Beck Joshua, Palmer Michael, Inman Kallie, Wohld Jake, Cummings Marcus, Fulmer Ryan, Scherer Branden, Vafaei Saeid
Mechanical Engineering Department, Bradley University, Peoria, IL 61606, USA.
Nanomaterials (Basel). 2022 Oct 16;12(20):3628. doi: 10.3390/nano12203628.
The focus of this paper is to investigate the effects of the addition of a connector between two serial microchannels. The idea of adding connector at the inlet of microchannels to enhance the random motion of molecules or nanoparticles in low Reynolds numbers was developed in our research group for the first time. It was experimentally determined that the shape of a connector between two microchannels has a significant impact on the enhancement of the random motion of molecules or nanoparticles. Consequently, the heat transfer coefficient is improved inside the second microchannel. The connector is large enough to refresh the memory of the fluid before entering the second channel, causing a higher maximum heat transfer coefficient in the second channel. It was also observed that the heat transfer coefficient can be increased at the end of the channel when the outlet temperature is relatively high. This may be explained by the fact that as temperature increases, the fluid viscosity tends to decrease, which generally drives an increase in the local random motion of base fluid molecules and nanoparticles. This causes an increase in the microchannel heat transfer coefficient. It was found that the addition of nanoparticles significantly modified the impact of the connector on the microchannel heat transfer coefficient. In addition, the effects of changing the Reynolds number and the shape of the connector were investigated through use of computational fluid dynamics (CFD) calculations. It was found that both factors have an important impact on the variation of velocity and enhancement of random motion of molecules and consequently significantly affect the heat transfer coefficient.
本文的重点是研究在两个串联微通道之间添加一个连接器的效果。在我们的研究小组中,首次提出了在微通道入口处添加连接器以增强低雷诺数下分子或纳米颗粒随机运动的想法。通过实验确定,两个微通道之间连接器的形状对分子或纳米颗粒随机运动的增强有显著影响。因此,第二个微通道内的传热系数得到了提高。连接器足够大,能够在流体进入第二个通道之前刷新其“记忆”,从而在第二个通道中产生更高的最大传热系数。还观察到,当出口温度相对较高时,通道末端的传热系数会增加。这可能是因为随着温度升高,流体粘度趋于降低,这通常会促使基液分子和纳米颗粒的局部随机运动增加。这导致微通道传热系数增加。研究发现,添加纳米颗粒显著改变了连接器对微通道传热系数的影响。此外,通过使用计算流体动力学(CFD)计算,研究了改变雷诺数和连接器形状的影响。结果发现,这两个因素对速度变化和分子随机运动的增强都有重要影响,因此对传热系数有显著影响。