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분무열분해 공정에 의한 주석산화물 나노분체 제조에 미치공기압력의 영향
유재근,김동희,Yu, Jae-Keun,Kim, Dong-Hee 한국재료학회 2011 한국재료학회지 Vol.21 No.12
In this study, nano-sized tin oxide powder with an average particle size of below 50 nm is prepared by the spray pyrolysis process. The influence of air pressure on the properties of the generated powder is examined. Along with the rise of air pressure from $0.1kg/cm^2$ to $3kg/cm^2$, the average size of the droplet-shaped particles decreases, while the particle size distribution becomes more regular. When the air pressure increases from $0.1kg/cm^2$ to $1kg/cm^2$, the average size of the dropletshaped particles, which is around 30-50 nm, shows hardly any change. When the air pressure increases up to $3kg/cm^2$, the average size of the droplet-shaped particles decreases to 30 nm. For the independent generated particles, when the air pressure is at $0.1kg/cm^2$, the average particle size is approximately 100 nm; when the air pressure increases up to $0.5kg/m^2$, the average particle size becomes more than 100 nm, and the surface structure becomes more compact; when the air pressure increases up to $1kg/cm^2$, the surface structure is almost the same as in the case of $0.5kg/cm^2$, and the average particle size is around 80- 100 nm; when the air pressure increases up to $3kg/cm^2$, the surface structure becomes incompact compared to the cases of other air pressures, and the average particle size is around 80-100 nm. Along with the rise of air pressure from $0.1kg/cm^2$ to $0.5kg/cm^2$, the XRD peak intensity slightly decreases, and the specific surface area increases. When the air pressure increases up to $1kg/cm^2$ and $3kg/cm^2$, the XRD peak intensity increases, while the specific surface area also increases.
전력품질 개선을 위한 수동필터 모니터 시스템에 관한 연구
유재근,이상익,최규하 전력전자학회 2007 전력전자학술대회 논문집 Vol.- No.-
In this paper, we developed DSP based control system to automatically open and close passive filter, which is used to reduce harmonics, according to operating condition of loads. Passive filter control system automatically open and close each branch of filter according to working conditions of loads by sending signals to open and close installation of passive filter after measuring and monitoring voltage, current, harmonics, reactive power, power factor and so on. We verified it's performance by connecting control system with passive filter in the power line using the 100[HP] d.c. motor drive, opening and closing passive filter according to operation condition of motor, and measuring harmonics and reactive power, etc.
분무열분해(噴霧熱分解) 공정(工程)에 의한 주석(朱錫) 산화물(酸化物) 나노 분말(粉末) 제조(製造)
유재근,차광용,김명춘,한정수,장재범,이용화,김동희,Yu, Jae-Keun,Cha, Kwang-Yong,Kim, Myung-Choun,Han, Joung-Su,Jang, Jae-Bum,Lee, Yong-Hwa,Kim, Dong-Hee 한국자원리싸이클링학회 2008 資源 리싸이클링 Vol.17 No.6
본 연구는 폐 주석의 리싸이클링을 통한 고기능성 주석 산화물 나노 분말의 대량제조 기술개발을 위한 전 단계 연구로서 주석 염화물 용액을 원료로 하여 분무열분해 반응에 의하여 평균입도 50nm 이하의 주석 산화물 분말을 제조하였으며 반응온도의 변화에 따른 생성 입자들의 특성 변화를 파악하였다. 열분해 반응온도가 $800^{\circ}C$로부터 $850^{\circ}C$로 증가함에 따라 형성된 입자들의 평균입도는 20 nm로부터 30 nm로 증가하였다. 또한 XRD 피크의 강도도 증가하였으며 비표면적은 1/2 정도로 크게 감소하였다. 반응온도 $900^{\circ}C$의 경우에는 액적 형태는 평균입도 30 nm 정도의 나노 입자들로 구성되어 있는 반면 독립된 입자들의 경우에는 평균입도가 $80{\sim}100\;nm$로 현저하게 증가 하였으며 입자 표면이 더욱 치밀화되어 있었다. 또한 XRD 피크 강도도 현저히 증가하였으며 비표면적은 현저하게 감소하였다. 반응온도 $950^{\circ}C$의 경우에는 액적 형태의 비율 및 크기가 현저히 감소하였으며 대부분의 입자들은 독립된 형태를 유지하고 있었으며 평균입도는 약 70 nm로 $900^{\circ}C$의 경우보다 오히려 감소하였다. 또한 XRD 피크의 강도도 $900^{\circ}C$의 경우에 비하여 현저히 감소하였으며 비표면적은 2배 정도 크게 증가하였다. This study is the previous stage for the mass production technology development of the nano-sized tin oxide powder by the recycling of the wasted tin metal, and nano-sized tin oxide powder with the average particle size below 50 nm is prepared from the tin chloride solution by the spray pyrolysis process. As the reaction temperature increases from 800 to 850, the average particle size of the generated powder increases from 20 to 30 nm. As the reaction temperature increases to 900, the droplet type is composed of the particles with the average size of the 30 nm. while the average size of the independent particles increases up to $80{\sim}100$ nm and the surface microstructure becomes more solid. Until $900^{\circ}C$, as the reaction temperature increases, the XRD peak intensity increases, while the specific surface area decreases. When the reaction temperature increases to 950, most of the powder appears with the independent type and the average particle size decrease down to 70 nm. The XRD peak intensity greatly decreases and the specific surface area increases almost twice.