• Title/Summary/Keyword: Thermoplastic polymer

검색결과 200건 처리시간 0.027초

MEMS 기반 안전 소자에 대한 액정 폴리머 패키지의 밀폐도 연구 (Investigation on Hermeticity of Liquid Crystal Polymer Package for MEMS Based Safety Device)

  • 최진일;김용국;주병권
    • 센서학회지
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    • 제24권5호
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    • pp.287-290
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    • 2015
  • Liquid crystal polymer (LCP) is a thermoplastic polymer with superior mechanical and thermal properties. In addition, its characteristics include very low water absorption rate and possibility to apply bonding process under low temperature. In this study, LCP is utilized as a packaging material for a microelectronic system (MEMS) based safety device with suggestion of a low temperature packaging process. Highly sensitive and stable capacitive type humidity sensor is fabricated to investigate hermeticity of the packaged MEMS device.

글리시딜아자이드계 열가소성 폴리우레탄의 열적특성에 대한 열처리 조건의 영향 (Effects of Annealing Temperature on Thermal Properties of Glycidyl Azide Polyol-based Energetic Thermoplastic Polyurethane)

  • 김정수;김두기;권정옥;이재명;노시태;김선영
    • 공업화학
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    • 제24권3호
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    • pp.305-313
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    • 2013
  • 본 연구는 glycidyl azide polymer (GAP)계 에너지 함유 열가소성 폴리우레탄 탄성체(energetic thermoplastic polyurethane elastomers, ETPE)를 합성한 후 탄성체의 필름 제조 공정의 열처리 조건이 물성에 미치는 영향에 대하여 고찰하였다. GAP계 ETPE는 ATR-FTIR, DSC, 그리고 DMA를 이용하여 분석하였다. GAP계 ETPE의 물성에 대한 열처리 조건의 영향은 $80{\sim}130^{\circ}C$의 온도 범위에서 1 h과 24 h의 열처리 시간을 나누어 연구를 진행하였다. 1 h의 열처리 조건에서는 $130^{\circ}C$의 열처리 온도에서 그리고 24 h의 열처리 과정에서는 $105^{\circ}C$ 이상의 온도조건에서 아자이드기의 흡수대인 $2090cm^{-1}$ 피크의 감소가 관찰되었으며, methylene chloride와 dimethylformamide 용매에 대한 필름의 용해도 또한 감소하였다. 이것은 $100^{\circ}C$ 이상 열처리 온도조건이 아자이드기의 가교 부반응을 유도할 수 있음을 나타낸다. 또한 열처리 온도가 $80^{\circ}C$에서 $110^{\circ}C$로 증가함에 따라 온도변화에 따른 저장 탄성률 곡선의 고온 고무평탄 영역이 더 높은 온도까지 확장되었으며, 이 또한 가교반응의 결과이다.

용융형 전기방사법에 의한 폴리에스테르섬유의 방사거동과 구조에 관한 연구 (Study on Spinning Behavior and Structure of Polyester Fibers by the Melt-type Electrospinning Method)

  • Lee, Jin-Ah;Lim, Min-Soo;Joo, Chang-Whan
    • 한국섬유공학회:학술대회논문집
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    • 한국섬유공학회 2002년도 봄 학술발표회 논문집
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    • pp.273-276
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    • 2002
  • The fiber formation of conventional melt spinning is extruded by forcing the polymer melt through a spinneret by pumping mechanism usually involving high pressure. This is followed by cooling, solidification and appropriate drawing of the fiber. The spinning process is broadly applicable to polyolefin, polyamide, polyester and indeed the whole range of fibers forming thermoplastic polymers. (omitted)

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Linear viscoelastic behavior of acrylonitrile-butadiene-styrene(ABS) polymers in the melt: Interpretation of data with a linear viscoelastic model of matrix/core-shell modifier polymer blends

  • Park, Joong-Hwan;Ryu, Jong-Hoon;Kim, Sang-Yong
    • Korea-Australia Rheology Journal
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    • 제12권2호
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    • pp.135-141
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    • 2000
  • The linear viscoelastic behavior of acrylonitrile-butadiene-styrene (ABS) polymers with different rubber content has been investigated in the frame of a linear viscoelastic model, which takes into account the inter-connectivity of the dispersed rubber particles. The model developed in our previous work has been shown to properly predict the low frequency plateau for the storage modulus, which is generally observed in polymer blends containing core-shell-type impact modifiers. In the present study, further experiments have been carried out on ABS polymers with different rubber content to verify the validity of our linear viscoelastic model. It has been found that our model describes quite properly the rheological behavior of ABS polymers with different rubber content, especially at low frequencies. The experimental data confirm that our model describes the rheological properties of rubber-modified thermoplastic polymers with strong adhesion at the particle/matrix interface more accurately than the Palierne model.

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균일한 고분자 나노섬유 매트 제작을 위한 다중 노즐 전기방사 공정 연구 (Multi-Nozzle Electrospinning Process to Fabricate Uniform Polymer Nanofiber Mats)

  • 이봉기;박재한;박건중;박광련
    • 한국기계가공학회지
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    • 제17권3호
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    • pp.120-126
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    • 2018
  • In the present study, the multi-nozzle electrospinning process is investigated for the fabrication of uniform polymer nanofiber mats. Electrospinning has been one of the simple and efficient methods to manufacture polymer nanofibers and their mats. Although a typical electrospinning has many advantages such as simple system and operation, various materials, and cost-effectiveness, a relatively low productivity prevents it from being used in practical applications. Thus, the multi-nozzle electrospinning system with the adjustable nozzle position and rotating drum collector is designed and produced in this study. In particular, the effects of the inter-nozzle distance and spatial arrangement of nozzles on the uniformity of the electrospun nanofibers are investigated. With this multi-nozzle electrospinning process, the maximum flow rate of the supplied polymer solution for a uniform electrospinning increases, which indicates the enhanced productivity.

