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Lattice Boltzmann study of micro branch array of crossflow filtration for fluid partitioning

机译:流体分区跨流过滤微分支阵列的格子玻璃螺栓阵列研究

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In the past decade, a flurry of new blood cells separation methods based microfluidic chip technology has emerged to address clinical diagnosis and biological research. The crossflow-based filtration separation method, because of its simple working principle and effectively overcoming the chip clogging problem, is gradually developing as an attractive solution for blood cells separation. In order to investigate and optimize the structure of a crossflow-based separator for blood cells, we studied how the tilt angle of the micro branch channel in the pillar array affects the fluid partitioning of low Reynolds number using Lattice Boltzmann (LBM) method. The reliability of using LBM to solve the flow of fluid of low Reynolds number is validated by the simulation of Poiseuille flow, and then a model of the branch channel, which mainly focuses on 4 different tilt angle (30°, 45°, 60°, 90°), is built to simulate. For far upstream and downstream in the main channel, and downstream in the side branch array channels, the fluid velocity profiles are assumed to adopt those of unidirectional Poiseuille flow with prescribed flow rates. The results show that the angle of inclination, with other conditions constant, will significantly influence the partition of fluid in the main channel and side branch array channels. Generally the larger the tilt angle is, the larger the rate flow in the branch array channel is, or vice versa.
机译:在过去的十年中,基于新的血细胞分离方法乱舞微流控芯片技术的出现解决了临床诊断和生物研究。基于交叉流过滤的分离方法,因为它的工作原理简单和有效地克服了切屑堵塞的问题,正在逐步用于血细胞分离的吸引力的解决方案开发。为了研究和优化血细胞基于横流分离器的结构中,我们所研究的支柱阵列中的微分支通道的倾斜角是如何影响使用格子Boltzmann(LBM)方法低雷诺数的流体分配。使用LBM解决的流体低雷诺数的流动的可靠性是由仿真Poiseuille流,并且然后在该分支通道,其主要集中在4个不同的倾斜角度(30的模型验证°,45°,60° ,90°),是建立在模拟。对于远的上游,并在主通道下游,并且在侧分支通道阵列下游,流体的速度分布被假定为通过这些单向泊肃叶的具有规定的流速流动。结果表明,倾斜角,与其它条件不变,将显著影响的流体分隔在主通道和侧分支阵列的通道。通常的倾斜角度越大,较大的分支阵列信道的速率流动,或者反之亦然。

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