Related Experiment Video
Updated: Mar 2, 2026

Experimental Investigation of Secondary Flow Structures Downstream of a Model Type IV Stent Failure in a 180° Curved Artery Test Section
Published on: July 19, 2016
Relationships between geometrical parameters and mechanical properties for a helical braided flow diverter stent
Takashi Suzuki1, Hiroyuki Takao1,2,3, Soichiro Fujimura1
1Graduate School of Mechanical Engineering, Tokyo University of Science, Tokyo 125-8585, Japan.
Background:
Although flow diversion is a promising procedure for aneurysm treatment, the safety and efficacy of this strategy have not been sufficiently characterized. Both mechanical properties and flow reduction effects are important factors in the design of an optimal stent.
Objective:
We aimed to clarify the contributions of strut size and pitch to the mechanical properties (radial stiffness and longitudinal flexibility) and geometric characteristics (porosity and pore density) related to flow reduction effects.
Methods:
Crimping and bending behaviors of the stents were simulated with the finite element method. The relationships between the mechanical properties and geometric characteristics were investigated by changing the strut size and pitch.
Results:
Within the porosity range of 79-82%, the radial stiffness of the stent was similarly influenced by either the strut size or pitch. However, the longitudinal flexibility tended to be influenced more by strut size than by pitch.
Conclusions:
Adjusting the strut size rather than the pitch can change the mechanical properties while minimizing the change in porosity or pore density related to flow reduction effects.
Related Concept Videos
Bending of Material: Problem Solving
Bending of Members Made of Several Materials
Hooke's Law determines stress in each material, stating that stress is proportional to strain but varies due to each material's...
Stress Concentrations in Circular Shafts
Thin-Walled Hollow Shafts
Hooke's Law
Plastic Deformation in Circular Shafts

