首页> 外文期刊>International Journal of Heat and Mass Transfer >Thermal transport due to liquid jet impingement on superhydrophobic surfaces with isotropic slip: Isoflux wall
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Thermal transport due to liquid jet impingement on superhydrophobic surfaces with isotropic slip: Isoflux wall

机译:由于液体射流撞击在具有各向同性滑移的超疏水表面上而引起的热传递:等流量壁

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Thermal transport due to a liquid water jet impinging an isoflux superhydrophobic surface with isotropic slip was modeled analytically. An integral analysis of the transport equations resulting in a system of ordinary differential equations was solved numerically. impingement on superhydrophobic surfaces greatly reduces the heat transfer that occurs relative to a smooth surface due to gas trapped in cavities on the surface. This results in an apparent slip velocity and temperature jump at the surface. Local and average Nusselt numbers are presented as a function of radial position (0 to 45 jet radii), jet Reynolds number (3 x 10(3) to 1.5 x 10(4)), liquid Prandtl number (2 to 11), normalized slip length (0 to 0.2), and normalized temperature jump length (0 to 0.2). All results are compared to classical (no-slip, no temperature jump) behavior on a smooth surface. Although local Nusselt numbers for the isoflux scenario are greater than the corresponding isothermal case, the difference in Nusselt number between these two heating conditions becomes negligible as the temperature jump length increases to quantities realizable on superhydrophobic surfaces. These results may be utilized to explore heat transfer degradation in applications where smooth surfaces are replaced by superhydrophobic surfaces to avoid fouling. (C) 2019 Elsevier Ltd. All rights reserved.
机译:通过液体射流撞击具有等向性滑移的等流量超疏水表面,进行了热传递分析。数值求解了输运方程的积分分析,形成了一个常微分方程组。超疏水表面上的撞击大大减少了由于气体滞留在表面上的空腔中而导致相对于光滑表面发生的热传递。这导致表面上明显的滑移速度和温度跃变。局部和平均Nusselt数表示为径向位置(0至45射流半径),Jet雷诺数(3 x 10(3)至1.5 x 10(4)),液体Prandtl数(2至11)的函数滑移长度(0到0.2)和归一化温度跳跃长度(0到0.2)。将所有结果与在光滑表面上的经典(防滑,无温度跳变)行为进行比较。尽管对于等通量场景,局部Nusselt数大于相应的等温情况,但是当温度跃迁长度增加到可在超疏水表面上实现的数量时,这两种加热条件之间的Nusselt数差异就可以忽略不计。这些结果可用于探索应用中的传热降解,在该应用中,光滑表面被超疏水表面代替,以避免结垢。 (C)2019 Elsevier Ltd.保留所有权利。

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