Influence of Actuator Reluctance Force on Linear Oscillating Systems

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The operation of linear oscillating system is complicated, involving system nonlinearities of both actuator and load, and variations of driving frequency in order to track the mechanical resonance. In this paper, the state-variable modeling technique is used to analytically investigate the influence of actuator reluctance force on the performance of linear oscillating systems. The analytical derivations will be validated by simulations, and good agreements are achieved.

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379-384

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September 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] T. W. Chun, J. R. Ahn, J. Y. Yoo, and C. W. Lee, Analysis and control for linear compressor system driven by PWM inverter, Proc. of the 30th annual conference of IEEE industrial electronics society, pp.263-267, Nov. (2004).

DOI: 10.1109/iecon.2004.1433320

Google Scholar

[2] S.M. Jang, J.Y. Choi, D.J. You, and H.W. Cho, The influence of mechanical spring on the dynamic performance of a moving-magnet linear actuator with cylindrical Halbach array, " in Proceedings of the 40th IEEE Industry Applications Society Annual Meeting (IAS, 2005), pp.2132-2139.

DOI: 10.1109/ias.2005.1518742

Google Scholar

[3] S. A. Evans, I.R. Smith, and J.G. Kettleborough, Permanent-magnet linear actuator for static and reciprocating short-stroke electromechanical systems, IEEE/ASME Transactions on Mechtronics, vol. 6, no. 1, pp.36-42, Mar. (2001).

DOI: 10.1109/3516.914389

Google Scholar

[4] L. N. Tutelea, M. C. Kim, M. Topor, et al, Linear permanent magnet oscillatory machine: comprehensive modeling for transients with validation by experiments, IEEE Transactions on Industrial Electronics, vol. 55, no. 2, pp.492-500, (2008).

DOI: 10.1109/tie.2007.911936

Google Scholar

[5] R.E. Clark, Resonant reciprocating actuation systems for air-compressors, Ph.D. Thesis, University of Sheffield, Jul. (1999).

Google Scholar

[6] J. Wang, Z. Lin, and D. Howe, Characteristics of linear compressors under current source excitation, Proc. IMechE Part A: J. Power and Energy, vol. 221, pp.1057-1065, (2007).

DOI: 10.1243/09576509jpe423

Google Scholar

[7] R. E. Clark, G. W. Jewell, and D. Howe, Dynamic modeling of tubular moving-magnet linear actuators, Journal of Applied Physics, vol. 93, no. 19, pp.8787-8789, (2003).

DOI: 10.1063/1.1544518

Google Scholar

[8] B. Tomczuk, and M. Sobol, A field-network model of a linear oscillating motor and its dynamic characteristics, IEEE Transactions on Magnetics, vol. 41, no. 8, pp.2362-2367, (2005).

DOI: 10.1109/tmag.2005.852941

Google Scholar

[9] M. Utsuno, M. Takai, T. Mizuno, and H. Yamada, Comparison of the losses of a moving-magnet type linear oscillatory actuator under two driving methods, IEEE Transactions on Magnetics, vol. 38, no. 5, pp.3300-3303, Sep. (2002).

DOI: 10.1109/tmag.2002.802291

Google Scholar

[10] G. S. Choe and K. J. Kim, Analysis of non-linear dynamics in linear compressor, JSME International Journal Series C, vol. 43, no. 3, pp.545-552, (2000).

DOI: 10.1299/jsmec.43.545

Google Scholar

[11] X. Chen, and Z.Q. Zhu, Modeling and evaluation of linear oscillating actuators, Journal of ICEMS, vol. 1, no. 4, pp.121-128, (2012).

Google Scholar