利用气动弹性颤振芦苇增强翅片通道传热

Sourabh Jha, Ari Glezer, Matthew J. Realff, Miriam E. Blaine, Jiaqi Mai, Arne J. Pearlstein
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引用次数: 0

摘要

矩形通道中的强制对流换热是通过在通道跨度上延伸的气弹性颤振薄芦苇增强的。由此产生的小规模涡旋运动大大增加了通道壁面的局部换热以及壁面热边界层与通道核心流动之间的混合。在宽度为W、跨度和长度为W的通道中,实验研究了这些小尺度运动及其热效应的演化机制。利用嵌入式热电偶阵列,在雷诺数(Re)为2000、7000和12000时,研究了Reed效应对传热的影响,并通过粒子图像测速和热线风速法分析了Reed效应与小尺度运动的关系。芦苇诱导的小尺度运动增加了湍流动能,增加了全球努塞尔数(Re = 7000时增加了145%),即使在基流完全湍流时(Re = 12000),这种增强也会持续下去。翅片阵列的增强也得到了证明。单簧片计算显示了簧片长度对增强的影响。用两根芦苇(一根在另一根尾缘的下游)进行计算,预测传热增强效果明显大于单簧片结果的两倍,并指出了在长通道中使用沿流排列的芦苇的方法。对风冷冷凝器的技术经济分析表明,在一定范围的运行条件下,振翅芦苇在经济上是合理的。
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Heat transfer enhancement in fin channels using aeroelastically fluttering reeds

Forced convection heat transfer in rectangular channels is enhanced by aeroelastically fluttering thin reeds extending over the channel span. The resulting small-scale vortical motions substantially increase local heat transfer at the channel walls and mixing between the wall thermal boundary layers and the channel's core flow. Mechanisms associated with evolution of these small-scale motions and their thermal effects are experimentally studied in a channel of width W, span , and length . Reed effects on heat transfer are characterized at Reynolds numbers (Re) of 2000, 7000, and 12,000 using embedded thermocouple arrays, and related to small-scale motions by particle image velocimetry and hot-wire anemometry. Reed-induced small-scale motions increase turbulent kinetic energy, increasing the global Nusselt number (by up to 145% at Re = 7000), with enhancement being sustained even when the base flow becomes fully turbulent (Re = 12,000). Enhancement is also demonstrated for fin arrays. Single-reed computations show the effect of reed length on enhancement. Computations with two reeds, one downstream of the trailing edge of the other, predict heat transfer enhancement significantly greater than twice the single-reed result, and point the way to use of a streamwise array of reeds in long channels. A techno-economic analysis for an air-cooled condenser suggests that fluttering reeds can be economically justified for a range of operating conditions.

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