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        검색결과 11

        1.
        2009.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        A Si-CuO-graphite composite was prepared by a mechanical alloying (MA) method. The Si-CuO composite has a mixture structure, where CuO is homogeneously dispersed in Si. Also, and phases were formed during MA and heat treatment. Graphite with the Si-CuO composite was mixed in the same mill for 30 minutes with weight ratio of Si-CuO composite and graphite as 1:1. The Si-CuO composite was homogeneously covered with graphite. SiC phase was not formed. Electrochemical tests of the composite have been investigated, and the first charge and discharge capacities of the material were about 870mAh/g and 660mAh/g, respectively. Those values are about 76% of the first cycle efficiency. The cycle life of the composite showed that the initial discharge capacity of 660 mAh/g could be maintained up to 92% after 20 cycles.
        4,000원
        2.
        2005.08 KCI 등재 구독 인증기관 무료, 개인회원 유료
        In this study, the ZnS composite powders for host material in phosphor was synthesized in situ by mechanical alloying. As the mechanical alloying time increases, particle size of ZnS decreases. ZnS powders of in a mean size was fabricated by mechanical alloying for 10h. The crystal structures of ZnS powders were investigated by X-ray diffraction and the photo-luminescence properties was evaluated with the optical spectra analyzer. The steady state condition of mechanically alloyed ZnS was obtained as a mean particle size of in 5h milling. The sphalerite and wurtize structures coexist in the ZnS mechanically alloyed for 5h. The ZnS powder mechanically alloyed for 10h grows to the sphalerite structure. And the strong emission peaks of ZnS are observed at 480 nm wave length at the powders of mechanically alloyed for 10h, but the sphalerite and wurtize structures in ZnS coexist and emission peaks are not appeared at the powders of mechanically alloyed for 10h.
        4,000원
        7.
        1998.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        transition metals(Cu, Co)/ZSM-5 catalyst was made by mechanical alloying method, and their microstructures and repeated usage-properties were investigated by scanning electron microscopy, transmission electron microscopy and X-ray diffraction. The conversions ability of NO in the catalyst was measured. A part of ZSM-5 in CO/ZSM-5 composite powders was amorphous and the amorphous phase became less stable with increasing Co content. Conversion ability of NO in 10Cu/ZSM-5 powders decreased from 89% to 12% and that in 10Co/ZSM-5 decreased from 22% to 17% by 7 times conversion tests.
        4,000원
        8.
        1996.09 KCI 등재 구독 인증기관 무료, 개인회원 유료
        The exhaust gas from vehicle engines and industrial boilers contains considerable amount of harmful nitrogen monoxide(NO) which causes air pollusion and acid rain. To remove NO catalytic reduction processes using Cu ion exchanged ZSM-5 zeolite have been widely studied. In this study, an attempt was made to fabricate Cu/zeolite catalyst by using high energy ball mill. The catalytic performance of ball milled Cu/ZSM-5 zeolites is analyzed and optimum copper contents was determined. The processing variables were reaction temperature and copper contents. Complete removal of NO gas was obtained at the temperature of 553 K on 10wt.% CU/ZSM-5 mechanically alloyed composite powders. Mechanically alloyed CU/ZSM-5 catalyst showed homogeneous distribution of Cu in ZSM-5.
        4,000원
        9.
        1995.09 KCI 등재 SCOPUS 구독 인증기관 무료, 개인회원 유료
        고출력 IC회로의 방열재료 및 전기접점재료로 이용되고 있는 W-Cu복합재료를 기계적합금화법으로 제조하였다. 기계적합금화한 분말을 300MPa로 폭 16mm, 높이 4mm의 원반형으로 제조하였다. 소결은 1200˚C에서 1400˚C까지 수소분위기에서 행하였다. 이렇게 제조된 시편의 절단된 면을 연마하여 SEM으로 관찰하였다. 균질한 W-Cu복합재료를 10시간 기계적합금화를 행한 후에 얻을 수 있었고, 1330˚C에서 1시간 소결한 시편의 경우 거의 99%에 가까운 치밀한 조직을 얻을 수 있었다. 또한 기계적합금화시간이 증가함에 따라서 Fe의 혼입은 직선적으로 증가하였으며, 이로 인한 금속간화합물상의 형성은 W입자 성장을 방해하고 경도를 증가시켰다.
        4,000원
        10.
        1994.10 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Cu-10wt%W composite powders have been manufactured by a high energy ball milling technique. The composite powders were pressed at 250 MPa and sintered in a dry hydrogen at 103 for 4 hours. After sintering, Cu-10wt%W composite materials were forged. And the arc-resistance of forged materials which have the same relative density of 94% has been tested. Composite particles, i.e. tungsten particles distributed homogeneously in the copper matrix, was formed after 480 min mechanical alloying. Densities of these sintered materials were ranged from 74 to 84%. Densification degree was due to the formation of composite powders. As the mechanical alloying time increased, the hardness was increased and tungsten particle size was decreased. Arc loss of the forged specimens was decreased as increasing the mechanical alloying time.
        4,000원