Browse > Article

Enhanced Approach Using Computational and Experimental Method for the Analysis of Loudspeaker System  

Park Seok-Tae (Dept. of Acoustical Eng., Juseong College)
Abstract
Enhanced approach using computational and experimental method is proposed and performed to describe very well the behavior of loudspeaker than conventional method. Proposed procedure is composed of four parts. First, Thiele-Small parameters for test loudspeaker are identified by an electrical impedance method like as a delta mass method. Second part includes the processes to measure physical properties. Physical data like masses and thicknesses of loudspeaker's components are measured by an electrical precision scale and a digital vernier caliper. Third, the identified Thiele-Small parameters are proposed to be used as load boundary conditions for vibration analysis instead of electromagnetic circuit analysis to get a driving force upon bobbin part. Also, these parameters and physical data are used to modify physical properties required for computation to accommodate simulated sound pressure level with measured one for loudspeaker enclosure system. These data like as Young's modulus and thickness for a diaphragm are required for vibration analysis of loudspeaker but not measured accurately. Finally, it was investigated that simulated sound pressure level with full acoustic modeling including an acoustic port for test loudspeaker agreed with experimental result very well in the midrange frequency band(from 100 Hz to 2,000 Hz). In addition, several design parametric study is performed to grasp acoustical behaviors of loudspeaker system due to variations of diaphragm thicknesses and shapes of dust cap.
Keywords
Loudspeaker; Thiele-Small Parameters; Finite Element Method; Acoustic Boundary Element Method; Loudspeaker Acoustic Radiation;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 H. F. Olson, 'Analysis of the Effects of Nonlinear Elements upon the Performance of a Back-Enclosed, Direct Radiator Loudspeaker Mechanism', Journal of Audio Engineering of Society, 10, 2, 156-162, 1962
2 A. J. M. Kaizer, 'Modeling of the Nonlinear Response of an Electrodynamic Loudspeaker by a Volterra Series Expansion', Journal of Audio Engineering of Society, 35, 6, 421-433, 1987
3 F. J. M. Frankort, 'Vibration patterns and radiation behavior of loudspeaker cones', Journal of Audio Engineering of Society, 26 (9), 609-622, 1978
4 J. T. Kim, etat, 'Acoustic Characteristics of a Loudspeaker Obtained by Vibroacoustic Analysis', Proceedings of the Korean Society for Noise and Vibration Engineering, 153-159, 1996
5 S. T. Park, Analysis of loudspeaker by computational and experimental approaches, (InterNoise2003), 602-608, 2003
6 S. T. Park, 'Study on linear parameters identification of loudspeaker', Journal of the Acoustical Society of Korea, 21 (4), 415-420, 2002
7 LEAP application manual. Version 4.6, Linear-X limited., 2000
8 L. L. Beranek, 'Acoustics', the Acoustical Society of America, 1993
9 H. K. Jang and K. J. Kim, 'Identification of Loudspeaker Nonlinearities Using the NARMAX Modeling Technique', Journal of Audio Engineering of Society, 42, 1/2, 50-59, 1993
10 S. T. Park, Study on the acoustic ration according to shapes of loudspeaker diaphragm, Speaker and Audio Technology Innovation Center, Juseong College, fundamental research report, 2002
11 S. T. Park and S. Y. Hong, 'Development of the Two-Stage Harmonic Balance Method to Estimate Nonlinear Parameters of Electrodynamic Loudspeakers', Journal of Audio Engineering of Society, 49-3, 99-116, 2001
12 H. Jeong and J. G. Ih, 'Harmonic Balance Method for Estimating the Nonlinear Parameters of Electrodynamic Direct-Radiator Loudspeakers', Journal of Audio Engineering of Society, 44, 4, 245-257, 1996
13 A. J. M. Kaizer and A. Leeuwestein, 'Calculation of the Sound Radiation of a Nonrigid Loudspeaker Diaphragm Using the Finite-Element Method', Journal of Audio Engineering of Society, 36, 7/8, 948-955, 1988
14 J. T. Kim, J. H. Kim and J. O. Kim, 'Designing a loudspeaker by acoustic analysis and Taguchi method', Proceedings of the Korean Society for Noise and Vibration Engineering, 568-574, 1998
15 W. Klippel, 'Dynamic Measurement and Interpretation of the Nonlinear Parameters of Electrodynamic Loudspeakers', Journal of Audio Engineering of Society, 38, 12, 944-955, 1990
16 J. Porter and E. Geddes, 'Loudspeaker Cabinet Edge Diffraction', Journal of Audio Engineering of Society, 37, 11, 908-918, 1989
17 User document, Comet Acoustics, Chapter 3 acoustic modeling, Automated Analysis Corporation, 1995
18 J. R. Ashley and M. D. Swan, 'Experimental Determination of Low-Frequency Loudspeaker Parameters', Journal of Audio Engineering of Society, 17, 5, 525-531, 1969