4.7 Article

Experimental and numerical investigation of wall temperature in a heated pipe filled with beads

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijheatmasstransfer.2022.122918

关键词

Bead packings; Forced convection; Wall temperature; Thermal uniformity

资金

  1. National Science & Engineering Research Council of Canada (NSERC)
  2. Research Center for High Performance Polymer and Composite Systems (CREPEC)
  3. Fonds de recherche du Quebec - Natureettechnologies (FRQNT )

向作者/读者索取更多资源

Filling granular materials in empty channels with flowing fluids can enhance heat transfer, but the uniformity of wall temperature is often overlooked. This study numerically investigates the wall temperature uniformity in a pipe filled with ceramic beads and heated by air flow. The effect of various parameters on temperature uniformity is analyzed.
Placing granular materials inside empty channels with coolant or heat transfer fluids flowing through is an effective way to increase the heat transfer rate to the wall. Although this approach has been used in different engineering fields, a particular goal is seldom considered in some applications, namely the tem-perature uniformity of the bounding wall. As temperature varies along the flow direction, a non-uniform temperature field appears on the wall. This bears consequences in some applications such as in electron-ics, battery cooling or composite manufacturing. In the present study, the uniformity of the wall tem-perature is investigated numerically for a typical cylindrical pipe filled with monodisperse ceramic beads and heated by air flow. Numerical simulations based on Reynolds-averaged Navier-Stokes (RANS) Computa-tional Fluid Dynamics (CFD) are performed to analyze the heat transfer to the bounding wall. Because of the uncertainty mentioned in the literature, the applicability of an empirical model reflecting additional sources of production and dissipation of turbulent energy due to beads is firstly evaluated. By comparing the numerical predictions of temperature fields with experimental data, a damping function is needed to adjust these additional source terms to better fit experimental data for bulk Reynolds numbers between 10 0 and 70 0. A parametric study is then conducted to assess the effect of various parameters on the wall temperature uniformity. Results shows that wall materials of low volumetric heat capacity and a reduced wall thickness greatly shorten the duration to reach thermal uniformity. A less pronounced enhancement also exists for larger thermal conductivity of the wall material. However, using beads of lower volumetric heat capacity does not have a major influence on the uniformity of the wall temperature.(c) 2022 Elsevier Ltd. All rights reserved.

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