Permeability measurements in cobalt ferrite and carbonyl iron powders and suspensions
Magnetic permeability data of cobalt ferrite and carbonyl iron suspensions are discussed. Using an induction method, the relative differential permeability, μ r,dif, was measured as a function of the internal magnetic field for different volume fractions of the solid phase. In the case of cobalt fer...
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Published in: | Journal of magnetism and magnetic materials Vol. 251; no. 1; pp. 100 - 108 |
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Abstract | Magnetic permeability data of cobalt ferrite and carbonyl iron suspensions are discussed. Using an induction method, the relative differential permeability,
μ
r,dif, was measured as a function of the internal magnetic field for different volume fractions of the solid phase. In the case of cobalt ferrite suspensions, the
μ
r,dif−
H curve was obtained for a first increasing ramp of magnetic field (data series “1”), a decreasing ramp (data series “2”), and the second increasing one (data series “3”). Series “1” showed a maximum in the
μ
r,dif−
H trend that did not appear in series “2” and “3”. Furthermore, the data in series “2” and “3” are always below those in series “1”. The latter behavior could be ascribed to the presence of hysteresis, and in fact it was not observed in carbonyl iron suspensions, where hysteresis is absent. The presence of the maximum in permeability is common for both types of suspensions. It is found that it only disappears if the particle motions are restricted by dispersing them in a rigid (epoxy) matrix, or if the suspensions are previously structured by applying a magnetic field to a sample prepared in an elastomer matrix. We conclude that the maxima in
μ
r,dif−
H curves are associated to the motion or orientation of the dispersed particles during application of the first field ramp. The comparison with predictions of models allows to deduce some quantitative information on the structures formed by the particles. |
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AbstractList | Magnetic permeability data of cobalt ferrite and carbonyl iron suspensions are discussed. Using an induction method, the relative differential permeability, mu sub r,dif , was measured as a function of the internal magnetic field for different volume fractions of the solid phase. In the case of cobalt ferrite suspensions, the mu sub r,dif f - H curve was obtained for a first increasing ramp of magnetic field (data series "1"), a decreasing ramp (data series "2"), and the second increasing one (data series "3"). Series "1" showed a maximum in the mu sub r,dif - H trend that did not appear in series "2" and "3". Furthermore, the data in series "2" and "3" are always below those in series "1 ". The latter behavior could be ascribed to the presence of hysteresis, and in fact it was not observed in carbonyl iron suspensions, where hysteresis is absent. The presence of the maximum in permeability is common for both types of suspensions. It is found that it only disappears if the particle motions are restricted by dispersing them in a rigid (epoxy) matrix, or if the suspensions are previously structured by applying a magnetic field to a sample prepared in an elastomer matrix. We conclude that the maxima in mu sub r,dif - H curves are associated to the motion or orientation of the dispersed particles during application of the first field ramp. The comparison with predictions of models allows to deduce some quantitative information on the structures formed by the particles. Magnetic permeability data of cobalt ferrite and carbonyl iron suspensions are discussed. Using an induction method, the relative differential permeability, μ r,dif, was measured as a function of the internal magnetic field for different volume fractions of the solid phase. In the case of cobalt ferrite suspensions, the μ r,dif− H curve was obtained for a first increasing ramp of magnetic field (data series “1”), a decreasing ramp (data series “2”), and the second increasing one (data series “3”). Series “1” showed a maximum in the μ r,dif− H trend that did not appear in series “2” and “3”. Furthermore, the data in series “2” and “3” are always below those in series “1”. The latter behavior could be ascribed to the presence of hysteresis, and in fact it was not observed in carbonyl iron suspensions, where hysteresis is absent. The presence of the maximum in permeability is common for both types of suspensions. It is found that it only disappears if the particle motions are restricted by dispersing them in a rigid (epoxy) matrix, or if the suspensions are previously structured by applying a magnetic field to a sample prepared in an elastomer matrix. We conclude that the maxima in μ r,dif− H curves are associated to the motion or orientation of the dispersed particles during application of the first field ramp. The comparison with predictions of models allows to deduce some quantitative information on the structures formed by the particles. |
Author | Bossis, G Guyot, M de Vicente, J Lacis, S |
Author_xml | – sequence: 1 givenname: J surname: de Vicente fullname: de Vicente, J email: jvicente@ugr.es organization: Departamento de Fı́sica Aplicada, Facultad de Ciencias, Universidad de Granada, C/Fuentenueva s/n, 18071 Granada, Spain – sequence: 2 givenname: G surname: Bossis fullname: Bossis, G organization: Laboratoire de Physique de la Matière Condensée, Université de Nice-Sophia Antipolis, Parc Valrose, 06108 Nice Cedex 2, France – sequence: 3 givenname: S surname: Lacis fullname: Lacis, S organization: Department of Physics, University of Latvia, LV-1586 Riga, Latvia – sequence: 4 givenname: M surname: Guyot fullname: Guyot, M organization: Laboratoire de Magnétisme et d’Optique, 45 Avenue des Etats-Unis, 78035 Versailles, France |
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Cites_doi | 10.1016/0304-8853(90)90005-B 10.1098/rsta.1904.0024 10.1007/BF01601666 10.1122/1.551023 10.1016/0021-9797(82)90402-7 10.1021/la0003490 10.1142/S0217979201005027 10.1098/rsta.1906.0007 10.1016/0021-9797(92)90214-7 10.1117/12.352787 10.1557/S0883769400060942 10.1139/p87-198 |
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Keywords | Induction method Magnetorheological fluids Magnetic permeability Cobalt ferrite spherical particles Magnetic structures Magnetic induction Transition element compounds Magnetic field effects Cobalt oxides Magnetic hysteresis Experimental study Ferrites Finite element method Magnetic particles Iron oxides Saturation magnetization |
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Snippet | Magnetic permeability data of cobalt ferrite and carbonyl iron suspensions are discussed. Using an induction method, the relative differential permeability,
μ... Magnetic permeability data of cobalt ferrite and carbonyl iron suspensions are discussed. Using an induction method, the relative differential permeability, mu... |
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SubjectTerms | Cobalt ferrite spherical particles Condensed matter: electronic structure, electrical, magnetic, and optical properties Cross-disciplinary physics: materials science; rheology Domain effects, magnetization curves, and hysteresis Electro- and magnetorheological fluids Exact sciences and technology Fe and its alloys Induction method Magnetic permeability Magnetic properties and materials Magnetic structures Magnetization curves, hysteresis, Barkhausen and related effects Magnetization curves, magnetization reversal, hysteresis, barkhausen and related effects Magnetorheological fluids Material types Physics Rheology Studies of specific magnetic materials |
Title | Permeability measurements in cobalt ferrite and carbonyl iron powders and suspensions |
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