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Methods for texture improvement in electrical steels

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Warianty tytułu
PL
Metody poprawy tekstury blach elektrotechnicznych
Języki publikacji
EN
Abstrakty
EN
Aiming the development of high efficiency electric motors for electric vehicles, there is strong pressure for improvement of the magnetic properties of electrical steel sheets. One of the clearest possibilities is crystallographic texture enhancement. In this review, diverse methods for texture improvement are presented and discussed. All of them have the drawback of increasing the cost of material processing.
PL
Materiały magnetyczne używane w pojazdach elektrycznych powinny mieć bardzo dobre właściwości. Jedną z metod ich poprawy jest polepszenie ich tekstury. W artykule przedtawiono metody poprawy tekstury oraz analizowano zalety iwady tych metod, włącznie z kosztami produkcji.
Rocznik
Strony
7--11
Opis fizyczny
Bibliogr. 51 poz., rys., tab.
Twórcy
  • Federal Fluminense University, Av dos Trabalhadores 420, Vila Santa Cecilia 27255-125, Volta Redonda RJ – Brazil
Bibliografia
  • [1] Schmuch R., Wagner R., Hörpel G., Placke T., Winter M.. Energy 3, (2018) 267–278.
  • [2] de Campos M. F., Teixeira J. C., Landgraf F. J. G.. J. Magn. Magn. Mat. 301 (2006) 94
  • [3] Moses A. J.. In Proc. of WMM´18, Dresden, Germany. June, 12-14, 2018, p. 650.
  • [4] Leuning N., Steentjes S. , Hameyer K. Evaluation of the interdependency of mechanical cutting and magnetic anisotropy on the magnetic properties of non-oriented fesi electrical steel. In Proceedings of XIII SMM Symposium of Magnetic Measurements & Modelling Cracow – Wieliczka, 8th - 10th October 2018, p. 53.
  • [5] Rodrigues D. L, Silveira J. R. F., Gerhardt G. J. L., Missell F. P., Landgraf F. J. G., Machado R., de Campos M. F.., “Effect of plastic deformation on the excess loss of electrical steel,” IEEE Trans. Magn., vol. 48, no. 4, (2012) 1425–1428.
  • [6] de Campos M. F., Sablik M. J., Landgraf F. J. G., Hirsch T. K., Machado R., Magnabosco R., Gutierrez C. J., Bandyopadhyay A., “Effect of rolling on the residual stress and magnetic properties of a 0.5% Si electrical steel,” J. Magn. Magn. Mater., 320 (2008) 377–380.
  • [7] Emura M.,.de Campos M.F., Landgraf F.J.G., Teixeira J.C., Angular dependence of magnetic properties of 2% silicon electrical steel J. Magn. Magn. Mat. 226-230 (2001). 1524-1526
  • [8] Humphreys, F. J.; Hatherly, M. Recrystallization and related annealing phenomena. U.K., Pergamon, 1996.
  • [9] Akiror J C., Merkhouf A, Hudon C, Pillay P.. Consideration of Design and Operation on Rotational Flux Density Distributions in Hydrogenerator Stators. IEEE Transactions on Energy Conversion, Vol. 30, No. 4, (2015), 1585.
  • [10] Moses A.J., Importance of rotational losses in rotating machines and transformers, Journal of Materials Engineering and Performance, Vol 1(2), (1992) 235-244
  • [11] de Campos M F. , Landgraf F J. G., Falleiros I G. S., Fronzaglia G C., Kahn H Texture Evolution during the Processing of Electrical Steels with 0.5% Si and 1.25% Si. ISIJ International. 44 (2004) 1733-1737.
  • [12] de Campos M F. , Landgraf F J. G., Takanohashi R., Chagas F. C., Falleiros I G. S., Fronzaglia G C., Kahn H . ISIJ International. 44 (2004) 591-597.
  • [13] de Campos M. F., Yonamine T., Fukuhara M., Landgraf F.J.G, Achete C. A., Missell, F. P.. Effect of frequency on the iron losses of 0.5% and 1.5%Si non-oriented electrical steels. IEEE Trans. Magn. 42 (2006) 2812.
