Sound absorption of foam-formed softwood fibers: Characterization, modeling, prediction

降噪系数 材料科学 吸收(声学) 表征(材料科学) 声学 工艺工程 纤维 环境科学 能源消耗 复合材料 多孔介质 航程(航空) 工作(物理) 多孔性 软木 扩散 热的 声能 包含能量 建筑材料 材料性能 能量(信号处理) 机械工程 衰减系数 碳纤维 工程物理 过程(计算) 计算机科学
作者
Janis Heldmann,Jose Cucharero,Tapio Lokki
出处
期刊:Applied Acoustics [Elsevier BV]
卷期号:245: 111200-111200 被引量:1
标识
DOI:10.1016/j.apacoust.2025.111200
摘要

In contemporary society, the urgent need to transition to building materials with low or negative carbon dioxide footprints is driven by increasing environmental concerns. Therefore, bio-based materials draw increasing attention in research literature, especially when utilized as thermal and acoustic insulation. Traditional materials predominantly used as acoustic materials, such as mineral wools, incur substantial energy consumption during production, primarily through the melting of sand. In contrast, bio-based materials offer promising alternatives to current market leaders potentially achieving negative carbon footprints due to their low embodied energy and high carbon content. When sourced from industrial by-products, these materials have the ability to store carbon in buildings for decades. It is crucial to investigate the porous structures of these bio-fibrous materials to unlock their full potential. Therefore, this study focuses on the prediction and characterization of foam-formed softwood-based fibers and their acoustic properties. By evaluating analytical models, semi-phenomenological models, and experimental measurements, the prediction of sound absorption based on fiber diameter and density is assessed. Moreover, the material synthesis process and characterization are adapted to achieve a wider range of densities while taking elastic properties into account. The findings reveal that refining a recent analytical model for natural fibers through parameter fitting to non-acoustic parameters yields improved accuracy in predicting sound absorption curves. This work lays the groundwork to create environmentally sustainable sound absorbers with carefully tailored sound absorption properties. • Hybrid JCAL analytical model refined via fitting to non-acoustic parameters for better absorption predictions. • Foam-formed softwood fiber foams tuned across 19–64 kg/m 3 ; absorption maxima shift systematically with density. • JCAL/JCA/JCAL–Biot compared to measurements; JCAL–Biot captures elastic effects in high-density samples. • Sample fitting/compression affects estimated flow resistivity and elastic resonances, highlighting setup sensitivity.

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