Mitsuo Niinomi, Takayuki Narushima, Masaaki Nakai's Advances in Metallic Biomaterials: Processing and PDF

By Mitsuo Niinomi, Takayuki Narushima, Masaaki Nakai

ISBN-10: 3662468417

ISBN-13: 9783662468418

ISBN-10: 3662468425

ISBN-13: 9783662468425

This e-book covers the newest advances in processing suggestions for generating steel biomaterial implants. It additionally discusses contemporary advancements in floor changes utilizing bioactive ceramics and blood-compatible polymers, in addition to the adhesive power of bioactive floor layers, ahead of introducing the sensible functions of metal biomaterials within the fields of surgical procedure and dentistry. As such, the e-book presents a vital reference consultant for researchers, graduate scholars and clinicians operating within the fields of fabrics, surgical procedure, dentistry, and mechanics.

Mitsuo Niinomi, PhD, D.D.Sc., is a Professor on the Institute for fabrics learn, Tohoku collage, Japan

Takayuki Narushima, PhD, is a Professor on the division of fabrics Processing, Tohoku college, Japan

Masaaki Nakai, PhD, is an affiliate Professor on the Institute for fabrics study, Tohoku college, Japan

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Additional info for Advances in Metallic Biomaterials: Processing and Applications

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International Organization for Standardization 8. ISO 5832–12 (2007) Implants for surgery -metallic materials – Part 12: Wrought cobaltchromium-molybdenum alloy. International Organization for Standardization 9. ASTM F75 (2012) Standard specification for Cobalt-28 Chromium-6 Molybdenum alloy castings and casting alloy for surgical implants. America Society for Testing and Materials 10. ASTM F90 (2001) Standard specification for wrought Cobalt-20Chromium-15Tungsten10Nickel alloy for surgical implant applications.

09 mass%. 27 shows the stress amplitude-number to failure curves of specimens obtained by rotating bending fatigue testing. Fatigue limit increased with increasing sintering temperature. The specimens treated by HT and HIP showed much higher fatigue limit. 03B The sintered density obtained was around 97 %TD. The resulting α- and β-lamellar structure is shown in Fig. 28. 37 mass%, which is higher than the oxygen content of other specimens because of the higher oxygen content of the original TiB2 powder (1 mass%) introduced.

The chemical composition of the surface of the materials and their physical configuration play a major role in the compatibility and adhesion between living bone tissue and biomedical metallic materials. From the perspective of the chemical composition, various modifications to the bioactive surface have been attempted for the purpose of improving the capacity to form new living bone [55]. Bioactive surface modifications can be broadly classified into two types: a method consisting of the coating of apatite, which is similar to bone mineral (hereafter referred to as HAp), directly onto the surface of the material and a method consisting of forming a surface layer or surface composition that promotes HAp formation in vivo.

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Advances in Metallic Biomaterials: Processing and Applications by Mitsuo Niinomi, Takayuki Narushima, Masaaki Nakai

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