  • [14] Jun-an Wang, Bang-xin Zhou, Mei-yi Yao, Qiang Li, Wen-jue Chen. Formation and Control of Sharp {100} <021> Texture in Electrical Steel. Journal of Iron and Steel Research International, Volume 13, Issue 2, March 2006, Pages 54-58.
  • [15] Assmus F., Detert K., Ibe G.. Über eisen-silizium mit würfeltextur. Z. Metallk., v. 48, p. 344-349, 1957.
  • [16] Sakakura A., Hoshino K , Uematsu Y , Igawa T., Fujimoto H. EP Patent EP0206108A2. 1986.
  • [17] Xuanyang Hu, Hong Guo, Hao Qian, Xiaofeng Ding, Yanling Yang. Development of a high-power-density motor for Formula SAE electric race car. In Proceedings of IECON 2017 - 43rd Annual Conference of the IEEE Industrial Electronics Society. 29 Oct.-1 Nov. 2017. Number: 17432419.
  • [18] Brand R. Elektromotoren am Limit. Elektronik Journal 05 / (2014), p-76-77.
  • [19] Foster K., Thornburg D.R. Magnetic properties of oriented iron‐cobalt alloys. AIP Conference Proceedings 24, (1975) 709.
  • [20] Heck C. Magnetic Materials and their Applications. 1974, Newnes-Butterworth.
  • [21] Ahmad Z., Ali A., Farooque M., ul Haq A.. Materials and Design 30 (2009) 3885–3890.
  • [22] Beiler A. C. Magnetic Materials for Space Power Systems. Journal of Applied Physics 38, (1967) 1161
  • [23] Bunge H.-J. “Texture analysis in materials science – mathematical methods”. London, Butterworths, 1982.
  • [24] Bunge, H.-J. The basic concepts of texture investigation in polycrystalline materials. Steel Res. v. 62, n. 12, p. 530-541, 1991.
  • [25] de Campos M. F.. Anisotropy of Steel Sheets and Consequence for Epstein Test: I Theory. in XVIII IMEKO WORLD CONGRESS Metrology for a Sustainable Development September, 17 – 22, 2006, Rio de Janeiro, Brazil. Available at: http://www.imeko.org/publications/wc-2006/PWC-2006-TC4-037u.pdf
  • [26] de Campos, M. F. Campos M. A., Landgraf F. J. G., Padovese L. R., “Anisotropy study of grain oriented steels with Magnetic Barkhausen Noise”, J. Phys. Conf. Ser., vol. 303 (2011) 012020.
  • [27] Chwastek K. R., Baghel A. P. S., de Campos M. F., Kulkarni S. V., Szczygłowski J.. A Description for the Anisotropy of Magnetic Properties of Grain-oriented Steels. IEEE Trans.Magn. 51 (2015) 6000905.
  • [28] Leuning N., Steentjes S. , Hameyer K.. On the Homogeneity and Isotropy of Non-Grain-Oriented Electrical Steel Sheets for the Modeling of Basic Magnetic Properties from Microstructure and Texture. IEEE Trans.Magn. 51 (2017) 2002605.
  • [29] de Campos M. F., Landgraf F. J. G., “Anisotropy of Steel Sheets and Consequence for Epstein Test: II Experiment” XVIII IMEKO WORLD CONGRESS Metrology for a Sustainable Development, September, 17 – 22, 2006, Rio de Janeiro, Brazil. Available at: http://www.imeko.org/publications/wc-2006/PWC-2006-TC4-038u.pdf
  • [30] Landgraf F.J.G., Yonamine T., Takanohashi, R. Silva F.Q., Tosetti J.P.V., Beneduce Neto F., Albertin E., Mazzarella V.N.G., Falleiros I.G.S., Emura M.. Magnetic properties of silicon steel with as-cast columnar structure. J. Magn. Magn. Mat. 254–255 (2003) 364–366.
  • [31] Ray R. K., Jonas J. J., Transformation textures in steels. Int. Mat. Rev., v. 35, n. 1, p. 1-36, 1990.
  • [32] Mekhiche M., Waeckerlé T., Cornut B., Influence of low Al content on anomalous growth in 3% Si-Fe magnetic sheets. J. Magn. Magn. Mat. 133 (994)159-162,
  • [33] Kohler D. Promotion of Cubic Grain Growth in 3% Silicon Iron by Control of Annealing Atmosphere Composition. Journal of Applied Physics 31 (1960) S408
  • [34] Wiener G W. Metallurgy of Oriented Silicon Steels J. Appl Phys, 35(3) (1964) 856-860.
