• Title/Summary/Keyword: 실리카 에어로겔

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Preparation and characterization of nanoporous monolith with high thermal insulation performance (나노 기공성 단열 실리카 모노리스 제조 및 특성 연구)

  • Choi, Hyun-Muk;Kim, Seong-Woo
    • Journal of the Korean Applied Science and Technology
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    • v.31 no.1
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    • pp.83-91
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    • 2014
  • In this study, we synthesized two different silica monoliths by using sol-gel, solvent exchange, surface modification, ambient pressure drying processes, and surfactant-based templating technique followed by calcination process. All of the prepared two silica monoliths showed crack-free appearance with fairly good transparency, and furthermore were confirmed to have extremely high porosity, specific surface area, and mean pore size below 30 nm. The silica aerogel sample exhibited finer and more homogeneous nano-sized pore structure due to spring back effect caused by surface modification, which resulted in better thermal insulation performance. Based on measured thermal conductivities and theoretical relationship, multi-layered glass window system in which silica monolith prepared in this study was inserted as a middle layer was revealed to have superior thermal insulation performance compared to conventional air-inserted glass window system.

Analysis of Heating Characteristics of Multi-Layered Insulation Curtain with Silica Aerogel in Greenhouses (실리카 에어로겔을 이용한 다겹보온커튼의 온실 난방 특성 분석)

  • Jin, Byung-Ok;Kim, Hyung-Kweon;Ryou, Young-Sun;Lee, Tae-Seok;Kim, Young-Hwa;Oh, Sung-Sik;Kang, Geum-Choon
    • Journal of Bio-Environment Control
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    • v.29 no.4
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    • pp.320-325
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    • 2020
  • This study aimed to analyze thermo-keeping and economic feasibility by utilizing silica aerogel, which has been attracting attention as a new material, complementing the disadvantages of the conventional multi-layered thermal screen, and producing and installing multi-layered thermal screen. The multi-layered thermal screen used in the experiment was produced in two combinations using a non-woven fabric containing silica aerogel and measured and compared the temperature and fuel consumption changes due to differences in practice with the multi-layered thermal screen being sold and used on the market. Experimental results show that the temperature and relative humidity changes due to the differences of the multi-layered thermal screens in the single-span greenhouse and the multi-span greenhouse were small but remained almost the same temperature and relative humidity. It is judged that this shows that the multi-layered thermal screen using silica aerogel is not inferior to the conventional multi-layered thermal screen. As a result of a comparative analysis of heating energy, the aerogel-based multi-layered thermal screen reduced fuel consumption by about 15% in the single-span greenhouse and about 20% in the multi-span greenhouse compared to the conventional multi-layered thermal screen. It is clear that heating energy is saved as a greenhouse size and duration increase. It was found that the silica aerogel-based multi-layered screen was more breathable and warmer than the conventional multi-layered thermal screen, but It was found that the multi-layered screen used in the multi-span greenhouse was heavier and stiff compared with the conventional multi-layered thermal screen, indicating less workability and operability. Therefore, improvements were applied to the multi-layered screens used in the single-span greenhouses. It was confirmed that the replacement of internal insulation materials reduced thickness and improved stiffness so that there could be sufficient possibility for farmers to use.

Polyurea Cross-linked Silica Aerogel with Improved Mechanical Strength by Applying a Precursor Having a Plurality of Amino Groups (복수의 아민기를 가지는 전구체를 적용하여 기계적 강도를 향상시킨 폴리우레아 가교 실리카 에어로겔)

  • Lee, Wonjun;Kim, Taehee;Choi, Haryeong;Kim, Jiseung;Lee, Hong-Sub
    • Journal of the Microelectronics and Packaging Society
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    • v.29 no.4
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    • pp.15-20
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    • 2022
  • Aerogel is a material having a nanopore structure based on a high porosity. Due to this high porosity, it has excellent properties not found in conventional materials, but its application has been limited due to low mechanical strength. Therefore, to improve the mechanical strength of the aerogel, polyurea crosslinking was introduced and a precursor having an amine group essential for polyurea polymer formation was selected to synthesize a polyurea crosslinked aerogel composite. In addition, the crosslinking of polyurea was adjusted according to the number of amine groups present in aminosilane. It was confirmed through various analyses that the nanopore structure of the aerogel was maintained to have mesopores. The aerogel thus formed was able to improve the mechanical strength by about two times, and it was confirmed through field emission scanning electron microscope analysis that a one-dimensional polymer was formed on the silica aerogel surface through the introduction of ethylene diamine. The one-dimensional polymer thus formed has improved mechanical properties, resulting in securing an elastic modulus of about 2.66 MPa.

