Magnesium (Mg) and its alloys can degrade gradually up to complete dissolution in the physiological environment. This property makes these biomaterials appealing for different biomedical applications, such as bone implants. In order to qualify Mg and its alloys for bone implant applications, there is a need to precisely model their degradation (corrosion) behavior in the physiological environment. Therefore, the primary objective develop a model that can be used to predict the corrosion behavior of Mg-based alloys in vitro, while capturing the effect of pitting corrosion. To this end, a customized FORTRAN user material subroutine (or VUMAT) that is compatible with the finite element (FE) solver Abaqus/Explicit (Dassault Systèmes, Walth...
Magnesium (Mg) and its alloys have been widely explored as a potential biodegradable implant materia...
The potential of Magnesium (Mg)-based temporary biodegradable metallic implants relies most heavily ...
Accurate prediction of Mg corrosion rates within the body (in vivo) based on laboratory tests (in vi...
Computational modeling plays an important role in the design of orthopedic implants. In the case of ...
Magnesium (Mg) is becoming increasingly popular for orthopaedic implant materials. Its mechanical pr...
© 2017 by the authors. Magnesium (Mg) is becoming increasingly popular for orthopaedic implant mater...
Background. Pure magnesium and its alloys are promising biodegradable biomaterials for cardiovascula...
Magnesium alloys are highly attractive for the use as temporary implant materials, due to their high...
The world is facing an aging population and also there is an increase in war, and sports related inj...
Magnesium-based biodegradable materials are currently of great interest in various biomedical applic...
The use of metallic biomaterials, such as titanium alloys, stainless steels and cobalt-chromium allo...
Metallic biomedical implants based on magnesium, zinc and iron alloys have emerged as bioresorbable...
The main drawback of a conventional stenting procedure is the high risk of restenosis. The idea of a...
The biggest challenge with magnesium alloy biodegradable implants is the rapid corrosion at the earl...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
Magnesium (Mg) and its alloys have been widely explored as a potential biodegradable implant materia...
The potential of Magnesium (Mg)-based temporary biodegradable metallic implants relies most heavily ...
Accurate prediction of Mg corrosion rates within the body (in vivo) based on laboratory tests (in vi...
Computational modeling plays an important role in the design of orthopedic implants. In the case of ...
Magnesium (Mg) is becoming increasingly popular for orthopaedic implant materials. Its mechanical pr...
© 2017 by the authors. Magnesium (Mg) is becoming increasingly popular for orthopaedic implant mater...
Background. Pure magnesium and its alloys are promising biodegradable biomaterials for cardiovascula...
Magnesium alloys are highly attractive for the use as temporary implant materials, due to their high...
The world is facing an aging population and also there is an increase in war, and sports related inj...
Magnesium-based biodegradable materials are currently of great interest in various biomedical applic...
The use of metallic biomaterials, such as titanium alloys, stainless steels and cobalt-chromium allo...
Metallic biomedical implants based on magnesium, zinc and iron alloys have emerged as bioresorbable...
The main drawback of a conventional stenting procedure is the high risk of restenosis. The idea of a...
The biggest challenge with magnesium alloy biodegradable implants is the rapid corrosion at the earl...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
Magnesium (Mg) and its alloys have been widely explored as a potential biodegradable implant materia...
The potential of Magnesium (Mg)-based temporary biodegradable metallic implants relies most heavily ...
Accurate prediction of Mg corrosion rates within the body (in vivo) based on laboratory tests (in vi...