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首页> 外文期刊>International Journal of Heat and Mass Transfer >Electroviscous effect on pressure driven flow and related heat transfer in microchannels with surface chemical reaction
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Electroviscous effect on pressure driven flow and related heat transfer in microchannels with surface chemical reaction

机译:电粘性对表面化学反应对微通道内压力驱动流动及相关传热的影响

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摘要

This study investigates the fluidic flow and related heat transfer in a microchannel formed by two parallel plates. Uniform heat flux is applied at the walls with considering the surface chemical reaction, which determines the surface charge on the wall of the microchannel. Our results show that the pH and ionic concentration apparently affect the surface chemical reaction and the subsequent fluidic behavior and heat transfer in the microchannel, especially with the boundary slip. The dimensionless velocity and temperature increase with the ionic concentration. The difference of the dimensionless flow rate and the Nusselt number is obvious under three different electrical boundary conditions: constant surface charge density, constant zeta potential and MI model. Under the boundary slip, the dimensionless flow rate and Nusselt number decrease by 50% and 12%, respectively, with increasing pH under the MI model, but keep unchanged under constant zeta potential or surface charge model. The dimensionless flow rate and Nusselt number also increase with the ionic concentration due to weakened electroviscous effect. Meanwhile, the slip increases the influence of ionic concentration on the dimensionless flow rate and Nusselt number. The results of this work may guide the design and optimization of microfluidic devices.
机译:这项研究调查了由两个平行板形成的微通道中的流体流动和相关的热传递。考虑到表面化学反应,在壁上施加均匀的热通量,这决定了微通道壁上的表面电荷。我们的结果表明,pH和离子浓度明显影响表面化学反应以及随后在微通道中的流体行为和传热,尤其是边界滑移。无量纲的速度和温度随离子浓度而增加。在三种不同的电边界条件下,无因次流量和Nusselt数的差异是显而易见的:恒定的表面电荷密度,恒定的zeta电位和MI模型。在边界滑移下,在MI模型下,随着pH值的增加,无因次流速和Nusselt数分别降低50%和12%,但在恒定的Zeta势或表面电荷模型下,其无量纲流量和Nusselt数均保持不变。由于弱电粘滞效应,无因次流速和Nusselt数也随离子浓度而增加。同时,滑移增加了离子浓度对无因次流速和Nusselt数的影响。这项工作的结果可能指导微流控设备的设计和优化。

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