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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Exploring Heat Transfer Characteristics of Ferrofluid in the Presence of Magnetic Field for Cooling of Solar Photovoltaic Systems
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Exploring Heat Transfer Characteristics of Ferrofluid in the Presence of Magnetic Field for Cooling of Solar Photovoltaic Systems

机译:用于冷却太阳能光伏系统磁场中铁物流体的传热特性

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In this paper, a ferrofluid-based cooling technique is proposed for solar photovoltaic (PV) systems, where ferrofluid flow can be easily altered by the application of an external magnetic field leading to enhanced heat transfer from the hot surface of PV systems. The effect of both constant and alternating magnetic field on ferrofluid flow through a mini-channel is explored numerically in the present work. A detailed parametric study is performed to investigate the effect of actuation frequencies of alternating magnetic field (0.5-20 Hz) and Reynolds numbers (Re = 24, 60, and 100) on heat transfer characteristics of ferrofluid. An overall enhancement of 17.41% is observed for heat transfer of ferrofluid in the presence of magnetic field compared to the base case of no magnetic field. For the case of alternating magnetic field, a critical actuation frequency is observed for each Reynolds number above which heat transfer is observed to decrease. The enhancement or decrease in heat transfer of ferrofluid is found to depend on several factors such as actuation frequency of alternating magnetic field, Reynolds numbers of ferrofluid flow, and formation/dispersion of stagnant layers of ferrofluid at the magnet location. Preliminary visualization of ferrofluid flow is also carried out to provide a qualitative insight to the nature of transportation of ferrofluid in the presence of an alternating magnetic field.
机译:本文提出了一种用于太阳能光伏(PV)系统的铁磁流体的冷却技术,其中通过应用外部磁场可以容易地改变铁磁流体流动,导致从PV系统的热表面增强热传递。在本作工作中,数值探讨了恒定和交替磁场对铁磁流体流过迷你通道的影响。进行详细的参数研究以研究交替磁场(0.5-20Hz)和雷诺数(Re = 24,60和100)对铁磁流体的传热特性的致动频率的影响。与No磁场的基本情况相比,在磁场的存在下,观察到17.41%的总体增强17.41%。对于交替磁场的情况,对每个雷诺数观察到临界致动频率,其上述每个雷诺数被观察到传热以减小。发现铁磁流体的增强或降低依赖于若干因素,例如交替磁场的致动频率,铁磁流体的雷诺数,以及在磁体位置处的铁磁石流体的滞留层的形成/分散。还对铁磁流体流动的初步可视化也进行了对交替磁场的存在,提供了对铁磁流体的性质的定性见解。

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