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CONJUGATE HEAT TRANSFER IN SINGLE-PHASE WAVY MICROCHANNEL

机译:单相波浪微通道中的共轭传热

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A three-dimensional numerical study has been carried out to understand the effect of axial wall conduction in a conjugate heat transfer situation in a wavy wall square cross section microchannel engraved on solid substrate whose thickness varying between 1.2-3.6 mm. The bottom of the substrate (1.8 × 30 mm~2) is subjected to constant wall heat flux while remaining faces exposed to ambient are assumed to be adiabatic. The vertical parallel walls are considered wavy such that the channel cross section at any axial location will be a square (0.6 × 0.6 mm~2) and length of the channel is 30 mm. Wavelength (λ) and amplitude (A) of the wavy channel wall are 12 mm and 0.2 mm respectively. Simulations has been carried out for substrate thickness to channel depth ratio (δ_(sf) ~ 1 - 5), substrate wall to fluid thermal conductivity ratio (k_(sf) ~ 0.34 - 646) and flow rate (Re ~ 100 to 500). The results show that with increase in flow rate (Re), the hydrodynamic and thermal boundary layers are thinned due to wavy passage and they shifted from the centerline towards the peak which improves the local heat transfer coefficient at the solid-fluid interface. It is also found that after attaining maximum Nu_(avg) at optimum k_(sf), the slope goes downward with increasing k_(sf) for all set of δ_(sf) and flow rate (Re) considered in this study.
机译:已经进行了三维数值研究,以了解在厚度在1.2-3.6mm之间变化的固体基板上刻有旋转壁方横截面微通道中的轴向传热情况中的轴向壁传热情况的效果。基板的底部(1.8×30mm〜2)经受恒定壁热通量,同时假设暴露于环境温度的剩余面是绝热的。垂直平行壁被认为是波状,使得任何轴向位置处的通道横截面将是正方形(0.6×0.6mm〜2),并且通道的长度为30mm。波浪通道壁的波长(λ)和幅度(A)分别为12mm和0.2mm。用于衬底厚度的模拟,以通道深度比(Δ_(SF)〜1-5),衬底壁,流体导热率(K_(SF)〜0.34-446)和流速(RE〜100至500) 。结果表明,随着流速(RE)的增加,由于波浪通道,流体动力和热边界层被薄,并且它们从中心线朝向峰值转向,该峰值改善了固体流体接口处的局部传热系数。还发现,在最佳K_(SF)处获得最大NU_(AVG)之后,斜率随着Δ_(SF)的增加而增加的K_(SF)和本研究中考虑的流速(RE)。

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