Dynamic Mechanical Properties of Natural Fiber/Polymer Biocomposites: The Effect of Fiber Treatment with Electron Beam

  • Han, Young-Hee;Han, Seong-Ok;Cho, Dong-Hwan;Kim, Hyung-Il
    • Macromolecular Research
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    • 제16권3호
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    • pp.253-260
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    • 2008
  • Environmentally friendly biocomposites were made using plant-based natural fibers, such as henequen and kenaf. The natural fiber reinforced polypropylene (PP) and unsaturated polyester (UP) biocomposites were examined in terms of the reinforcing effect of natural fibers on thermoplastic and thermosetting polymers. Kenaf (KE) and henequen (HQ) fibers were treated with an electron beam (EB) of 10 and 200 kGy doses, respectively, or with a 5 wt% NaOH solution. Four types of biocomposites (KE/PP, HQ/PP, KE/UP and HQ/UP) were fabricated by compression molding and each biocomposite was characterized by dynamic mechanical analysis and thermogravimetric analysis. The kenaf fiber had the larger reinforcing effect on the dynamic mechanical properties of both PP and UP biocomposites than the henequen fiber. The highest storage modulus was obtained from the biocomposite with the combination of UP matrix and 200 kGy EB treated kenaf fibers.

열가소성 탄성중합체인 PP/SEBS 혼합 연구 (A research of thermoplastic elastomer PP(Poly Propylene)/SEBS(Styrene Ethylene Butylene Styrene) blends)

  • 한현각
    • 한국산학기술학회논문지
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    • 제19권8호
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    • pp.562-570
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    • 2018
  • 고분자 단독으로는 얻을 수 없는 다양한 물성을 얻기 위하여 두 가지 이상의 고분자를 블렌드하는 기법을 많이 사용하고 있다. 폴리올레핀계 TPE(Thermoplastic Elastomer)는 디스플레이, 자동차, 가전제품 등에 널리 사용되고 있다. 소비자는 고감성이고 고급화된 자동차 내장부품을 요구한다. 높은 폼형성도와 흐름성이 있는 고분자소재 개발이 필요하다. 내부에 폼층이 있는 TPE은 좋은 고분자소재이다. 두 종류의 TPE 소재를 개발하였다. 첫번째 소재는 Homo-PP(PolyPropylelne)에 SEBS/Oil을 혼합하였고, 두 번째 소재는 Co-PP와 SEBS/Oil을 혼합하였다. 혼합온도는 $180^{\circ}C$, $190^{\circ}C$. $260^{\circ}C$(두번째 소재), 혼합속도는 50rpm, 혼합시간은 5분이다. TPE의 MI(Melt Index)는 PP의 MI에 영향이 있고, 혼합온도의 영향은 미미하였다. 경도와 인장탄성률은 PP의 MI와 혼합온도의 영향은 적었으나, SEBS/Oil의 비율이 높아지면 낮아졌다. 소프트터치감은 SEBS/Oil의 비율이 증가하면 증대하였다. TPE릉 자일렌으로 SEBS/Oil 층을 녹여내어 IPN(Interpenentration polymer network) 구조를 확인할 수 있었으며, Strain-harding 현상도 확인하였다. 제조한 TPE가 고무현상을 보이고, 생성된 closed cell이 안정한 상태임을 알 수 있다.

구형 활성탄소의 합성 및 응용 (Synthesis and Applications of Spherical Active Carbon Materials)

  • 김홍경
    • 융복합기술연구소 논문집
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    • 제3권1호
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    • pp.45-49
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    • 2013
  • Spherical active carbon materials have been used for the removal of pollutants in the area of food processing, water treatment, air purification, oral administration. Moreover, they are now expected to make an epoch in the areas of electronics, life science, environmental technology, and so on due to their superior physical properties. Carbon particles should be requested for the edgeless spherical shapes in order to minimize the loss due to the abrasion during the process and/or practical use, but the carbon particles manufactured from petroleum-based pitch do not meet these needs. Nowadays, thus, the spherical active carbon particles carbonized from various spherical polymer beads are studied with thermoplastic and/or thermosetting polymers. In this paper, the synthesis of spherical phenolic beads and furan beads, which are thermosetting polymers, and their carbonization techniques are examined.

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Protein-based bio-plastics: formulation, processing, properties and applications

  • Guilbert Stephane;Gontard Nathalie;Morel Marie Helene
    • 한국고분자학회:학술대회논문집
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    • 한국고분자학회 2006년도 IUPAC International Symposium on Advanced Polymers for Emerging Technologies
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    • pp.357-357
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    • 2006
  • Many industrial sources of proteins can be used as raw materials to produce films, molded materials, and various hollow items either by "casting" techniques or by "thermoplastic processing". Combining proteins with natural fibbers, paper or biodegradable polyesters is very promising to form biodegradable composites witch take advantage of the barrier and mechanical properties of each component. Using nano-fillers to form nanocomposites has also been shown to be interesting to improve properties. Production, with low transformation cost, of protein based materials to form biodegradable materials with controlled functional properties for food uses, medical uses, packaging, agriculture, controlled release systems, etc. is discussed.

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