Literature DB >> 26101177

Influence of thermodynamic properties of a thermo-acoustic emitter on the efficiency of thermal airborne ultrasound generation.

M Daschewski1, M Kreutzbruck2, J Prager3.   

Abstract

In this work we experimentally verify the theoretical prediction of the recently published Energy Density Fluctuation Model (EDF-model) of thermo-acoustic sound generation. Particularly, we investigate experimentally the influence of thermal inertia of an electrically conductive film on the efficiency of thermal airborne ultrasound generation predicted by the EDF-model. Unlike widely used theories, the EDF-model predicts that the thermal inertia of the electrically conductive film is a frequency-dependent parameter. Its influence grows non-linearly with the increase of excitation frequency and reduces the efficiency of the ultrasound generation. Thus, this parameter is the major limiting factor for the efficient thermal airborne ultrasound generation in the MHz-range. To verify this theoretical prediction experimentally, five thermo-acoustic emitter samples consisting of Indium-Tin-Oxide (ITO) coatings of different thicknesses (from 65 nm to 1.44 μm) on quartz glass substrates were tested for airborne ultrasound generation in a frequency range from 10 kHz to 800 kHz. For the measurement of thermally generated sound pressures a laser Doppler vibrometer combined with a 12 μm thin polyethylene foil was used as the sound pressure detector. All tested thermo-acoustic emitter samples showed a resonance-free frequency response in the entire tested frequency range. The thermal inertia of the heat producing film acts as a low-pass filter and reduces the generated sound pressure with the increasing excitation frequency and the ITO film thickness. The difference of generated sound pressure levels for samples with 65 nm and 1.44 μm thickness is in the order of about 6 dB at 50 kHz and of about 12 dB at 500 kHz. A comparison of sound pressure levels measured experimentally and those predicted by the EDF-model shows for all tested emitter samples a relative error of less than ±6%. Thus, experimental results confirm the prediction of the EDF-model and show that the model can be applied for design and optimization of thermo-acoustic airborne ultrasound emitters.
Copyright © 2015 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Resonance-free ultrasound emitter; Thermal inertia; Thermal sound generation; Thermo-acoustic effect; Thermophone

Mesh:

Year:  2015        PMID: 26101177     DOI: 10.1016/j.ultras.2015.06.008

Source DB:  PubMed          Journal:  Ultrasonics        ISSN: 0041-624X            Impact factor:   2.890


  2 in total

1.  On the Frequency Response of Nanostructured Thermoacoustic Loudspeakers.

Authors:  Paolo La Torraca; Marco Bobinger; Maurizio Servadio; Paolo Pavan; Markus Becherer; Paolo Lugli; Luca Larcher
Journal:  Nanomaterials (Basel)       Date:  2018-10-14       Impact factor: 5.076

Review 2.  Emerging Functions of Nanostructured Porous Silicon-With a Focus on the Emissive Properties of Photons, Electrons, and Ultrasound.

Authors:  Nobuyoshi Koshida; Toshihiro Nakamura
Journal:  Front Chem       Date:  2019-04-24       Impact factor: 5.221

  2 in total

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