Designing venous stents with desired properties is challenging due to the partly conflicting performance criteria, e.g., enhancing flexibility may be at odds with increasing patency. To evaluate the effect of design parameters on the mechanical performance ofbraided stents, computational simulations are performed using finite element analysis. Model validation is performed through comparison with measurements. Considered design features are stent length, wire diameter, pick rate, number of wires, and stentend-type, being either open-ended or closed looped. Based on the requirements of venous stents, tests are defined to study the effect of design variations with respect to the following key performance criteria: chronic outward force, crush...
Nitinol self-expanding stents are commonly used to treat peripheral artery disease. However, the fem...
Aim: This paper aims to compare the mechanical performance of metallic (Xience) and bioresorbable po...
Braided wire stents demonstrate distinct characteristics compared to welded ones. In this study, bot...
Designing venous stents with desired properties is challenging due to the partly conflicting perform...
The application of stents in the venous system is increasing. Where arterial stents have been used a...
Braided stents are associated with a number of complications in vivo. Accurate computational modelli...
This study develops a computational model of the braided stent for interpreting the mechanism of ste...
Computational modeling is often used to quantify hemodynamic alterations induced by stenting, but fr...
A proper interpretation of the forces developed during stent crimping and deployment is of paramount...
The stent-artery interactions have been increasingly studied using the finite element method for bet...
Braiding technology is nowadays commonly adopted to build stent-like devices. Indeed, these endopros...
In this paper stents employed to treat peripheral artery disease are analyzed through a three- dimen...
Purpose: The study compared the mechanical behavior of bioresorbable polymeric stents with various d...
Nitinol self-expanding stents are commonly used to treat peripheral artery disease. However, the fem...
Aim: This paper aims to compare the mechanical performance of metallic (Xience) and bioresorbable po...
Braided wire stents demonstrate distinct characteristics compared to welded ones. In this study, bot...
Designing venous stents with desired properties is challenging due to the partly conflicting perform...
The application of stents in the venous system is increasing. Where arterial stents have been used a...
Braided stents are associated with a number of complications in vivo. Accurate computational modelli...
This study develops a computational model of the braided stent for interpreting the mechanism of ste...
Computational modeling is often used to quantify hemodynamic alterations induced by stenting, but fr...
A proper interpretation of the forces developed during stent crimping and deployment is of paramount...
The stent-artery interactions have been increasingly studied using the finite element method for bet...
Braiding technology is nowadays commonly adopted to build stent-like devices. Indeed, these endopros...
In this paper stents employed to treat peripheral artery disease are analyzed through a three- dimen...
Purpose: The study compared the mechanical behavior of bioresorbable polymeric stents with various d...
Nitinol self-expanding stents are commonly used to treat peripheral artery disease. However, the fem...
Aim: This paper aims to compare the mechanical performance of metallic (Xience) and bioresorbable po...
Braided wire stents demonstrate distinct characteristics compared to welded ones. In this study, bot...