Cross-scale moisture transport and moisture-gradient evolution in timber building materials during dehumidification drying

Non-uniform moisture redistribution during drying affects the quality and dimensional stability of timber, yet the connection between microscopic water-state transitions and macroscopic moisture gradients remains unclear. This study developed a cross-scale framework to investigate moisture transport in elm and Mongolian Scots pine during controlled dehumidification drying. A cross-scale characterization strategy integrating relaxation-resolved benchtop TD-NMR and depth-resolved single-sided TD-NMR was employed to correlate moisture-state transitions with spatial moisture-gradient evolution and apparent transport behavior. Free water was removed rapidly during the early stage, creating pronounced surface-to-core gradients, whereas bound-water removal was slower because of reduced molecular mobility and stronger water–cell-wall interactions. Elm exhibited a stronger stage-dependent decrease in apparent moisture diffusivity (Dapp) during the transition from free-water-dominated to bound-water-dominated drying, whereas Mongolian Scots pine maintained relatively lower and more stable Dapp values. During the free-water-dominated stage, the average Dapp was approximately 0.793 × 10−9 m2 s−1 for elm and 0.418 × 10−9 m2 s−1 for Mongolian Scots pine. Moreover, the apparent fiber saturation point (FSP) front reached the 5-mm specimen core within 8.945–11.243 h in elm, compared with 16.985–19.000 h in Mongolian Scots pine, demonstrating faster internal moisture redistribution in elm. These results provide quantitative parameters for evaluating drying uniformity and optimizing moisture-controlled timber processing.

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Publication Details

Journal
Drying Technology
Published
2026-10-09
DOI
https://doi.org/10.1080/07373937.2026.2744751
Primary Topic
Wood Treatment and Properties
Type
article
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article

Cross-scale moisture transport and moisture-gradient evolution in timber building materials during dehumidification drying

赵万磊, Yupeng Wu, Minghui Zhang, Ziyang Zhang et al.
Drying Technology
Wood Treatment and Properties
article

Cross-scale moisture transport and moisture-gradient evolution in timber building materials during dehumidification drying

赵万磊, Yupeng Wu, Minghui Zhang, Ziyang Zhang, Zhihong Zhao, Shen Wang, Long Zhou, Ximing Wang, Zheyu Li, Wenjing Liu
article en

Abstract

Non-uniform moisture redistribution during drying affects the quality and dimensional stability of timber, yet the connection between microscopic water-state transitions and macroscopic moisture gradients remains unclear. This study developed a cross-scale framework to investigate moisture transport in elm and Mongolian Scots pine during controlled dehumidification drying. A cross-scale characterization strategy integrating relaxation-resolved benchtop TD-NMR and depth-resolved single-sided TD-NMR was employed to correlate moisture-state transitions with spatial moisture-gradient evolution and apparent transport behavior. Free water was removed rapidly during the early stage, creating pronounced surface-to-core gradients, whereas bound-water removal was slower because of reduced molecular mobility and stronger water–cell-wall interactions. Elm exhibited a stronger stage-dependent decrease in apparent moisture diffusivity (Dapp) during the transition from free-water-dominated to bound-water-dominated drying, whereas Mongolian Scots pine maintained relatively lower and more stable Dapp values. During the free-water-dominated stage, the average Dapp was approximately 0.793 × 10−9 m2 s−1 for elm and 0.418 × 10−9 m2 s−1 for Mongolian Scots pine. Moreover, the apparent fiber saturation point (FSP) front reached the 5-mm specimen core within 8.945–11.243 h in elm, compared with 16.985–19.000 h in Mongolian Scots pine, demonstrating faster internal moisture redistribution in elm. These results provide quantitative parameters for evaluating drying uniformity and optimizing moisture-controlled timber processing.

Drying Technology
Inner Mongolia Agricultural University (CN)
Openalex Percentile: Top 15%
Wood Treatment and Properties
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