• 제목/요약/키워드: High Energy Ball mill

검색결과 51건 처리시간 0.026초

Highly Economic and High Quality Zinc-flake Manufacturing by High Kinetic Processing

  • Ren, H.;Benz, H.U.;Chimal V., O.;Corral G., M.S.;Zhang, Y.;Jaramillo V., D.;Zoz, H.
    • 한국분말야금학회:학술대회논문집
    • /
    • 한국분말야금학회 2006년도 Extended Abstracts of 2006 POWDER METALLURGY World Congress Part2
    • /
    • pp.975-976
    • /
    • 2006
  • The present paper is a parameter study of zinc flake production using a Simoloyer CM01 horizontal high energy rotary ball mill. The manufactured flakes have a dimension in thickness (t) < $1{\mu}m$ and diameters (d) 5-100 ${\mu}m$, consequently a ratio d/t up to 200. The flake geometry is mainly controlled by the variation of process parameters such as rotary speed of the rotor, ratio of powder/ball charge, load ratio of the system, process temperature, operating model and the quantity of process control agent (PCA). The Zn flakes were characterized by SEM, tap densitometry, laser diffraction and water coverage measurement.

  • PDF

고 에너지 볼밀을 이용한 Blue 텅스텐산화물 나노입자의 제조와 특성 (Prepration and Properties of Blue Tungsten Oxide Nanopowders by High Energy Ball-Mill)

  • 김명재;이광석;김경남
    • 한국재료학회지
    • /
    • 제31권1호
    • /
    • pp.23-28
    • /
    • 2021
  • The purpose of this study is to prepare WO3 nanopowders by high-energy milling in mixture gas (7 % H2+Ar) with various milling times (10, 30, and 60 min). The phase transformation, particle size and light absorption properties of WO3 nanopowders during reduction via high-energy milling are studied. It is found that the particle size of the WO3 decreases from about 30 ㎛ to 20 nm, and the grain size of WO3 decreases rapidly with increasing milling time. Furthermore, the surface of the particles due to the pulverization process is observed to change to an amorphous structure. UV/Vis spectrophotometry shows that WO3 powder with increasing milling times (10, 30, 60 min) effectively extends the light absorption properties to the visible region. WO3 powder changes from yellow to gray and can be seen as a phenomenon in which the progress of the color changes to blue. The characterization of WO3 is performed by high resolution X-ray diffractometry, Field emission scanning electron microscopy, Transmission electron microscopy, UV/Vis spectrophotometry and Particle size analysis.

고에너지 볼 밀링을 이용한 Y-산화물 분산 Fe-기초내열합금 분말의 합성 및 미세조직 특성 (Synthesis and Microstructure of Fe-Base Superalloy Powders with Y-Oxide Dispersion by High Energy Ball Milling)

  • 임다미;박종관;오승탁
    • 한국재료학회지
    • /
    • 제25권8호
    • /
    • pp.386-390
    • /
    • 2015
  • Fe-base superalloy powders with $Y_2O_3$ dispersion were prepared by high energy ball milling, followed by spark plasma sintering for consolidation. High-purity elemental powders with different Fe powder sizes of 24 and 50 mm were used for the preparation of $Fe-20Cr-4.5Al-0.5Ti-O.5Y_2O_3$ powder mixtures (wt%). The milling process of the powders was carried out in a horizontal rotary ball mill using a stainless steel vial and balls. The milling times of 1 to 5 h by constant operation (350 rpm, ball-to-powder ratio of 30:1 in weight) or cycle operation (1300 rpm for 4 min and 900 rpm for 1 min, 15:1) were applied. Microstructural observation revealed that the crystalline size of Fe decreased with an increase in milling time by cyclic operation and was about 15 nm after 3 h, forming a FeCr alloy phase. The cyclic operation had an advantage over constant milling in that a smaller-agglomerated structure was obtained. The milled powders were sintered at $1100^{\circ}C$ for 30 min in vacuum. With an increase in milling time, the sintered specimen showed a more homogeneous microstructure. In addition, a homogenous distribution of Y-compound particles in the grain boundary was confirmed by EDX analysis.

