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Numerical simulation of electroosmotic flow in microchannels with sinusoidal roughness

机译:正弦粗糙度微通道内电渗流的数值模拟

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摘要

Electroosmotic flow (EOF) is a promising way for driving and mixing fluids in microfluidics. Aiming at the parallel-plate microchannel with sinusoidal surface roughness, this paper solves the governing equations using the finite element method and the effects of roughness element height and density on the EOF behavior are thus investigated. The simulation results indicate that the bulk flow velocity and the volumetric flow rate decrease slowly with the roughness height when the relative roughness is very small (k < 0.005) or very large (k > 0.05), while decrease quickly when the relative roughness is moderate (0.05 > k > 0.005). The flow rate and the bulk velocity decrease quickly first and then increase slowly with the roughness element density The volumetric flow rate decreases more quickly than the bulk flow velocity at the same roughness element height or density because of the decreasing of the channel cross area in the presence of the roughness. The results provide valuable insights into the optimal design of microchannel surfaces to achieve accurate flow control in microchips.
机译:电渗流(EOF)是一种在微流控中驱动和混合流体的有前途的方法。针对具有正弦表面粗糙度的平行板微通道,本文采用有限元方法求解了控制方程,并研究了粗糙度元素的高度和密度对EOF性能的影响。仿真结果表明,当相对粗糙度很小(k <0.005)或很大(k> 0.05)时,总流速和体积流量随粗糙度的增加而缓慢下降,而当相对粗糙度为中等时迅速下降。 (0.05> k> 0.005)。流速和体积速度先迅速下降,然后随粗糙度元素密度的增加而缓慢增加。在相同的粗糙度元素高度或密度下,体积流速比体积流速的下降速度更快,因为粗糙度的存在。结果为微通道表面的最佳设计提供了宝贵的见解,以实现微芯片中的精确流量控制。

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