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首页> 外文期刊>Journal of Micromechanics and Microengineering >Flow friction and heat transfer of ethanol-water solutions through silicon microchannels
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Flow friction and heat transfer of ethanol-water solutions through silicon microchannels

机译:乙醇水溶液通过硅微通道的流动摩擦和热传递

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An experimental investigation was performed on the flow friction and convective heat transfer characteristics of the ethanol-water solutions flowing through five sets of trapezoidal silicon microchannels having hydraulic diameters ranging from 141.7 μm to 268.6 μm. Four kinds of ethanol-water solutions with the ethanol volume concentrations ranging from 0 to 0.8 were tested under different flow and heating conditions. It was found that the cross-sectional geometric parameters had great effect on the flow friction and heat transfer, and the microchannels with a larger W{sub}b/W{sub} (bottom width-to-top width ratio) and a smaller H/W{sub}t (depth-to-top width ratio) usually had a larger friction constant and a higher Nusselt number. Entrance effects were significant for the flow friction and heat transfer in silicon microchannels, and decreased with the increase of dimensionless hydrodynamic length L and dimensionless thermal length (L{sub}h){sup}+. When L > 1.0, the hydrodynamic entrance effect on the flow friction was ignorable. For the developed laminar flow in silicon microchannels, the Navier-Stokes equation was applicable. It was also found that the volume concentrations had different effects on the flow friction and heat transfer. Within the experimental range, the effect of volume concentrations on the flow friction was ignorable, and the friction constants of the ethanol-water solutions having different concentrations were the same as those of the pure water. However, volume concentrations had great effect on the convection heat transfer in silicon microchannels. With the increase of the volume concentrations, the Nusselt number of the ethanol-water solutions increased obviously, which was attributed to the combination effect of the increase in the Prantdtl number as well as the volatilization effect of the ethanol. Based on the experimental data, the dimensionless correlations for the flow friction and heat transfer of the ethanol-water solutions in the silicon microchannels in a function of the cross-sectional geometrical parameters, entrance effect and volume concentrations were proposed for the first time.
机译:对流经水力直径范围为141.7μm至268.6μm的五组梯形硅微通道的乙醇水溶液的流动摩擦和对流传热特性进行了实验研究。在不同的流量和加热条件下,对四种乙醇水溶液浓度为0至0.8的乙醇水溶液进行了测试。发现截面几何参数对流动摩擦和传热有很大影响,并且微通道的W {sub} b / W {sub}(底部宽度与顶部宽度之比)较大而较小H / W {sub} t(深宽比)通常具有较大的摩擦常数和较高的Nusselt数。入口效应对于硅微通道中的流动摩擦和热传递是显着的,并且随着无因次流体动力学长度L和无因次热长度(L {sub} h){sup} +的增加而减小。当L> 1.0时,对流体摩擦的流体动力学入口效应是可忽略的。对于硅微通道中发达的层流,可应用Navier-Stokes方程。还发现体积浓度对流动摩擦和热传递具有不同的影响。在实验范围内,体积浓度对流动摩擦的影响是可忽略的,并且具有不同浓度的乙醇-水溶液的摩擦常数与纯水的摩擦常数相同。但是,体积浓度对硅微通道中的对流传热有很大影响。随着体积浓度的增加,乙醇水溶液的Nusselt数明显增加,这归因于Prantdtl数增加的组合效应以及乙醇的挥发作用。基于实验数据,首次提出了硅微通道中乙醇-水溶液的流动摩擦和热传递的无量纲相关性,其与横截面几何参数,入口效应和体积浓度成函数关系。

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