Computational Fluid Dynamics for the Optimization of Internal Bioprinting Parameters and Mixing Conditions
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Date
2023
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Accscience Publishing
Open Access Color
GOLD
Green Open Access
Yes
OpenAIRE Downloads
163
OpenAIRE Views
254
Publicly Funded
No
Abstract
Tissue engineering requires the fabrication of three- dimensional (3D) multimaterial structures in complex geometries mimicking the hierarchical structure of biological tissues. To increase the mechanical and biological integrity of the tissue engineered structures, continuous printing of multiple materials through a printing head consisting of a single nozzle is crucial. In this work, numerical analysis was carried out to investigate the extrusion process of two different shear-thinning biomaterial solutions (alginate and gelatin) inside a novel single-nozzle dispensing system consisting of cartridges and a static mixer for varying input pressures, needle geometries, and outlet diameters. Systematic analysis of the dispensing process was conducted to describe the flow rate, velocity field, pressure drop, and shear stress distribution throughout the printing head. The spatial distribution of the biopolymer solutions along the mixing chamber was quantitatively analyzed and the simulation results were validated by comparing the pressure drop values with empirical correlations. The simulation results showed that the proposed dispensing system enables to fabricate homogenous material distribution across the nozzle outlet. The predicted shear stress along the proposed printing head model is lower than the critical shear values which correspond to negligible cell damage, suggesting that the proposed dispensing system can be used to print cell-laden tissue engineering constructs.
Description
Keywords
3D Printing, Bioprinting, Biomaterials, Computational Fluid Dynamics, Extrusion, Tissue Engineering, 3D Printing, Biomaterials, Tissue Engineering, Extrusion, :Mechanical engineering [Engineering], Bioprinting, Tissue engineering, Computational fluid dynamics
Fields of Science
Citation
WoS Q
Q1
Scopus Q
Q2

OpenCitations Citation Count
9
Source
International Journal of Bioprinting
Volume
9
Issue
6
Start Page
11
End Page
25
PlumX Metrics
Citations
Scopus : 12
Captures
Mendeley Readers : 23
SCOPUS™ Citations
13
checked on Mar 04, 2026
Web of Science™ Citations
13
checked on Mar 04, 2026
Page Views
1
checked on Mar 04, 2026
Downloads
8
checked on Mar 04, 2026
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