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Interacting effects of uniform flow, plane shear, and near-wall proximity on the heat and mass transfer of respiratory aerosols

机译:均匀流动,平面剪切和近壁接近对呼吸气溶胶传热和传质的相互作用

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Individual and interacting effects of uniform flow, plane shear, and near-wall proximity on spherical droplet heat and mass transfer have been assessed for low Reynolds number conditions beyond the creeping flow regime. Validated resolved volume simulations were used to compute heat and mass transfer surface gradients of two-dimensional axisym-metric droplets and three-dimensional spherical droplets near planar wall boundaries for conditions consistent with inhalable aerosols (5 ≤d ≤ 300 μm) in the upper respiratory tract. Results indicate that planar shear significantly impacts droplet heat and mass transfer for shear-based Reynolds numbers greater than 1, which occur for near-wall respiratory aerosols with diameters in excess of 50 urn. Wall proximity is shown to significantly enhance heat and mass transfer due to conduction and diffusion at separation distances less than five particle diameters and for small Reynolds numbers. For the Reynolds number conditions of interest, significant non-linear effects arise due to the concurrent interaction of uniform flow and shear such that linear superposition of Sherwood or Nusselt number terms is not allowable. Based on the validated numeric simulations, multivariable Sherwood and Nusselt number correlations are provided to account for individual flow characteristics and concurrent non-linear interactions of uniform flow, planar shear, and near-wall proximity. These heat and mass transfer correlations can be applied to effectively compute condensation and evaporation rates of potentially toxic or therapeutic aerosols in the upper respiratory tract, where non-uniform flow and wall proximity are expected to significantly affect droplet transport, deposition, and vapor formation.
机译:对于超出蠕变流态之外的低雷诺数条件,已经评估了均匀流动,平面剪切和近壁邻近性对球形液滴传热和传质的个体和相互作用影响。经过验证的解析体积模拟用于计算与上呼吸道中可吸入气溶胶(5≤d≤300μm)一致的二维二维轴对称液滴和三维球形液滴在平面壁边界附近的传热和传质表面梯度道。结果表明,对于大于1的近壁呼吸气溶胶,基于剪切的雷诺数大于1时,平面剪切显着影响液滴的传热和传质。由于在小于五个粒径的分离距离处并且对于小的雷诺数,由于传导和扩散,壁的邻近性被显着增强了传热和传质。对于感兴趣的雷诺数条件,由于均匀流动和剪切的同时相互作用而产生了显着的非线性效应,因此舍伍德数或努塞尔数项的线性叠加是不允许的。基于经过验证的数值模拟,提供了多变量舍伍德和纳塞尔特数相关性,以说明单个流动特征以及均匀流动,平面剪切和近壁邻近性的并发非线性相互作用。这些传热和传质的相关性可用于有效地计算上呼吸道中潜在有毒或治疗性气溶胶的凝结和蒸发速率,在这种情况下,不均匀的流动和壁的接近性会显着影响液滴的运输,沉积和蒸气形成。

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