• Title/Summary/Keyword: 유리판넬

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Low Velocity Impact Behavior of Aluminium and Glass-Fiber Honeycomb Structure (알루미늄과 유리섬유 하니컴 구조의 저속 충격 거동)

  • Kim, Jin Woo;Won, Cheon;Lee, Dong Woo;Kim, Byung Sun;Bae, Sung In;Song, Jung Il
    • Composites Research
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    • v.26 no.2
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    • pp.116-122
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    • 2013
  • In this study, impact behavior of aluminium and glass-fiber structure is studied under low impact velocity. Compression test is carried out to investigate the compressive strength of the specimens. The degree of damage is observed using microscopy and compared with the experimental analysis data. The maximum load capacity, impact strength and elastic energy of glass-fiber honeycomb sandwich panel are more than the aluminium honeycomb sandwich panel.

Preparation of Feed Glass Materials for Producing a Foamed Borosilicate Glass Body from Waste LCD Panel (폐 LCD판넬로부터 붕규산유리 발포체 제조를 위한 원료 유리 제조)

  • Oh, Chi-Hoon;Park, Yoon-Kook;Lee, Chul-Tae
    • Applied Chemistry for Engineering
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    • v.27 no.4
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    • pp.371-379
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    • 2016
  • In this article, the foamed body of glass was manufactured from the waste borosilicate glass produced by wet pulverization process without additional pretreatment which can be used as a recycling method for waste LCD panel glass. Each 100 g of pulverized waste borosilicate glass with the size of less than 270 mesh were mixed with 0.3 weight fraction of carbon and 1.5 weight fraction of $Na_2CO_3$, $Na_2SO_4$ and $CaCO_3$ and let them foamed for 20 minutes at $950^{\circ}C$ to manufacture the foamed body having the density of less than $0.3g/cm^3$. Additionally, adding $SiO_2$ or $H_3BO_3$ to the mixture enabled the foamed body to have efficient formation of open pores which showed the possibility for producing the foamed body with new functionalities such as sound absorption.

Foaming Process of Waste LCD Glass for the Recovery of Valuable Materials from Waste LCD Pannel (폐 LCD판넬의 유가성분 회수를 위한 폐 LCD유리의 발포공정)

  • Lee, Chul-Tae;Park, Tae-Moon;Kim, Jung-Min
    • Applied Chemistry for Engineering
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    • v.23 no.2
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    • pp.195-203
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    • 2012
  • Recycling method of waste LCD glass is the essential process for developing the total recycling process of LCD pannel. Pulverizing of LCD glass, determination of proper carbonacious foaming agent, the properties of residue from the recovery of valuable materials through an acid leaching process and the feasibility for the foaming of the residue obtained from leaching for indium and tin recovery were investigated for the developing of recycling method of waste LCD glass as industrial feed materials, such as heat insulation materials, sound absorbing materials, carrier of water treatment. Waste LCD glass could be pulverized finely for foaming process. Natural graphite was proper agent for foaming of the residue and the foaming technology of LCD glass would be effective recycling alternatives.

Electrostatic Suspension and Transportation Device of Glass Panels (정전기력을 이용한 유리 판넬의 비접촉 지지 및 반송)

  • Jeon Jong-Up
    • Journal of the Korean Society for Precision Engineering
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    • v.23 no.3 s.180
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    • pp.76-85
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    • 2006
  • In the manufacture of liquid crystal display devices, there is a strong demand for contactless glass panel handling devices that can manipulate a glass panel without contaminating or damaging it. To fulfill this requirement, an electrostatic transportation device for glass panels is proposed. This device can directly drive a glass panel and simultaneously provide contactless suspension by electrostatic forces. To accomplish these two functions, a feedback control strategy and the operational principle of an electrostatic induction motor are utilized. The stator possesses electrodes which exert electrostatic farces on the glass panel and are divided into a part responsible for suspension and one for transportation. To accomplish dynamic stability and a relatively fast suspension initiation time, the structure of the electrode for suspension possesses many boundaries over which potential differences are formed. In this paper, an electrode pattern suitable for the suspension of glass panels is described, followed by the structure of the transportation device and its operational principle. Experimental results show that the glass panel has been transported with a speed of approximately 25.6 mm/s while being suspended stably at a gap length of 0.3 mm.

