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Figure 1: Sketch of the geometry. The porous material is marked in blue, the acoustic source by q.
Figure 2: Frequency response function.

Description

The Porous absorber benchmark models the sound pressure in a cavity excited by a single harmonic load. One side of the cavity is covered by a layer of poroelastic material, which adds dissipation to the system. The geometry of this model follows [1]. Various projection-based model order reduction methods have been applied and compared using this example as a benchmark in [2].

The cavity has the dimensions 0.75×0.6×0.4m and one wall is covered by a 0.05m thick poroelastic layer acting as a sound absorber. The poroelastic material is described by the Biot theory[3] and the system is excited by a point source located in a corner opposite of the porous layer. The material parameters for the acoustic fluid and the poroelastic material have been chosen according to[1]. The transfer function measures the mean acoustic pressure inside the cavity.

Dimensions

System structure:

(K+γ~(s)Kp,1+ρ~f(s)Kp,2+s2M+s2γ~(s)Mp,1+s2ρ~(s)Mp,2+s2ϕ2R~(s)Mp,3)x(s)=B,y(s)=Cx(s),

with the frequency dependent functions for the effective densities ρ~(s),ρ~f(s), the parameter γ~(s) relating the effective densities and the frequency dependent elasticity coefficients to the porosity, and the scaled effective bulk modulus R~(s). For more details on the functions, see [1].


System dimensions:

K,Kp,1,Kp,2,M,Mp,1,Mp,2,Mp,3n×n, Bn×1, C1×n, with n=386076.


Data

The data is available at Zenodo.

Remarks

  • The numerical model resembles the results from[1] in a frequency range from 100Hz to 1000Hz. The frequency response in this range is also included in the dataset.
  • The finite element discretization has been performed with Kratos Multiphysics.
  • A comparison of different interpolation-based MOR methods using this benchmark example is available in[2].

Citation

To cite this benchmark, use the following references:

  • For the benchmark itself and its data:
 @Misc{dataAum23,
   author =       {Aumann, Q.},
   title =        {Matrices for an acoustic cavity with poroelastic layer},
   howpublished = {hosted at {MORwiki} -- Model Order Reduction Wiki},
   year =         2023,
   doi =          {10.5281/zenodo.8087341}
 }
  • For the background on the benchmark:
 @Article{AumW23,
   author =       {Aumann, Q. and Werner, S.~W.~R.},
   title =        {Structured model order reduction for vibro-acoustic problems using interpolation and balancing methods},
   journal =      {Journal of Sound and Vibration},
   volume =       543,
   year =         2023,
   pages =        {117363},
   doi =          {10.1016/j.jsv.2022.117363},
   publisher =    {Elsevier {BV}}
 }


References

  1. 1.0 1.1 1.2 1.3 R. Rumpler, P. Göransson, J.-F. Deü. "A finite element approach combining a reduced-order system, Padé approximants, and an adaptive frequency windowing for fast multi-frequency solution of poro-acoustic problems", International Journal for Numerical Methods in Engineering, 97: 759-784, 2014.
  2. 2.0 2.1 Q. Aumann, S. W. R. Werner. "Structured model order reduction for vibro-acoustic problems using interpolation and balancing methods", Journal of Sound and Vibration, 543: 117363, 2023.
  3. M. A. Biot. "Theory of propagation of elastic waves in a fluid-saturated porous solid. I. Low-frequency range", J. Acoust. Soc. Am., 28(2):168–178, 1956.