Effect of Inductance Ratio on Operating Frequencies of a Hybrid Resonant Inverter
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Effect of Inductance Ratio on Operating Frequencies of a Hybrid Resonant Inverter

Authors: Mojtaba Ghodsi, Hamidreza Ziaifar, Morteza Mohammadzaheri, Payam Soltani

Abstract:

In this paper, the performance of a medium power (25 kW/25 kHz) hybrid inverter with a reactive transformer is investigated. To analyze the sensitivity of the inverster, the RSM technique is employed to manifest the effective factors in the inverter to minimize current passing through the Insulated Bipolar Gate Transistors (IGBTs) (current stress). It is revealed that the ratio of the axillary inductor to the effective inductance of resonant inverter (N), is the most effective parameter to minimize the current stress in this type of inverter. In practice, proper selection of N mitigates the current stress over IGBTs by five times. This reduction is very helpful to keep the IGBTs at normal temperatures.

Keywords: Analytical analysis, hybrid resonant inverter, reactive transformer, response surface method.

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References:

J. Li, W. An, H. Gao, Y. Zhao, and Y. J. A. O. S. Sun, "An experimental study on oil droplet size distribution in subsurface oil releases," vol. 37, pp. 88-95, 2018.
[2] M. Ghodsi, "Optimization of mover acceleration in DC tubular linear direct-drive machine using response surface method," International Review of Electrical Engineering, vol. 10, pp. 492-500, 2015.
[3] H. Hoshyarmanesh, M. Ghodsi, and H.-H. Park, "Electrical properties of UV-irradiated thick film piezo-sensors on superalloy IN718 using photochemical metal organic deposition," Thin Solid Films, vol. 616, pp. 673-679, 2016.
[4] H. Hoshyarmanesh, N. Nehzat, M. Salehi, and M. Ghodsi, "X-ray diffraction measurement of residual stress in sol-gel grown lead zirconate titanate thick films on nickel-based super alloy substrate," Journal of Mechanical Science and Technology, vol. 29, pp. 715-721, 2015.
[5] H. Hoshyarmanesh, N. Nehzat, M. Salehi, M. Ghodsi, H.-S. Lee, and H.-H. Park, "Piezoelectric Transducers on Curved Dispersive Bending Wave and Poke-Charged Touch Screens," Materials and Manufacturing Processes, vol. 29, pp. 870-876, 2014.
[6] H. Hoshyarmanesh, N. Nehzat, M. Salehi, M. Ghodsi, H.-S. Lee, H.-H. Park, et al., "Thickness and thermal processing contribution on piezoelectric characteristics of Pb (Zr-Ti) O3 thick films deposited on curved IN738 using sol–gel technique," Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design Applications vol. 229, pp. 511-521, 2015.
[7] M. Mohammadzaheri, M. Emadi, M. Ghodsi, E. Jamshidi, I. Bahadur, A. Saleem, et al., "A variable-resistance digital charge estimator for piezoelectric actuators: An alternative to maximise accuracy and curb voltage drop," Journal of Intelligent Material Systems and Structures, vol. 30, pp. 1699-1705, 2019.
[8] S. Ghorbanirezaei, Y. Hojjat, and M. Ghodsi, "Design and fabrication of a new piezoelectric paper feeder actuator without mechanical parts," Smart Structures and Systems, vol. 24, pp. 183-191, 2019.
[9] H. Hoshyarmanesh, A. Abbasi, P. Moein, M. Ghodsi, and K. Zareinia, "Design and Implementation of an Accurate, Portable, and Time-Efficient Impedance-Based Transceiver for Structural Health Monitoring," IEEE/ASME Transactions on Mechatronics, vol. 22, pp. 2809-2814, 2017.
[10] H. Sadeghian, Y. Hojjat, M. Ghodsi, and M. R. Sheykholeslami, "An approach to design and fabrication of a piezo-actuated microdroplet generator," The International Journal of Advanced Manufacturing Technology, vol. 70, pp. 1091-1099, 2014.
[11] M. Modabberifar, M. Ghodsi, and Y. Hojjat, "Analysis of parameter effects on electrostatic induction dielectric sheet conveyor performance," International Journal of Precision Engineering Manufacturing, vol. 13, pp. 65-70, 2012.
[12] M. Dadkhah, Y. Hojjat, J. Jeon, M. Ghodsi, and M. Modabberifar, "Voltage-induction synchronous electrostatic motor," The International Journal of Advanced Manufacturing Technology, vol. 77, pp. 145-164, 2015.
[13] M. Ghodsi, T. Ueno, H. Teshima, H. Hirano, T. Higuchi, and E. Summers, "“Zero-power” positioning actuator for cryogenic environments by combining magnetostrictive bimetal and HTS," Sensors and Actuators A: Physical, vol. 135, pp. 787-791, 2007.
[14] M. Ghodsi and M. Modabberifar, "Quality factor, static and dynamic responses of miniature galfenol actuator at wide range of temperature," International Journal of Physical Sciences, vol. 6, pp. 8143-8150, 2011.
