Feasibility Study of the Actuator Mechanism using Deformation of Ferromagnetic Martensite by Magnetic Field

The present paper provides a quantitative analysis on the variant change of ferromagnetic martensite driven by the magnetization energy under magnetic field. The feasiblity study of the actuator mechanism using the magnetic-field induced strain is given. The model predicts an upper limit of output p...

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Published inTransactions of the Japan Society of Mechanical Engineers Series A Vol. 70; no. 690; pp. 307 - 312
Main Authors SASAKI, Kazuaki, KATO, Hiroyuki
Format Journal Article
LanguageJapanese
Published The Japan Society of Mechanical Engineers 2004
Subjects
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ISSN0387-5008
1884-8338
DOI10.1299/kikaia.70.307

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Abstract The present paper provides a quantitative analysis on the variant change of ferromagnetic martensite driven by the magnetization energy under magnetic field. The feasiblity study of the actuator mechanism using the magnetic-field induced strain is given. The model predicts an upper limit of output power of the actuator : the maximum output force of NiMnGa shape memory alloy is estimated as less than 1 MPa : the output energy is 2 000 times smaller than that of conventional NiTi shape memory alloys driven by heat.
AbstractList The present paper provides a quantitative analysis on the variant change of ferromagnetic martensite driven by the magnetization energy under magnetic field. The feasiblity study of the actuator mechanism using the magnetic-field induced strain is given. The model predicts an upper limit of output power of the actuator : the maximum output force of NiMnGa shape memory alloy is estimated as less than 1 MPa : the output energy is 2 000 times smaller than that of conventional NiTi shape memory alloys driven by heat.
Author KATO, Hiroyuki
SASAKI, Kazuaki
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  organization: Mechanical Science, Graduate School of Engineering, Hokkaido University
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  fullname: KATO, Hiroyuki
  organization: Mechanical Science, Graduate School of Engineering, Hokkaido University
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– reference: (23) S.J. Murray, R.C. O'Handley, S.M. Allen, J. Appl. Physics, 89, 2001, 1295-1301.
– reference: (14) K. Tsuchiya, A. Oshima, D. Ohtoyo, H. Nakamura, M. Umemoto, P.G. McCormick, Mater.Trans.JIM, 8, 2000,938-942.
– reference: (8) R.C. O'Handley, S.J. Murray, M. Marioni, H. Nembach, S.M. Allen, J. Appl. Phys., 87, 2000, 4712-4717.
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– reference: (13) T. Kakeshita, T. Takeuchi, T. Fukuda, T. Saburi, R. Oshima, S. Muto, K. Kishio, Mater. Trans. JIM, 8, 2000,882-887.
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Snippet The present paper provides a quantitative analysis on the variant change of ferromagnetic martensite driven by the magnetization energy under magnetic field....
SourceID jstage
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StartPage 307
SubjectTerms Actuator
Inelasticity
Material Design
Shape Memory Alloy
Title Feasibility Study of the Actuator Mechanism using Deformation of Ferromagnetic Martensite by Magnetic Field
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