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Numerična analiza prenosa toplote v mikropretočnem toplotnem menjalniku s pomočjo računalniške dinamike tekočin (CFD)
ID Agnič, Matic (Author), ID Ambrožič, Rok (Mentor) More about this mentor... This link opens in a new window

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Abstract
V diplomskem delu smo analizirali hidrodinamske in toplotne pojave v mikropretočnih toplotnih menjalnikih pri laminarnem toku vode (Re = 1000) in konstantnem toplotnem fluksu (q = 40000 W⋅m$^{-2}$). Cilj je bil poiskati geometrijo kanala, ki je najbolj optimalno odvajala termično energijo. Analizirane so bile tri različne oblike kanalov: raven referenčni kvadraten mikrokanal, ukrivljeni kvadratni sinusni mikrokanali z različnimi amplitudami in valovnimi dolžinami ter široki mikrokanali z razširitvijo. Raziskava je pokazala, da sinusni mikrokanali bistveno izboljšajo odvajanje toplote, saj se v zakrivljenih delih tvorijo Deanovi vrtinci, ki pripomorejo k mešanju tekočine. Najbolj optimalen sinusni model (A = 2 mm in λ = 18 mm) je dosegel skoraj potrojeno vrednost povprečnega koeficienta toplotne prestopnosti in znižal povprečno temperaturo zgornje bakrene plošče za 13 °C glede na raven kanal. Široki mikrokanali so se zaradi nižjih hitrosti toka izkazali za manj učinkovite.

Language:Slovenian
Keywords:računalniška dinamika tekočin, mikropretočni toplotni menjalnik, prenos toplote, optimizacija geometrije
Work type:Bachelor thesis/paper
Typology:2.11 - Undergraduate Thesis
Organization:FKKT - Faculty of Chemistry and Chemical Technology
Year:2026
PID:20.500.12556/RUL-186498 This link opens in a new window
COBISS.SI-ID:291434499 This link opens in a new window
Publication date in RUL:02.09.2026
Views:146
Downloads:20
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Secondary language

Language:English
Title:Numerical analysis of heat transfer in a microchannel heat exchanger using Computational Fluid Dynamics (CFD)
Abstract:
In the thesis, we analyzed hydrodynamic and thermal phenomena in microchannel heat exchangers under laminar water flow (Re = 1000) and constant heat flux (q = 40000 W⋅m$^{-2}$). The goal was to find the type of geometry that most optimally dissipated thermal energy. Three different types of channel geometry were analyzed: straight reference square microchannel, curved square sinusoidal microchannel with various amplitudes and wave lengths, and wide microchannels with expansion. The research showed that sinusoidal microchannels greatly enhanced heat dissipation due to the formation of Dean vortices in curved parts, which contribute to fluid mixing. The most optimal sinusoidal geometry (A = 2 mm, λ = 18 mm) almost tripled the value of average heat transfer coefficient and lowered the average temperature of the upper copper plate by 13 °C with respect to the straight channel. Wide microchannels proved to be less efficient due to lower fluid velocities.

Keywords:computational fluid dynamics, microchannel heat exchanger, heat transfer, geometry optimization

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