• 제목/요약/키워드: Mechanical alloying (MA)

검색결과 127건 처리시간 0.025초

A1-Ti-(Si)계 합금의 기계적 합금화 및 성형체의 미세조직 (Mechanical Alloying Behavior and Microstructures of Extrudate in Al-Ti-(Si) Base Alloys)

  • 최철진
    • 한국분말재료학회지
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    • 제2권2호
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    • pp.165-170
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    • 1995
  • Alloying behavior of nanocrystalline Al-Ti-(Si) composite powders via mechanical alloying (MA) has been investigated, and the effect of Si on the microstructural changes during MA was discussed. The microstructures of both MA powders and extruded compacts were examined. In Al-Ti system, the solid solutionized nanocrystalline powders could be obtained by MA. On the contrary, fine Si particles were embedded as an elemental state in the matrix of Al-Ti-Si system because of the brittleness and the negligible solid solubility of Si in Al. After hot extrusion, $Al3Ti$ phase was finely precipitated in Al-10fSTi alloy, and Si particles were dissolved to form $(Al, Si)_3Ti$ phase in Al-10%Ti-2%Si alloy.

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Preparation of Intermetallic Compound of Ternary Al-B-C System by Mechanical Alloying

  • Takahashi, Teruo;Yamashita, Michiru;Yamada, Kazutoshi;Kohzuki, Hidenori
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2006년도 Extended Abstracts of 2006 POWDER METALLURGY World Congress Part2
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    • pp.1033-1034
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    • 2006
  • Metallic compound of ternary Al-B-C system was prepared by mechanical alloying (MA) using Al, boron and graphite powders as starting materials. MA was carried out using Spex 8000 mixer/mill for 50 hours in an argon atmosphere without process control reagent such as methyl alcohol. The MA powders obtained were heat-treated in vacuum at the temperature of 873 and 1273 K for 5 hour. Pure ternary Al-B-C compound was obtained in the chemical content of Al:B:C=55:27:18. The ternary compound obtained in this study has a new phase whose crystal structure is not identified yet.

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비고용 Cu30Mo70계 혼합분말의 기계적 합금화 효과 (Mechanical Alloying Effect in Immiscible Cu30Mo70 Powders)

  • 이충효;이성희;이상진;권영순
    • 한국분말재료학회지
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    • 제10권1호
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    • pp.46-50
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    • 2003
  • Lee et al. reported that a mixture of Cu and Ta, the combination of which is characterized by a positive heat of mixing, $\{Delta}H_{mix}$ of +2 kJ/㏖, can be amorphized by mechanical alloying(MA). It is our aim to investigate to what extent the MA is capable of producing a non-equilibrium phase with increasing the heat of mixing. The system chosen is the binary $Cu_{30}Mo_{70}$ with $\{Delta}H_{mix}$=+19 kJ/㏖. The mechanical alloying was carried out using a Fritsch P-5 planetary mill under Ar gas atmosphere. The vial and balls are made of Cu containing 1.8-2.0 wt.%Be to avoid contaminations arising mainly from Fe when steel balls and vial are used. The MA powders were characterized by the X-ray diffraction, EXAFS and thermal analysis. We conclude that two phase mixture of nanocrystalline fcc-Cu and bcc-Mo with grain size of 10 nm is formed by the ball-milling for a 3:7 mixture of pure Cu and Mo, the evidence for which has been deduced from the thermodynamic and structural analysis based on the DSC, X-ray diffraction and EXAFS spectra.

기계적합금화에 의한 α-Fe/Al2O3 자성 나노복합재료의 제조 및 치밀화 (Fabrication and densification of magnetic α-Fe/Al2O3 nanocomposite by mechanical alloying)

