Predicting absolute values of hemolysis using the power-law model to guide medical device design is hampered by uncertainties stemming from four sources of model inputs: incoming/upstream velocity profiles, blood viscosity model, power law hemolysis coefficients, and obtaining accurate stress exposure times. Amidst all these uncertainties, enabling rapid assessments and predictions of relative hemolysis would still be valuable towards evaluating device design prototypes. Towards achieving this objective, hemolysis data from Eulerian modeling framework was first generated from computational fluid dynamic simulations encompassing: five blood viscosity models, four sets of hemolysis power law coefficients, fully developed as well as developing velocity flow conditions, wide range of shear stresses (1 – 600 Pa), strain rates (1 – 10,000 s-1) and stress exposure times (5 – 400 milliseconds). Corresponding hemolysis predictions were also made in a Lagrangian framework via numerical integration of shear stress and residence time spatial variations under the assumption of fully developed Newtonian fluid flow. Absolute hemolysis predictions (from both frameworks) were proportional to each other and independent of the blood viscosity model. Further, relative hemolysis trends were not dependent on the hemolysis power law coefficients. However, accuracy in wall shear stresses in developing flow conditions are necessary for accurate relative hemolysis assessments.
Gholizadeh et al. (Mon,) studied this question.