Influence of heat treatment on the structure and magnetic properties of amorphous Co–Ni–Fe–Cr–Si–B alloy and its thermal stability
暂无分享,去创建一个
[1] P. Kuznetsov,et al. Mechanisms of the formation of magnetic characteristics of a cobalt-based amorphous magnetically soft alloy under heat treatment in air , 2015, The Physics of Metals and Metallography.
[2] O. Ivanov,et al. Interaction of the surfaces of ribbons of amorphous magnetically soft alloys with vapor at various stages of heat treatment , 2015, The Physics of Metals and Metallography.
[3] O. Ivanov,et al. Interaction of surface of ribbons of amorphous soft-magnetic iron-based alloys with vapor , 2014, The Physics of Metals and Metallography.
[4] N. K. Arkhipova,et al. Formation of ordered NiFeMn antiferromagnetic phase in permalloy/manganese bilayers in the course of thermomagnetic treatment , 2014, The Physics of Metals and Metallography.
[5] A. Potapov,et al. Magnetic properties, thermal stability, and structure of the nanocrystalline soft magnetic (Fe0.7Co0.3)88Hf2W2Mo2Zr1B4Cu1 alloy with induced magnetic anisotropy , 2014, The Physics of Metals and Metallography.
[6] N. A. Shurygina,et al. Interaction of deformation shear bands with nanoparticles in amorphous-nanocrystalline alloys , 2013, Russian Metallurgy (Metally).
[7] K. Trukhanov,et al. A screening chamber for attenuating the Earth’s magnetic field based on roll magnetic materials , 2012 .
[8] O. Ivanov,et al. Effect of electrolytic oxidation and hydrogenation on the magnetization distribution and magnetic properties of ribbons of amorphous soft magnetic iron-based alloys , 2011 .
[9] A. Kandori,et al. Open-type magnetocardiograph with cylindrical magnetic shield , 2005 .
[10] D. Jiles. Recent advances and future directions in magnetic materials , 2003 .
[11] J. Petzold,et al. Advantages of softmagnetic nanocrystalline materials for modern electronic applications , 2002 .