AI Article Synopsis

  • - The study focuses on two-dimensional mixed convection in a uniquely shaped trapezoidal chamber, featuring a zigzagged lower wall that impacts fluid movement driven by the motion of the upper wall.
  • - It utilizes a nano-encapsulated phase change material (NEPCM) to improve thermal properties, with water as the base fluid, while employing the Galerkin finite element method for analysis.
  • - Findings reveal a parabolic relationship between the melt band curve, Reynolds number, and Hartmann number, indicating that reducing the wave number enhances heat transfer efficiency.

Article Abstract

In a magnetic field, two-dimensional (2D) mixed convection is investigated within a zigzagged trapezoidal chamber. The lower side of the trapezoidal chamber is irregular, in particular, a zigzagged wall with different zigzag numbers N. The fluid particles move in the room due to the motion of the upper wall, while the porosity-enthalpy approach represents the melting process. The thermal parameters of the fluid are enhanced by what is called a nano-encapsulated phase change material (NEPCM) consisting of polyurethane as the shell and a nonadecane as the core, while water is used as the base fluid. In order to treat the governing equations, the well-known Galerkin finite element method (GFEM) is applied. In addition, the heat transfer (HT) irreversibility and the fluid friction (FF) irreversibility are compared in terms of the average Bejan number. The main results show that the melt band curve behaves parabolically at smaller values of Reynolds number (Re) and larger values of Hartmann number (Ha). Moreover, minimizing the wave number is better in order to obtain a higher heat transfer rate.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9565866PMC
http://dx.doi.org/10.3390/nano12193270DOI Listing

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