Published December 2016 | Version v1
Journal article

Fabrication of artificial arteriovenous fistula and analysis of flow field and shear stress by using μ-PIV technology

  • 1. Div. of Vascular Surgery, Dept. of Surgery, College of Medicine, The Catholic University of Korea, Seoul (Korea, Republic of)
  • 2. School of Mechanical Engineering, Sungkyunkwan University, Suwon (Korea, Republic of)
  • 3. School of Engineering, Brown University, Providence (United States)

Description

Radio-cephalic arteriovenous fistula (RC-AVF) is an operation performed to achieve vascular access for hemodialysis. Although RC-AVF is a reliable and well-known method, this technique presents high rates of early failure depending on the vessel condition. These failures are due to blood shear stress around the anastomosis site and the vascular access failure caused by thrombosis secondary to stenosis formation, as well as vascular access reocclusion after percutaneous interventions. In this work, we fabricate in vitro 3D RC-AVF by using polydimethylsiloxane and 3D printing technology to understand the underlying mechanism and predict AVF failure. Micro- Particle image velocimetry (μ-PIV) focusing on the cardiac pulse cycle is used to measure the velocity field within the artificial blood vessel. Results are confirmed by numerical simulation. Accordingly, the in vitro AVF model agrees well with the simulations. Overall, this research would provide the future possibility of using the proposed method to reduce in vivo AVF failure for various conditions

Additional details

Publishing Information

Journal Title
Journal of Mechanical Science and Technology
Journal Volume
30
Journal Issue
12
Series
38 refs, 5 figs, 1 tab
Journal Page Range
p. 5503-5511
ISSN
1738-494X

INIS

Country of Publication
Korea, Republic of
Country of Input or Organization
Korea, Republic of
INIS RN
48049169
Subject category
S42: ENGINEERING;
Descriptors DEI
BLOOD VESSELS; COMPUTERIZED SIMULATION; FABRICATION; IN VITRO; IN VIVO; SHEAR; STRESSES; THROMBOSIS; VELOCITY
Descriptors DEC
BODY; CARDIOVASCULAR DISEASES; CARDIOVASCULAR SYSTEM; DISEASES; ORGANS; SIMULATION; VASCULAR DISEASES