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FLUID FLOW ANALYSIS FOR SUITABLE 3D BIO-PRINTED SCAFFOLD ARCHITECTURES TO INCUBATE IN A PERFUSION BIOREACTOR: A SIMULATION APPROACH
被引:0
|作者:
Clark, Scott
[1
]
Quigley, Connor
[1
]
Mankowsky, Jack
[1
]
Habib, Md Ahasan
[1
]
机构:
[1] Keene State Coll, Dept Sustainable Prod Design & Architecture, Keene, NH 03431 USA
来源:
PROCEEDINGS OF ASME 2023 18TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE, MSEC2023, VOL 1
|
2023年
基金:
美国国家科学基金会;
关键词:
Bioreactor;
Simulation;
3D Bioprinting;
3D Cell Culture;
PULSATILE BIOREACTOR;
DESIGN;
DYNAMICS;
SYSTEM;
CELLS;
BONE;
D O I:
暂无
中图分类号:
T [工业技术];
学科分类号:
08 ;
摘要:
Due to the three-dimensional nature of the 3D bio-printed scaffolds, typical stagnant cell culturing methods don't ensure entering medium inside areas or passing through the scaffolds. The bioreactor has frequently provided the required growth medium to encapsulated- and seeded- cells in 3D bio-printed scaffolds. To address this issue, we developed a customized perfusion bioreactor to supply the growth medium dynamically to the cells encapsulated or seeded in the scaffolds. The dynamic supply of fresh growth medium may help improve cell viability and proliferation. Because of its uniform nutrition distribution and flow-induced shear stress within the tissue-engineering scaffold, perfusion bioreactors have been used in a variety of tissue engineering applications. Including a modified setup of our designed bioreactor may improve the in vivo stimuli and conditions, eventually enhancing the overall performance of tissue regeneration. In this paper, we explored the response of fluid flow to certain types of scaffold pore geometries and porosities. We used a simulation technique to determine fluid flow turbulence through various pore geometries such as uniform triangular, square, diamond, circular, and honeycomb. We used variable pore sizes of the scaffold maintaining constant porosity to analyze the fluid flow. Based on the results, optimum designs for scaffolds were determined.
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