This paper proposes a modeling approach for biodegradation of implant-bone scaffolds. A Computer simulation was performed to determine the wall shear stress (WSS) and permeability of simulated body fluid (SBF) with a constant flow rate of 0.025 ml/min. In this study, four morphological samples were used to immersion time from 0 to 72 hours. Each specimen was given a different bone strain (1000-3500 μstrain) which created a variation of displacement in the bone scaffold. The method used in the simulation was the fluid-structure interaction (FSI). The pressure drop through the specimen decreases linearly, the permeability increases as the porosity increases, and the mean wall shear stress decreases due to the length of the immersion time. It ...
Previously, some materials like solid metals and their alloys have been used as implants in human's ...
Computational modeling plays an important role in the design of orthopedic implants. In the case of ...
Three-dimensional (3D) porous tissue scaffolds combined with bioactive molecules and cells offer key...
This paper proposes a modeling approach for biodegradation of implant-bone scaffolds. A Computer sim...
The purpose of this study is to analyze the influence of morphology on the degrading behavior of por...
This study analyses the effect of different flow rates on the degradation behaviour of porous magnes...
Medical implants play a key role in treating bone fractures. Permanent implants are currently used f...
This study shows the effect of dynamic flow on the degradation behaviour and mechanical integrity of...
AbstractThe factors that conduct to an optimal scaffold performance haven’t been fully determined an...
Biodegradable metals have been suggested for bone scaffold applications due to their mechanical prop...
In the present study, the effects of human physiological activity levels on the fatigue life of a po...
The increasing demand for bone grafts, combined with their limited availability and potential risks,...
The use of biocompatible and biodegradable porous scaffolds produced via additive manufacturing is o...
The use of biocompatible and biodegradable porous scaffolds produced via additive manufacturing is o...
Bone tissue engineering (BTE) experiments in vitro have shown that fluid-induced wall shear stress (...
Previously, some materials like solid metals and their alloys have been used as implants in human's ...
Computational modeling plays an important role in the design of orthopedic implants. In the case of ...
Three-dimensional (3D) porous tissue scaffolds combined with bioactive molecules and cells offer key...
This paper proposes a modeling approach for biodegradation of implant-bone scaffolds. A Computer sim...
The purpose of this study is to analyze the influence of morphology on the degrading behavior of por...
This study analyses the effect of different flow rates on the degradation behaviour of porous magnes...
Medical implants play a key role in treating bone fractures. Permanent implants are currently used f...
This study shows the effect of dynamic flow on the degradation behaviour and mechanical integrity of...
AbstractThe factors that conduct to an optimal scaffold performance haven’t been fully determined an...
Biodegradable metals have been suggested for bone scaffold applications due to their mechanical prop...
In the present study, the effects of human physiological activity levels on the fatigue life of a po...
The increasing demand for bone grafts, combined with their limited availability and potential risks,...
The use of biocompatible and biodegradable porous scaffolds produced via additive manufacturing is o...
The use of biocompatible and biodegradable porous scaffolds produced via additive manufacturing is o...
Bone tissue engineering (BTE) experiments in vitro have shown that fluid-induced wall shear stress (...
Previously, some materials like solid metals and their alloys have been used as implants in human's ...
Computational modeling plays an important role in the design of orthopedic implants. In the case of ...
Three-dimensional (3D) porous tissue scaffolds combined with bioactive molecules and cells offer key...