Capturing molecular multimode relaxation processes in excitable gases based on decomposition of acoustic relaxation spectra

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Abstract

Existing two-frequency reconstructive methods can only capture primary (single) molecular relaxation processes in excitable gases. In this paper, we present a reconstructive method based on the novel decomposition of frequency-dependent acoustic relaxation spectra to capture the entire molecular multimode relaxation process. This decomposition of acoustic relaxation spectra is developed from the frequency-dependent effective specific heat, indicating that a multi-relaxation process is the sum of the interior single-relaxation processes. Based on this decomposition, we can reconstruct the entire multi-relaxation process by capturing the relaxation times and relaxation strengths of N interior single-relaxation processes, using the measurements of acoustic absorption and sound speed at 2N frequencies. Experimental data for the gas mixtures CO2-N2 and CO2-O2 validate our decomposition and reconstruction approach.

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Zhu, M., Liu, T., Wang, S., & Zhang, K. (2017). Capturing molecular multimode relaxation processes in excitable gases based on decomposition of acoustic relaxation spectra. Measurement Science and Technology, 28(8). https://doi.org/10.1088/1361-6501/aa544d

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