Test-bench for the experimental characterization of porous material used in thermoacoustic refrigerators
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作者:
Poignand, Gaelle
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Univ Mans LAUM, Le Mans Univ, Inst Acoust, Lab Acoust,Grad Sch IA GS,CNRS,UMR 6613, Le Mans, FranceUniv Mans LAUM, Le Mans Univ, Inst Acoust, Lab Acoust,Grad Sch IA GS,CNRS,UMR 6613, Le Mans, France
Poignand, Gaelle
[1
]
Olivier, Come
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Univ Mans LAUM, Le Mans Univ, Inst Acoust, Lab Acoust,Grad Sch IA GS,CNRS,UMR 6613, Le Mans, France
Ctr Transfert Technol Mans CTTM, Le Mans, FranceUniv Mans LAUM, Le Mans Univ, Inst Acoust, Lab Acoust,Grad Sch IA GS,CNRS,UMR 6613, Le Mans, France
Olivier, Come
[1
,2
]
Penelet, Guillaume
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Univ Mans LAUM, Le Mans Univ, Inst Acoust, Lab Acoust,Grad Sch IA GS,CNRS,UMR 6613, Le Mans, FranceUniv Mans LAUM, Le Mans Univ, Inst Acoust, Lab Acoust,Grad Sch IA GS,CNRS,UMR 6613, Le Mans, France
Penelet, Guillaume
[1
]
机构:
[1] Univ Mans LAUM, Le Mans Univ, Inst Acoust, Lab Acoust,Grad Sch IA GS,CNRS,UMR 6613, Le Mans, France
[2] Ctr Transfert Technol Mans CTTM, Le Mans, France
The design of thermoacoustic coolers involves an adequate modeling of the thermoacoustic core's performance, which requires, in particular, a precise knowledge of their thermo-physical properties. Materials such as wire mesh stacks, foams, or compressed fibrous media are hard to describe, and their thermo-physical properties are rarely well enough quantified. Moreover, the classical linear thermoacoustic theory is not sufficient to accurately describe the performance of these materials. This paper deals with the experimental performance characterization of various materials for thermoacoustic heat pumping. A dedicated experimental test-bench has been specially developed, which is composed of two loudspeakers placed at opposite ends of a waveguide containing the porous material and a feedback loop to control the acoustic field in the porous material. Its originality is attributable to the possibility of identifying the optimal acoustic field, specific to each material, that maximizes the temperature difference at the ends of the material. Moreover, a specific protocol is implemented to access and compare the thermoacoustic heat flux through various materials at these optimal acoustic fields. Comparison of the experimental and theoretical results shows a reasonable agreement. (C) 2022 Acoustical Society of America.
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Univ Paris Nanterre, Lab Therm Interfaces Environm LTIE, EA 4415, 50 Rue Sevres, F-92410 Ville Davray, France
SAFRAN LANDING SYST, Thermal Simulat, Wheels & Brakes Div, Site Jean Paul Bechat, Inovel Parc Sud,7 Rue Gen Valerie Andre, F-78140 Velizy Villacoublay, FranceUniv Paris Nanterre, Lab Therm Interfaces Environm LTIE, EA 4415, 50 Rue Sevres, F-92410 Ville Davray, France
Meunier, Cedric
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Bauzin, Jean-Gabriel
Laraqi, Najib
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Univ Paris Nanterre, Lab Therm Interfaces Environm LTIE, EA 4415, 50 Rue Sevres, F-92410 Ville Davray, FranceUniv Paris Nanterre, Lab Therm Interfaces Environm LTIE, EA 4415, 50 Rue Sevres, F-92410 Ville Davray, France
Laraqi, Najib
Gapin, Arnaud
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SAFRAN LANDING SYST, Thermal Simulat, Wheels & Brakes Div, Site Jean Paul Bechat, Inovel Parc Sud,7 Rue Gen Valerie Andre, F-78140 Velizy Villacoublay, FranceUniv Paris Nanterre, Lab Therm Interfaces Environm LTIE, EA 4415, 50 Rue Sevres, F-92410 Ville Davray, France
Gapin, Arnaud
Diebold, Jean-Frederic
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SAFRAN LANDING SYST, Thermal Simulat, Wheels & Brakes Div, Site Jean Paul Bechat, Inovel Parc Sud,7 Rue Gen Valerie Andre, F-78140 Velizy Villacoublay, FranceUniv Paris Nanterre, Lab Therm Interfaces Environm LTIE, EA 4415, 50 Rue Sevres, F-92410 Ville Davray, France