Effect of Grain Size and Predeformation on Shape Memory Ability and Transformation Temperature in Iron Base Fe-Mn-Si System Shape Memory Alloy

다결정질 Fe-Mn-Si계 형상기억합금의 형상기억합금과 변태점에 미치는 결정입도와 이전가공의 영향

  • Choi, Chong Sool (Department of Metallurgical Engineering, Yonsei University) ;
  • Kim, Hyun Woo (Research Center, Lucky Metals Corp.) ;
  • Jin, Won (Department of Metallurgical Engineering, Yonsei University) ;
  • Shon, In Jin (Department of Materials Engineering, Chonbuk National University) ;
  • Baek, Seung Han (Department of Metallurgical Engineering, Yonsei University)
  • 최종술 (연세대학교 공과대학 금속공학과) ;
  • 김현우 (주식회사 럭키금속.기술연구소) ;
  • 진원 (연세대학교 공과대학 금속공학과) ;
  • 손인진 (전북대학교 공과대학 재료공학과) ;
  • 백승한 (연세대학교 공과대학 금속공학과)
  • Published : 1990.03.31

Abstract

Effects of grain size and cold rolling degree on shape memory ability and transformation temperature were studied in Fe-35% Mn-6% Si shape memory alloy. Md point of the alloy was determined by variation of yield stress with test temperature. The Md point measured in this way was linearly increased with increasing grain size. Shape memory ability of the alloy was decreased with increasing grain size, showing a minimum value at around $63{\mu}m$, and then increased with increasing grain size. From this result, it was concluded that the shape memory ability in the grain size smaller than a critical value is controlled by amount of retained ${\gamma}$ and prior ${\varepsilon}$ phase, but that the shape memory ability in the grain size greater than the critical value is mainly dominated by grain boundary area in unit volume of parent phase. The shape memory ability was decreased with increasing deformation degree. This was because the ${\gamma}$ content being available for the formation of ${\varepsilon}$ martensite during bending was decreased with increasing deformation degree.

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Acknowledgement

Supported by : 문교부