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Palabra: TIME-HARMONIC ACOUSTIC FIELDS (Palabras)
2 registros cumplieron la condición especificada en la base de información BIBCYT. ()
Registro 1 de 2, Base de información BIBCYT
Publicación seriada
Referencias AnalíticasReferencias Analíticas
Autor: Loncaric, J. ; Ryaben'kii, V. S. ; Tsynkov, S. V.
Título: Active Shielding and Control of Noise
Páginas/Colación: pp. 597-626
Url: Ir a http://siamdl.aip.org/getabs/servlet/GetabsServlet?prog=normal&id=SMJMAP000062000002000563000001&idtype=cvips&gifs=Yeshttp://siamdl.aip.org/getabs/servlet/GetabsServlet?prog=normal&id=SMJMAP000062000002000563000001&idtype=cvips&gifs=Yes
SIAM Journal on Applied Mathematics Vol. 62, no. 2 Oct./Dec. 2001
Información de existenciaInformación de existencia

Palabras Claves: Palabras: ACTIVE SHIELDING ACTIVE SHIELDING, Palabras: BESSEL FUNCTIONS BESSEL FUNCTIONS, Palabras: EXACT VOLUMETRIC CANCELLATION EXACT VOLUMETRIC CANCELLATION, Palabras: GENERAL SOLUTION GENERAL SOLUTION, Palabras: GENERALIZED CALDERON'S POTENTIALS GENERALIZED CALDERON'S POTENTIALS, Palabras: INCOMING AND OUTGOING WAVES INCOMING AND OUTGOING WAVES, Palabras: MATERIAL DISCONTINUITIES MATERIAL DISCONTINUITIES, Palabras: NEAR SURFACE CONTROL SOURCES NEAR SURFACE CONTROL SOURCES, Palabras: NOISE CONTROL NOISE CONTROL, Palabras: OPTIMIZATION OPTIMIZATION, Palabras: SPATIAL ANISOTROPIES SPATIAL ANISOTROPIES, Palabras: THE HELMHOLTZ EQUATION THE HELMHOLTZ EQUATION, Palabras: TIME-HARMONIC ACOUSTIC FIELDS TIME-HARMONIC ACOUSTIC FIELDS

Resumen
RESUMEM

RESUMEM

We present a mathematical framework for the active control of time-harmonic acoustic disturbances. Unlike many existing methodologies, our approach provides for the exact volumetric cancellation of unwanted noise in a given predetermined region of space while leaving unaltered those components of the total acoustic field that are deemed friendly. Our key finding is that for eliminating the unwanted component of the acoustic field in a given area, one needs to know relatively little; in particular, neither the locations nor structure nor strength of the exterior noise sources need to be known. Likewise, there is no need to know the volumetric properties of the supporting medium across which the acoustic signals propagate, except, perhaps, in the narrow area of space near the boundary (perimeter) of the domain to be shielded. The controls are built based solely on the measurements performed on the perimeter of the region to be shielded; moreover, the controls themselves (i.e., additional sources) are also concentrated only near this perimeter. Perhaps as important, the measured quantities can refer to the total acoustic field rather than only to its unwanted component, and the methodology can automatically distinguish between the two.

In the paper, we construct a general solution to the aforementioned noise control problem. The apparatus used for deriving the general solution is closely connected to the concepts of generalized potentials and boundary projections of Calderon's type. For a given total wave field, the application of Calderon's projections allows us to definitively split its incoming and outgoing components with respect to a particular domain of interest, which may have arbitrary shape. Then the controls are designed so that they suppress the incoming component for the domain to be shielded or alternatively, the outgoing component for the domain, which is complementary to the one to be shielded. To demonstrate that the new noise control technique is appropriate, we thoroughly work out a two-dimensional model example that allows full analytical consideration.

To conclude, we very briefly discuss the numerical (finite-difference) framework for active noise control that has, in fact, already been worked out, as well as some forthcoming extensions of the current work: optimization of the solution according to different criteria that would fit different practical requirements, applicability of the new technique to quasi-stationary problems, and active shielding in the case of the broad-band spectra of disturbances. In the future, the aforementioned finite-difference framework for active noise control is going to be used for analyzing complex configurations that originate from practical designs.

 

Registro 2 de 2, Base de información BIBCYT
Publicación seriada
Referencias AnalíticasReferencias Analíticas
Autor: HAZARD, CHRISTOPHE ; Ramdani, Karim
Título: Selective Acoustic Focusing Using Time-Harmonic Reversal Mirrors
Páginas/Colación: pp. 1057-1076
Url: Ir a http://epubs.siam.org/sam-bin/dbq/article/42873http://epubs.siam.org/sam-bin/dbq/article/42873
SIAM Journal on Applied Mathematics Vol. 64, no. 3 March/April 2004
Información de existenciaInformación de existencia

Resumen
A mathematical study of the focusing properties of acoustic fields obtained by a time-reversal process is presented. The case of time-harmonic waves propagating in a nondissipative medium containing sound-soft obstacles is considered. In this context, the so-called D.O.R.T. method (decomposition of the time-reversal operator in French) was recently proposed to achieve selective focusing by computing the eigenelements of the time-reversal operator. The present paper describes a justification of this technique in the framework of the far field model, i.e., for an ideal time-reversal mirror able to reverse the far field of a scattered wave. Both cases of closed and open mirrors, that is, surrounding completely or partially the scatterers, are dealt with. Selective focusing properties are established by an asymptotic analysis for small and distant obstacles. Key words. acoustic scattering, time-reversal, far field operator, small obstacles

 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 

UCLA - Biblioteca de Ciencias y Tecnologia Felix Morales Bueno

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