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Heat transfer measurement and flow regime visualization of two-phase pulsating flow in an evaporator

机译:蒸发器中两相脉动流的传热测量和流态可视化

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Heat transfer and flow regime of two-phase R134a pulsating flow in an evaporator have been studied experimentally in this work. Heat transfer coefficient was measured and liquid-vapor two-phase flow regimes was observed under different mass flux, inlet vapor quality and pulsating period. Results show that heat transfer can be enhanced by pulsating flow in short periods (16 s) with a maximum enhancement of 28% compared with the continuous flow; a deterioration of heat transfer is also observed for flow under long pulsating periods for some conditions, which could be as much as 30%. The effect of mass flux and inlet vapor quality is complex and coupled with pulsation period, which might result from the difference of flow developing between different pulsating periods. The instantaneous flow regime is recorded by a high speed camera and statistically analyzed to explore the mechanism of pulsating flow on heat transfer performance. The statistical analysis of flow regime from the recorded video shows that the flow regime of pulsating flow at on-time remains the same as that of continuous flow with the same instant mass flux, and the flow regime at off-time is mostly stratified, stratified wavy flow depending on the pulsating period. The transition of stratified-wavy flow regime to intermittent, annular flow regime of pulsating flow is the main contribution to the enhancement of heat transfer while dry-out during off-time plays an important role in heat transfer deterioration. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在这项工作中,已经通过实验研究了蒸发器中两相R134a脉动流的传热和流动状态。在不同的质量通量,入口蒸汽质量和脉动周期下,测量了传热系数并观察到了液-汽两相流态。结果表明,在短时间内(<16 s)通过脉动流动可以增强传热,与连续流动相比,最大可以提高28%。在某些条件下,在长时间脉动的情况下,还会观察到热传递的恶化,可能高达30%。质量通量和入口蒸汽质量的影响是复杂的,并且与脉动周期有关,这可能是由于不同脉动周期之间流动的差异所导致的。用高速摄像机记录瞬时流动状态,并进行统计分析,以探讨脉动流动对传热性能的影响。从录制的视频中对流态的统计分析表明,在相同时间质量通量的情况下,开启时间的脉动流的流态与连续流的流态保持相同,并且关闭时间的流态主要是分层,分层的波动的周期而定。分层波状流态向间歇性环形脉动流态的转变是增强传热的主要贡献,而停工期的变干在传热恶化中起着重要作用。 (C)2018 Elsevier Ltd.保留所有权利。

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