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Publication date: 1 June 2001

Jon Rigelsford

46

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Sensor Review, vol. 21 no. 2
Type: Research Article
ISSN: 0260-2288

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Article
Publication date: 1 June 2001

Jack Hollingum

77

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Sensor Review, vol. 21 no. 2
Type: Research Article
ISSN: 0260-2288

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Article
Publication date: 1 June 2001

Jack Hollingum

44

Abstract

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Sensor Review, vol. 21 no. 2
Type: Research Article
ISSN: 0260-2288

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Article
Publication date: 1 June 2001

Jack Hollingum

48

Abstract

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Sensor Review, vol. 21 no. 2
Type: Research Article
ISSN: 0260-2288

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Article
Publication date: 1 June 2001

Jack Hollingum

562

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Sensor Review, vol. 21 no. 2
Type: Research Article
ISSN: 0260-2288

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Article
Publication date: 1 January 2003

Gerry McKiernan

186

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Library Hi Tech News, vol. 20 no. 1
Type: Research Article
ISSN: 0741-9058

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Article
Publication date: 17 May 2011

45

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International Journal of Climate Change Strategies and Management, vol. 3 no. 2
Type: Research Article
ISSN: 1756-8692

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Article
Publication date: 1 February 2000

B.H. Rudall

241

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Kybernetes, vol. 29 no. 1
Type: Research Article
ISSN: 0368-492X

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Article
Publication date: 11 May 2012

237

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International Journal of Climate Change Strategies and Management, vol. 4 no. 2
Type: Research Article
ISSN: 1756-8692

Open Access
Article
Publication date: 8 November 2023

Armando Di Meglio, Nicola Massarotti, Samuel Rolland and Perumal Nithiarasu

This study aims to analyse the non-linear losses of a porous media (stack) composed by parallel plates and inserted in a resonator tube in oscillatory flows by proposing numerical…

Abstract

Purpose

This study aims to analyse the non-linear losses of a porous media (stack) composed by parallel plates and inserted in a resonator tube in oscillatory flows by proposing numerical correlations between pressure gradient and velocity.

Design/methodology/approach

The numerical correlations origin from computational fluid dynamics simulations, conducted at the microscopic scale, in which three fluid channels representing the porous media are taken into account. More specifically, for a specific frequency and stack porosity, the oscillating pressure input is varied, and the velocity and the pressure-drop are post-processed in the frequency domain (Fast Fourier Transform analysis).

Findings

It emerges that the viscous component of pressure drop follows a quadratic trend with respect to velocity inside the stack, while the inertial component is linear also at high-velocity regimes. Furthermore, the non-linear coefficient b of the correlation ax + bx2 (related to the Forchheimer coefficient) is discovered to be dependent on frequency. The largest value of the b is found at low frequencies as the fluid particle displacement is comparable to the stack length. Furthermore, the lower the porosity the higher the Forchheimer term because the velocity gradients at the stack geometrical discontinuities are more pronounced.

Originality/value

The main novelty of this work is that, for the first time, non-linear losses of a parallel plate stack are investigated from a macroscopic point of view and summarised into a non-linear correlation, similar to the steady-state and well-known Darcy–Forchheimer law. The main difference is that it considers the frequency dependence of both Darcy and Forchheimer terms. The results can be used to enhance the analysis and design of thermoacoustic devices, which use the kind of stacks studied in the present work.

Details

International Journal of Numerical Methods for Heat & Fluid Flow, vol. 34 no. 1
Type: Research Article
ISSN: 0961-5539

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