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Circuit-field coupled finite element analysis method for an electromagnetic acoustic transducer under pulsed voltage excitation |
Hao Kuan-Sheng(郝宽胜), Huang Song-Ling(黄松岭)†, Zhao Wei(赵伟), and Wang Shen(王珅) |
State Key Laboratory of Power Systems, Department of Electrical Engineering, Tsinghua University, Beijing 100084, China |
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Abstract This paper presents an analytical method for electromagnetic acoustic transducers (EMATs) under voltage excitation and considers the non-uniform distribution of the biased magnetic field. A complete model of EMATs including the non-uniform biased magnetic field, a pulsed eddy current field and the acoustic field is built up. The pulsed voltage excitation is transformed to the frequency domain by fast Fourier transformation (FFT). In terms of the time harmonic field equations of the EMAT system, the impedances of the coils under different frequencies are calculated according to the circuit-field coupling method and Poynting's theorem. Then the currents under different frequencies are calculated according to Ohm's law and the pulsed current excitation is obtained by inverse fast Fourier transformation (IFFT). Lastly, the sequentially coupled finite element method (FEM) is used to calculate the Lorentz force in the EMATs under the current excitation. An actual EMAT with a two-layer two-bundle printed circuit board (PCB) coil, a rectangular permanent magnet and an aluminium specimen is analysed. The coil impedances and the pulsed current are calculated and compared with the experimental results. Their agreement verified the validity of the proposed method. Furthermore, the influences of lift-off distances and the non-uniform static magnetic field on the Lorentz force under pulsed voltage excitation are studied.
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Received: 05 September 2010
Revised: 09 January 2011
Accepted manuscript online:
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PACS:
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81.70.Cv
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(Nondestructive testing: ultrasonic testing, photoacoustic testing)
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81.70.Ex
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(Nondestructive testing: electromagnetic testing, eddy-current testing)
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41.20.-q
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(Applied classical electromagnetism)
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Fund: Project supported by the National Natural Science Foundation of China (Grant No. 10974115). |
Cite this article:
Hao Kuan-Sheng(郝宽胜), Huang Song-Ling(黄松岭), Zhao Wei(赵伟), and Wang Shen(王珅) Circuit-field coupled finite element analysis method for an electromagnetic acoustic transducer under pulsed voltage excitation 2011 Chin. Phys. B 20 068104
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[1] |
Masahiko H and Hirotsugu O 2003 EMATs for Science and Industry Non-contacting Ultrasonic Measurements (Boston: Kluwer Academic publishers)
|
[2] |
Zhou D, Liu X Z, Gong X F, Nazarov V E and Ma L 2009 Chin. Phys. B 18 898
|
[3] |
Mirkhani K, Chaggares C, Masterson C, Jastrzebshi M, Dustko T, Sinclair A, Shapoorabadi R J, Konrad A and Papini M 2004 NDT & E. Int. 37 181
|
[4] |
Jian X, Dixon S, Grattan K T and Edwards R S 2006 Sens. Actuators A 128 296
|
[5] |
Thompson R B 1977 J. Appl. Phys. 12 4942
|
[6] |
Thompson R B 1979 Appl. Phys. Lett. 34 175
|
[7] |
Ludwig R, You Z and Palanisamy R 1993 IEEE Trans. Magn. 29 2081
|
[8] |
Jafri-Shapoorabadi R, Konrad A and Sinclair A N 2002 IEEE Trans. Magn. 38 617
|
[9] |
Jafri-Shapoorabadi R, Konrad A and Sinclair A N 2005 J. Appl. Phys. 97 10
|
[10] |
Eskandarzade M, Kundu T, Liebeaux N, Placko D and Mobadersani F 2010 Ultras. 50 583
|
[11] |
Hussein A M 1991 IEEE Trans. Magn. 27 4258
|
[12] |
William J H 1972 IEEE Trans. Magn. 8 3
|
[13] |
Weiss J and Csendes Z J 1982 IEEE Trans. Power Apparatus Syst. PAS101 3796
|
[14] |
EISLEY J G 1989 Mechanics of Elastic Structures: Classical and Finite Element Methods (Englewood Cliffs: Prentice Hall)
|
[15] |
Huang B, Zhang Y L, Zhang D and Guo X F 2010 Chin. Phys. B 19 054302
|
[16] |
Guru S 2004 Electromagnetic Field Theory Fundamentals (Boston: PWS Pub.)
|
[17] |
Jin J M 2000 The Finite Element Method in Electromagnetics (New York: Wiley)
|
[18] |
Li S, Okada T, Chen X M and Dai H W 2007 IEEJ Trans. Elec. Inf. Syst. 127 367
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