Validation of Numerically Predicted Shear Stress-dependent Dissipative Losses Within a Rotary Blood Pump

Computational fluid dynamics find widespread application in the development of rotary blood pumps (RBPs). Yet, corresponding simulations rely on shear stress computations that are afflicted with limited resolution while lacking validation. This study aimed at the experimental validation of integral...

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Veröffentlicht in:ASAIO journal (1992) 2021-10, Vol.67 (10), p.1148-1158
Hauptverfasser: Strauch, Carsten, Escher, Andreas, Wulff, Sebastian, Kertzscher, Ulrich, Zimpfer, Daniel, Thamsen, Paul Uwe, Granegger, Marcus
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container_end_page 1158
container_issue 10
container_start_page 1148
container_title ASAIO journal (1992)
container_volume 67
creator Strauch, Carsten
Escher, Andreas
Wulff, Sebastian
Kertzscher, Ulrich
Zimpfer, Daniel
Thamsen, Paul Uwe
Granegger, Marcus
description Computational fluid dynamics find widespread application in the development of rotary blood pumps (RBPs). Yet, corresponding simulations rely on shear stress computations that are afflicted with limited resolution while lacking validation. This study aimed at the experimental validation of integral hydraulic properties to analyze global shear stress resolution across the operational range of a novel RBP. Pressure head and impeller torque were numerically predicted based on Unsteady Reynolds-averaged Navier-Stokes (URANS) simulations and validated on a testbench with integrated sensor modalities (flow, pressure, and torque). Validation was performed by linear regression and Bland-Altman analysis across nine operating conditions. In power loss analysis (PLA), in silico hydraulic power losses were derived based on the validated hydraulic quantities and balanced with in silico shear-dependent dissipative power losses. Discrepancies among both terms provided a measure of in silico shear stress resolution. In silico and in vitro data correlated with low discordance in pressure (r = 0.992, RMSE = 1.02 mmHg), torque (r = 0.999, RMSE = 0.034 mNm), and hydraulic power losses (r = 0.990, RMSE = 0.015W). PLA revealed numerically predicted dissipative losses to be up to 34.4% smaller than validated computations of hydraulic losses. This study confirmed the suitability of URANS settings to predict integral hydraulic properties. However, numerical credibility was hampered by lacking resolution of shear-dependent dissipative losses.
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title Validation of Numerically Predicted Shear Stress-dependent Dissipative Losses Within a Rotary Blood Pump
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