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Effect of heater orientation on pool boiling heat transfer from sintered copper microporous coating in saturated water

机译:加热器取向对饱和水中烧结铜微孔涂层池沸腾传热的影响

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摘要

In this study, we investigate the heater orientation effects at inclination angles from 0° (horizontal upward) to 180° (horizontal downward) on pool boiling heat transfer of saturated water using a durable high-temperature thermally-conductive microporous coating (HTCMC) created by sintering copper powder of an average particle size of 67 μm onto a 1 cm × 1 cm plain copper surface with ~300 μm thickness. The HTCMC surface showed a critical heat flux (CHF) of ~2 MW/m~2 and a maximum nucleate boiling heat transfer (NBHT) coefficient of ~400 kW/m~2 K, which are 2 and 8 times higher than those of a plain copper surface, respectively, at the upward horizontal inclination angle. The current experimental results showed that the CHF values of the HTCMC were maintained as ~2 MW/m~2 at upward inclination angles from 0° to 90°, whereas the CHF values decreased as the inclination angle changed from 90° to 180°, at which point the values were ~1.4 MW/m~2. The reduction at 180° is due to individual bubbles merging and forming larger bubbles by blockage from the surface. This increases the vapor residence time on the surface and prevents liquid access to the heated surface at downward inclination angles. However, it is noted that the CHF value of the HTCMC at 180° is ~4.5 times higher than that of plain copper surface (0.3 MW/m~2 at 180°). HTCMC also shows a noticeably higher CHF value at 180° compared to nanocoating or other enhanced surfaces. This significant CHF enhancement is believed to be due to a large number of small feed jet bubbles created from porous structures, postponing the dryout caused by forming large bubbles on the heated surface.
机译:在本研究中,我们使用创建的耐用高温导热微孔涂层(HTCMC),研究了倾斜角从0°(水平向上)到180°(水平向下)时加热器取向对饱和水的池沸腾传热的影响。将平均粒径为67μm的铜粉烧结到1 cm×1 cm厚约300μm的纯铜表面上。 HTCMC表面的临界热通量(CHF)约为2 MW / m〜2,最大核沸腾传热(NBHT)系数约为400 kW / m〜2 K,分别是HTCMC表面的2和8倍。分别以向上的水平倾斜角形成一个纯铜表面。当前的实验结果表明,HTCMC的CHF值在0°至90°的向上倾斜角度下保持为〜2 MW / m〜2,而CHF值随着倾斜角度从90°变为180°而减小,在那时,该值为〜1.4 MW / m〜2。 180°的减少是由于各个气泡合并并由于从表面阻塞而形成较大的气泡。这增加了蒸气在表面上的停留时间,并防止液体以向下的倾斜角进入加热的表面。然而,值得注意的是,HTMCC在180°时的CHF值是纯铜表面的CHF值(在180°时为0.3 MW / m〜2)的〜4.5倍。与纳米涂层或其他增强表面相比,HTMCC在180°时也显示出更高的CHF值。据信,CHF的显着提高是由于多孔结构产生了大量的小进料喷射气泡,从而推迟了在加热表面上形成大气泡所引起的变干现象。

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  • 作者单位

    Department of Mechanical Engineering, Erik Jonsson School of Engineering and Computer Science, The University of Texas at Dallas, 800 W. Campbell Rd., Richardson, TX 75080, USA;

    Department of Mechanical Engineering, Erik Jonsson School of Engineering and Computer Science, The University of Texas at Dallas, 800 W. Campbell Rd., Richardson, TX 75080, USA;

    Department of Mechanical Engineering, Erik Jonsson School of Engineering and Computer Science, The University of Texas at Dallas, 800 W. Campbell Rd., Richardson, TX 75080, USA;

    Korea Atomic Energy Research Institute (KAERI), Severe Accident & PHWR Safety Division, 989-111 Daedeok-Daero, Yuseong-Gu, Daejeon, Republic of Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Orientation effect; Microporous coating; Nucleate boiling heat transfer; Critical heat flux;

    机译:定向效果;微孔涂层;核沸腾传热;临界热通量;

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