Process Development for Synthesis of Ultra-low Dielectric SiO2 Aerogel Thin by Freeze Drying (동결건조에 의한 극저유전성 실리카 에어로겔 박막 합성공정 개발)

  • 현상훈;김태영
    • Journal of the Korean Ceramic Society
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    • v.36 no.3
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    • pp.307-318
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    • 1999
  • 동결건조법에 의한 저유전성 실리카 박막의 제조공정 개발 및 층간 절연물질로의 응용성이 연구되었다. 코팅용 폴리머 실리카 졸은 TEOS와 이소프로판올(iso-propanol:IPA)또는 터트부탄올(tert-butanol:TBA)을 용매로한 2단계 공정에 의하여 제조되었으며, 이들 졸을 p-Si(111)웨이퍼 상에 스핀코팅한 습윤겔 박막을 동결건조 하여 다공성 실리카 박막을 제조하였다. 균일한 박막 코팅층을 얻을 수 있는 실리카 졸의 최적 점도범위는 IPA와 TBA를 용매로 한 실리카 졸의 경우 각각 10~14 cP와 20~30cP 정도였으며 스핀속도는 2000 rpm 이상이었다. 결함이 없는 다공성 실리카 박막은 TBA(빙점 $25^{\circ}C$)를 동결용매로 하여-196$^{\circ}C$까지 급랭시킨 후 $0^{\circ}C$와 0.1 torr 까지 가열 감압한 상태에서 고상의 TBAFMF 모두 제거한 다음 20$0^{\circ}C$까지 열처리하여 제조되었다. 다공성 실리카 박막의 두께는 졸의 타입과 스핀코팅 속도에 의해 2500~15000$\AA$범위 내에서 제어가 가능하였으며 이들 막의 밀도와 유전상 수 값은 각각 0.9$\pm$0.3g/㎤(기공율 60$\pm$10%)과 2.4 정도였다.

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Analysis of Heat Transfer Characteristics on Multi-layer Insulating Curtains Coated with Silica Aerogel (실리카 에어로겔이 흡착된 다겹보온커튼의 전열 특성 분석)

  • Jin, Byung-Ok;Kim, Hyung-Kweon;Ryou, Young-Sun;Lee, Tae-Seok;Kim, Young-Hwa;Oh, Sung-Sik;Kang, Geum-Choon
    • Journal of Bio-Environment Control
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    • v.28 no.3
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    • pp.273-278
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    • 2019
  • The multi-layer insulating curtains used in the experiment was produced in six combinations using non-woven fabric containing aerogel and compared and analyzed by measuring heat flux and heat perfusion rates due to weight, thickness and temperature changes. Using silica aerogel, which have recently been noted as new material insulation, this study tries to produce a new combination of multi-layer insulating curtains that can complement the shortcomings of the multi-layer insulating curtains currently in use and maintain and improve its warmth, and analyze the thermal properties. The heat flux means the amount of heat passing per unit time per unit area, and the higher the value, the more heat passing through the multi-layer insulating curtain, and it can be judged that the heat retention is low. The weight and thickness of multi-layer insulation curtains were found to be highly correlated with thermal insulation. In particular, insulation curtains combined with aerogel meltblown non-woven fabric had relatively higher thermal insulation than insulation curtains with the same number of insulation materials. However, the aerogel meltblown non-woven fabric is weak in light resistance and durability, and there is a problem that the production process and aerogel are scattering. In order to solve this problems, the combination of expanded aerogel non-woven fabric and hollow fiber non-woven fabric, which are relatively simple manufacturing processes and excellent warmth, are suitable for use in real farms.