  • 이충효;김한웅
    • 한국결정성장학회지
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    • 제23권6호
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    • pp.314-319
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    • 2013
  • 본 연구에서는 $Fe_2O_3-Al$계 나노복합재료를 제조하기 위하여 실온 기계적 합금화법(MA)을 적용하였다. $Fe_2O_3$와 순금속 Al의 혼합분말을 5시간 동안 MA 처리한 결과 ${\alpha}-Fe$ 기지에 $Al_2O_3$가 미세하게 분산된 ${\alpha}-Fe/Al_2O_3$ 나노복합분말을 얻을 수 있었다. 또한 MA 분말의 자화값 및 보자력 측정을 통하여 볼밀처리 중 순금속 Al에 의한 헤마타이트의 고상환원 과정을 자세히 관찰할 수 있었다. MA 분말시료의 벌크화를 위하여 소결온도 $1000^{\circ}C$$1100^{\circ}C$, 압력 60 MPa 에서 SPS 소결을 실시하였다. SPS 과정에서 MA 5시간 시료의 수축은 소결 개시 후 $700^{\circ}C$ 이상에서 크며 소결온도 $1100^{\circ}C$까지 비교적 단조롭게 수축함을 알 수 있었다. X선 회절 결과로부터, MA 분말을 $1100^{\circ}C$에서 SPS 소결시킨 ${\alpha}-Fe/Al_2O_3$ 나노복합재료의 경우 ${\alpha}-Fe$상 평균 결정립 크기가 180 nm임을 알 수 있었다. 또한 MA 분말을 $1000^{\circ}C$에서 SPS 소결시킨 시료의 보자력이 88 Oe로 여전히 높은 값을 보이는 사실로부터 소결과정 중 자성상 ${\alpha}-Fe$의 결정립 성장이 크게 억제된 것으로 판단된다.

기계적합금화법에 의한 Cu-Ba ferrite 강자성 복합재료의 합성 및 자기적 성질 (Synthesis and magnetic properties of copper and Ba-ferrite ferromagnetic composites by mechanical alloying)

  • 이충효
    • 한국결정성장학회지
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    • 제28권1호
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    • pp.21-27
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    • 2018
  • 본 연구에서는 $Cu-BaFe_{12}O_{19}$계 강자성 복합재료를 제조하기 위하여 실온 기계적 합금화법(MA)을 적용하였다. 실험에서는 성분원소의 무게비를 각각 $Cu:BaFe_{12}O_{19}=4:1$, 3 : 2, 2 : 3 및 1:4으로 실시하였다. 모든 조성의 혼합분말에서 80분 동안 MA 처리에 의하여 금속 Cu에 $BaFe_{12}O_{19}$ 가 분산된 $Cu-BaFe_{12}O_{19}$ 복합재료를 제조할 수 있었다. Cu 및 $BaFe_{12}O_{19}$의 MA 처리 중 강자성 복합재료의 생성과정은 X선 회절분석 및 자기특성의 측정으로부터 자세히 관찰할 수 있었다. MA 처리로 얻어진 $Cu-BaFe_{12}O_{19}$ 복합재료의 자화값은 $BaFe_{12}O_{19}$ 양의 증가와 함께 점점 증가하였으며, 보자력 값은 모든 조성에서 MA 처리에 따른 $BaFe_{12}O_{19}$ 분말입자의 미세화에 따라 점점 감소됨을 알 수 있었다. 한편 $Cu:BaFe_{12}O_{19}=4:1$ 및 3 : 2 조성의 혼합분말의 경우 80분 동안 MA 처리하여 얻어진 $Cu-BaFe_{12}O_{19}$ 강자성 복합재료의 보자력 값이 각각 1400 Oe 및 1450 Oe로 여전히 높은 값을 보이는 사실로부터 Cu rich 조성 혼합분말의 경우 MA 처리 과정 중 강자성 $BaFe_{12}O_{19}$ 분말의 입자미세화가 연성 Cu의 존재에 의하여 크게 억제되어 비교적 큰 보자력 값을 보이는 것으로 판단된다.

Investigation of Ball Size Effect on Microstructure and Thermoelectric Properties of p-type BiSbTe by Mechanical Alloying

  • Lwin, May Likha;Yoon, Sang-min;Madavali, Babu;Lee, Chul-Hee;Hong, Soon-Jik
    • 한국분말재료학회지
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    • 제23권2호
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    • pp.120-125
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    • 2016
  • P-type ternary $Bi_{0.5}Sb_{1.5}Te_3$ alloys are fabricated via mechanical alloying (MA) and spark plasma sintering (SPS). Different ball sizes are used in the MA process, and their effect on the microstructure; hardness, and thermoelectric properties of the p-type BiSbTe alloys are investigated. The phases of milled powders and bulks are identified using an X-ray diffraction technique. The morphology of milled powders and fracture surface of compacted samples are examined using scanning electron microscopy. The morphology, phase, and grain structures of the samples are not altered by the use of different ball sizes in the MA process. Measurements of the thermoelectric (TE) transport properties including the electrical conductivity, Seebeck coefficient, and power factor are measured at temperatures of 300-400 K for samples treated by SPS. The TE properties do not depend on the ball size used in the MA process.

