In the present study, the effects of human physiological activity levels on the fatigue life of a porous magnesium scaffold have been investigated. First, the dynamic immersion and biomechanical testing are carried out on a porous magnesium scaffold to simulate the physiological conditions. Then, a numerical data analysis and computer simulations predict the implant failure values. A 3D CAD bone scaffold model was used to predict the implant fatigue, based on the micro-tomographic images. This study uses a simulation of solid mechanics and fatigue, based on daily physiological activities, which include walking, running, and climbing stairs, with strains reaching 1000–3500 µm/mm. The porous magnesium scaffold with a porosity of 41% was put t...
Magnesium (Mg) alloys are attracting increasing interest as the most suitable metallic materials for...
Magnesium (Mg) alloys are attracting increasing interest as the most suitable metallic materials for...
Porous titanium scaffolds exhibit elastic properties close to that of bone, and they can promote oss...
This paper proposes a modeling approach for biodegradation of implant-bone scaffolds. A Computer sim...
Medical implants play a key role in treating bone fractures. Permanent implants are currently used f...
This study analyses the effect of different flow rates on the degradation behaviour of porous magnes...
This study shows the effect of dynamic flow on the degradation behaviour and mechanical integrity of...
Magnesium and its alloys have the intrinsic capability of degrading over time in vivo without leavin...
Biodegradable metals have been suggested for bone scaffold applications due to their mechanical prop...
The aim of this experimental study is to predict the long-term mechanical behavior of a porous scaff...
Magnesium (Mg) alloys have attracted great attention as potential materials for temporary implants i...
Magnesium alloys have been recently developed as biodegradable implant materials, yet there has been...
Introduction: Porous dental implants represent a promising strategy to reduce failure rate by favori...
The dynamic loading in human body, along with the corrosive body fluid, presents a great challenge f...
Porous Ti-6Al-4V alloys are widely used in the biomedical applications for hard tissue implantation ...
Magnesium (Mg) alloys are attracting increasing interest as the most suitable metallic materials for...
Magnesium (Mg) alloys are attracting increasing interest as the most suitable metallic materials for...
Porous titanium scaffolds exhibit elastic properties close to that of bone, and they can promote oss...
This paper proposes a modeling approach for biodegradation of implant-bone scaffolds. A Computer sim...
Medical implants play a key role in treating bone fractures. Permanent implants are currently used f...
This study analyses the effect of different flow rates on the degradation behaviour of porous magnes...
This study shows the effect of dynamic flow on the degradation behaviour and mechanical integrity of...
Magnesium and its alloys have the intrinsic capability of degrading over time in vivo without leavin...
Biodegradable metals have been suggested for bone scaffold applications due to their mechanical prop...
The aim of this experimental study is to predict the long-term mechanical behavior of a porous scaff...
Magnesium (Mg) alloys have attracted great attention as potential materials for temporary implants i...
Magnesium alloys have been recently developed as biodegradable implant materials, yet there has been...
Introduction: Porous dental implants represent a promising strategy to reduce failure rate by favori...
The dynamic loading in human body, along with the corrosive body fluid, presents a great challenge f...
Porous Ti-6Al-4V alloys are widely used in the biomedical applications for hard tissue implantation ...
Magnesium (Mg) alloys are attracting increasing interest as the most suitable metallic materials for...
Magnesium (Mg) alloys are attracting increasing interest as the most suitable metallic materials for...
Porous titanium scaffolds exhibit elastic properties close to that of bone, and they can promote oss...