Expansion chambers with single-inlet and double-outlet provide desirable broadband acoustic attenuation similar to simple (single inlet/outlet) chambers and reduce the #ow noise and back pressure in exhaust systems. The present study develops a three-dimensional analytical approach to determine the
ACOUSTIC ATTENUATION PERFORMANCE OF CIRCULAR EXPANSION CHAMBERS WITH EXTENDED INLET/OUTLET
โ Scribed by A. Selamet; Z.L. Ji
- Publisher
- Elsevier Science
- Year
- 1999
- Tongue
- English
- Weight
- 234 KB
- Volume
- 223
- Category
- Article
- ISSN
- 0022-460X
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โฆ Synopsis
The acoustic attenuation performance of circular expansion chambers with extended inlet/outlet is investigated. Three approaches are employed to determine the transmission loss: (1) a two-dimensional, axisymmetric analytical solution for the concentric conยฎguration; (2) a three-dimensional computational solution based on the substructure boundary elementยฑtransfer impedance matrix technique; and (3) experiments on an extended impedance tube set-up with expansion chambers fabricated with ยฎxed inlet, outlet, and chamber diameters, and varying lengths for the extended ducts and the chamber, and varying oset locations of the inlet and outlet. The transmission loss results from all three approaches are shown to agree well for the concentric conยฎgurations. The computational approach is also applied to determine the acoustic attenuation performance of asymmetric expansion chambers with extended inlet/outlet, which also compares well with the experiments. The eect of geometry (lengths of the extended ducts and expansion chamber, and the oset angles of the asymmetric conยฎguration) on the multidimensional wave propagation and acoustic attenuation performance is discussed in detail.
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