Mo-25.0at%Si 혼합분말의 기계적 합금화에 미치는 밀링매체 재료의 영향 (Effect of Milling Medium Materials on Mechanical Alloying of Mo-25.0at%Si Powder Mixture)

  • 박상보
    • 한국분말재료학회지
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    • 제5권1호
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    • pp.64-70
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    • 1998
  • Milling media of steel and partially stabilized zirconia(PSZ) were used to produce $Mo_3$Si by mechanical alloying(MA) of Mo-25.0at%Si elemental powder mixture. The effect of milling medium materials on MA of the powder mixture have been investigated by XRD and DTA. The reaction rate and the end-product noticeably depended upon the milling medium material. The formation of $Mo_3$Si and $Mo_5Si_3$phases by PSZ ball-milling took place after 15 hr of MA and was characterized by a slow reaction rate as Mo, Si, $Mo_5Si_3$ and $Mo_3$Si coexisted for a long period of milling time. The formation of a new phase by steel ball-milling, however, did not take Place even after 96 hr of MA. DTA and annealing results showed that $Mo_5Si_3$ and $Mo_3$Si were formed after heating the ball-milled powder specimens to different temperatures. At low temperatures, Mo and Si were transformed into $Mo_5Si_3$. At high temperatures, the formation of $Mo_3$Si can be partially attributed to the reaction, 7Mo+Si+$Mo_5Si_3$-.4$Mo_3$Si . The formation of $Mo_3$Si and Mo5Si3 phases by mechanical alloying of the powder mixture and the relevant reaction rate appeared to depend upon the milling medium material as well as the thermodynamic properties of the end-products.

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Thermoelectric Properties of Nano Structured $CoSb_3$ Synthesized by Mechanical Alloying

  • Ur, Soon-Chul;Kwon, Joon-Chul;Choi, Moon-Kwan;Kweon, Soon-Yong;Hong, Tae-Whan;Kim, Il-Ho;Lee, Young-Geun
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2006년도 Extended Abstracts of 2006 POWDER METALLURGY World Congress Part 1
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    • pp.665-666
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    • 2006
  • Undoped $CoSb_3$ powders were synthesized by mechanical alloying (MA) of elemental powders using a nominal stoichiometric composition. Nano-structured, single-phase skutterudite $CoSb_3$ was successfully produced by vacuum hot pressing (VHP) using MA powders without subsequent annealing. Phase transformations during synthesis were investigated using XRD, and microstructure was observed using SEM and TEM. Thermoelectric properties in terms of Seebeck coefficient, electrical conductivity, thermal conductivity and figure of merit(ZT) were systematically measured and compared with the results of analogous studies. Lattice thermal conductivity was reduced owing to increasing phone scattering in nano-structured MA $CoSb_3$, leading to enhancement in the thermoelectric figure of merit. MA associated with VHP technique offers an alternative potential processing route for the process of skutterudite.

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THE SCIENCE AND TECHNOLOGY OF MECHANICAL ALLOYING

  • Suryanarayana, C.
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2000년도 추계학술대회 및 발표대회 강연 및 발표논문 초록집
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    • pp.10-10
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    • 2000
  • Mechanical alloying (MA) is a powder metallurgy processing technique involving cold welding, fracturing, and rewelding of powder particles in a high-energy ball mill. This has now become an established commercial technique in producing oxide dispersion strengthened (ODS) nickel- and iron-based materials. The technique of MA is also capable of synthesizing non-equilibrium phases such as supersaturated solid solutions, metastable crystalline and quasicrystalline intermetallic phases, nanostructures, and amorphous alloys. In this respect, the capabilities of MA are similar to those of another important non-equilibrium processing technique, viz, rapid quenching of metallic melts. however, the science of MA is being investigated only during the past ten years or so. The technique of mechanochemistry, on the other hand, has had a long history and the materials produced this way have found a number of technological applications, e.g., in areas such as hydrogen storage materials, heaters, gas absorber, fertilizers. catalysts, cosmetics, and waste management. The present talk will concentrate on the basic mechanisms of formation of non-equilibrium phases by the technique of MA and these aspects will be compared with those of rapid quenching of metallic melts. Additionally, the variety of technological applications of mechanically alloyed products will be highlighted.

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