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  4. Enhanced Hemodynamics of Anisometric TPMS Topology Reduce Blood Clotting in 3D Printed Blood Contactors
 
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2025
Journal Article
Title

Enhanced Hemodynamics of Anisometric TPMS Topology Reduce Blood Clotting in 3D Printed Blood Contactors

Abstract
Artificial organs, such as extracorporeal membrane oxygenators, dialyzers, and hemoadsorber cartridges, face persistent challenges related to the flow distribution within the cartridge. This uneven flow distribution leads to clot formation and inefficient mass transfer over the device's functional surface. In this work, a comprehensive methodology is presented for precisely integrating triply periodic minimal surfaces (TPMS) into module housings and question whether the internal surface topology determining the flow distribution affects blood coagulation. Three module types are compared with different internal topologies: tubular, isometric, and anisometric TPMS. First, this study includes a computational fluid dynamics (CFD) simulation of the internal hemodynamics, validated through experimental residence time distributions (RTD). Blood tests using human whole blood and subsequent visualization of blood clots by computed tomography, allow the quantification of structure-induced blood clotting. The results indicate that TPMS topologies, particularly anisometric ones, serve as effective flow distributors and significantly reduce and delay blood clotting compared to conventional tubular geometries. For these novel TPMS modules, the inner surfaces can be activated chemically or functionalized to function as a selective adsorption site or biocatalytic surface or made of a permeable material to facilitate mass transfer.
Author(s)
Hirschwald, Lukas T.
Rheinisch-Westfälische Technische Hochschule Aachen
Hagemann, Franziska
Leibniz Institute for Interactive Materials
Biermann, Maik
Rheinisch-Westfälische Technische Hochschule Aachen
Hanßen, Paul
Rheinisch-Westfälische Technische Hochschule Aachen
Hoffmann, Patrick
Rheinisch-Westfälische Technische Hochschule Aachen
Höhs, Tim
Rheinisch-Westfälische Technische Hochschule Aachen
Neuhaus, Florian
Leibniz Institute for Interactive Materials
Tillmann, Maerthe Theresa
Rheinisch-Westfälische Technische Hochschule Aachen
Peric, Petar
Rheinisch-Westfälische Technische Hochschule Aachen
Wattenberg, Maximilian
Fraunhofer-Einrichtung für Individualisierte und Zellbasierte Medizintechnik IMTE  
Stille, Maik  orcid-logo
Fraunhofer-Einrichtung für Individualisierte und Zellbasierte Medizintechnik IMTE  
Fechter, Tamara
Uniklinik RWTH Aachen
Theissen, Alexander
Uniklinik RWTH Aachen
Winnersbach, Patrick
Uniklinik RWTH Aachen
Barbian, Kai P.
Rheinisch-Westfälische Technische Hochschule Aachen
Jansen, Sebastian Victor
Rheinisch-Westfälische Technische Hochschule Aachen
Steinseifer, Ulrich
Rheinisch-Westfälische Technische Hochschule Aachen
Wiegmann, Bettina
Hannover Medical School
Rossaint, Rolf
Uniklinik RWTH Aachen
Wessling, Matthias
Rheinisch-Westfälische Technische Hochschule Aachen
Bleilevens, Christian
Uniklinik RWTH Aachen
Linkhorst, John
Rheinisch-Westfälische Technische Hochschule Aachen
Journal
Advanced Healthcare Materials  
Funder
Deutsche Forschungsgemeinschaft  
Open Access
DOI
10.1002/adhm.202403111
Additional link
Full text
Language
English
Fraunhofer-Einrichtung für Individualisierte und Zellbasierte Medizintechnik IMTE  
Keyword(s)
  • dialysis

  • extracorporeal membrane oxygenation

  • hemodynamics

  • topology reduced clotting

  • triply periodic minimal surface

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