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PMID: 30406881 Published · ppublish English Journal Article

Shear stress and blood trauma under constant and pulse-modulated speed CF-VAD operations: CFD analysis of the HVAD.

Medical & biological engineering & computing ·Vol. 57 ·No. 4 ·2019-04-00 ·页码 807-818

Chen Z, Jena SK, Giridharan GA, Sobieski MA, Koenig SC, Slaughter MS, Griffith BP, Wu ZJ

Abstract

Modulation of pump speed has been proposed and implemented clinically to improve vascular pulsatility in continuous flow ventricular assist device patient. The flow dynamics of the HVAD with a promising asynchronous pump speed modulation and its potential risk for device-induced blood trauma was investigated numerically. The boundary conditions at the pump inlet and outlet were defined using the pressure waveforms adapted from the experimentally recorded ventricular and arterial pressure waveforms in a large animal ischemic heart failure (IHF) model supported by the HVAD operated at constant and modulated pump speeds. Shear stress fields and hemolysis indices were derived from the simulated flow fields. The overall features of the computationally generated flow waveforms at simulated constant and pulse-modulated speed operations matched with those of the experimentally recorded flow waveforms. The simulations showed that the shear stress field and hemolysis index vary throughout the cardiac cycle under the constant speed operation, and also as a function of modulation profile under modulated speed operation. The computational model did not demonstrate any differences in the time average hemolysis index between constant and modulated pump speed operations, thereby predicting pulse-modulated speed operation may help to restore vascular pulsatility without any further increased risk of blood trauma. Graphical abstract The streamline inside the HVAD pump and the wall shear stress distribution on the impeller surface at six discrete time instants over one cardiac cycle under constant speed operation (3000 rpm) (a) and under pulse-modulated speed operation (b). c Computationally predicted flow rate waveform under pulse-modulated speed operation. d Computationally predicted time-varying HI generated by the HVAD pump under the two operation modes constant speed (dash line) and pulse-modulated speed (solid line). These figures indicate that the pulse-modulated speed operation may help to restore vascular pulsatility without any further increased risk of blood trauma.

Keywords
Blood trauma Continuous flow ventricular assist devices Pulsatility Shear stress Speed pulse modulation
MeSH 主题词
Computer Simulation Heart-Assist Devices Hemolysis Hydrodynamics Stress, Mechanical
作者与单位
共 8 位作者,点击展开单位 / ORCID
Chen Zengsheng
Artificial Organs Laboratory, Department of Surgery, University of Maryland School of Medicine, 10 South Pine Street, MSTF 434A, Baltimore, MD, 21201, USA.
Jena Sofen K
Department of Cardiovascular and Thoracic Surgery, University of Louisville School of Medicine, Louisville, KY, 40202, USA.
Giridharan Guruprasad A
Department of Cardiovascular and Thoracic Surgery, University of Louisville School of Medicine, Louisville, KY, 40202, USA. | Department of Bioengineering, Speed School of Engineering, University of Louisville, Louisville, KY, 40292, USA.
Sobieski Michael A
Department of Cardiovascular and Thoracic Surgery, University of Louisville School of Medicine, Louisville, KY, 40202, USA.
Koenig Steven C
Department of Cardiovascular and Thoracic Surgery, University of Louisville School of Medicine, Louisville, KY, 40202, USA. | Department of Bioengineering, Speed School of Engineering, University of Louisville, Louisville, KY, 40292, USA.
Slaughter Mark S
Department of Cardiovascular and Thoracic Surgery, University of Louisville School of Medicine, Louisville, KY, 40202, USA.
Griffith Bartley P
Artificial Organs Laboratory, Department of Surgery, University of Maryland School of Medicine, 10 South Pine Street, MSTF 434A, Baltimore, MD, 21201, USA.
Wu Zhongjun J ORCID
Artificial Organs Laboratory, Department of Surgery, University of Maryland School of Medicine, 10 South Pine Street, MSTF 434A, Baltimore, MD, 21201, USA. [email protected]. | Fischell Department of Bioengineering, A. James Clark School of Engineering, University of Maryland, College Park, MD, 20742, USA. [email protected].
Article Info
Journal
Medical & biological engineering & computing
Abbr.
Med Biol Eng Comput
ISSN
1741-0444
Corresponding email
Published
2019-04-00
电子出版
2018-00-08
页码
807-818
Language
English
Country/Region
United States
NLM ID
7704869
基金资助
NHLBI NIH HHS · R01 HL124170 · United States
National Institutes of Health · R01HL124170
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