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Polyamide-66/Glass fiber 블렌드 조성물의 물리적 특성 및 안경테 소재로써의 적용성에 관한 연구

The Study on Physical Properties and Applicability of Material of Polyamide-66/Glass Fiber Blends Composition to the Eyewear Frame

  • 손진영 (대구가톨릭대학교 안경광학과) ;
  • 이지은 (한국신발피혁연구원 탄성체연구단) ;
  • 최경만 (한국신발피혁연구원 탄성체연구단) ;
  • 배유환 ((주)월드트렌드) ;
  • 김기홍 (대구가톨릭대학교 안경광학과)
  • Son, Jin-Young (Dept. of Optometry and Vision Science, Catholic University of Daegu) ;
  • Lee, Ji-Eun (Div. of Elastomer research, Korea Institute of Footwear and Leather Technology) ;
  • Choi, Kyung-Man (Div. of Elastomer research, Korea Institute of Footwear and Leather Technology) ;
  • Bae, Yu-Hwan (Wold Trend Co., Ltd.) ;
  • Kim, Ki-Hong (Dept. of Optometry and Vision Science, Catholic University of Daegu)
  • 투고 : 2013.07.31
  • 심사 : 2013.12.14
  • 발행 : 2013.12.31

초록

목적: 본 연구에서는 사출형 안경테 소재로 사용되고 있는 폴리아미드-12 수지인 TR-90을 대체하기 위하여 폴리아미드-66에 유리섬유(glass fiber)를 함량별로 블렌드하여 각 조성물의 물리적, 열적 특성을 평가하여 안경테로써의 적용 가능성을 검토하였다. 방법: 유리섬유의 함량 변화에 따른 폴리아미드-66 조성물의 특성변화를 고찰하기 위해 이축압출기를 이용하여 함량별 조성물을 제조하였다. 제조된 조성물의 기계적강도, 열적 특성, 코팅성 및 절삭가공성을 평가하였다. 이를 통하여 기존 TR 안경테 제품과의 성능 비교 및 안경테로써 적용 가능성을 평가하였다. 결과: 폴리아미드-66/유리섬유 조성물의 특성 평가 결과, 유리섬유의 함량이 증가할수록 성형수축율이 감소하며, 기계적 강도가 증가하는 것으로 나타났다. 유리섬유의 함량이 0 wt%인 경우 인장강도는 $498kg/cm^2$에서 30 wt%가 함유된 경우 $849kg/cm^2$까지 증가하였다. 코팅성 평가 결과 유리섬유 5 wt%에서는 코팅강도가 4 B였고, 그 이상에서는 5 B로 매우 우수한 코팅 특성을 나타내었다. 결론: 30 wt%의 유리섬유가 블렌드된 경우 기계적 강도가 크게 향상되나 이와 더불어 경도가 상승되며, 점도가 증가하여 사출온도가 높아지며, 제품에 플로우 마크가 생기는 것으로 나타났다. 유리섬유가 블렌드된 폴리아미드-66의 도료 코팅성은 모두 우수하였다. 전반적으로 물성 및 가공성 등을 평가해볼 때, 유리섬유의 함량이 약 10 wt% 내외의 경우 안경테로써의 적용이 가능하다고 판단된다.

Purpose: In this study, we evaluated the physical and thermal properties of the compositions made by blending glass fiber (GF) of different contents into glass fiber polyamide-66, and investigated if the compositions applying to the glasses frame to replace the TR-90, which is polyamide-12 resin used as an injection-type spectacle frame material. Methods: To investigate the characteristics change of polyamide-66 (PA-66) compositions with the change of the content of glass fibers, we produced a composition of the content by using a twin-screw extruder. The mechanical strength of the composition production was measured and coating properties as well as cutting processability were evaluated. We evaluated the applicability of the glasses frame by comparison the results of new compositions with characterizations of traditional TR. Results: For the results of the characterization of Polyamide-66/GF composition, we found that the higher increase of content of the glass fiber, the less mold shrinkage rate, and the mechanical strength was increased. Tensile strength increased from $498kg/cm^2$ for 0 wt% of the content of the glass fibers to $849kg/cm^2$ for 30 wt% of the content of the glass fibers. As a result of a coating evaluation, the strength of coating was 4B in the GF 5wt% and 5B, which was extremely good coating characteristics, in the over than GF 5 wt%. Conclusions: In case that 30 wt% of the glass fiber was blended, the mechanical strength was greatly improved, the hardness was increased, injection temperature increased due to increase of the viscosity, and the flow mark of the product may occur. The paint coating of PA-66 blended with glass fiber was all excellent. With general evaluating physical properties and workability properties it was determined that around 10 wt% of the content of the glass fibers was possible to apply a spectacle frame.

키워드

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피인용 문헌

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  2. Development of Non-coated Double Injection Eyewear with TR XE 4668 vol.24, pp.3, 2019, https://doi.org/10.14479/jkoos.2019.24.3.295