工区的换热表面进行了改性;结果,获得了独特的微孔表面。得到了改进后表面的宏观图,并用轮廓仪测量了轮廓。对改性表面和未改性表面进行了四组不同热载体参数的实验。喷雾器输入热载体的超压为(4-14)× 105 Pa,热载体(蒸馏水)的质量流量为(2.1-4.3)× 10-3 kg/s,喷雾密度在(3.0-6.1)kg/(m2 s)范围内变化,比较了不同表面热流密度的变化规律。计算了分散流冷却过程中除去的热流的对流分量和相变分量,得出了相变在这一过程中的关键作用。对所考虑的冷却方式的蒸发液体量进行了比较,得到了蒸发液体量与热流密度的关系。分散流冷却表面时的最大热流密度达到8.5 MW/m2。
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来源期刊
Technical Physics
Technical Physics 物理-物理:应用
CiteScore
1.30
自引率
14.30%
发文量
139
审稿时长
3-6 weeks
期刊介绍: Technical Physics is a journal that contains practical information on all aspects of applied physics, especially instrumentation and measurement techniques. Particular emphasis is put on plasma physics and related fields such as studies of charged particles in electromagnetic fields, synchrotron radiation, electron and ion beams, gas lasers and discharges. Other journal topics are the properties of condensed matter, including semiconductors, superconductors, gases, liquids, and different materials.
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