In-situ studies of stress- and magnetic-field-induced phase transformation in a polymer-bonded Ni-Co-Mn-In composite
Creators
- 1. Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), Northeastern University, Shenyang 110004 (China)
- 2. School of Materials Science and Engineering, Beijing Institute of Technology, Beijing 100081 (China)
- 3. Department of Physics, Northern Illinois University, DeKalb, IL 60115 (United States)
- 4. Materials Science Division, Argonne National Laboratory, Argonne, IL 60439 (United States)
- 5. Department of Materials Science and Engineering, University of Tennessee, Knoxville, TN 37996 (United States)
- 6. X-ray Science Division, Argonne National Laboratory, Argonne, IL 60439 (United States)
Description
A polymer-bonded Ni45Co5Mn36.6In13.4 ferromagnetic shape-memory composite was fabricated, having magnetic-field-driven shape recovery properties. The thermo-magnetization curves of the composite suggested that the magnetic-field-induced reverse martensitic transformation occurs in the composite. The effects of temperature, stress, and magnetic-field on the phase transformation properties were systematically investigated using an in-situ high-energy X-ray diffraction technique. A temperature-induced reversible martensitic phase transformation was confirmed within the composite, showing a broad phase transformation interval. Stress-induced highly textured martensite was observed in the composite during uniaxial compressive loading, with a residual strain after unloading. The origin of the textured martensite can be explained by the grain-orientation-dependent Bain distortion energy. A recovery strain of ∼1.76% along the compression direction was evidenced in the pre-strained composite with an applied magnetic-field of 5 T. This recovery was caused by the magnetic-field-induced reverse martensitic phase transformation. The phase transformation properties of the ferromagnetic shape-memory composite, different from its bulk alloys, can be well explained by the Clausius-Clapeyron relation. The large magnetic-field-induced strain, together with good ductility and low cost, make the polymer-bonded Ni-Co-Mn-In composites potential candidates for magnetic-field-driven actuators.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.msea.2010.02.034Additional details
Identifiers
- DOI
- 10.1016/j.msea.2010.02.034;
- PII
- S0921-5093(10)00184-X;
Publishing Information
- Journal Title
- Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing
- Journal Volume
- 527
- Journal Issue
- 15
- Journal Page Range
- p. 3561-3571
- ISSN
- 0921-5093
- CODEN
- MSAPE3
INIS
- Country of Publication
- Netherlands
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 44009992
- Subject category
- S36: MATERIALS SCIENCE;
- Descriptors DEI
- COBALT ALLOYS; COMPOSITE MATERIALS; COMPRESSION; DUCTILITY; FERROMAGNETIC MATERIALS; GRAIN ORIENTATION; INDIUM ALLOYS; MAGNETIC FIELDS; MAGNETIZATION; MANGANESE ALLOYS; MARTENSITIC STEELS; NICKEL ALLOYS; PHASE TRANSFORMATIONS; POLYMERS; SHAPE MEMORY EFFECT; STRAINS; STRESSES; X-RAY DIFFRACTION
- Descriptors DEC
- ALLOYS; CARBON ADDITIONS; COHERENT SCATTERING; DIFFRACTION; IRON ALLOYS; IRON BASE ALLOYS; MAGNETIC MATERIALS; MATERIALS; MECHANICAL PROPERTIES; MICROSTRUCTURE; ORIENTATION; SCATTERING; STEELS; TENSILE PROPERTIES; TRANSITION ELEMENT ALLOYS
Optional Information
- Copyright
- Copyright (c) 2010 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.