기류방출형 정전기제거장치의 개발에 관한 연구

  • 이동훈;박훈규
    • Proceedings of the Korean Institute of Industrial Safety Conference
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    • 2003.05a
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    • pp.167-172
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    • 2003
  • 액정판넬(LCD) 및 반도체 제조공정에 있어서 정전기 발생으로 인하여 미세한 먼지가 LCD 및 반도체 웨이퍼에 부착되거나, 정전기 방전에 의해 반도체소자 및 LCD 유리기판상의 패헌의 파괴를 야기하여 제품의 수율을 저하시키고 제조원가를 상승시키는 주요한 요인이 된다. 현재 이러한 제조공정에서 정전기를 위한 대책으로 코로나방전에 의한 이온바(Ion Bar) 및 이온브로어(Ion Blower)를 제전설비로 사용하고 있으나, 이 장치는 코로나 방전에 의한 이온을 발생시키고 이온화된 공기를 불어 내기 위하여 팬을 사용하여 공기를 대류 시킨다.(중략)

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특허기술평가결과 활용사례-(주)송원

  • Korea Invention Promotion Association
    • 발명특허
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    • v.31 no.7 s.361
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    • pp.66-68
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    • 2006
  • 건축을 하는데 있어 무엇보다 중요한 것은 정확한 설계, 시공 및 뛰어난 기술력이며, 각 부분 부분마다의 정확성과 뛰어난 기술이 어우러져 튼튼하고 아름다운 집이 탕생하게 되는 것이다. 이런 조건은 충족시키는 첫 번째 요소라 할 수 있는 국내 건축용 외장재 시장은 약 1조원대의 시장을 형성하고 있으며, 전체 건축비의 약 10%정도를 차지한다. 건축용 외장재 시장은 석재, 유리, 알루미늄, 아연도금철판의 기본 소재에 다양한 가공을 통하여 제품을 생산하고 있으며, 가공 및 시공의 편의성으로 인해 금속계 패널이 점진적으로 시장을 주도하고 있다. 금속계 패널은 크게 복합판넬과 sheet 패널시장으로 양분되며, sheet패널시장이 약 20%정도의 시장을 차지하고 있다. 해외의 경우, 유럽과 일본은 알루미늄계열의 패널과 미국은 철판계열의 패널이 시장을 주도하고 있다.

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Thermal Characteristics Investigation of 6U CubeSat's Deployable Solar Panel Employing Thermal Gap Pad (열전도 패드가 적용된 6U 큐브위성용 태양전지판의 열적 특성 분석)

  • Kim, Hye-In;Kim, Hong-Rae;Oh, Hyun-Ung
    • Journal of Aerospace System Engineering
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    • v.14 no.3
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    • pp.51-59
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    • 2020
  • In the case of cubesat, a PCB-based deployable solar panel advantageous in terms of weight reduction and electrical circuit design is widely used considering the limited weight and volume of satellites. However, because of the low thermal conductivity of PCB, there is a limit relative to heat dissipation. In this paper, the thermal gap pad is applied to the contact between the PCB-based solar panel and the aluminum stiffener mounted on the outside of the panel. Thus, the heat transfer from the solar cell to the rear side of the panel is facilitated. It maximizes the heat dissipation performance while maintaining the merits of PCB panel, and thus, it is possible to improve the power generation efficiency from reducing the temperature of the solar cell. The effectiveness of the thermal design of the 6U cubesat's deployable solar panel using the thermal gap pad has been verified through on-orbit thermal analysis based on the results, compared with the conventional PCB-based solar panel.