Abstract
Drying of paper and board is conventionally achieved through alternating conduction (steam-heated cylinders) and pocket convection (heated air over the paper web surface). These conventional drying systems rely heavily on steam from fossil fuels, resulting in inefficiencies, high energy usage, and thermal losses due to surface-driven mechanisms. To address these challenges, an experimental system, with in-situ drying characteristics measurements, was developed to investigate process intensification using ultrasonic-based dewatering—a volumetric, pressure-driven acoustic energy system—integrated with conventional drying. The objectives of this study are to assess the impact of ultrasonics (US) on dewatering; compare performances to conventional drying systems; identify improvements in drying rate and energy use as a function of moisture content; and gain potential insights on heat and mass transfer mechanisms during US-assisted drying. US performance was evaluated across frequencies, power levels, pulp types, and basis weights. Results show that improvements to ultrasonic applications in conjunction with convection were 30–43 % in drying rate and 20–35 % in drying time over continuous and intermittent applications. When combined with conduction and convection, ultrasonics yielded up to 20 % improvement in both rate and time and up to 20 % reduction in energy consumption. Observations support a hypothesis of extension of the constant rate period due to improved capillary flow at higher moisture content and enhancing vapor diffusion and boundary layer disruption at lower moisture contents during falling rate period. These findings will inform future modeling, simulation, design and optimization of advanced drying systems.
| Original language | English (US) |
|---|---|
| Article number | 127235 |
| Journal | International Journal of Heat and Mass Transfer |
| Volume | 248 |
| DOIs | |
| State | Published - Sep 15 2025 |
Bibliographical note
Publisher Copyright:© 2025 Elsevier Ltd
Keywords
- Acoustic
- Heat transfer
- In-situ data acquisition
- Mass transfer
- Process intensification
- Ultrasonic drying
- Vibration
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