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Fully Porous and Porous Surfaced Ti-6Al-4V Implants Fabricated by Electro-Discharge-Sintering: (1) Fabrication Method and Fundamental Characteristics
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HOME > J Korean Powder Metall Inst > Volume 12(5); 2005 > Article
전기방전소결에 의해 제조된 다공성 및 다공성 표면을 갖는 Ti-6Al-4V 임플란트 : (1) 제조방법 및 기본적 특성
현창용, 허재근, 이원희
Fully Porous and Porous Surfaced Ti-6Al-4V Implants Fabricated by Electro-Discharge-Sintering: (1) Fabrication Method and Fundamental Characteristics
C. Y. Hyun, J. K. Huh, W. H. Lee
Journal of Korean Powder Metallurgy Institute 2005;12(5):325-331
DOI: https://doi.org/10.4150/KPMI.2005.12.5.325
1서울산업대학교 신소재공학과
2서울산업대학교 신소재공학과
3세종대학교 신소재공학과
1Department of Materials Engineering, Seoul National University of Technology
2Department of Materials Engineering, Seoul National University of Technology
3Department of Advanced Materials Engineering, Sejong University
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Implant prototypes with various porosities were fabricated by electro-discharge-sintering of atomized spherical Ti-6Al-4V powders. Single pulse of 0.75 to 2.0 kJ/0.7 g-powder, using 150, 300, and 450µF capacitors was applied to produce a fully porous and porous surfaced implant compact. The solid core formed in the center of the compact after discharge was composed of acicular alpha+beta grains and porous layer consisted of particles connected in three dimensions by necks. The solid core and neck sizes increased with an increase in input energy and capacitance. On the other hand, pore volume decreased with increased capacitance and input energy due to the formation of solid core. Capacitance and input energy are the only controllable discharge parameters even though the heat generated during a discharge is the unique parameter that determines the porosity of compact. It is known that electro-discharge-sintering of spherical Ti-6Al-4V powders can efficiently produce fully-porous and porous surfaced Ti-6Al-4V implants with various porosities in a short time less then 400 isec by manipulating the discharging condition such as input energy and capacitance including powder size.

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