Thermoacoustic functions are important parameters of one-dimensional codes used for the design of thermoacoustic engines. The thermal and viscous thermoacoustic functions allow the inclusion of three dimensional effects in one-dimensional codes. These functions are especially important in the regenerator of a thermoacoustic engine, where the thermoacoustic heat pumping occurs. Even though analytical solutions were derived for uniform pores, the thermoacoustic functions for complex geometries such as stacked screen or random fiber regenerators cannot be calculated analytically. In order to gain more insight into the geometry induced complex flow fields, the procedure of Udea, et al. (2009) to estimate the thermoacoustic functions was applied in computational fluid-dynamic simulations. By using two measurement locations outside of the regenerator and modeling the regenerator as an array of uniform pores it is possible to estimate the thermoacoustic functions for complex geometries. Furthermore, a correction method is proposed to quantify the entrance effects at the beginning and end of a regular pore. The simulations are first validated for a uniform cylindrical pore with the help of the analytical solution. Then the correction method is successfully applied to a cylindrical pore with the results closely matching the analytical solution.
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2 June 2013
ICA 2013 Montreal
2–7 June 2013
Montreal, Canada
Engineering Acoustics: Session 1aEA: Thermoacoustics I
May 14 2013
Calculation of thermoacoustic functions with computational fluid dynamics Free
Simon Bühler;
Simon Bühler
Thermal Engineering, University of Twente, P.O. Box 217, Enschede, Overijssel 7500AE Netherlands
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Douglas Wilcox;
Douglas Wilcox
Thermal Engineering, University of Twente, P.O. Box 217, Enschede, Overijssel 7500AE Netherlands
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Joris P. Oosterhuis;
Joris P. Oosterhuis
Thermal Engineering, University of Twente, P.O. Box 217, Enschede, Overijssel 7500AE Netherlands
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Theo H. Van der Meer
Theo H. Van der Meer
Thermal Engineering, University of Twente, P.O.Box 217, Enschede, 7500AE Netherlands
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Simon Bühler
Thermal Engineering, University of Twente, P.O. Box 217, Enschede, Overijssel 7500AE Netherlands
Douglas Wilcox
Thermal Engineering, University of Twente, P.O. Box 217, Enschede, Overijssel 7500AE Netherlands
Joris P. Oosterhuis
Thermal Engineering, University of Twente, P.O. Box 217, Enschede, Overijssel 7500AE Netherlands
Theo H. Van der Meer
Thermal Engineering, University of Twente, P.O.Box 217, Enschede, 7500AE Netherlands
Proc. Mtgs. Acoust. 19, 030003 (2013)
Article history
Received:
January 22 2013
Accepted:
January 24 2013
Citation
Simon Bühler, Douglas Wilcox, Joris P. Oosterhuis, Theo H. Van der Meer; Calculation of thermoacoustic functions with computational fluid dynamics. Proc. Mtgs. Acoust. 2 June 2013; 19 (1): 030003. https://doi.org/10.1121/1.4799088
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