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首页> 外文期刊>Aerosol Science and Technology: The Journal of the American Association for Aerosol Research >Optimizing the performance of aerosol photoacoustic cells using a finite element model. Part 1: Method validation and application to single-resonator multipass cells
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Optimizing the performance of aerosol photoacoustic cells using a finite element model. Part 1: Method validation and application to single-resonator multipass cells

机译:使用有限元模型优化气溶胶光声电池的性能。 第1部分:方法验证和应用于单谐振器多峰单元

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摘要

Photoacoustic spectroscopy is the technique-of-choice for non-contact and in situ measurements of light absorption coefficients for aerosols. For most aerosol photoacoustic (PA) detectors, a key process is the amplification of the acoustic pressure wave generated from light absorption through excitation of a pressure eigenmode of a PA cell. To our knowledge, no modeling of the acoustics, sensitivity or signal-to-background ratio (SBR) has been performed for the PA cells applied commonly to aerosol absorption measurements. In this Part 1 manuscript, we develop a finite element method (FEM) framework to simulate the acoustic response and SBR of photoacoustic cells. Furthermore, we validate this modeling framework by comparing FEM predictions of single-resonator PA cells with measurements using a prototype single-resonator cell, the geometry of which can be readily adjusted. Indeed, single-resonator cells are applied commonly to aerosol absorption measurements. We show that our model predicts accurately the trends in acoustic properties with changes to cell geometry. We investigate how common geometric features, used to suppress detection of background and noise processes, impact on the SBR of single-resonator PA cells. Such features include using multiple acoustic buffer volumes and tunable air columns. The FEM model and measurements described in this article provide the foundation of a companion paper that reports the acoustic properties and optimization of a two-resonator PA cell used commonly in aerosol research.
机译:光声光谱是用于气溶胶的光吸收系数的非接触式和原位测量的技术。对于大多数气溶胶光声(PA)探测器,关键方法是通过激发PA电池的压力特征模型从光吸收产生的声压波的放大。据我们所知,已经对通常对气溶胶吸收测量应用的PA细胞进行了声学,灵敏度或信号到背景比(SBR)的建模。在这部分1稿中,我们开发了一个有限元方法(FEM)框架来模拟光声电池的声学响应和SBR。此外,我们通过使用原型单谐振器单元比较单谐振器PA电池的单谐振器PA电池的有限元预测来验证该建模框架,其可以容易地调整几何形状。实际上,单谐振电池通常适用于气溶胶吸收测量。我们表明,我们的模型可以准确地预测声学属性的趋势,与细胞几何形状的变化。我们调查了如何抑制背景和噪声过程的常见几何特征,影响单谐振器PA单元的SBR。这些特征包括使用多个声学缓冲体积和可调谐空气列。本文中描述的有限元模型和测量提供了伴随纸质的基础,其报告了在气溶胶研究中通常使用的双共振器PA细胞的声学性质和优化。

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