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卢桃丽等:FeSiAl电磁屏蔽涂层的腐蚀行为对吸波性能的影响 ·1331· 30(10):26 plication field of magnetic particle motion mechanism in magnetic (金丹,祁远东,郭宇鹏,等.碳纤维/铁硅铝复合材料的低 field.Mine Eng,2017,5(4):114 频吸波性能.材料导报.2016,30(10):26) (孙欣,章礼斌,孙浩楷,等.磁场中磁性颗粒运动机理的研 [12]Wang T,Wei J Q,Zhang Z Q,et al.Radar wave absorption 究进展及应用领域.矿山工程,2017,5(4):114) mechanism of the flake-shaped FeSiAl particle composite.Mater [21]Adams J D,Kim U,Soh H T.Multitarget magnetic activated cell China,2013,32(2):94 sorter.Proc Natl Acad Sci USA.2008,105(47):18165 (王涛,位建强,张钊琦,等.片形FSi1磁粉复合材料的雷 [22]Tokura S,Hara M,Kawaguchi N,et al.The behavior of nano- 达波吸收机理.中国材料进展,2013,32(2):94) and micro-magnetic particles under a high magnetic field using a [13]Zhang Y Q.Ding Y G.Yin S Y,et al.Electrical and magnetic superconducting magnet.IEEE Trans Appl Supercond,2014,24 characteristic study of FeSiAl microwave attenuating coatings.Vac (3):3700305 Electron,2006(6):39 [23]Rodriguez-Arco L,Lopez-Lopez M T,Duran J D G,et al.Sta- (张永清,丁耀根,阴生毅,等.FSil微波衰减涂层电磁特 bility and magnetorheological behaviour of magnetic fluids based 性分析.真空电子技术,2006(6):39) on ionic liquids.J Phys Condens Matter,2011,23(45): [14]Sun J,Xu H L,Shen Y,et al.Enhanced microwave absorption 455101 properties of the milled flake-shaped FeSiAl/graphite composites. 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Radar wave absorption mechanism of the flake鄄shaped FeSiAl particle composite. Mater China, 2013, 32(2): 94 (王涛, 位建强, 张钊琦, 等. 片形 FeSiAl 磁粉复合材料的雷 达波吸收机理. 中国材料进展, 2013, 32(2): 94) [13] Zhang Y Q, Ding Y G, Yin S Y, et al. Electrical and magnetic characteristic study of FeSiAl microwave attenuating coatings. Vac Electron, 2006(6): 39 (张永清, 丁耀根, 阴生毅, 等. FeSiAl 微波衰减涂层电磁特 性分析. 真空电子技术, 2006(6): 39) [14] Sun J, Xu H L, Shen Y, et al. Enhanced microwave absorption properties of the milled flake鄄shaped FeSiAl / graphite composites. J Alloys Compd, 2013, 548: 18 [15] Zhao K H, Chen X M. Electromagnetism. 4th Ed. Beijing: Higher Education Press,2018 (赵凯华, 陈熙谋. 电磁学. 4 版. 北京: 高等教育出版社, 2018) [16] Wang Q, Wang C J, Pang X J, et al. Control of solidified struc鄄 tures of Al鄄鄄 Si hypereutectic alloy by using intense magnetic fields. Chin J Mater Res, 2004, 18(6): 568 (王强, 王春江, 庞雪君, 等. 利用强磁场控制过共晶铝硅合 金的凝固组织. 材料研究学报, 2004, 18(6): 568) [17] Goc K, Gaska K, Klimczyk K, et al. Influence of magnetic field鄄 aided filler orientation on structure and transport properties of fer鄄 rite filled composites. J Magn Magn Mater, 2016, 419: 345 [18] Lee J Y, Kumar V, Lee D J. Compressive properties of magneto鄄 rheological elastomer with different magnetic fields and types of filler. Polym Adv Technol, 2019, 30(4): 1106 [19] Zhu Y S, Umehara N, Ido Y, et al. Computer simulation of structures and distributions of particles in MAGIC fluid. J Magn Magn Mater, 2006, 302(1): 96 [20] Sun X, Zhang L B, Sun H K, et al. Research progress and ap鄄 plication field of magnetic particle motion mechanism in magnetic field. Mine Eng, 2017, 5(4): 114 (孙欣, 章礼斌, 孙浩楷, 等. 磁场中磁性颗粒运动机理的研 究进展及应用领域. 矿山工程, 2017, 5(4): 114) [21] Adams J D, Kim U, Soh H T. Multitarget magnetic activated cell sorter. Proc Natl Acad Sci USA, 2008, 105(47): 18165 [22] Tokura S, Hara M, Kawaguchi N, et al. The behavior of nano鄄 and micro鄄magnetic particles under a high magnetic field using a superconducting magnet. IEEE Trans Appl Supercond, 2014, 24 (3): 3700305 [23] Rodr侏guez鄄Arco L, L佼pez鄄L佼pez M T, Dur觃n J D G, et al. Sta鄄 bility and magnetorheological behaviour of magnetic fluids based on ionic liquids. J Phys Condens Matter, 2011, 23 ( 45 ): 455101 [24] Nagato K, Oshima T, Kuwayama A, et al. Microscopic observa鄄 tion of behavior of magnetic particle clusters during torque transfer between magnetic poles. J Appl Phys, 2015, 117(17): 17C729 [25] Ando T, Hirota N, Wada H. Numerical simulation of chainlike cluster movement of feeble magnetic particles by induced magnet鄄 ic dipole moment under high magnetic fields. Sci Technol Adv Mater, 2009, 10(1): 014609 [26] Chu H R, Chen P, Yu Q, et al. Preparation and microwave ab鄄 sorption properties of FeCo / graphene. Chin J Mater Res, 2018, 32(3): 161 (褚海荣, 陈平, 于祺, 等. FeCo / 石墨烯的制备和吸波性能. 材料研究学报, 2018, 32(3): 161) [27] Wang T, Zhang J M, Wang P, et al. The absorption mechanism of radar absorber and performance evaluation criterion of absorb鄄 ent. J Magn Mater Devices, 2016, 47(6): 7 (王涛, 张峻铭, 王鹏, 等. 吸波材料吸波机制及吸波剂性能 优劣评价方法. 磁性材料及器件, 2016, 47(6): 7) [28] Liu X W, Chen X, Wang X J, et al. Recent progress in magnet鄄 ic absorbing materials. Surf Technol, 2013, 42(4): 104 (刘祥萱, 陈鑫, 王煊军, 等. 磁性吸波材料的研究进展. 表 面技术, 2013, 42(4): 104) ·1331·
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