국산 압축벤토나이트 완충재의 첨가제 혼합을 통한 열전도도 향상 (Increasing of Thermal Conductivity from Mixing of Additive on a Domestic Compacted Bentonite Buffer)

  • 이종표;최희주;최종원;이민수
    • 방사성폐기물학회지
    • /
    • 제11권1호
    • /
    • pp.11-21
    • /
    • 2013
  • 현재 고준위 방사성 폐기물 심층 처분 시스템에서 기본 완충재 물질로서 건조밀도 1.6 g/$cm^3$의 경주산 칼슘 벤토나이트를 사용하고 있으나, 열전도도가 낮은 단점이 있다. 따라서 본 연구에서는 기준 완충재의 열전도율을 0.8 W/mK에서 1.0 W/mK로 향상시키기 위한 목적으로 다양한 첨가제를 다양한 혼합 방법을 통해 배합하고 열전도도를 측정하였다. 첨가제는 CNT(Cabon Nano Tube), Graphite, Alumina, CuO 및 $Fe_2O_3$ 등을 사용하였다. 혼합 방법의 경우, 핸드 믹서기를 통한 건식혼합, 습식 Milling 혼합, 건식 Ball Mill 혼합 등을 실시하였다. Ball Mill 혼합의 경우가 가장 균일하게 혼합되었기 때문에, 값의 편차가 가장 적었고 열전도도 증가율이 가장 좋았다. 지금까지 수행된 시험에서 소량의 고열전도 물질의 첨가로 경주산 칼슘 벤토나이트의 열전도도를 1.0 W/mK 수준으로 용이하게 증가시킬 수 있음을 실험적으로 확인할 수 있었다. 결론적으로, 본 연구에서 제시된 열전도 향상 방법은, 첨가제 혼합이 벤토나이트의 기본 성질인 팽윤압과 수리전도도에 미치는 영향까지 제시된다면, 국내 고준위폐기물 처분장의 개념 설계에 유용하게 활용될 수 있을 것으로 기대된다.

초미립 WC 소재 엔드밀 공구의 성능 평가에 관한 연구 (A Study on the Performance Evaluation of End Mill Tool Fabricated by Ultra-Fine WC)

  • 김도형;우용원;이현호;김정석
    • 한국공작기계학회논문집
    • /
    • 제16권6호
    • /
    • pp.1-8
    • /
    • 2007
  • The ultra-fine tungsten carbide(WC) powders have been actively used in the cemented carbides industry, because they have excellent mechanical properties such as high hardness, strength, and toughness. In this study, ultra-fine WC-Co alloys powders have been fabricated by thermochemical and thermomechanical process such as spray conversion process or high energy ball milling. The non-coated end-mill which is made of ultra-fine tungsten carbide is investigated by measuring cutting force, tool wear, tool life, and surface roughness profile according to cutting length. The machining test was conducted with high hardened workpiece and their performances are investigated in high speed cutting conditions. Also, the relationship between the machining characteristics and the Co contents are investigated under various high speed cutting conditions.

화학적-기계적 혼성공정에 의한 초미세 Fe-6Al-9Si 합금분말의 합성 (Synthesis of Extremely Fine Fe-6Al-9Si Alloy Powders by Chemical-Mechanical Hybrid Process)

  • 윤종운;이기선
    • 한국재료학회지
    • /
    • 제15권3호
    • /
    • pp.166-171
    • /
    • 2005
  • Fe-6Al-9Si(N) alloy powders were synthesized by hybrid process of chemical nitrification and mechanical milling. The nitriding treatment on Fe-6Al-9Si alloy powders formed $\gamma'-Fe_4N$ phase on the powders surface. The nitriding-treated powders were pulverized by horizontal high-energy ball milling machine. The longer ball milling time tended to reduce the size of alloy powders. In ball milling for 36h, extremely fine powders with about $7\~9wt\%$ nitrogen were obtained. Through X-ray diffraction analysis on the powders, it was found out that the longer milling time caused a disappearance of the crystallinity of $\alpha-Fe$ in the powders. TEM study confirmed that the powders is comprised of a few tens nano-meter sized crystals, including $\alpha-Fe$ phase with partially $\gamma'-Fe_4N$ phase. Hysteresis curves of the synthesized powders measured by VSM revealed lower saturation magnetization and higher coercivity, which seemed to be attributed to nitrogen-impregnation and severe residual stress developed during the high energy milling. Microstructure observation on the powder annealed at 873 K for 1 h showed 10 to 20 nm sized $\alpha-Fe$ crystal. Such a enhanced crystallinity significantly increased the magnetization and decreased the coercivity, which was attributed to not only the crystallinity but also residual stress relaxation.