[15] M. Ghodsi, T. Ueno, and T. Higuchi, "Novel Magnetostrictive Bimetal Actuator Using Permendur," Advanced Materials Research, vol. 47-50, pp. 262-265, 2008.
[16] M. Ghodsi, N. Hosseinzadeh, A. Ozer, H. R. Dizaj, Y. Hojjat, N. G. Varzeghani, et al., "Development of Gasoline Direct Injector Using Giant Magnetostrictive Materials," IEEE Transactions on Industry Applications, vol. 53, pp. 521-529, 2017.
[17] M. R. Karafi, M. Ghodsi, and Y. Hojjat, "Development of Magnetostrictive Resonant Torsional Vibrator," IEEE Transactions on Magnetics, vol. 51, pp. 1-8, 2015.
[18] M. R. Karafi, Y. Hojjat, F. Sassani, and M. Ghodsi, "A novel magnetostrictive torsional resonant transducer," Sensors and Actuators A: Physical, vol. 195, pp. 71-78, 2013.
[19] M. Sheykholeslami, Y. Hojjat, M. Ghodsi, K. Kakavand, and S. Cinquemani, "Investigation of ΔE Effect on Vibrational Behavior of Giant Magnetostrictive Transducers," Shock and Vibration, vol. 2015, pp. 1-9, 2015.
[20] M. R. Sheykholeslami, Y. Hojjat, S. Cinquemani, M. Ghodsi, and M. Karafi, "An approach to design and fabrication of resonant giant magnetostrictive transducer," Smart Structures and Systems, vol. 17, pp. 313-325, 2016.
[21] M. Sheykholeslami, Y. Hojjat, M. Ghodsi, M. Zeighami, and K. Kakavand, "Effect of magnetic field on mechanical properties in Permendur," Materials Science and Engineering: A, vol. 651, pp. 598-603, 2016.
[22] S. Talebian, Y. Hojjat, M. Ghodsi, and M. R. Karafi, "Study on classical and excess eddy currents losses of Terfenol-D," Journal of Magnetism and Magnetic Materials, vol. 388, pp. 150-159, 2015.
[23] S. Talebian, Y. Hojjat, M. Ghodsi, M. R. Karafi, and S. Mirzamohammadi, "A combined Preisach–Hyperbolic Tangent model for magnetic hysteresis of Terfenol-D," Journal of Magnetism Magnetic Materials, vol. 396, pp. 38-47, 2015.
[24] M. Ghodsi, H. Ziaiefar, K. Alam, M. Mohammadzaheri, A. Al-Yahmedi, and F. K. Omar, "Electromechanical Modelling and Experimental Verification of Cantilevered Permendur Energy Harvester," presented at the IEEE/ASME International Conference on Advanced Intelligent Mechatronics, 2018.
[25] M. Ghodsi, H. Ziaiefar, M. Mohammadzaheri, and A. Al-Yahmedi, "Modeling and Characterization of Permendur Cantilever Beam for Energy Harvesting," Energy, vol. 176, pp. 561-569, 2019.
[26] M. Ghodsi, H. Ziaiefar, M. Mohammadzaheri, and A. Al-Yahmedi, "Development of Magnetostrictive Harvester for Unmanned Aerial Vehicles (UAV)," in 2019 1st International Conference on Unmanned Vehicle Systems-Oman (UVS), 2019, pp. 1-6.
[27] M. Ghodsi, H. Ziaifar, M. Mohammadzaheri, and P. Soltani, "Effect of Damping on Performance of Magnetostrictive Vibration Energy Harvester," International Journal of Mechanical and Mechatronics Engineering, vol. 14, pp. 147-151, 2020.
[28] X. Qi, Y. Peng, and Y. Li, "Parameters design of series resonant inverter circuit," Physics Procedia, vol. 24, pp. 133-138, 2012.
[29] L.-j. Liu, K.-x. Yu, M. Zhang, J.-y. Nan, G.-z. Jiang, B. Rao, et al., "Analysis on voltage oscillation of a mid-frequency series resonant inverter for DRMP coils on J-TEXT," Fusion Engineering and Design, vol. 102, pp. 59-65, 2016.
[30] D. Tebb and L. Hobson, "Design of matching circuitry for 100-kHz MOSFET induction heating power supply," IEEE Transactions on Industrial Electronics, pp. 271-276, 1987.
[31] E. J. Dede, J. V. Gonzalez, J. A. Linares, J. Jordan, D. Ramirez, and P. Rueda, "25-kW/50-kHz generator for induction heating," IEEE transactions on industrial electronics, vol. 38, pp. 203-209, 1991.
[32] J. Espi, E. Dede, A. Ferreres, and R. Garcia, "Steady-state frequency analysis of the" LLC" resonant inverter for induction heating," in V IEEE International Power Electronics Congress Technical Proceedings, CIEP 96, 1996, pp. 22-28.
[33] J. Espi and E. Dede, "Design considerations for three element L-LC resonant inverters for induction heating," International journal of electronics, vol. 86, pp. 1205-1216, 1999.
[34] J. M. Espi-Huerta, E. J. D. G. Santamaria, R. G. Gil, and J. Castello-Moreno, "Design of the L-LC resonant inverter for induction heating based on its equivalent SRI," IEEE transactions on industrial electronics, vol. 54, pp. 3178-3187, 2007.
[35] M. Borage and S. Tiwari, "A 25 kW, 25 kHz induction heating power supply for MOVPE system using L-LC resonant inverter," Advances in Power Electronics, vol. 2013, 2013.
[36] K. Shaarbafi, "Transformer modelling guide," Alberta Electric System Operator (AESO), Tech. Rep, 2014.
[37] M. Ghodsi, H. Ziaiefar, M. Mohammadzaheri, F. K. Omar, and I. Bahadur, "Dynamic analysis and performance optimization of permendur cantilevered energy harvester," Smart Structures and Systems, vol. 23, pp. 421-428, 2019.