RECENT ADVANCES IN HEAT TRANSFER APPLICATIONS USING SWEEPING JET FLUIDIC OSCILLATORS

Ramy Abdelmaksoud, Ting Wang
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引用次数: 3

Abstract

The passive sweeping jet fluidic oscillators are a promising potential candidate in heat transfer applications such as gas turbine cooling, electronic components cooling, and heat exchanger enhancement component. This review presents a detailed discussion, summary, and comparison of the heat transfer studies on the sweeping jets. Sweeping jets can be created by two different fluidic oscillators types (i.e., wall-attachment type and jet interaction type). Those passive fluidic oscillators do not need a moving part nor active control to create sweeping jets. In the wall-attachment type, the fluid enters the fluidic oscillator, fills the cavity (mixing chamber and two feedback tubes), and a power jet is formed. Due to the inherent infinitesimal disturbances in the primary flow, when the flow enters the chamber, Coanda effect pushes the flow to one side, introducing two asymmetric vortices in the mixing chamber. The asymmetric flow pattern is amplified through two feedback tubes, causing one vortex to grow bigger and pushing the jet flow to the opposite wall. This behavior of vortex-jet interaction is repeated interchangeably between the two vortices, resulting in a sweeping jet. However, for the jet interaction type, two or more primary jets enter the confined geometry (interaction or mixing chamber) and collide with each other. Counter-rotating vortices are formed inside the interaction chamber. These vortical patterns create and drive the sweeping motion. The review starts with an introduction of the fluid dynamic theory of production of sweeping jets through the passive fluidic oscillators, followed by introducing different types and designs of various fluidic oscillators and their applications in fluid mechanics and heat transfer. The review of heat transfer using sweeping jets is divided into three sections including film cooling, impingement cooling, and other heat transfer schemes in heat exchangers and thermal actuations. A brief review of heat transfer in pulsating jets created by fluidic oscillators is also included.
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扫描射流振荡器在传热应用中的最新进展
被动扫流射流振荡器在燃气轮机冷却、电子元件冷却、换热器强化元件等传热应用中具有广阔的应用前景。本文对扫流射流的传热研究进行了详细的讨论、总结和比较。扫描射流可以由两种不同的流体振荡器类型(即壁面附着型和射流相互作用型)产生。这些被动流体振荡器不需要运动部件,也不需要主动控制来产生扫射射流。壁挂式中,流体进入流体振荡器,充满腔体(混合室和两个反馈管),形成动力射流。由于初级气流固有的无限小扰动,当气流进入混合腔时,康达效应将气流推向一侧,在混合腔内引入两个不对称涡。不对称的流动模式通过两个反馈管被放大,导致一个漩涡变大,并将射流推向对面的壁面。涡旋-射流相互作用的这种行为在两个涡旋之间交替重复,从而产生横扫射流。然而,对于射流相互作用类型,两个或多个主射流进入受限几何(相互作用或混合室)并相互碰撞。相互作用腔内形成反旋涡。这些涡旋模式创造并驱动了横扫运动。本文首先介绍了通过被动流体振荡器产生扫射射流的流体动力学理论,然后介绍了各种流体振荡器的不同类型和设计及其在流体力学和传热中的应用。本文对采用扫射射流的传热进行了综述,分为三个部分,包括薄膜冷却、冲击冷却以及换热器和热驱动装置中的其他传热方案。简要回顾了由流体振荡器产生的脉动射流的传热。
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来源期刊
International Journal of Energy for a Clean Environment
International Journal of Energy for a Clean Environment Engineering-Automotive Engineering
CiteScore
3.30
自引率
0.00%
发文量
78
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