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3D Printing of Bioceramics for Bone Tissue Engineering
بواسطة
Zafar, Muhammad Jamshaid
, Zhang, Zhengyan
, Zhu, Dongbin
في
3-D printers
/ Additive manufacturing
/ Bioceramics
/ Biocompatibility
/ Bioengineering
/ Biomedical materials
/ Bones
/ CAD
/ Ceramic molds
/ Ceramics
/ Composite materials
/ Computer aided design
/ Energy
/ Lasers
/ Low speed
/ Polymerization
/ Porosity
/ Rapid prototyping
/ Regeneration
/ Researchers
/ Review
/ Shear stress
/ Sintering (powder metallurgy)
/ Slurries
/ Three dimensional printing
/ Tissue engineering
2019
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3D Printing of Bioceramics for Bone Tissue Engineering
بواسطة
Zafar, Muhammad Jamshaid
, Zhang, Zhengyan
, Zhu, Dongbin
في
3-D printers
/ Additive manufacturing
/ Bioceramics
/ Biocompatibility
/ Bioengineering
/ Biomedical materials
/ Bones
/ CAD
/ Ceramic molds
/ Ceramics
/ Composite materials
/ Computer aided design
/ Energy
/ Lasers
/ Low speed
/ Polymerization
/ Porosity
/ Rapid prototyping
/ Regeneration
/ Researchers
/ Review
/ Shear stress
/ Sintering (powder metallurgy)
/ Slurries
/ Three dimensional printing
/ Tissue engineering
2019
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وجه الفتاة! هناك خطأ ما.
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هل تريد طلب الكتاب؟
3D Printing of Bioceramics for Bone Tissue Engineering
بواسطة
Zafar, Muhammad Jamshaid
, Zhang, Zhengyan
, Zhu, Dongbin
في
3-D printers
/ Additive manufacturing
/ Bioceramics
/ Biocompatibility
/ Bioengineering
/ Biomedical materials
/ Bones
/ CAD
/ Ceramic molds
/ Ceramics
/ Composite materials
/ Computer aided design
/ Energy
/ Lasers
/ Low speed
/ Polymerization
/ Porosity
/ Rapid prototyping
/ Regeneration
/ Researchers
/ Review
/ Shear stress
/ Sintering (powder metallurgy)
/ Slurries
/ Three dimensional printing
/ Tissue engineering
2019
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Journal Article
3D Printing of Bioceramics for Bone Tissue Engineering
2019
الطلب من المخزن الآلي
واختر طريقة الاستلام
نظرة عامة
Bioceramics have frequent use in functional restoration of hard tissues to improve human well-being. Additive manufacturing (AM) also known as 3D printing is an innovative material processing technique extensively applied to produce bioceramic parts or scaffolds in a layered perspicacious manner. Moreover, the applications of additive manufacturing in bioceramics have the capability to reliably fabricate the commercialized scaffolds tailored for practical clinical applications, and the potential to survive in the new era of effective hard tissue fabrication. The similarity of the materials with human bone histomorphometry makes them conducive to use in hard tissue engineering scheme. The key objective of this manuscript is to explore the applications of bioceramics-based AM in bone tissue engineering. Furthermore, the article comprehensively and categorically summarizes some novel bioceramics based AM techniques for the restoration of bones. At prior stages of this article, different ceramics processing AM techniques have been categorized, subsequently, processing of frequently used materials for bone implants and complexities associated with these materials have been elaborated. At the end, some novel applications of bioceramics in orthopedic implants and some future directions are also highlighted to explore it further. This review article will help the new researchers to understand the basic mechanism and current challenges in neophyte techniques and the applications of bioceramics in the orthopedic prosthesis.
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