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[01644775]轻重混合稀土RFe2系磁弹性合金的制备及磁性能研究

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开展轻重混合稀土RFe2系磁弹性合金的制备及磁性能的研究。 [1]. C.Y. Shen, J.J. Liu*(刘进军), H.T. Zhang, W.B. Shen, Z.B. Pan, P.Z. Si, “Structural, Magnetic, and magnetoelastic properties of high Nd-content Laves alloys prepared by solid-state synthesis”, J. Supercond. Nov. Magn. 32, 3609-3613 (2019). [2]. W.C. Shen, L.L. Lin, C.Y. Shen, S.Xing, Z.B. Pan*, “Dynamic magnetoelastic properties of TbxHo0.9-xNd0.1(Fe0.8Co0.2)1.93/epoxy composites”, Mater. Sci-Poland. 37, 257-264 (2019). [3]. Q.L. Ding, J.J. Liu*(刘进军), M.K. Wang, Z.B. Pan*, P.Z. Si, W.X. Xia, J. Du, “Magnetostriction and Magnetic Anisotropy of (Pr0.5Nd0.5)1-xCexFe1.93 Alloy”, J. Supercond. Nov. Magn. 33, 2031-2036 (2020). [4]. M.K. Wang, J.J. Liu*(刘进军), Q.L. Ding, Y. Xiao, R.B. Jiao, Z.B. Pan, W.X. Xia*, J.P. Liu, “In-situ studies of magnetostriction in TbxHo1-xFe1.9Mn0.1 Laves compounds”, J. Magn. Magn. Mater. 501, 166422 (2020)。 [5]. M.K. Wang, J.J. Liu*(刘进军), Q.L. Ding, Y. Xiao, R.B. Jiao, D. Hu, S. Xing, Z.B. Pan, W.X. Xia*, J.P. Liu, “The magnetoelastic properties of Laves-phase TbxHo0.9-xNd0.1Fe1.8Mn0.1 compounds: An in-situ Lorentz microscope study”, J. Alloys. Compd. 835, 155324 (2020). [6]. X.J. Lv, J.J. Liu*(刘进军), Q.L. Ding, M.K. Wang, Z.B. Pan*, “Textured orientation and dynamic magnetoelastic properties of epoxy-based TbxDy0.7-xPr0.3(Fe0.9B0.1)1.93 particulate composites”, J. Supercond. Nov. Magn. 33, 3857-3864 (2020). [7]. 王明坤, 刘进军*, 朱小云, 刘新才,夏卫星, “热压/热变形NdFeB磁体研究的新进展”, 《稀土》,vol.40(5),121,2019年。
开展轻重混合稀土RFe2系磁弹性合金的制备及磁性能的研究。 [1]. C.Y. Shen, J.J. Liu*(刘进军), H.T. Zhang, W.B. Shen, Z.B. Pan, P.Z. Si, “Structural, Magnetic, and magnetoelastic properties of high Nd-content Laves alloys prepared by solid-state synthesis”, J. Supercond. Nov. Magn. 32, 3609-3613 (2019). [2]. W.C. Shen, L.L. Lin, C.Y. Shen, S.Xing, Z.B. Pan*, “Dynamic magnetoelastic properties of TbxHo0.9-xNd0.1(Fe0.8Co0.2)1.93/epoxy composites”, Mater. Sci-Poland. 37, 257-264 (2019). [3]. Q.L. Ding, J.J. Liu*(刘进军), M.K. Wang, Z.B. Pan*, P.Z. Si, W.X. Xia, J. Du, “Magnetostriction and Magnetic Anisotropy of (Pr0.5Nd0.5)1-xCexFe1.93 Alloy”, J. Supercond. Nov. Magn. 33, 2031-2036 (2020). [4]. M.K. Wang, J.J. Liu*(刘进军), Q.L. Ding, Y. Xiao, R.B. Jiao, Z.B. Pan, W.X. Xia*, J.P. Liu, “In-situ studies of magnetostriction in TbxHo1-xFe1.9Mn0.1 Laves compounds”, J. Magn. Magn. Mater. 501, 166422 (2020)。 [5]. M.K. Wang, J.J. Liu*(刘进军), Q.L. Ding, Y. Xiao, R.B. Jiao, D. Hu, S. Xing, Z.B. Pan, W.X. Xia*, J.P. Liu, “The magnetoelastic properties of Laves-phase TbxHo0.9-xNd0.1Fe1.8Mn0.1 compounds: An in-situ Lorentz microscope study”, J. Alloys. Compd. 835, 155324 (2020). [6]. X.J. Lv, J.J. Liu*(刘进军), Q.L. Ding, M.K. Wang, Z.B. Pan*, “Textured orientation and dynamic magnetoelastic properties of epoxy-based TbxDy0.7-xPr0.3(Fe0.9B0.1)1.93 particulate composites”, J. Supercond. Nov. Magn. 33, 3857-3864 (2020). [7]. 王明坤, 刘进军*, 朱小云, 刘新才,夏卫星, “热压/热变形NdFeB磁体研究的新进展”, 《稀土》,vol.40(5),121,2019年。

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