Fabrication and Soft Magnetic Properties of Fe–Si–Cr Composites with Double-Insulating Layers Suitable for High-Frequency Power Applications
暂无分享,去创建一个
Zhaoyang Wu | Z. Huang | Huaqin Huang | Rui Wang | Hao He | Kaixuan Li
[1] Zhaoyang Wu,et al. Effect of Various Metal Oxide Insulating Layers on the Magnetic Properties of Fe-Si-Cr Systems , 2023, Coatings.
[2] Zhaoyang Wu,et al. Effects of axial pressure on the evolution of core–shell heterogeneous structures and magnetic properties of Fe–Si soft magnetic powder cores during hot-press sintering , 2022, RSC advances.
[3] A. Ramaprasad,et al. FTIR signal assignment in Chitin using density functional theory calculations – A monomer approximation , 2022, Materials Today: Proceedings.
[4] Jian Wang,et al. Influence of sintering temperature on heterogeneous-interface structural evolution and magnetic properties of Fe–Si soft magnetic powder cores , 2022, Ceramics International.
[5] Zafer Derin,et al. The study of Middle Bronze Age pottery from Yassıtepe Höyük site in İzmir, Turkey, by FTIR and XRD with chemometrics , 2022, Journal of Archaeological Science: Reports.
[6] Juan Li,et al. High permeability and low core loss Fe-based soft magnetic composites with Co-Ba composite ferrite insulation layer obtained by sol-gel method , 2022, Journal of Alloys and Compounds.
[7] K. Hameyer,et al. Simulation of iron losses in induction machines using an iron loss model for rotating magnetization loci in no electrical steel , 2022, COMPEL - The international journal for computation and mathematics in electrical and electronic engineering.
[8] C. Binder,et al. Magnetic properties optimization of an iron-based soft magnetic composite coated by nano-ZnO and boron oxide , 2021 .
[9] B. Dong,et al. Magnetic properties of FeSiCr@MgO soft magnetic composites prepared by magnesium acetate pyrolysis for high-frequency applications , 2021 .
[10] Lingbin Meng,et al. The phosphating effect on the properties of FeSiCr alloy powder , 2021, Journal of Magnetism and Magnetic Materials.
[11] R. Guo,et al. Regulation of magnetic and electrical performances in core-shell-structured FeSiCr@BaTiO3 soft magnetic composites , 2021, Journal of Alloys and Compounds.
[12] S. Mirkazemi,et al. Insights into the synthesis optimization of Fe@SiO2 Core-Shell nanostructure as a highly efficient nano-heater for magnetic hyperthermia treatment , 2021, Advanced Powder Technology.
[13] T. Ramalho,et al. Photocatalytic degradation of methylene blue dye by TiO2 supported on magnetic core shell (Si@Fe) surface , 2021, Journal of the Iranian Chemical Society.
[14] E. Levei,et al. Impact of annealing temperature and ferrite content embedded in SiO2 matrix on the structure, morphology and magnetic characteristics of (Co0.4Mn0.6Fe2O4)δ (SiO2)100-δ nanocomposites , 2021, Journal of Alloys and Compounds.
[15] Wei Zhang,et al. Influence of processed parameters on the magnetic properties of Fe/Fe3O4 composite cores , 2020, Journal of Materials Science: Materials in Electronics.
[16] H. Hsiang,et al. Electromagnetic properties of FeSiCr alloy powders modified with amorphous SiO2 , 2020 .
[17] Z. Zou,et al. Synthesis of well-insulated Fe–Si–Al soft magnetic composites via a silane-assisted organic/inorganic composite coating route , 2020 .
[18] Dongchu Chen,et al. Crystal-like microstructural Finemet/FeSi compound powder core with excellent soft magnetic properties and its loss separation analysis , 2020 .
[19] Kun Xu,et al. Formation Process of the Integrated Core(Fe-6.5wt.%Si)@Shell(SiO2) Structure Obtained via Fluidized Bed Chemical Vapor Deposition , 2020, Metals.
[20] C. Mu,et al. Plasma-induced FeSiAl@Al2O3@SiO2 core–shell structure for exceptional microwave absorption and anti-oxidation at high temperature , 2020 .
[21] A. Zaki,et al. Chemical insight into the adsorption of reactive wool dyes onto amine-functionalized magnetite/silica core-shell from industrial wastewaters , 2019, Environmental Science and Pollution Research.
[22] Xiaodong Wu,et al. Synthesis of a novel three-dimensional Na2SO4@SiO2@Al2O3-SiO2 phase change material doped aerogel composite with high thermal resistance and latent heat , 2018, Ceramics International.
[23] M. Yan,et al. Correlating the microstructure, growth mechanism and magnetic properties of FeSiAl soft magnetic composites fabricated via HNO3 oxidation , 2018 .
[24] Le-Zhong Li,et al. Properties of FeSiAl-based soft magnetic composites with AlN/Al2O3 and hybrid phosphate–silane insulation coatings , 2018 .
[25] H. Abiri,et al. Eddy current and total power loss separation in the iron–phosphate–polyepoxy soft magnetic composites , 2009 .
[26] M. T. Kim. Deposition behavior of hexamethydisiloxane films based on the FTIR analysis of Si–O–Si and Si–CH3 bonds , 1997 .
[27] A. Lebugle,et al. Experimental L and M Core Level Binding Energies for the Metals 22Ti to 30Zn , 1981 .
[28] P. Horley,et al. Analysis of the conduction mechanisms responsible for multilevel bipolar resistive switching of SiO2/Si multilayer structures , 2020 .
[29] Jiaqi Wang,et al. Intergranular insulating reduced iron powder-carbonyl iron powder/SiO2-Al2O3 soft magnetic composites with high saturation magnetic flux density and low core loss , 2020 .