Manufacturing an artificial arterial tree using 3D printing

被引:0
作者
Hacham, Wisam S. [1 ]
Khir, Ashraf W. [2 ]
机构
[1] Univ Baghdad, Al Khwarizmi Coll Engn, Mechatron Engn Dept, Baghdad, Iraq
[2] Univ Durham, Dept Engn, Durham DH1 3LE, England
关键词
Artificial arterial tree; Catalyst solidification; In -vitro model; 3D printing; Silicone rubber; Mock ciculatory loop; MODELS;
D O I
10.1016/j.heliyon.2024.e31764
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Models of the arterial network are useful in studying mechanical cardiac assist devices as well as complex pathological states that are difficult to investigate in -vivo otherwise. Earlier work of artificial arterial tree (AAT) have been constructed to include some of the major arteries and their branches for in -vitro experiments which focused on the aorta, using dipping or painting techniques, which resulted in inaccuracies and inconsistent wall thickness. Therefore, the aim of this work is to use 3D printing for manufacturing AAT based on physiologically correct dimensions of the largest 45 segments of the human arterial tree. A volume ratio mix of silicone rubber (98 %) and a catalyst (2 %) was used to create the walls of the AAT. To validate, the AAT was connected at its inlet to a piston pump that mimicked the heart and capillary tubes at the outlets that mimicked arterial resistances. The capillary tubes were connected to a reservoir that collected the water which was the fluid used in testing the closed -loop hydraulic system. Young 's modulus of the AAT walls was determined using tensile testing of different segments of various wall thickness. The developed AAT produced pressure, diameter and flow rate waveforms that are similar to those observed in -vivo. The technique described here is low cost, may be used for producing arterial trees to facilitate testing mechanical cardiac assist devices and studying hemodynamic investigations.
引用
收藏
页数:10
相关论文
共 30 条
[1]   Cardiac patient-specific three-dimensional models as surgical planning tools [J].
Bateman, Michael G. ;
Durfee, William K. ;
Iles, Tinen L. ;
Martin, Cindy M. ;
Liao, Kenneth ;
Erdman, Arthur G. ;
Iaizzo, Paul A. .
SURGERY, 2020, 167 (02) :259-263
[2]   3D Printing for Bio-Synthetic Biliary Stents [J].
Boyer, Christen J. ;
Boktor, Moheb ;
Samant, Hrishikesh ;
White, Luke A. ;
Wang, Yuping ;
Ballard, David H. ;
Huebert, Robert C. ;
Woerner, Jennifer E. ;
Ghali, Ghali E. ;
Alexander, Jonathan S. .
BIOENGINEERING-BASEL, 2019, 6 (01)
[3]   Mock circulatory loops used for testing cardiac assist devices: A review of computational and experimental models [J].
Cappon, Femke ;
Wu, Tingting ;
Papaioannou, Theodore ;
Du, Xinli ;
Hsu, Po-Lin ;
Khir, Ashraf W. .
INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2021, 44 (11) :793-806
[4]   The global rise of 3D printing during the COVID-19 pandemic [J].
Choong, Yu Ying Clarrisa ;
Tan, Hong Wei ;
Patel, Deven C. ;
Choong, Wan Ting Natalie ;
Chen, Chun-Hsien ;
Low, Hong Yee ;
Tan, Ming Jen ;
Patel, Chandrakant D. ;
Chua, Chee Kai .
NATURE REVIEWS MATERIALS, 2020, 5 (09) :637-639
[5]   Current state of 3D-printed custom-made spinal implants [J].
Choy, Wen Jie ;
Mobbs, Ralph J. .
LANCET DIGITAL HEALTH, 2019, 1 (04) :E149-E150
[6]   Development and Validation of a Life-Sized Mock Circulatory Loop of the Human Circulation for Fluid-Mechanical Studies [J].
Gehron, Johannes ;
Zirbes, Julian ;
Bongert, Markus ;
Schaefer, Stefan ;
Fiebich, Martin ;
Krombach, Gabriele ;
Boening, Andreas ;
Grieshaber, Philippe .
ASAIO JOURNAL, 2019, 65 (08) :788-797
[8]   Development of a circulatory mock loop for biventricular device testing with various heart conditions [J].
Kado, Yuichiro ;
Miyamoto, Takuma ;
Horvath, David J. ;
Gao, Shengqiang ;
Fukamachi, Kiyotaka ;
Karimov, Jamshid H. .
INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2020, 43 (09) :600-605
[9]   A Mock Circulatory System With Physiological Distribution of Terminal Resistance and Compliance: Application for Testing the Intra-Aortic Balloon Pump [J].
Kolyva, Christina ;
Biglino, Giovanni ;
Pepper, John R. ;
Khir, Ashraf W. .
ARTIFICIAL ORGANS, 2012, 36 (03) :E62-E70
[10]   3D printing in biomedical engineering: Processes, materials, and applications [J].
Lai, Jiahui ;
Wang, Chong ;
Wang, Min .
APPLIED PHYSICS REVIEWS, 2021, 8 (02)