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  • Addressing the adverse cold air inflow effects for a short natural draft dry cooling tower through swirl generation

    Author(s)
    Dai, Yuchen
    Kaiser, Antonio S
    Lu, Yuanshen
    Klimenko, Alexander Y
    Dong, Peixin
    Hooman, Kamel
    Griffith University Author(s)
    Dai, Yuchen
    Year published
    2019
    Metadata
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    Abstract
    Short natural draft dry cooling towers (NDDCTs) are susceptible to cold air inflow. A transient simulation on Gatton tower is carried out to study the time-dependent cold air inflow characteristic. Our results show that, the cold air inflow penetrates inside the tower after a short period of pseudo-steady state, and a steady state with the cold air inflow is finally formed. We also investigate the possibility of inducing swirling motions to counter the cold inflow. The results demonstrate that, by reducing the local vortices caused by the specific tower structure, and thinning the boundary layer thickness, swirl is able to ...
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    Short natural draft dry cooling towers (NDDCTs) are susceptible to cold air inflow. A transient simulation on Gatton tower is carried out to study the time-dependent cold air inflow characteristic. Our results show that, the cold air inflow penetrates inside the tower after a short period of pseudo-steady state, and a steady state with the cold air inflow is finally formed. We also investigate the possibility of inducing swirling motions to counter the cold inflow. The results demonstrate that, by reducing the local vortices caused by the specific tower structure, and thinning the boundary layer thickness, swirl is able to decrease the cold air inflow effect. Finally, feasibility of the suggested approach was verified by comparing the energy required to create the swirl with the extra heat transfer from the heat exchangers in the tower which would have not been materialized because of the cold inflow. It was observed that, an extra 40 kW heat transfer gain can be anticipated if only 1 W is spent to induce the swirl.
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    Journal Title
    International Journal of Heat and Mass Transfer
    Volume
    145
    DOI
    https://doi.org/10.1016/j.ijheatmasstransfer.2019.118738
    Subject
    Engineering
    Mathematical sciences
    Physical sciences
    Science & Technology
    Physical Sciences
    Technology
    Thermodynamics
    Engineering, Mechanical
    Publication URI
    http://hdl.handle.net/10072/414538
    Collection
    • Journal articles

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