• 제목/요약/키워드: Mechanical Ball Milling

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고에너지 볼 밀을 이용한 나노 활석의 형성 및 입도 분석 (Particle Size Analysis of Nano-sized Talc Prepared by Mechanical Milling Using High-energy Ball Mill)

  • 김진우;이범한;김진철;김현나
    • 한국광물학회지
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    • 제31권1호
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    • pp.47-55
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    • 2018
  • 활석은 T-O-T 구조의 함수 마그네슘 층상규산염 광물로서, 화학적 안정성과 흡착성 등의 특성을 가지고 있어 다양한 산업분야에서 첨가제, 코팅제 등으로 활용되어 왔다. 최근 나노 복합체의 안정성 향상을 위한 첨가제로서 활석 나노입자가 각광받고 있다. 본 연구에서는 고에너지 볼 밀을 이용하여 기계적인 방법으로 활석 나노입자를 형성하고, 분쇄시간에 따른 입자크기 및 결정도의 변화를 알아보고자 하였다. X-선 회절 분석 결과, 분쇄가 진행됨에 따라 활석의 피크 폭이 점진적으로 증가하여 720분 분쇄 후, 활석은 비정질에 가까운 X-선 회절패턴을 보여준다. 레이저회절 입도 분석 결과, 약 $12{\mu}m$이었던 활석의 입도는 분쇄가 진행됨에 따라 약 $0.45{\mu}m$까지 감소하였으나, 120분 이상 분쇄를 진행하여도 뚜렷한 입도의 감소가 관찰되지 않았다. 반면, BET 비표면적은 분쇄 720분까지 꾸준히 증가하여, 분쇄에 따른 입도 또는 형태의 변화가 지속적으로 일어남을 지시한다. 주사전자현미경 및 투과전자현미경 관찰 결과, 720분 분쇄 후 약 100~300 nm 내외의 층상형 입자들이 마이크로 스케일의 응집체로 존재함을 확인하였다. 이와 같은 결과는 분쇄시간이 증가함에 따라 활석의 입자크기 및 형태는 지속적으로 변화하지만, 나노입자의 특성상 재응집이 일어나 마이크로 크기의 응집체를 형성하고 있음을 지시한다. 또한 활석의 분쇄에서 판의 크기, 즉 a축, b축 방향의 길이는 감소 한계가 존재하며, 분쇄가 진행될수록 판의 두께, 즉 c축 방향의 길이 감소가 주된 분쇄 메커니즘으로 생각된다. 본 연구의 결과는 나노 활석의 형성 메커니즘에 대한 이해를 고양할 수 있을 것으로 기대된다.

런아웃의 양에 따른 잔류 부피의 변화 (Remaining volume after smoothing(RVAS) variation according to runout)

  • 김민태;이해성;제성욱;주종남
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2005년도 춘계학술대회 논문집
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    • pp.1248-1252
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    • 2005
  • Mold-manufacturing process consists of machining and finishing process that are strongly related in each other. But there are few studies about mold-manufacturing process to control those two processes simultaneously. Especially, runout distorts the machined surface from expected so it changes the finishing process and mold-manufacturing time. In this work, basic analyses and experiments were carried out to study RVAS variation according to runout in HSM. To perform those analyses, firstly surface generation analysis was done including runout in ball end milling and then the RVAS that could relate machining and finishing process was proposed. And the optimal finishing process in HSM according to RVAS was also proposed. Through experiment runout occurrence and above analyses were verified.

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Properties of Wollastonite-Reinforced Glass-Ceramics Made from Waste Automobile Glass and Waste Shell

  • Yun, Yeon-Hum;Yoon, Chung-Han;Kim, Chi-Kyun;Hwang, Kyu-Seog
    • 자원리싸이클링
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    • 제13권1호
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    • pp.54-58
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    • 2004
  • Wollastonite-type glass ceramics were prepared by milling and firing at various temperatures using an automobile waste glass and waste shell as starting materials. Powder mixture ground by disk-type ball mill for 3 hours was pressed into a disk. The pressed specimen was fired at $850^{\circ}C$,$950^{\circ}C$ and $1050^{\circ}C$ for 1 hour in air. From FE-SEM observation, with an increase of the firing temperature from $850^{\circ}C$ to $1050^{\circ}C$, whisker-type phase was grown to about 10 $\mu\textrm{m}$ in length. Specimen fired at $1050^{\circ}C$ showed the formation of well-crystallized whisker-type wollastonite grains and the highest compressive strength.

Mechanical Alloying Effect in Immiscible Cu-Based Alloy Systems.

  • Lee, Chung-Hyo;Lee, Seong-Hee;Kim, Ji-Soon;Kwon, Young-Soon
    • 한국분말재료학회지
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    • 제10권3호
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    • pp.164-167
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    • 2003
  • The mechanical alloying effect has been studied on the three Cu-based alloy systems with a positive heat of mixing. The extended bcc solid solution has been formed in the Cu-V system and an amorphous phase in the Cu-Ta system. However, it is round that a mixture of nanocrystalline Cu and Mo Is formed in the Cu-Mo system. The neutron diffraction has been employed at a main tool to characterize the detailed amorphization process. The formation of an amorphous phase in Cu-Ta system can be understood by assuming that the smaller Cu atoms preferentially enter into the bcc Ta lattice during ball milling.

