• 제목/요약/키워드: mechanochemical process

검색결과 60건 처리시간 0.011초

기계화학적 극미세 가공기술을 이용한 PDMS 복제몰딩 공정용 서브마이크로 몰드 제작에 관한 연구 (A Study on the Fabrication of Sub-Micro Mold for PDMS Replica Molding Process by Using Hyperfine Mechanochemical Machining Technique)

  • 윤성원;강충길
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2004년도 추계학술대회 논문집
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    • pp.351-354
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    • 2004
  • This work presents a simple and cost-effective approach for maskless fabrication of positive-tone silicon master for the replica molding of hyperfine elastomeric channel. Positive-tone silicon masters were fabricated by a maskless fabrication technique using the combination of nanoscratch by Nanoindenter ⓡ XP and XOH wet etching. Grooves were machined on a silicon surface coated with native oxide by ductile-regime nanoscratch, and they were etched in a 20 wt% KOH solution. After the KOH etching process, positive-tone structures resulted because of the etch-mask effect of the amorphous oxide layer generated by nanoscratch. The size and shape of the positive-tone structures were controlled by varying the etching time (5, 15, 18, 20, 25, 30 min) and the normal loads (1, 5 mN) during nanoscratch. Moreover, the effects of the Berkovich tip alignment (0, 45$^{\circ}$) on the deformation behavior and etching characteristic of silicon material were investigated.

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분말사출성형한 W-l5wt%Cu 나노복합분말의 초기소결거동 (Initial Sintering Behaviour of the Powder Injection Molded W-15wt%Cu Nanocomposite Powder)

  • 윤의식;유지훈;이재성
    • 한국분말재료학회지
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    • 제5권4호
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    • pp.258-264
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    • 1998
  • The initial sintering behaviour of the powder injection molded (PIMed) W-l5wt%Cu nanocomposite powder was investigated. The W-Cu nanocomposite powder was produced by the mechanochemical process consisting of high energy ball-milling and hydrogen reduction of W blue powder-CuO mixture. Solid state sintering of the powder compacts was conducted at $1050^{\circ}C$ for 2~10 hours in hydrogen at mosphere. The sintering behaviour was examined and discussed in terms of microstructural developments such as W-Cu aggregate formation, pore size distribution and W grain growth. The volume shrinkage of PIM specimen was slightly larger than that of PM(conventional PM specimen), being due to fast local densification in the PIM. Remarkable decrease of carbon and oxygen in the PIM enhanced local densification in the early stage of solid state sintering process with eliminating very fine pores less than 10 nm. In addition, such local densiflcation in the PIM is presumably responsible for mitigating of W-grain growth in the initial stage.

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W-CuO 혼합물을 이용하여 제조된 W-Cu나노복합분말의 미세구조와 소결거동에 관한 연구 (Microstructure and Sintering Behavior of W-15 wt%Cu Nanocomposite Powder Prepared from W-CuO Mixture)

  • 김길수;김대건;김영도
    • 한국분말재료학회지
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    • 제10권4호
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    • pp.270-274
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    • 2003
  • Recently, the fabrication process of W-Cu nanocomposite powders has been researched to improve the sinterability by mechanochemical process (MCP), which consists of ball milling and hydrogen-reduction with W- and Cu-oxide mixture. However, there are many control variables in this process because the W oxides are hydrogen-reduced via several reduction stages at high temperature over 80$0^{\circ}C$ with susceptive reduction conditions. In this experiment, the W-15 wt%Cu nanocomposite powder was fabricated with the ball-milling and hydrogen-reduction process using W and CuO powder. The microstructure of the fabricated W-Cu nanocomposite powder was homogeneously composed of the fine W particles embedded in the Cu matrix. In the sintering process, the solid state sintering was certainly observed around 85$0^{\circ}C$ at the heating rate of 1$0^{\circ}C$/min. It is considered that the solid state sintering at low temperature range should occur as a result of the sintering of Cu phase between aggregates. The specimen was fully densified over 98% for theoretical density at 120$0^{\circ}C$ for 1 h with the heating rate of 1$0^{\circ}C$/min.

