http://www.cnr.it/ontology/cnr/individuo/prodotto/ID66149
Validation of 1D and 3D analyses for performance prediction of an automotive silencer (Articolo in rivista)
- Type
- Label
- Validation of 1D and 3D analyses for performance prediction of an automotive silencer (Articolo in rivista) (literal)
- Anno
- 2011-01-01T00:00:00+01:00 (literal)
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#doi
- 10.4271/2011-24-0217 (literal)
- Alternative label
Siano D. 1, Auriemma F. 2, Bozza F. 2, Rammal H. (2011)
Validation of 1D and 3D analyses for performance prediction of an automotive silencer
in SAE technical paper series
(literal)
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#autori
- Siano D. 1, Auriemma F. 2, Bozza F. 2, Rammal H. (literal)
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#altreInformazioni
- 3D analysis; Acoustic simulations; Acoustical analysis; Adjacent surfaces; Boundary elements; Commercial software; Duct systems; Dynamic behaviors; Experimental test; Fluid machines; Helmholtz's equations; Ideal geometry; Manufacturing process; Mean flow; Mean flow velocities; Muffler design; Non-linear flow equations; Numerical approaches; Operating condition; Perfectly matched; Performance prediction; Sound attenuation; Three-dimensional (3-D) simulation; Transmission loss (literal)
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#url
- http://www.scopus.com/record/display.url?eid=2-s2.0-84877171613&origin=resultslist&sort=plf-f&src=s&sid=D2903B70FAF2FEC967135C4572598CC0.WlW7NKKC52nnQNxjqAQrlA%3a190&sot=aut&sdt=a&sl=35&s=AU-ID%28%22Siano%2c+Daniela%22+26647006900%29&relpos=8&relpos=8&citeCnt=5&searchTerm=AU-ID%28%5C%26quot%3BSiano%2C+Daniela%5C%26quot%3B+26647006900%29# (literal)
- Rivista
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#note
- SAE Paper 2011-24-0217 (ISSN 0148-7191).
(literal)
- Note
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#affiliazioni
- 1) Istituto Motori, CNR, Napoli; 2) UniversitĂ \"Federico II\", Napoli. (literal)
- Titolo
- Validation of 1D and 3D analyses for performance prediction of an automotive silencer (literal)
- Abstract
- One dimensional (1D) and three dimensional (3D) simulations are widely used in technical acoustics to predict the behavior of duct system elements including fluid machines. In particular, referring to internal combustion engines, the numerical approaches can be used to estimate the Transmission Loss (TL) of mufflers, air boxes, catalytic converters, etc. TL is a parameter commonly used in almost any kind of acoustical filters, in order to assess the passive effects related to their sound attenuation. In this paper, a previous 1D-3D acoustical analysis of a commercial muffler, has been improved and experimentally validated. Features related to the manufacturing process, like the coupling of adjacent surfaces and the actual shape of components, have been noticed to heavily affect the muffler behavior. Hence, although numerical analyses are usually performed on ideal geometries (perfectly matched and shaped), schematizations utilized for acoustic simulations of real mufflers are being suggested to do not neglect these important aspects. On the other hand, for a given initial muffler design, the manufacturing process is assessed to be a critical aspect also for its remarkable effects on the acoustics. In this work, results have been carried out under different muffler operating conditions related to different mean flow velocities and presence or not of internal insulating material. 1D analyses have been performed by implementing a commercial software, solving the nonlinear flow equations which characterize the wave propagation phenomena. 1D approach has also been utilized to evaluate the fluid dynamic behavior of the studied muffler in terms of pressure drop when a mean flow is imposed. 3D results are obtained in absence of mean flow by using a commercial software based on Boundary Element approach and solving the three dimensional Helmholtz's equation. Finally, during the experimental tests, the muffler has been treated as an acoustic two-port element. (literal)
- One dimensional (1D) and three dimensional (3D)
simulations are widely used in technical acoustics to predict
the behavior of duct system elements including fluid
machines. In particular, referring to internal combustion
engines, the numerical approaches can be used to estimate the
Transmission Loss (TL) of mufflers, air boxes, catalytic
converters, etc. TL is a parameter commonly used in almost
any kind of acoustical filters, in order to assess the passive
effects related to their sound attenuation.
In this paper, a previous 1D-3D acoustical analysis of a
commercial muffler, has been improved and experimentally
validated. Features related to the manufacturing process, like
the coupling of adjacent surfaces and the actual shape of
components, have been noticed to heavily affect the muffler
behavior. Hence, although numerical analyses are usually
performed on ideal geometries (perfectly matched and
shaped), schematizations utilized for acoustic simulations of
real mufflers are being suggested to do not neglect these
important aspects. On the other hand, for a given initial
muffler design, the manufacturing process is assessed to be a
critical aspect also for its remarkable effects on the acoustics.
In this work, results have been carried out under different
muffler operating conditions related to different mean flow
velocities and presence or not of internal insulating material.
1D analyses have been performed by implementing a
commercial software, solving the nonlinear flow equations
which characterize the wave propagation phenomena. 1D
approach has also been utilized to evaluate the fluid dynamic
behavior of the studied muffler in terms of pressure drop
when a mean flow is imposed.
3D results are obtained in absence of mean flow by using a
commercial software based on Boundary Element approach
and solving the three dimensional Helmholtz's equation.
Finally, during the experimental tests, the muffler has been
treated as an acoustic two-port element. (literal)
- Prodotto di
- Autore CNR
Incoming links:
- Prodotto
- Autore CNR di
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#rivistaDi