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March 10, 2026Advanced Engineering Materials0 citations

Binderless Acoustic Panels From Rice Straw Pulp With Tunable Fiber Architectures

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PRPhattharasaya RattanawongkunHZHao ZouNTNattaya Tawichai

Key Points

  • To explore the use of rice straw pulp in creating binderless acoustic panels with tunable properties.
  • Used three forming processes: wet fibers (W), dry fibers (D), and a combination (DW).
  • Developed 20 mm thick panels with controlled water usage to regulate fibrous porosity and bonding.
  • Evaluated physical characteristics and sound absorption performance of each panel type.
  • The DW panel achieved a noise reduction coefficient (NRC) up to 0.92, outperforming most synthetic fiber materials.
  • The D panel provided exceptional sound absorption, while the W panel was notably stiff.
  • Life cycle assessment showed a 50% lower carbon footprint compared to synthetic counterparts.

Abstract

The trend for eco‐friendly products is driving the usage of green materials in building applications, including sound absorption panels. This study aims to utilize natural pulp fibers extracted from rice straw waste to create binderless acoustic panels, using three forming processes: wet fibers (W), dry fibers (D), and a combination of wet and dry fibers (DW) in varying depths. Because the amount of water use in the three forming processes was regulated, the 20 mm thick panels exhibited significant differences in fibrous porosity architectures and varied degrees of fiber‐to‐fiber bonding, resulting in distinct physical characteristics and sound absorption. The W panel was stiff, while the D panel achieved exceptional sound absorption. The DW panel, on the other hand, coupled the benefits of high rigidity with superior sound absorption across a wide frequency range. The current DW panel, with a noise reduction coefficient (NRC) up to 0.92, outperformed other natural fiber‐based panels and most commercial synthetic fiber materials (NRC 0.10–0.95). A “cradle‐to‐gate” life cycle assessment confirmed that these natural pulp panels have a significantly lower carbon footprint (50% less) than petroleum‐based synthetic counterparts, highlighting their potential as an excellent green acoustic material for noise management in buildings and construction.

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Cite This Study

Rattanawongkun et al. (2026) studied this question.

synapsesocial.com/papers/69af957570916d39fea4d1abhttps://doi.org/10.1002/adem.202500447
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