Development of a Validated CFD Model For Simulation of Tube Heat Exchangers: A Comparison of Methods and Models
Hämtar...
Publicerad
Författare
Typ
Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Modellbyggare
Tidskriftstitel
ISSN
Volymtitel
Utgivare
Sammanfattning
Thermal management is an increasingly relevant topic within a range of engineering
fields and industries. From cooling of batteries in electric cars and trucks to higher
efficiency turbofan engines, the demand for well performing and lightweight compact
heat exchanger designs is high. Having the ability to measure the performance of
a heat exchanger geometry using numerical methods with good confidence in the
results is of great benefit as it can save time and money compared to experimental
methods. In this thesis, two tube heat exchanger geometries have been modelled and
simulated in Siemens Star-CCM+, a commercial CFD software. The heat exchanger
geometries are taken from the book Compact Heat Exchangers (1984) by William M.
Kays and Alexander L. London. This book contains experimental data for a wide
range of heat exchanger designs. The simulation models are validated by comparing
two key performance parameters for heat exchangers to experimental data; the
Fanning friction factor and the Colburn j-factor. Two modelling approaches have
been investigated; a ”single channel” approach and a ”unit cell” approach. Using a
”single channel” approach with a steady coupled solver, friction factor values within
5% error to experimental values are achieved across most Reynolds numbers for both
heat exchangers. Colburn j-factor values within 10-12% error to experimental values
are achieved for the tube heat exchanger and within 23-28% for the finned tube
heat exchanger. Results show that the SST k-omega turbulence model together with
the Gamma-ReTheta transition model show the best ability to match experimental
results and trends for both geometries.
Beskrivning
Ämne/nyckelord
CFD, heat exchanger, thermal management, Star-CCM+, computational fluid dynamics, heat transfer, turbulence models