Mechanochemical Reaction에 의한 Sm-Fe-N계 자성분말의 합성 (Synthesis of ferromagnetic Sm-Fe-N powders subjected to mechanochemical reaction)

  • 이충효;최종건;김판채
    • 한국결정성장학회지
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    • 제10권4호
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    • pp.292-296
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    • 2000
  • 영구자석용 $Sm_2$$Fe_{17}$$N_{x}$계 분말재료를 합성하기 위하여 유성형 볼밀장치를 사용한 Mechanochemical reaction 반응법을 적용하였다. 볼밀처리시 출발원료로서 금속 Sm과 Fe분말을 사용하고 고상반응을 통한 경질자성상 $Sm_2$$Fe_{17}$$N_{x}$의 형성과정을 조사하였다. 출발원료 $Sm_2$$Fe_{100-x}$(x = 11, 13, 15)의 모든 조성에서 볼밀처리만을 행하였을 경우 Sm-Fe계 비정질상 및 $\alpha$-Fe의 혼합상 분말을 얻을 수 있었다. 또한 볼밀처리된 분말시료의 열처리를 통하여 최종 생성상에 미치는 출발원료의 조성의존성을 조사한 결과, $Sm_{15}Fe_{85}$ 조성에서 거의 단상의 $Sm_2$$Fe_{17}$ 화합물이 생성됨을 알 수 있었다. $Sm_2$$Fe_{17}$으로부터 경질자성상인 $Sm_2$$Fe_{17}$$N_{x}$ 화합물을 생성시키기 위하여 $450^{\circ}C$, $N_2$가스분위기에서 질화열처리를 실시하였다. 분말시료에 흡수된 질소량은 질화 처리 초기에 급격히 증가한 후 서서히 포화되었으며 이에 따라 보자력 및 잔류자화가 크게 증가하는 것을 알 수 있었다. 본 연구에서 얻어진 Sm-Fe-N계 분말재료는 차세대 고성능 영구자석을 제조할 수 있는 원료분말로서 그 응용이 기대된다.

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폐초경 스크랩 코발트 침출용액으로부터 옥살산 및 수산화물 침전에 의한 코발트 분말 회수 (Cobalt Recovery by Oxalic Acid and Hydroxide Precipitation from Waste Cemented Carbide Scrap Cobalt Leaching Solution)

  • 이재성;김민구;김슬기;이동주
    • 한국분말재료학회지
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    • 제28권6호
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    • pp.497-501
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    • 2021
  • Cobalt (Co) is mainly used to prepare cathode materials for lithium-ion batteries (LIBs) and binder metals for WC-Co hard metals. Developing an effective method for recovering Co from WC-Co waste sludge is of immense significance. In this study, Co is extracted from waste cemented carbide soft scrap via mechanochemical milling. The leaching ratio of Co reaches approximately 93%, and the leached solution, from which impurities except nickel are removed by pH titration, exhibits a purity of approximately 97%. The titrated aqueous Co salts are precipitated using oxalic acid and hydroxide precipitation, and the effects of the precipitating agent (oxalic acid and hydroxide) on the cobalt microstructure are investigated. It is confirmed that the type of Co compound and the crystal growth direction change according to the precipitation method, both of which affect the microstructure of the cobalt powders. This novel mechanochemical process is of significant importance for the recovery of Co from waste WC-Co hard metal. The recycled Co can be applied as a cemented carbide binder or a cathode material for lithium secondary batteries.

Synthesis of Titanium Carbide Nano Particles by the Mechano Chemical Process

  • Ahn, In-Shup;Park, Dong-Kyu;Lee, Yong-Hee
    • 한국분말재료학회지
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    • 제16권1호
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    • pp.43-49
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    • 2009
  • Titanium carbides are widely used for cutting tools and grinding wheels, because of their superior physical properties such as high melting temperature, high hardness, high wear resistance, good thermal conductivity and excellent thermal shock resistance. The common synthesizing method for the titanium carbide powders is carbo-thermal reduction from the mixtures of titanium oxide($TiO_2$) and carbon black. The purpose of the present research is to fabricate nano TiC powders using titanium salt and titanium hydride by the mechanochemical process(MCP). The initial elements used in this experiment are liquid $TiCl_4$(99.9%), $TiH_2$(99.9%) and active carbon(<$32{\mu}m$, 99.9%). Mg powders were added to the $TiCl_4$ solution in order to induce the reaction with Cl-. The weight ratios of the carbon and Mg powders were theoretically calculated. The TiC and $MgCl_2$ powders were milled in the planetary milling jar for 10 hours. The 40 nm TiC powders were fabricated by wet milling for 4 hours from the $TiCl_4$+C+Mg solution, and 300 nm TiC particles were obtained by using titanium hydride.