펄스전류 활성 소결에 의한 나노구조의 TiAl 합금 제조와 기계적 성질 (Mechanical Properties and Fabrication of TiAl Alloy by Pulsed Current Activated Sintering)

  • 두송이;김나리;김원백;조성욱;손인진
    • 한국분말재료학회지
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    • 제17권5호
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    • pp.373-378
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    • 2010
  • Nanostuctured TiAl powder was synthesized by high energy ball milling. A dense nanostuctured TiAl was consolidated using pulsed current activated sintering method within 2 minutes from mechanically synthesized powders of TiAl and horizontally milled powders of Ti+Al. The grain size and hardness of TiAl sintered from horizontally milled Ti+Al powders and high energy ball milled TiAl powder were 35 nm, 20 nm and 450 kg/$mm^2$, 630 kg/$mm^2$, respectively.

고주파유도 가열에 의한 나노구조의 TiAl 급속소결과 합성 및 기계적 성질 (Rapid Sintering and Synthesis of TiAl by High-Frequency Induction Heating and its Mechanical properties)

  • 김나리;나권일;김원백;조성욱;손인진
    • 대한금속재료학회지
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    • 제48권11호
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    • pp.989-994
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    • 2010
  • A nanopowder of TiAl was synthesized by high energy ball milling. Dense nanostuctured TiAl was consolidated using a high frequency induction heated sintering method within 2 minutes from mechanically synthesized powders of TiAl and horizontally milled powders of Ti+Al. Properties of the TiAl obtained using the two methods were compared. The grain size and hardness of TiAl sintered from horizontally milled Ti+Al powders and high energy ball milled TiAl powder were 40 nm, 20 nm, and $630kg/mm^2$, $700kg/mm^2$, respectively.

펄스 전류 활성 가열에 의한 나노구조의 FeAl 급속소결과 기계적 성질 (Rapid Sintering of FeAl by Pulsed Current Activated Heating and its Mechanical Properties)

  • 조승훈;고인용;도정만;윤진국;손인진
    • 대한금속재료학회지
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    • 제48권7호
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    • pp.639-643
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    • 2010
  • Nanopowder of FeAl was synthesized by high energy ball milling. Using the pulsed current activated sintering method, a dense nanostuctured FeAl was consolidated within 2 minutes from mechanically synthesized powders of FeAl and horizontally milled powders of Fe+Al. The grain size and hardness of FeAl sintered from horizontally milled Fe+Al powders and high energy ball milled FeAl powder were 150 nm, 50 nm and $466\;kg/mm^2$, $574\;kg/mm^2$, respectively.

펄스전류활성 가열에 의한 나노구조의 TiCu 급속소결과 기계적 성질 (Rapid Sintering of TiCu by Pulsed Current Activated Heating and its Mechanical Properties)

  • 두송이;김나리;김원백;조성욱;손인진
    • 대한금속재료학회지
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    • 제48권10호
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    • pp.922-928
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    • 2010
  • Nanopowder of TiCu was synthesized by high-energy ball milling. A dense nanostructured TiCu was consolidated using a pulsed-current activated sintering method within 1 minute from mechanically synthesized powders of TiCu and horizontally milled powders of Ti+Cu. The grain size and hardness of the TiCu sintered from horizontally milled Ti+Cu powders and high-energy ball-milled TiCu powder were 68 nm, 27 nm and $490kg/mm^2$, $600kg/mm^2$, respectively.

Development of MgH2-Ni Hydrogen Storage Alloy Requiring No Activation Process via Reactive Mechanical Grinding

  • Song, Myoung Youp;Kwak, Young Jun;Lee, Seong Ho;Park, Hye Ryoung
    • 대한금속재료학회지
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    • 제50권12호
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    • pp.949-953
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    • 2012
  • $MgH_2$ was employed as a starting material instead of Mg in this work. A sample with a composition of 94 wt% $MgH_2-6$ wt% Ni (called $MgH_2-6Ni$) was prepared by reactive mechanical grinding. The hydriding and dehydriding properties were then examined. An $MgH_2-Ni$ hydrogen storage alloy that does not require an activation process was developed. The alloy was prepared in a planetary ball mill by grinding for 4 h at a ball disc revolution speed of 250 rpm under a hydrogen pressure of about 12 bar. The sample absorbed 3.74 wt% H for 5 min, 4.07 wt% H for 10 min, and 4.41 wt% H for 60 min at 573 K under 12 bar $H_2$, and desorbed 0.93 wt% H for 10 min, 1.99 wt% H for 30 min, and 3.16 wt% H for 60 min at 573 K under 1.0 bar $H_2$. $MgH_2-6Ni$ after reactive mechanical grinding contained ${\beta}-MgH_2$ (a room temperature form of $MgH_2$), Ni, ${\gamma}-MgH_2$ (a high pressure form of $MgH_2$), and a very small amount of MgO. Reactive mechanical grinding of Mg with Ni is considered to facilitate nucleation, and to reduce the particle size of Mg. $Mg_2Ni$ formed during reactive mechanical grinding also increases the hydriding and dehydriding rates of the sample.

기계적 합금화법에 의한 Ti-Fe-X계 수소 저장합금의 제조에 관한 연구 (Development of Ti-Fe-X metal hydride electrode by mechanical alloying)

  • 하창진;이경섭
    • 한국재료학회지
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    • 제5권1호
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    • pp.112-122
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    • 1995
  • Metal hydride alloys of TiFe based system have been produced by mechanical alloying(MA) method and their electrochemical characteristics have been evaluated for application for Ni/MH battery electrode. These alloys became amorphous after 36hrs ball milling and easily activated electrochemically. All MA amorphous alloys reached at the first charge/discharge cycle the maximum capacity which was 2-3 times higher than the crystalline state. But their cyclic lives were much inferior to the crystalline state. Alloying elements such as Ni, Co, Cr, Mo substituting Fe greatly improved the capacity and 180 mAh/g capacity was obtained in an alloy of TiFe_{0.6}Ni_{0.1}Co_{0.1}Cr_{0.1}Mo_{0.1}$.

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