Photoacoustics Modelling using Amplitude Mode Expansion Method in a Multiscale T-cell Resonator
Said El-Busaidy, Bernd Baumann, Marcus Wolff, Lars Duggen

TL;DR
This paper introduces the amplitude mode expansion (AME) method as a fast and accurate simulation tool for modeling photoacoustic signals in a multiscale T-cell resonator, offering a computationally efficient alternative to viscothermal methods.
Contribution
The paper presents the AME method for simulating photoacoustic signals in complex resonators, demonstrating its accuracy and efficiency compared to traditional viscothermal simulations.
Findings
AME method shows good agreement with viscothermal results
Small frequency shifts are observed in AME resonances
AME provides faster simulations suitable for design optimization
Abstract
The photoacoustic (PA) effect consisting of the generation of an acoustic signal based on the absorption of light has already demonstrated its potential for various spectroscopic applications for both gaseous and solid samples. The signal produced during photoacoustic spectroscopy (PAS) measurement is, however, usually weak and needs to be amplified. This is achieved by using a photoacoustic cell resonator where acoustic resonances are utilized to significantly boost the signal. Therefore, a PA resonator has a significant role in PAS measurement set-ups. When designing or optimizing a new PA resonator, numerical methods are generally used to simulate the photoacoustic signal generation. In this paper, the amplitude mode expansion (AME) method is presented as a quick and accurate simulation tool. The method is used to simulate the photoacoustic signal in a multi-scale T-cell resonator…
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Taxonomy
TopicsSpectroscopy and Laser Applications · Atmospheric Ozone and Climate · Atmospheric and Environmental Gas Dynamics