Mechanical Milling of Lithium with Metal Oxide and its Reactivity with Gases

  • Yokoi, Tomomichi;Yamasue, Eiji;Okumura, Hideyuki;Ishihara, Keiichi N.
    • 한국분말야금학회:학술대회논문집
    • /
    • 한국분말야금학회 2006년도 Extended Abstracts of 2006 POWDER METALLURGY World Congress Part2
    • /
    • pp.959-960
    • /
    • 2006
  • Li reacts with $N_2$ at room temperature. In order to activate Li, the mechanical milling of Li with stable metal oxide, namely, $Al_2O_3$ and MgO, using a high energy vibrating ball mill was performed. In the case of Li-MgO system, it reacts with $N_2$, but hardly reacts with $O_2$. The reaction with $N_2$ generally produces $Li_3N$, while for some vigorous reactions the $Mg_3N_2$ is produced as the major phases. In the case of $Li-Al_2O_3$ system, reactivities with both $N_2$ and $O_2$ are high. The difference is explained in terms of the reaction mechanism and the Li state.

  • PDF

기계적 합금화 공정에 의한 Fe가 코팅된 Mg 탈황 분말 제조 연구 (Fabrication of Fe coated Mg Based Desulfurization Powder by Mechanical Alloying Process)

  • 송준우;;천병선;홍순직
    • 한국분말재료학회지
    • /
    • 제19권3호
    • /
    • pp.226-231
    • /
    • 2012
  • In this research, the coating behavior of Mg and Fe desulfurization powder fabricated by low energy and conventional planetary mill equipment was investigated as a function of milling time, which produces uniform Fe coated powders due to milling energy. Since high energy ball milling results in breaking the Fe coated Mg powders into coarse particles, low energy ball milling was considered appropriate for this study, and can be implemented in desulfurization industry widely. XRD and FE-SEM analyses were carried out to investigate the microstructure and distribution of the coating material. The thickness of the Fe coating layer reaches a maximum of 14 ${\mu}m$ at 20 milling hours. The BCC structures of Fe particles are deformed due to the slip system of Fe coated Mg particles.

분쇄 방법 및 하소온도에 따른 Doner-doped BaTiO3의 전기적 특성 (Electrical Properties of Donor-doped BaTiO3 Ceramics by Attrition Milling and Calcination Temperature)

  • 이정철;명성재;전명표;조정호;김병익;신동욱
    • 한국전기전자재료학회논문지
    • /
    • 제21권3호
    • /
    • pp.217-221
    • /
    • 2008
  • In this study, We have been investigated the effect of calcination temperature and high-energy ball-milling of powder influences the $BaTiO_3$-based PTCR(Positive Temperature coefficient Resistance) characteristics and microstructure. The mixed powder was obtained from $BaCO_3$, $TiO_2$, $CeO_2$ ball-milled in attrition mill. The mixed powder was calcine from 1000 $^{\circ}C$ to 1200 $^{\circ}C$ in air and then it was sintered in reduction- re-oxidation atmosphere. As a result, The room-temperature electrical resistivity decreased and increased with increasing calcination temperature. specially, Attrition milled powder could have low room-temperature resistivity and high PTC jump order at 1100 $^{\circ}C$. attrition milling had lower room-temperature resistivity than ball milling. Particle size decreased by Attrition milling of powder influences in calcination temperature and room-temperature resistivity.