無方向性電磁鋼板積層体の熱伝導特性とその異方性
Heat transfer properties of lamination stacks of the non-oriented electrical steels which important for heat management of high-performance motor core, were investigated. The thermal conductivity of in-plane direction of lamination stack almost coincided with the value which was estimated from the e...
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Published in: | 鉄と鋼 Vol. 107; no. 2; pp. 121 - 127 |
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Format: | Journal Article |
Language: | Japanese |
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一般社団法人 日本鉄鋼協会
2021
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Abstract | Heat transfer properties of lamination stacks of the non-oriented electrical steels which important for heat management of high-performance motor core, were investigated. The thermal conductivity of in-plane direction of lamination stack almost coincided with the value which was estimated from the electrical resistance of the steel. The thermal conductivity of through-stack direction was depend on fixing methods of lamination stack and decreased with increase of the inter-lamellar air gap. Removal of the inter-lamellar air gap using glue is effective to improve heat transfer of the high performance motor core which adopted electrical steels with higher alloy and/or thinner gauge. |
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AbstractList | Heat transfer properties of lamination stacks of the non-oriented electrical steels which important for heat management of high-performance motor core, were investigated. The thermal conductivity of in-plane direction of lamination stack almost coincided with the value which was estimated from the electrical resistance of the steel. The thermal conductivity of through-stack direction was depend on fixing methods of lamination stack and decreased with increase of the inter-lamellar air gap. Removal of the inter-lamellar air gap using glue is effective to improve heat transfer of the high performance motor core which adopted electrical steels with higher alloy and/or thinner gauge. |
Author | 脇坂, 岳顕 黒崎, 洋介 山崎, 修一 |
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References | 7) Non-oriented Electrical Steel Sheets, Nippon Steel Corporation, Tokyo, (2020). 10) M. Nakamura, H. Okada, K. Matsui and M. Kitayama: Testu-to-Hagané, 66(1980), 1000 (in Japanese). 11) K. Takeda, H. Fujii and S. Yamazaki: Materia Jpn., 50(2011), 126 (in Japanese). 4) R.K. Williams, D.W. Yarbrough, J.W. Masey, T.K. Holder and R.S. Graves: J. Appl. Phys., 52(1981), 5167. 2) J.E. Cousineau, K. Bennion, D. Devoto and S. Narumanchi: Int. J. Heat Mass Transf., 129(2019), 152. 3) Netubussei Handobukku (Handbook of Thermophysical properties), ed. by Japan Society of Thermophysical properties, Yokendo, Tokyo, (2008), 27 (in Japanese). 6) Dennetu Handbook (Handbook of Thermal Conduction), The Japan Society of Mechanical Engineers, Tokyo, (1993), 370 (in Japanese). 8) S.E. Gustafsson: Rev. Sci. Instrum., 62(1991), 797. 12) Y.S.Touloukian, P.E.Liley and S.C.Saxena: Thermophysical Properties of Matter, vol.3, Thermal Conductivity of Nonmetallic Liquids and Gases, Plenum, New York, (1970), 512. 9) D. Lundstrom, B. Karlsson and M. Gustafsson: Z. Metallkd., 92(2001), 1203. 1) C. Kaido, K. Takeda, T. Wakisaka and M. Mizokami: Trans. Inst. Electr. Eng. Jpn. D, 119(1999), 1010 (in Japanese). 5) R.K. Williams, R.S. Graves, F.J. Weaver and D.W. Yarbrough: J. Appl. Phys., 62(1987), 2778. |
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SubjectTerms | anisotropic thermal conductivity interlaminar air gap lamination stack motor core non-oriented electrical steel |
Title | 無方向性電磁鋼板積層体の熱伝導特性とその異方性 |
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