论文标题
共轭传热对微通道中流动沸腾的影响
Conjugate heat transfer effects on flow boiling in microchannels
论文作者
论文摘要
本文介绍了非圆形微通道中饱和流沸腾的计算研究。模拟了由流体通道和周围的蒸发器壁组成的多微通道蒸发器的单位通道,并解决了共轭传热问题。使用OpenFOAM V2106和Fluid方法的内置几何体积进行仿真,并用自开发的库增强,以包括液体蒸气相位变化并改善表面张力力计算。通过在大气压下使用水,DH = 229 um的通道液压直径,QB = 100kW/m2的均匀基本热通量以及改变通道宽度到高点比率和通道尺寸AR = 0.25-4和WF = DH/8-DH范围的通道宽度厚度,进行了系统的研究。详细研究了共轭传热和通道方面比例对气泡和蒸发膜动力学,传热和蒸发器温度的影响。这项研究表明,当流动是单相的,较高的努塞尔数和较低的蒸发因子的温度<1。在两相流量方案中,努塞尔特数量的趋势与较小的通道鳍的趋势混合在一起,而较小的通道鳍是NU趋势,而NU的趋势却显而易见。尽管如此,由于偶联的传热,Nusselt的数量和蒸发剂基碱温度在改变方面比率时会遵循不同的趋势,并且AR <1的通道似乎促进了较低的蒸发器温度,尽管表现出较高的较高的方面比率导管,但表现出较高的两相对流传热性传热性能。
This article presents a computational study of saturated flow boiling in non-circular microchannels. The unit channel of a multi-microchannel evaporator, consisting of the fluidic channel and surrounding evaporator walls, is emulated and the conjugate heat transfer problem is solved. Simulations are performed using OpenFOAM v2106 and the built-in geometric Volume Of Fluid method, augmented with self-developed libraries to include liquid-vapour phase-change and improve the surface tension force calculation. A systematic study is conducted by employing water at atmospheric pressure, a channel hydraulic diameter of Dh = 229 um, a uniform base heat flux of qb = 100kW/m2, and by varying the channel width-to-height aspect-ratio and channel fin thickness in the range AR = 0.25-4 and Wf = Dh/8-Dh, respectively. The effects of conjugate heat transfer and channel aspect-ratio on the bubble and evaporative film dynamics, heat transfer, and evaporator temperature are investigated in detail. This study reveals that, when the flow is single-phase, higher Nusselt numbers and lower evaporator temperatures are achieved for AR < 1. In the two-phase flow regime, the trends of the Nusselt number versus the aspect-ratio are mixed, although for smaller channel fins an ascending trend of Nu for increasing aspect-ratios is apparent. Nonetheless, due to conjugate heat transfer, Nusselt numbers and evaporator base temperatures follow different trends when varying the aspect-ratio, and channels with AR < 1 seem to promote lower evaporator temperatures than higher aspect-ratio conduits, despite exhibiting slightly worse two-phase convective heat transfer performances.