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Effect of Magnetic Force on Rheological and Compressive Properties of Magneto-Rheological Rubber Composites with Iron Particle and Carbon Nanotubes

자기력이 철 분말 및 탄소나노튜브 강화 자기유동 고무 복합재료의 유동 및 압축 특성에 미치는 영향

  • 류상렬 (영남대학교 기계공학부) ;
  • 이동주 (영남대학교 기계공학부)
  • Received : 2012.05.07
  • Accepted : 2012.10.04
  • Published : 2013.02.04

Abstract

An orthotropic magneto-rheological rubber composite (MRRC) based on a general-purpose rubber can be manufactured by using an electromagnetic device during the curing processes of rubber mixtures. The magnetic transmissivity of MRRCs increases with the iron particle (IP) content, and that of aligned MRRCs with a 2-T magnetic field is 1.8 to 2 times higher as compared to that of randomly dispersed MRRCs. The effect of a 2-T magnetic field on carbon nanotube (CNT) reinforced MRRC has been identified clearly, and the magnetic transmissivity is found to be 3.7%. The compressive stress of MRRC (IP 90 + CNT 5, 2 T alignment) under a magnetic field of 0.49 T is 2.1 times higher as compared to that of the matrix. The MR effect of MRRC increases with the IP content, and that of aligned MRRC with the IP 90 and 2 T magnetic field is 20.4%. It is confirmed that the magnetic field when making the specimen and when performing the compression test greatly impacts the compression characteristics.

고무 혼합물의 가류특성 및 전자석 장치를 이용하여 범용고무를 기지로 하는 이방성 자기유동 고무 복합재료(MRRC)의 제조가 가능하였다. 철 입자(IP) 함유량의 증가에 따라 MRRC의 자기 투과율은 증가하였으며, 불규칙 배향에 비해 2 tesla로 배향시킨 경우가 1.8~2배 높게 나타났다. 2 tesla로 배향한 CNT만 강화한 MRRC의 자기 투과율은 3.7%로 자기장의 영향이 뚜렷이 확인되었다. IP 90 + CNT 5 & 2 tesla 배향의 MRRC는 압축시험 시 0.49 tesla의 자기장 하에서 압축응력이 기지에 비해 2.1배 증가하였다. IP 함유량 증가에 따라 자기유동(MR) 효과는 증가하였으며, IP 90 & 2 tesla 배향의 경우 20.4%의 MR 효과를 보였다. 시험편 제조 시 및 압축시험 시 부여한 자기력 세기가 MRRC의 압축특성에 미치는 영향이 크다고 판단된다.

Keywords

References

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