Abstract Objective Mechanic strength, pore morphology and size are key factors for the three-dimensional (3D) printing of porous titanium scaffolds, therefore, developing optimal structure for the 3D printed titanium scaffold to fill bone defects in knee joints is instructive and important. Methods Structural models of titanium scaffolds with fifteen different pore unit were designed with 3D printing computer software; five different scaffold shapes were designed: imitation diamond-60°, imitation diamond-90°, imitation diamond-120°, regular tetrahedron and regular hexahedron. Each structural shape was evaluated with three pore sizes (400, 600 and 800 μm), and fifteen types of cylindrical models (size: 20 mm; height: 20 mm). Autodesk Invento...
3D printed scaffolds can be used, for example, in medical applications for simulating body tissues o...
Construction applications sometimes require use of a material other than construction steel or concr...
Reducing the elastic modulus and also improving biological fixation to the bone is possible by using...
Porous metal structures have emerged as a promising solution in repairing and replacing damaged bone...
Additively manufactured Ti scaffolds have been used for bone replacement and orthopaedic application...
The elastic modulus of metallic orthopaedic implants is typically 6–12 times greater than cortical b...
In porous titanium scaffolds manufactured via 3D printing, the differences in bone formation accordi...
Reconstruction of segmental defects in the mandible remains a challenge for maxillofacial surgery. T...
AbstractAdditive manufacturing methods such as three-dimensional printing (3DP) show a great potenti...
Abstract Additive manufacturing methods such as three-dimensional printing (3DP) show a great potent...
The aim of Tissue Engineering is to develop biological substitutes that will restore lost morphologi...
Individualized titanium mesh holds many advantages over conventional mesh. There are few reports in ...
The osseointegration of metallic implants depends on an effective balance among designed porosity to...
Current materials used to fill bone defects (ceramics, cement) either lack strength or do not induce...
3D printed scaffolds can be used, for example, in medical applications for simulating body tissues o...
3D printed scaffolds can be used, for example, in medical applications for simulating body tissues o...
Construction applications sometimes require use of a material other than construction steel or concr...
Reducing the elastic modulus and also improving biological fixation to the bone is possible by using...
Porous metal structures have emerged as a promising solution in repairing and replacing damaged bone...
Additively manufactured Ti scaffolds have been used for bone replacement and orthopaedic application...
The elastic modulus of metallic orthopaedic implants is typically 6–12 times greater than cortical b...
In porous titanium scaffolds manufactured via 3D printing, the differences in bone formation accordi...
Reconstruction of segmental defects in the mandible remains a challenge for maxillofacial surgery. T...
AbstractAdditive manufacturing methods such as three-dimensional printing (3DP) show a great potenti...
Abstract Additive manufacturing methods such as three-dimensional printing (3DP) show a great potent...
The aim of Tissue Engineering is to develop biological substitutes that will restore lost morphologi...
Individualized titanium mesh holds many advantages over conventional mesh. There are few reports in ...
The osseointegration of metallic implants depends on an effective balance among designed porosity to...
Current materials used to fill bone defects (ceramics, cement) either lack strength or do not induce...
3D printed scaffolds can be used, for example, in medical applications for simulating body tissues o...
3D printed scaffolds can be used, for example, in medical applications for simulating body tissues o...
Construction applications sometimes require use of a material other than construction steel or concr...
Reducing the elastic modulus and also improving biological fixation to the bone is possible by using...