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Electroelastic investigation of drying rate in the direct contact ultrasonic fabric dewatering process

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  • Dupuis, Eric D.
  • Momen, Ayyoub M.
  • Patel, Viral K.
  • Shahab, Shima

Abstract

Ultrasonic vibrations, used to atomize liquids into a fine mist, are a promising solution for the future of efficient clothes drying technology. The world’s first ultrasonic dryer—demonstrated by researchers at Oak Ridge National Laboratory—successfully applies the scientific principles behind ultrasonic drying, and several working prototypes have been demonstrated. This technology is based on direct mechanical coupling between mesh piezoelectric transducers and wet fabric. During the atomization process, vertical oscillations of a contained liquid, called Faraday excitations, result in the formation of standing waves on the liquid surface. At increasing amplitudes and frequencies of oscillation, wave peaks become extended and form “necks” connecting small secondary droplets to the bulk liquid. When the oscillation reaches an acceleration threshold, the droplet momentum is sufficient to break the surface tension of the neck and enable the droplets to travel away from the liquid. In this work, we investigate the atomization process using an ultrasonic transducer as it pertains to moisture retained within a fabric. An experimentally validated electromechanical analytical-numerical model is proposed. This model bridges the vibrations of a piezoelectric mesh transducer to the critical acceleration needed for fabric drying to occur. Then, the drying rate model is developed, consisting of an initial nonlinear region due to atomization, followed by a linear thermal evaporation region. The models developed identify the influence of key parameters on ultrasonic drying and will aid in improving atomizer design for efficient, timely fabric drying. This study is the first proposed model for the ultrasonic atomization of fabrics saturated with water, applicable to any type of transducer. The results present a non-dimensional equation for the ultrasonic dewatering of fabrics, dependent only on transducer acceleration and the surface area of the cloth. The development of this technology using the proposed physical models will allow for global reductions in electrical demand related to clothes drying.

Suggested Citation

  • Dupuis, Eric D. & Momen, Ayyoub M. & Patel, Viral K. & Shahab, Shima, 2019. "Electroelastic investigation of drying rate in the direct contact ultrasonic fabric dewatering process," Applied Energy, Elsevier, vol. 235(C), pages 451-462.
  • Handle: RePEc:eee:appene:v:235:y:2019:i:c:p:451-462
    DOI: 10.1016/j.apenergy.2018.10.100
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    References listed on IDEAS

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    1. Patel, Viral K. & Gluesenkamp, Kyle R. & Goodman, Dakota & Gehl, Anthony, 2018. "Experimental evaluation and thermodynamic system modeling of thermoelectric heat pump clothes dryer," Applied Energy, Elsevier, vol. 217(C), pages 221-232.
    2. Peng, Chang & Ravi, Saitej & Patel, Viral K. & Momen, Ayyoub M. & Moghaddam, Saeed, 2017. "Physics of direct-contact ultrasonic cloth drying process," Energy, Elsevier, vol. 125(C), pages 498-508.
    3. Ng, Ah Bing & Deng, Shiming, 2008. "A new termination control method for a clothes drying process in a clothes dryer," Applied Energy, Elsevier, vol. 85(9), pages 818-829, September.
    4. Yadav, V. & Moon, C.G., 2008. "Fabric-drying process in domestic dryers," Applied Energy, Elsevier, vol. 85(2-3), pages 143-158, February.
    5. Peng, Chang & Momen, Ayyoub M. & Moghaddam, Saeed, 2017. "An energy-efficient method for direct-contact ultrasonic cloth drying," Energy, Elsevier, vol. 138(C), pages 133-138.
    6. Yadav, V. & Moon, C.G., 2008. "Modelling and experimentation for the fabric-drying process in domestic dryers," Applied Energy, Elsevier, vol. 85(5), pages 404-419, May.
    7. Stawreberg, Lena & Nilsson, Lars, 2013. "Potential energy savings made by using a specific control strategy when tumble drying small loads," Applied Energy, Elsevier, vol. 102(C), pages 484-491.
    8. Letschert, Virginie & Desroches, Louis-Benoit & Ke, Jing & McNeil, Michael, 2013. "Energy efficiency – How far can we raise the bar? Revealing the potential of best available technologies," Energy, Elsevier, vol. 59(C), pages 72-82.
    9. Bansal, Pradeep & Sharma, Karishma & Islam, Sumana, 2010. "Thermal analysis of a new concept in a household clothes tumbler dryer," Applied Energy, Elsevier, vol. 87(5), pages 1562-1571, May.
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