Investigation of Thermal Losses in a Soft Magnetic Composite Using Multiphysics Modelling and Coupled Material Properties in an Induction Heating Cell
- 1 Division of Production and Materials Engineering, Lund University, Lund, Sweden
- 2 Division of Production and Materials Engineering, Lund University, Lund, Sweden
- 3 Division of Production and Materials Engineering, Lund University, Lund, Sweden
- 4 Division of Production and Materials Engineering, Lund University, Lund, Sweden
Abstract
The complex interaction between material properties in an induction heating circuit was studied by multi physics simulation and by experimental verification in a full-scale laboratory heater. The work aims to illustrate the complexity of the system of interacting materials, but also to propose a method to verify properties of soft magnetic composite materials in an integrated system and to identify which properties are the most critical under different circumstances and load cases. Heat losses at different loads were primarily studied, from DC currents to AC currents at 15, 20 and 25 kHz, respectively. A FE model for magnetic simulation was correlated with a corresponding model for heat simulation. The numerical model, as well as the established input material data, could be verified through the experimental measurements. In this particular study, the current loss in the litz wire was the dominant heat source, thus making the thermal conductivity of the SMC the most important property in this material.
- Monier-Vinard, E., Bissuel, V., Dia, C.T., Daniel, O. and Laraqi, N. (2013) Investigation of Delphi Compact Thermal Model Style for Modeling Surface-Mounted Soft Magnetic Composite Inductor. IEEE 19th International Workshop on Thermal Investigations of ICs and Systems (THERMINIC), Berlin, 25-27 September 2013, 315-318. http://dx.doi.org/10.1109/THERMINIC.2013.6675210
- Wrobel, R., McNeill, N. and Mellor, P.H. (2010) Performance Analysis and Thermal Modeling of a High-Energy-Density Prebiased Inductor. IEEE Transactions on Industrial Electronics, 57, 201-208.
- Guo, Y., Zhu, J. and Zhong, J. (2006) Measurement and Modelling of Magnetic Properties of Soft Magnetic Composite Material under 2d Vector Magnetisations. Journal of Magnetism and Magnetic Materials, 302, 14-19.
- Bozorth, R.M. (1993) Ferromagnetism. Wiley-VCH, Hoboken, 992.
- ISO, S. (2008) Plastics-Determination of Thermal Conductivity and Thermal Disutility: Part 2.
- Zhang, D. and Foo, C. (1999) A Simple Method to Estimate the Magnetic Field Distribution due to Current-Carrying Winding in Toroidal Core and Its Influence on the Measurement of Complex Permeability and Core Losses. Journal of Magnetism and Magnetic Materials, 191, 189-198.
- Gustavsson, M., Nagai, H. and Okutani, T. (2007) Characterization of Anisotropic and Irregularly-Shaped Materials by High-Sensitive Thermal Conductivity Measurements. In: Ahn, B.T., Jeon, H., Hur, B.Y., Kim, K. and Park, J.W., Solid State Phenomena, Vol. 124, Trans Tech Publications, Pfaffikon, 1641-1644.
- Claassen, J. (2006) A Novel Technique for Measurement of Core Loss in Low Permeability Materials. Journal of Magnetism and Magnetic Materials, 301, 541-545.
- Henrich, F., Rahn, H. and Odenbach, S. (2014) Investigation of Heat Distribution during Magnetic Heating Treatment Using a Polyurethane-Ferrouid Phantom-Model. Journal of Magnetism and Magnetic Materials, 351, 1-7. http://dx.doi.org/10.1016/j.jmmm.2013.09.046
- Shazly, J. and Adly, A.A. (2012) Extensions to the Finite Element Technique for the Magneto-Thermal Analysis of Aged Oil Cooled-Insulated Power Transformers. Journal of Electromagnetic Analysis and Applications, 4, 167. http://dx.doi.org/10.4236/jemaa.2012.44022
- Babaie, H. and Farahani, H.F. (2010) Analysis of Thermal Behavior of High Frequency Transformers Using Finite Element Method. Journal of Electromagnetic Analysis and Applications, 2, 627-632.