Biofluid Mechanics Laboratory, Department of Mechanical Engineering, University of Louisville, Louisville, KY, USA.
Artif Organs. 2019 Jul;43(7):681-687. doi: 10.1111/aor.13423. Epub 2019 Feb 14.
Two limitations have been discovered in the derivation of the Eulerian method of hemolysis prediction using a linearized blood damage function. First is that in the transformation from the Lagrangian material volume of the original power-law model to a fixed Eulerian control volume, the spatial dependence of duration of exposure to fluid stress was neglected. This omission has the implication that the Eulerian method as reported is valid only for steady, uniaxial flow in which velocity is constant along streamlines. The second issue is related to linearization, which involves distributing an exponent across an integral. This operation is valid only for limited conditions that include the exponent being unity (which is not the case for any power-law hemolysis models) or the blood damage function being constant throughout the flow regime. These constraints severely restrict the applicability of the Eulerian method. An example problem is presented that demonstrates that the source term of the Eulerian method as reported does not account for differences in velocity between 2 similar flows. Correcting the source term to match the hemolysis prediction to that of the original, unlinearized method requires an analytical description of the flow field that may not be easily obtained for the complex flows in some cardiovascular devices.
使用线性化的血液损伤函数推导溶血预测的欧拉方法时,发现了两个局限性。首先,在将原始幂律模型的拉格朗日物质体积转换为固定的欧拉控制体积时,忽略了暴露于流体应力的持续时间的空间依赖性。这种忽略意味着所报道的欧拉方法仅适用于稳态、单轴流动,其中速度沿流线恒定。第二个问题与线性化有关,涉及到在积分中分配指数。这种操作仅在有限的条件下有效,包括指数为 1(任何幂律溶血模型都不是这种情况)或整个流动状态下血液损伤函数保持不变。这些限制严重限制了欧拉方法的适用性。提出了一个示例问题,表明所报道的欧拉方法的源项没有考虑到 2 种相似流动之间的速度差异。要将源项更正为与原始非线性方法的溶血预测匹配,需要对流动场进行分析描述,而对于某些心血管设备中的复杂流动,可能不容易获得。