振荡流下多孔介质中热动力和粘性动力的实验表征

IF 5.1 3区 工程技术 Q2 ENERGY & FUELS Thermal Science and Engineering Progress Pub Date : 2024-11-23 DOI:10.1016/j.tsep.2024.103057
Elio Di Giulio , Camille Perrot , Raffaele Dragonetti
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引用次数: 0

摘要

多孔材料是各行各业的集成组件,具有高表面积、低密度和良好的渗透性等独特性能。多孔材料应用广泛,包括能量转换、吸声和热声现象。要优化多孔材料在这些应用中的性能,最重要的是了解多孔材料微结构在声波等振荡流作用下错综复杂的能量转换机制。目前用于测试多孔材料的技术只能表征多孔基质在声波作用下的行为,而不考虑能量量。本文介绍了两种新型测量技术,通过明确区分热松弛和粘性耗散效应,可以对多孔材料内部耗散的能量进行实验量化。研究涉及一个模型,用于量化粘性和热能行为,并从中推导出分析表达式,指导所建议实验技术的阐述,最后通过实验数据进行验证。对三种不同的样品(聚酯纤维、金属丝网和三角孔样品)进行了实验测试,这些样品主要用于声学和热声学领域。实验数据与每个样品的理论预测进行比较,从而验证了测量方法。通过将理论建模与实验验证相结合,这项工作有助于更广泛地了解和利用多孔材料在能源转换中的应用。
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Experimental characterization of thermal and viscous powers in porous media under oscillating flow
Porous materials are integrated components across various industries, offering unique properties such as high surface area, low density, and good permeability. They have a wide range of applications including energy conversion, with relevance in sound absorption and thermoacoustic phenomena. Understanding the intricate energy conversion mechanisms within the microstructure of porous materials under oscillating flows, such as sound waves, is paramount for optimizing their performance in these applications. The techniques currently used for testing porous materials enable the characterization of the behaviour of the porous matrix when subjected to an acoustic wave, without consideration to energetic quantities. Here, this paper presents two novel measurement techniques allowing for the experimental quantification of the power dissipated within the porous material, by making an explicit distinction between thermal relaxation and viscous dissipation effects. The study involves a model to quantify the viscous and thermal energetic behaviours from which analytical expressions guiding the elaboration of the proposed experimental techniques are derived, and finally validated through experimental data. Experimental tests have been carried out on three different samples (polyester fibers, wire mesh and triangular pores sample) largely used both in acoustic and thermoacoustic fields. The experimental data compared with the theoretical prediction for each sample allow to validate the measurement methodologies. By bridging theoretical modelling with experimental validation, this work contributes to the broader understanding and utilization of porous materials in energy conversion applications.
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来源期刊
Thermal Science and Engineering Progress
Thermal Science and Engineering Progress Chemical Engineering-Fluid Flow and Transfer Processes
CiteScore
7.20
自引率
10.40%
发文量
327
审稿时长
41 days
期刊介绍: Thermal Science and Engineering Progress (TSEP) publishes original, high-quality research articles that span activities ranging from fundamental scientific research and discussion of the more controversial thermodynamic theories, to developments in thermal engineering that are in many instances examples of the way scientists and engineers are addressing the challenges facing a growing population – smart cities and global warming – maximising thermodynamic efficiencies and minimising all heat losses. It is intended that these will be of current relevance and interest to industry, academia and other practitioners. It is evident that many specialised journals in thermal and, to some extent, in fluid disciplines tend to focus on topics that can be classified as fundamental in nature, or are ‘applied’ and near-market. Thermal Science and Engineering Progress will bridge the gap between these two areas, allowing authors to make an easy choice, should they or a journal editor feel that their papers are ‘out of scope’ when considering other journals. The range of topics covered by Thermal Science and Engineering Progress addresses the rapid rate of development being made in thermal transfer processes as they affect traditional fields, and important growth in the topical research areas of aerospace, thermal biological and medical systems, electronics and nano-technologies, renewable energy systems, food production (including agriculture), and the need to minimise man-made thermal impacts on climate change. Review articles on appropriate topics for TSEP are encouraged, although until TSEP is fully established, these will be limited in number. Before submitting such articles, please contact one of the Editors, or a member of the Editorial Advisory Board with an outline of your proposal and your expertise in the area of your review.
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