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Platelet deposition in non-parallel flow

机译:非平行流中的血小板沉积

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This paper deals with flow- and surface-related aspects of primary hemostasis. It investigates the influence of both shear stress and changes in surface reactivity on platelet adhesion. For this purpose, a mathematical model based on the Navier–Stokes equations and on particle conservation is developed. Several vessel geometries of physiological relevance are considered, such as stagnation point flow, sudden expansion and t-junction. Model parameters have been optimized to fit corresponding experimental data. When platelet adhesion was assumed independent of shear, numerically predicted spatial platelet distribution did not match these data at all. However, when adhesion was assumed shear-dependent, better agreement was achieved. Further improvement was obtained when changes in surface reactivity due to platelet adhesion were taken into account. This was done by coupling platelet flux conditions to ordinary differential equations for the evolution of surface-bound platelets. Existence of weak solutions is shown for generalized parabolic systems having such boundary conditions. This, together with proofs for uniqueness and positivity of solutions, guarantees mathematical well posedness of the presented model. Limitations due to the complexity of the hemostatic system are discussed, as well as possible applications in practice. The findings of this paper contribute to understand the roles of flow and surface in primary hemostasis, which is of paramount interest in bioengineering and clinical practice.
机译:本文讨论了与止血有关的流量和表面相关方面。它研究了剪切应力和表面反应性变化对血小板粘附的影响。为此,开发了基于Navier-Stokes方程和颗粒守恒的数学模型。考虑了具有生理相关性的几种血管几何形状,例如停滞点流,突然膨胀和t型结。模型参数已经过优化,以适合相应的实验数据。当假定血小板粘附与剪切无关时,数值预测的空间血小板分布根本不符合这些数据。但是,当粘附力被认为是剪切依赖性的时,可以实现更好的一致性。当考虑到由于血小板粘附引起的表面反应性变化时,可获得进一步的改善。这是通过将血小板通量条件与常微分方程耦合以实现表面结合血小板的演化来完成的。对于具有这种边界条件的广义抛物线系统,显示了弱解的存在。这,加上解的唯一性和正性的证明,保证了所提出模型的数学正确性。讨论了由于止血系统的复杂性而引起的局限性,以及在实践中可能的应用。本文的发现有助于理解血流和表面在原发性止血中的作用,这在生物工程和临床实践中至关重要。

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