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Boundary integral simulations of a red blood cell squeezing through a submicron slit under prescribed inlet and outlet pressures

机译:规定入口和出口压力下亚微米狭缝挤压红细胞的边界积分模拟

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摘要

We developed a boundary integral formulation to simulate a red blood cell (RBC) squeezing through a submicron slit under prescribed inlet and outlet pressures. The main application of this computational study is to investigate splenic filtrations of RBCs and the corresponding in vitro mimicking microfluidic devices, during which RBCs regularly pass through inter-endothelial slits with a width less than 1.0 mu m. The diseased and old RBCs are damaged or destroyed in this mechanical filtration process. We first derived the boundary integral equations of a RBC immersed in a confined domain with prescribed inlet and outlet pressures. We applied a unified self-adaptive quadrature to accurately evaluate singular and nearly singular integrals, which are especially important in this fluid-structure interaction problem with strong lubrication. A multiscale model is applied to calculate forces from the RBC membrane, and it is coupled to boundary integral equations to simulate the fluid-structure interaction. After multi-step verifications and validations against analytical and experimental results, we systematically investigated the effects of pressure drop, volume-to-surface-area ratio, internal viscosity, and membrane stiffness on RBC deformation and internal stress. We found that spectrins of RBCs could be stretched by more than 2.5 times under high hydrodynamic pressure and that the bilayer tension could be more than 500 pN/mu m, which might be large enough to open mechanosensitive channels but too small to rupture the bilayer. On the other hand, we found that the bilayer-cytoskeletal dissociation stress is too low to induce bilayer vesiculation. Published under license by AIP Publishing.
机译:我们开发了一个边界积分制剂来模拟通过下规定的入口和出口压力亚微米缝隙挤压红细胞(RBC)。这种计算研究的主要应用是调查RBC的脾的过滤和体外模仿的微流体装置,在此期间定期的RBC通过内皮间狭缝通过具有一个宽度小于1.0微米的对应。患病的老红细胞被破坏或本机械过滤过程中被破坏。我们首先衍生的RBC的边界积分方程式浸渍在具有规定的入口和出口的压力密闭域。我们采用了统一的自适应正交准确评估单一,几乎奇异积分,这是具有较强的润滑这种流固耦合问题尤其重要。多尺度模型从RBC膜应用于计算力,并且它被耦合到边界积分方程来模拟流体 - 结构交互。多步骤验证和针对分析和实验结果验证之后,我们系统地研究了压降,体积与表面积的比,内部粘度和膜的刚度对RBC变形和内部应力的影响。我们发现RBCs的spectrins可以减少超过2.5倍下高流体动力学压力和双层张力可能超过500 PN /微米,这可能是足够大的,以打开机械敏感性通道,但太小破裂双层被拉伸。在另一方面,我们发现,双层骨架分解压力过低诱发双层囊泡形成。通过AIP发布在许可证下发布。

著录项

  • 来源
    《Physics of fluids》 |2019年第3期|共18页
  • 作者

    Lu Huijie; Peng Zhangli;

  • 作者单位

    Univ Notre Dame Dept Aerosp &

    Mech Engn Notre Dame IN 46556 USA;

    Univ Notre Dame Dept Aerosp &

    Mech Engn Notre Dame IN 46556 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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