This paper describes a rapid prototyping (RP) technology for forming a hydroxyapatite (HA) bone scaffold model. The HA powder and a silica sol are mixed into bioceramic slurry form under a suitable viscosity. The HA particles are embedded in the solidified silica matrix to form green parts via a wide range of process parameters after processing by selective laser sintering (SLS). The results indicate that the proposed process was possible to fabricate multilayers and hollow shell structure with brittle property but sufficient integrity for handling prior to post-processing. The fabricated bone scaffold models had a surface finish of 2
In recent years, innovative methods have been developed for the repair and regeneration of damaged a...
This paper presents a proof-of-concept study on the biocolonization of 3D-printed hydroxyapatite sca...
Bone and cartilage generation by three-dimensional scaffolds is one of the promising techniques in t...
Bioceramic scaffolds with fully controlled macroporosity are highly desired materials for bone subst...
AbstractThe fundamentally different features of Rapid prototyping (RP) from that of conventional sin...
This investigation describes the production and characterization of calcium phosphate scaffolds with...
This paper presents an overview of the research work carried out for the rapid manufacture of hydrox...
The ability to control the architecture and strength of a bone tissue engineering scaffold is critic...
Rapid Prototyping (RP) techniques facilitate the manufacturing of components with complex geometry, ...
The bioceramic material hydroxyapatite (HA) is widely used in the field of bone repair. Based on add...
Bone tissue engineering has gained much attention in recent years. A key requirement in this field ...
The major advantage of hydroxyapatite (HA)-forming calcium phosphate cements (CPCs) used as bone rep...
Symposium: P - Bioinspired and biointegrated materials as new frontiers nanomaterials II: abstract P...
AbstractThis study presents a fabrication process of bone scaffold model with titanium biomedical ma...
Hydroxyapatite (HAP) and tricalcium phosphate (TCP) are two very common ceramic materials for bone r...
In recent years, innovative methods have been developed for the repair and regeneration of damaged a...
This paper presents a proof-of-concept study on the biocolonization of 3D-printed hydroxyapatite sca...
Bone and cartilage generation by three-dimensional scaffolds is one of the promising techniques in t...
Bioceramic scaffolds with fully controlled macroporosity are highly desired materials for bone subst...
AbstractThe fundamentally different features of Rapid prototyping (RP) from that of conventional sin...
This investigation describes the production and characterization of calcium phosphate scaffolds with...
This paper presents an overview of the research work carried out for the rapid manufacture of hydrox...
The ability to control the architecture and strength of a bone tissue engineering scaffold is critic...
Rapid Prototyping (RP) techniques facilitate the manufacturing of components with complex geometry, ...
The bioceramic material hydroxyapatite (HA) is widely used in the field of bone repair. Based on add...
Bone tissue engineering has gained much attention in recent years. A key requirement in this field ...
The major advantage of hydroxyapatite (HA)-forming calcium phosphate cements (CPCs) used as bone rep...
Symposium: P - Bioinspired and biointegrated materials as new frontiers nanomaterials II: abstract P...
AbstractThis study presents a fabrication process of bone scaffold model with titanium biomedical ma...
Hydroxyapatite (HAP) and tricalcium phosphate (TCP) are two very common ceramic materials for bone r...
In recent years, innovative methods have been developed for the repair and regeneration of damaged a...
This paper presents a proof-of-concept study on the biocolonization of 3D-printed hydroxyapatite sca...
Bone and cartilage generation by three-dimensional scaffolds is one of the promising techniques in t...