努塞尔数
机械
强化传热
传热
合成射流
边界层
湍流
材料科学
粒子图像测速
占空比
喷射(流体)
对流换热
夹带(生物音乐学)
传热系数
热力学
物理
执行机构
雷诺数
工程类
声学
电气工程
功率(物理)
节奏
作者
Rodrigo Castellanos,Gianfranco Salih,Marco Raiola,Andrea Ianiro,Stefano Discetti
标识
DOI:10.1016/j.applthermaleng.2022.119595
摘要
The convective heat transfer enhancement in a turbulent boundary layer (TBL) employing a pulsed, slot jet in crossflow is investigated experimentally. A parametric study on actuation frequencies and duty cycles is performed. The actuator is a flush-mounted slot jet that injects fluid into a well-behaved zero-pressure-gradient TBL over a flat plate. A heated-thin-foil sensor measures the time-averaged convective heat transfer coefficient downstream of the actuator location and the flow field is characterised by means of Particle Image Velocimetry. The results show that both the jet penetration in the streamwise direction and the overall Nusselt number increase with increasing duty cycle. The frequency at which the Nusselt number is maximised is independent of the duty cycle. The flow topology is considerably altered by the jet pulsation. A wall-attached jet rises from the slot accompanied by a pair of counter-rotating vortices that promote flow entrainment and mixing. Eventually, a simplified model is proposed which decouples the effect of pulsation frequency and duty cycle in the overall heat transfer enhancement, with a good agreement with experimental data. The cost of actuation is also quantified in terms of the amount of injected fluid during the actuation, leading to conclude that the lowest duty cycle is the most efficient for heat transfer enhancement.
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