• 제목/요약/키워드: Large Power Apparatus

검색결과 52건 처리시간 0.021초

오존파괴물질 대체 비수계세정제 개발 및 현장 적용 연구 (A Study on Development of Alternative Non-aqueous Cleaning Agents to Ozone Depletion Substances and its Field Application)

  • 박용배;배재흠;이민재;이종기;이호열;배수정;이동기
    • 청정기술
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    • 제17권4호
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    • pp.306-313
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    • 2011
  • 인쇄회로기판(PCB)과 같은 전자부품을 제조시에 솔더링을 하기 위하여 플럭스나 솔더페이스트를 사용하며 솔더링 후에 부품에 잔류한 플럭스나 솔더페이스트를 제거하여야하는데 이것은 이들 물질이 잔류하였을 경우 부식이나 누전을 초래하여 부품의 성능을 떨어뜨리거나 고장을 일으킬 수 있다. 솔더링 후에 플럭스와 솔더플럭스 잔류물을 제거하기 위하여 오존파괴물질 세정제인 1,1,1-trichloroethane이나 HCFC-141b가 아직까지 많이 사용되고 있다. 본 연구에서는 이들 오존파괴성질을 가진 세정제를 대체하기 위하여 인화점이 존재하지 않는 비수계세정제를 개발하였고 산업현장 적용도 시도해 보았다. 인화점이 존재하지 않는 세정제를 개발하기 위해 탄화수소계 용제를 주 용제로 하고 글리콜에테르계, 에스테르계 및 불소계 용제를 첨가하여 비수계세정제를 배합하였고 이들의 물성 및 세정성을 평가하였다. 그리고 이들 배합세정제 중에 세정력이 뛰어난 세정제를 현장에 적용하여 보았다. 또한 배합된 비수계세정제의 사용후에 재활용 가능성을 평가하기 위하여 감압증류장치를 가동하여 사용 후의 세정제를 재활용시에 요구되는 운전 조건과 재활용율을 구하여 보았다. 배합세정제의 물성 측정 결과 모두 표면장력이 18.0~20.4 dyne/cm으로 비교적 낮았고 습윤지수도 비교적 높아 오염물에 대한 습윤력과 침투력이 우수할 것으로 기대되었고 불소계용제를 첨가하여 배합한 세정제는 인화성이 없음이 확인되어 사용하고 보관하기에 안전하리라 사료된다. 플럭스 및 솔더페이스트 세정 연구 실험 결과 대체목표세정제인 1,1,1-TCE와 HCFC-141b보다 세정력이 우수함을 확인할 수 있었다. 그리고 배합세정제 중에 우수한 세정제를 선정하여 HCFC-141b를 사용하는 산업현장의 PCB 세정에 적용한 결과 HCFC-141b보다 우수한 세정을 나타내어 산업현장에 적용 가능성을 보여 주었다. 또한 이들 제품을 감압증류장치를 이용하여 재활용 가능성을 평가 결과 운전조건 $100{\sim}110^{\circ}C$, 20~30 mbar에서 91.9~97.5%를 재활용할 수 있음을 보여주었다.

Stellite bearings for liquid Zn-/Al-Systems with advanced chemical and physical properties by Mechanical Alloying and Standard-PM-Route

  • Zoz, H.;Benz, H.U.;Huettebraeucker, K.;Furken, L.;Ren, H.;Reichardt, R.
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2000년도 춘계학술강연 및 발표대회 강연 및 발표논문 초록집
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    • pp.9-10
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    • 2000
  • An important business-field of world-wide steel-industry is the coating of thin metal-sheets with zinc, zinc-aluminum and aluminum based materials. These products mostly go into automotive industry. in particular for the car-body. into building and construction industry as well as household appliances. Due to mass-production, the processing is done in large continuously operating plants where the mostly cold-rolled metal-strip as the substrate is handled in coils up to 40 tons unwind before and rolled up again after passing the processing plant which includes cleaning, annealing, hot-dip galvanizing / aluminizing and chemical treatment. In the liquid Zn, Zn-AI, AI-Zn and AI-Si bathes a combined action of corrosion and wear under high temperature and high stress onto the transfer components (rolls) accounts for major economic losses. Most critical here are the bearing systems of these rolls operating in the liquid system. Rolls in liquid system can not be avoided as they are needed to transfer the steel-strip into and out of the crucible. Since several years, ceramic roller bearings are tested here [1.2], however, in particular due to uncontrollable Slag-impurities within the hot bath [3], slide bearings are still expected to be of a higher potential [4]. The today's state of the art is the application of slide bearings based on Stellite\ulcorneragainst Stellite which is in general a 50-60 wt% Co-matrix with incorporated Cr- and W-carbides and other composites. Indeed Stellite is used as the bearing-material as of it's chemical properties (does not go into solution), the physical properties in particular with poor lubricating properties are not satisfying at all. To increase the Sliding behavior in the bearing system, about 0.15-0.2 wt% of lead has been added into the hot-bath in the past. Due to environmental regulations. this had to be reduced dramatically_ This together with the heavily increasing production rates expressed by increased velocity of the substrate-steel-band up to 200 m/min and increased tractate power up to 10 tons in modern plants. leads to life times of the bearings of a few up to several days only. To improve this situation. the Mechanical Alloying (MA) TeChnique [5.6.7.8] is used to prOduce advanced Stellite-based bearing materials. A lubricating phase is introduced into Stellite-powder-material by MA, the composite-powder-particles are coated by High Energy Milling (HEM) in order to produce bearing-bushes of approximately 12 kg by Sintering, Liquid Phase Sintering (LPS) and Hot Isostatic Pressing (HIP). The chemical and physical behavior of samples as well as the bearing systems in the hot galvanizing / aluminizing plant are discussed. DependenCies like lubricant material and composite, LPS-binder and composite, particle shape and PM-route with respect to achievable density. (temperature--) shock-reSistibility and corrosive-wear behavior will be described. The materials are characterized by particle size analysis (laser diffraction), scanning electron microscopy and X-ray diffraction. corrosive-wear behavior is determined using a special cylinder-in-bush apparatus (CIBA) as well as field-test in real production condition. Part I of this work describes the initial testing phase where different sample materials are produced, characterized, consolidated and tested in the CIBA under a common AI-Zn-system. The results are discussed and the material-system for the large components to be produced for the field test in real production condition is decided. Outlook: Part II of this work will describe the field test in a hot-dip-galvanizing/aluminizing plant of the mechanically alloyed bearing bushes under aluminum-rich liquid metal. Alter testing, the bushes will be characterized and obtained results with respect to wear. expected lifetime, surface roughness and infiltration will be discussed. Part III of this project will describe a second initial testing phase where the won results of part 1+11 will be transferred to the AI-Si system. Part IV of this project will describe the field test in a hot-dip-aluminizing plant of the mechanically alloyed bearing bushes under aluminum liquid metal. After testing. the bushes will be characterized and obtained results with respect to wear. expected lifetime, surface roughness and infiltration will be discussed.

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