  • [35] Detert K. Untersuchungen über eine neue art der sekundärrekristallisation in Fe-3% SI-legierungen Acta Metallurgica, 1959.
  • [36] Ray, R. K.; Jonas, J. J.; Hook, R. E. Cold rolling and annealing textures in low carbon and extra low carbon steels. Int. Mat. Rev., v. 39, n. 4, (1994) p. 129-172.
  • [37] Tanaka, T. Controlled rolling of steel plate and strip. Int. Met. Rev., v. 26, n. 4, p. 185-212, 1981.
  • [38] Hai-Tao Liu, Zhen-Yu Liu, Yu Sun, Yi-Qing Qiu, Cheng-Gang Li, Guang-Ming Cao, Byung-Deug Hong , Sang-Hoon Kim , Guo-Dong Wang . Formation of {001} <510> recrystallization texture and magnetic property in strip casting non-oriented electrical steel. Materials Letters 81 (2012) 65–68.
  • [39] Dantzig J. A., Rappaz M.. Solidification. CRC Press, 2009.
  • [40] Inagaki, H. Fundamental aspect of texture formation in low carbon steel. ISIJ Int., v. 34, n. 4, p. 313-321, 1994
  • [41] Vanderschueren D, Kestens L., Van Houtte P., Aernoudt E., Dilewijns J., Meers U, The Effect Of Cross Rolling On Texture And Magnetic Properties Of Non Oriented Electrical Steels. Textures and Microstructures, 14-15 (1991). 921-926.
  • [42] Youliang He, Mehdi Mehdi, Erik J. Hilinski, Afsaneh Edrisy. Effect of Annealing Temperature on the Texture and Magnetic Barkhausen Noise of a Non-oriented Electrical Steel (0.88 wt% Si) after Inclined Cold Rolling. IOP Conf. Series: Materials Science and Engineering 375 (2018) 012013.
  • [43] de Campos M. F., Landgraf F. J. G., Tschiptschin A. P., “A method toestimate magnetic induction from texture”, J. Magn. Magn. Mater., vol. 226- 230 (2001) 1536-1538.
  • [44] Takashima M, Komatsubara M and Morito N. {001}<210> texture development by two-stage cold rolling method in nonoriented electrical steel. ISIJ International. 1997; 37(12):1263-1268.
  • [45] Botelho R A, Diniz S B, da Cunha M A, Brandao L. P.. Properties of NGO 3% Silicon Steel Asymmetrically Cold Rolled. Mat. Res. .18 supl.2 (2015) 143-147.
  • [46] Yunbo Xu, Haitao Jiao, Wenzheng Qiu, Raja Devesh, Kumar Misra, Jianping Li. Effect of Cold Rolling Process on Microstructure, Texture and Properties of Strip Cast Fe-2.6%Si Steel. Materials, 11(7) (2018) 1161.
  • [47] Kawalla R, Stöcker A, Prahl U., Wei X, Dierdorf J, Hirt G, Heller M., Roggenbuck S, Korte-Kerzel S, Weiss H A., Trober P., Bohm L., Volk W, Leuning N, Hameyer K.Low-loss FeSi sheet for energy-efficient electrical drives. In Proc. of WMM´18, Dresden, Germany. June, 12-14, 2018, p. 20.
  • [48] Stöcker, A, Schneider A, Scholze T, Franke A, Hermann H, Kawalla R. Influence of cubic texture intensity of hot rolled ferritic non-oriented electrical steels on the microstructure and texture in the final processed material. IOP Conf. Series: Materials Science and Engineering 82 (2015) 012070
  • [49] Sakakura A.. The Development of Double-Oriented Silicon Steel with Cube Orientation. Journal de Physique IV Colloque, 05 (C7) (1995),.C7-219-C7-224.
  • [50] Pry R. H.. Journal of Applied Physics 30, (1959) S189 .
  • [51] Tumanski S. Handbook of Magnetic Measurements. CRC Press, 2011.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-42411f11-cade-47a5-a093-301ddc57d38d
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