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Received August 13, 2014
Accepted September 17, 2014
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에너지함유 열가소성탄성체 적용을 위한 아지드화 폴리부타디엔/에틸렌-비닐아세테이트 공중합체 블렌드 제조
Preparation of Azidated Polybutadiene(Az-PBD)/Ethylene-Vinyl Acetate Copolymer(EVA) Blends for the Application of Energetic Thermoplastic Elastomer
한양대학교 융합화학공학과, 426-791 경기 안산시 상록구 한양대학로 55 1국방과학연구소, 305-600 대전 유성구 유성우체국 사서함 35호
Department of Fusion Chemical Engineering, Hanyang University, 55 Hanyangdaehak-ro, Sangnok-gu, Ansan, Gyeonggi 426-791, Korea 1Agency for Defense Development, P.O. Box 35, Yuseong-gu, Daejeon 305-600, Korea
Korean Chemical Engineering Research, June 2015, 53(3), 282-288(7), 10.9713/kcer.2015.53.3.282 Epub 2 June 2015
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Abstract
에틸렌-비닐아세테이트(EVA)와 아지드화 폴리부타디엔(Az-PBD)를 블렌드 함으로써 새로운 에너지함유 열가소성탄성체를 제조하고, 이들의 미세구조 및 제반물성을 SEM, DSC, DMA, 인장실험 및 연소시험으로부터 조사하였다. Az-PBD는 1,2-비닐기를 갖는 폴리부타디엔(PBD)을 첨가반응에 의해 비닐기를 브롬화시킨 후, NaN3를 이용하여 브롬기를 아지드기(-N3)로 치환시킴으로써 제조하였다. EVA/Az-PBD 블렌드는 EVA/Az-PBD 비율이 무게비로 각각 90/10, 80/20, 70/30이 되도록 용액 블렌딩으로 제조하였다. SEM, DSC, DMA 분석 결과 이들 블렌드는 부분적으로 상용성이며, EVA가 연속상을 이루고 Az-PBD가 분산상을 이루는 미세구조를 갖는 것을 알 수 있었다. 인장실험으로부터 Az-PBD 함량이 증가될수록 인장모듈러스 및 영구신장변형율이 증가되고 파단신율이 감소되는 경향을 보였으나, 제조된 모든 블렌드들은 700% 이상의 파단신율과 5% 이하의 영구인장변형율을 나타내어, 일반적인 탄성고무소재와 같은 특 성을 나타내었다. 또한, 연소 시 Az-PBD 함량 증가함에 따라 더 큰 불꽂이 발생되어 연소 시 더 높은 에너지를 발생 시킬 수 있음을 확인할 수 있었다.
A new energetic thermoplastic elastomer based on the azidated polybutadiene(Az-PBD)/ethylene vinyl acetate copolymer (EVA) blends was prepared, and structure and properties of the blends were invetigated by SEM, DSC, DMA, tensile testing and combustion test. The Az-PBD was synthesized via a two-step process involving the addition reaction of commercially available 1,2-PBD with Br2 and subsequent nucleophilic substitution reaction of the brominated PBD with NaN3. EVA/Az-PBD with 90/10, 80/20, 70/30 (wt/wt) was prepared by a solution blending. SEM, DSC, and DMA results revealed that the blends are partially compatible and Az-PBD is dispersed in continuous EVA matrix. Tensile test showed that modulus and tension set increased while elongation-at-break of the blends decreased with increasing Az-PBD content in the blends, but all the blends showed a elongation at break as high as 700% and a tension set of less than 5%, indicating that the blends are typically elastomeric. Combustion test showed that, with increasing Az-PBD content in the blend, higher energy can be released.
Keywords
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