English

Jet pumps for thermoacoustic applications: design guidelines based on a numerical parameter study

Fluid Dynamics 2015-10-09 v1

Abstract

The oscillatory flow through tapered cylindrical tube sections (jet pumps) is characterized by a numerical parameter study. The shape of a jet pump results in asymmetric hydrodynamic end effects which cause a time-averaged pressure drop to occur under oscillatory flow conditions. Hence, jet pumps are used as streaming suppressors in closed-loop thermoacoustic devices. A two-dimensional axisymmetric computational fluid dynamics model is used to calculate the performance of a large number of conical jet pump geometries in terms of time-averaged pressure drop and acoustic power dissipation. The investigated geometrical parameters include the jet pump length, taper angle, waist diameter and waist curvature. In correspondence with previous work, four flow regimes are observed which characterize the jet pump performance and dimensionless parameters are introduced to scale the performance of the various jet pump geometries. The simulation results are compared to an existing quasi-steady theory and it is shown that this theory is only applicable in a small operation region. Based on the scaling parameters, an optimum operation region is defined and design guidelines are proposed which can be directly used for future jet pump design.

Keywords

Cite

@article{arxiv.1508.05119,
  title  = {Jet pumps for thermoacoustic applications: design guidelines based on a numerical parameter study},
  author = {Joris P. Oosterhuis and Simon Bühler and Douglas Wilcox and Theo H. van der Meer},
  journal= {arXiv preprint arXiv:1508.05119},
  year   = {2015}
}

Comments

The following article has been accepted by the Journal of the Acoustical Society of America. After it is published, it will be found at http://scitation.aip.org/JASA

R2 v1 2026-06-22T10:38:24.336Z