TY - GEN
T1 - Investigation of Hemodynamic Characteristics in Novel Artificial Blood Vessels with Surface Microstructures
AU - Xie, Liqing
AU - Fan, Zhenmin
AU - Liu, Kailei
AU - Zhang, Yingying
AU - Ye, Xia
AU - Deng, Xiaoyan
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2024.
PY - 2024
Y1 - 2024
N2 - This study introduces a novel type of small-diameter artificial blood vessel inspired by the concept of helical flow. It investigates the impact of artificial blood vessels with varying surface microstructures on the hemodynamic characteristics of host blood vessels through numerical simulations. Parameters such as time-averaged wall shear stress (TAWSS), oscillatory shear index (OSI), relative residence time (RRT), and the enhancement of spiral flow intensity within the host artery were examined. The findings indicate that this new small-diameter artificial blood vessel significantly increases flow velocity and wall shear stress in the bypass, reduces OSI and RRT values at the distal anastomotic site, and intensifies spiral flow in the host artery. Among the models tested, the trapezoidal microstructure model exhibited the most favorable outcomes. Moreover, the pitch of the microstructure was found to markedly alter the blood flow environment in the bypass, notably increasing TAWSS at the distal anastomosis and decreasing OSI and RRT values. With a reduction in pitch, the new artificial blood vessel model further minimizes flow separation in host blood vessels and strengthens spiral flow intensity. This study proposes a new type of internal ridge artificial blood vessel, conducting numerical simulations and theoretical analyses to offer fresh theoretical and practical insights for clinical applications in this domain.
AB - This study introduces a novel type of small-diameter artificial blood vessel inspired by the concept of helical flow. It investigates the impact of artificial blood vessels with varying surface microstructures on the hemodynamic characteristics of host blood vessels through numerical simulations. Parameters such as time-averaged wall shear stress (TAWSS), oscillatory shear index (OSI), relative residence time (RRT), and the enhancement of spiral flow intensity within the host artery were examined. The findings indicate that this new small-diameter artificial blood vessel significantly increases flow velocity and wall shear stress in the bypass, reduces OSI and RRT values at the distal anastomotic site, and intensifies spiral flow in the host artery. Among the models tested, the trapezoidal microstructure model exhibited the most favorable outcomes. Moreover, the pitch of the microstructure was found to markedly alter the blood flow environment in the bypass, notably increasing TAWSS at the distal anastomosis and decreasing OSI and RRT values. With a reduction in pitch, the new artificial blood vessel model further minimizes flow separation in host blood vessels and strengthens spiral flow intensity. This study proposes a new type of internal ridge artificial blood vessel, conducting numerical simulations and theoretical analyses to offer fresh theoretical and practical insights for clinical applications in this domain.
KW - Artificial blood vessel
KW - Bypass
KW - Helical flow
KW - Hemodynamics
KW - Simulation
UR - https://www.scopus.com/pages/publications/85219185654
U2 - 10.1007/978-981-96-0188-2_5
DO - 10.1007/978-981-96-0188-2_5
M3 - 会议稿件
AN - SCOPUS:85219185654
SN - 9789819601875
T3 - Communications in Computer and Information Science
SP - 53
EP - 66
BT - Advancement in Computational Methods for Life Systems Modelling and Simulation - 8th International Conference on Life System Modeling and Simulation, LSMS 2024 and 8th International Conference on Intelligent Computing for Sustainable Energy and Environment, ICSEE 2024, Proceedings
A2 - Fei, Minrui
A2 - Niu, Qun
A2 - Li, Xin
A2 - Wu, Hongjie
A2 - Zhang, Jingjing
PB - Springer Science and Business Media Deutschland GmbH
T2 - 8th International Conference on Life System Modeling and Simulation, LSMS 2024 and 8th International Conference on Intelligent Computing for Sustainable Energy and Environment, ICSEE 2024
Y2 - 13 September 2024 through 15 September 2024
ER -