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
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    • 제16권6호
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    • pp.1-8
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    • 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.

MOCVD 공정 중 발생한 GaN 분말 scrap에 대한 대기 산화가 결정조직과 미세조직에 미치는 영향 (Influence of Oxidation Temperatures on the Structure and the Microstructure of GaN MOCVD Scraps)

  • 홍현선;안중우
    • 한국분말재료학회지
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    • 제22권4호
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    • pp.278-282
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    • 2015
  • The GaN-powder scrap generated in the manufacturing process of LED contains significant amounts of gallium. This waste can be an important resource for gallium through recycling of scraps. In the present study, the influence of annealing temperatures on the structural properties of GaN powder was investigated when the waste was recycled through the mechanochemical oxidation process. The annealing temperature varied from $200^{\circ}C$ to $1100^{\circ}C$ and the changes in crystal structure and microstructure were studied. The annealed powder was characterized using various analytical tools such as TGA, XRD, SEM, and XRF. The results indicate that GaN structure was fully changed to $Ga_2O_3$ structure when annealed above $900^{\circ}C$ for 2 h. And, as the annealing temperature increased, crystallinity and particle size were enhanced. The increase in particle size of gallium oxide was possibly promoted by powder-sintering which merged particles to larger than 50 nm.

기계화학공정에 의한 (Pb, La)TiO3 나노 분말의 합성 및 소결 특성 연구 (Research on Synthesis and Sintering Behavior of Nano-sized (Pb, La)TiO3 Powders Using Mechano Chemical Process)

  • 이영인;구용성;이종식;좌용호
    • 한국분말재료학회지
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    • 제17권2호
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    • pp.101-106
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    • 2010
  • In this study, we successfully synthesized a nano-sized lanthanum-modified lead-titanate (PLT) powder with a perovskite structure using a high-energy mechanochemical process (MCP). In addition, the sintering behavior of synthesized PLT nanopowder was investigated and the sintering temperature that can make the full dense PLT specimen decreased to below $1050^{\circ}C$ by using $Bi_2O_3$ powder as sintering agent. The pure PLT phase of perovskite structure was formed after MCP was conducted for 4 h and the average size of the particles was approximately 20 nm. After sintered at 1050 and $1150^{\circ}C$, the relative density of PLT was about 93.84 and 95.78%, respectively. The density of PLT increased with adding $Bi_2O_3$ and the specimen with the relative densitiy over 96% were fabricated below $1050^{\circ}C$ when 2 wt% of $Bi_2O_3$ was added.

황화영가철 기반의 과황산 고도산화공정을 이용한 페놀 오염토양 처리 (Treatment of Phenol Contaminated Soil Using Sulfidated Zero-Valent Iron as a Persulfate Activator for Advanced Oxidation Process)

  • 정혁성;응우옌 쿠엔 비엔;최재영;황인성
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제28권1호
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    • pp.15-24
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    • 2023
  • A persulfate(PS)/sulfidated microscale zero-valent iron(S-mZVI) system was tested for treating a soil contaminated with phenol. Sulfidation of bare mZVI was conducted using a mechanochemical process utilizing a ball mill in order to improve persulfate activation capacity and stability of unmodified mZVI. The synthesized S-mZVI performed markedly better than the bare mZVI in activating PS. The optimum molar ratio of sulfur to mZVI was around 0.12. In the soil slurry experiments, a very rapid and complete removal of phenol was observed at the optimum molar ratios of PS to S-mZVI of 2:1 and PS to phenol of 16:1. The phenol removal efficiencies decreased as the water content of the slurries decreased. This was believed to be due to increased soil oxidant demand as the amount of soil was increased as relative to the water content. To evaluate the field applicability of the process, slurry experiments adopting high soil contents were carried out that simulated in-situ soil mixing conditions. These experiments resulted in substantially compromised degradation efficiencies of 54.3% and 43.8% within 4 hours. The current study generally shows that the PS/S-mZVI process has a potential to be developed into a remediation technology for soils contaminated with organics.