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[27330] Artykuł:

Calculations of flow boiling heat transfer in a minichannel based on liquid crystal and infrared thermography data

Czasopismo: Heat Transfer Engineering   Tom: 38, Zeszyt: 3, Strony: 332-346
ISSN:  0145-7632
Wydawca:  TAYLOR & FRANCIS INC, 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
Opublikowano: 2017
Liczba arkuszy wydawniczych:  1.00
 
  Autorzy / Redaktorzy / Twórcy
Imię i nazwisko Wydział Katedra Do oświadczenia
nr 3
Grupa
przynależności
Dyscyplina
naukowa
Procent
udziału
Liczba
punktów
do oceny pracownika
Liczba
punktów wg
kryteriów ewaluacji
Magdalena Piasecka orcid logo WMiBMKatedra Mechaniki**Takzaliczony do "N"Inżynieria mechaniczna3310.00.00  
Kinga Strąk orcid logo WMiBMKatedra Mechaniki**Niespoza "N" jednostki3310.00.00  
Beata Maciejewska orcid logo WZiMKKatedra Informatyki i Matematyki Stosowanej**Takzaliczony do "N"Inżynieria mechaniczna3310.00.00  

Grupa MNiSW:  Publikacja w czasopismach wymienionych w wykazie ministra MNiSzW (część A)
Punkty MNiSW: 20
Klasyfikacja Web of Science: Article


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Keywords:

flow boiling heat transfer  rectangular minichannel  enhanced foil surface  liquid crystal thermography  infrared thermography  FEM  inverse heat conduction problem  Trefftz functions 



Abstract:

This paper analyses results concerning flow boiling heat transfer in two parallel asymmetrically heated vertical minichannels. The heating element for FC-72 Fluorinert flowing in the minichannels was a thin foil with an enhanced surface on the side in contact with the fluid. In one minichannel, changes in the temperature on the smooth side of the foil were monitored using liquid crystal thermography. Changes in the temperature on the outer surface of the glass in one minichannel and on the foil in the other minichannel were observed using infrared thermography. The heat transfer coefficient at the foil-fluid interface was calculated on the basis of one- and two-dimensional heat transfer models. In the 2D method, the distribution of temperature on the enhanced side of the foil was determined by solving the inverse heat conduction problem. The governing equations were solved using the finite element method combined with the Trefftz functions used as shape functions (FEMT). The temperature measurement points were located at the boundary nodes of elements. Local values of the heat transfer coefficient calculated with the one- and two-dimensional models were analysed in the function of the distance from the minichannel inlet. The values obtained with the two models were similar.