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Effect of Composition in Cu-Al-Mn Shape Memory Alloys on the Shape Memory Properties and Cold Workability

Cu-Al-Mn계 형상기억합금에서 조성이 형상기억특성 및 냉간가공성에 미치는 영향

  • Park, Jong Bae (Department of Advanced Materials Engineering, Korea Polytechnic University) ;
  • Park, Hyun Gyoon (Department of Advanced Materials Engineering, Korea Polytechnic University)
  • 박종배 (한국산업기술대학교, 신소재공학과) ;
  • 박현균 (한국산업기술대학교, 신소재공학과)
  • Received : 2013.12.02
  • Accepted : 2013.12.12
  • Published : 2014.03.30

Abstract

Cu-Al-Mn shape memory alloys of a variety of composition were characterized in terms of shape memory properties and cold workability. Cold workability tested by cold rolling indicated that the alloys solution treated in the ${\alpha}+{\beta}$ region have a higher ductility than those solution treated in the ${\beta}$ region. Also it is known that cold workability increased with the decrease in Al content in the ${\beta}$ region. This seems to be resulted from the fact that Mn addition causes to expand ${\beta}$ region toward lower Al content and lower order-disorder transition temperature, consequently, ${\beta}$ of excellent workability being frozen even at room temperature. Experimental results regarding shape memory showed that the properties were better with a higher Al contents at a given Mn content, which is closely related with martensitic transformation. It is also shown that super elasticity limit was enhanced with decrease in the yield strength of alloys because a lower yield strength seems to initiates slip at the lower applied stress.

Keywords

References

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