Abstract
AbstractAdvanced gas turbine and internal combustion engine combustion chambers operate at highly elevated pressures and temperatures. Therefore, spray vaporization analysis cannot be limited to the atmospheric environment since evaporation strongly depends on ambient conditions. Presently, the effect of air pressure and temperature on droplet evaporation rate was investigated by using both a transient and a steady-state approach. A corresponding states model was derived for the steady-state evaporation rate for n-alkanes in the range of C2–C9 with an excellent fit quality and < 1% model uncertainty, considering the thermophysical data uncertainties. The model was tested for C1, C10, and C12 n-alkanes as well with low success. The ambient conditions were evaluated in terms of reduced pressures and temperatures, covering the range of 0.02–0.5 and 1.2–1.5, respectively. However, the applicability of the model was limited to reduced temperature of 1.3–1.5, as higher discrepancy was observed between the trends of the different n-alkanes at lower temperatures. Since the heat-up phase of practical sprays in combustion chambers is often short, the present model might significantly reduce the computational effort required for liquid evaporation calculations.
Funder
Nemzeti Kutatási, Fejlesztési és Innovaciós Alap
Emberi Eroforrások Minisztériuma
Innovációs és Technológiai Minisztérium
Magyar Tudományos Akadémia
Budapest University of Technology and Economics
Publisher
Springer Science and Business Media LLC
Subject
Physical and Theoretical Chemistry,General Physics and Astronomy,General Chemical Engineering
Reference56 articles.
1. Abramzon, B., Sirignano, W.A.: Droplet vaporization model for spray combustion calculations. Int. J. Heat Mass Transf. 32, 1605–1618 (1989). https://doi.org/10.1016/0017-9310(89)90043-4
2. AlZahrani, A.A., Dincer, I.: Modeling of n-Hexane and n-Octane liquid fuel jets in gaseous crossflow for evaporation, combustion and breakup evaluation. Int. Commun. Heat Mass Transf. 88, 203–210 (2017). https://doi.org/10.1016/j.icheatmasstransfer.2017.08.015
3. Ansys Fluent Theory Guide 2020 R1. (2020)
4. Bergman, T.L., Lavine, A.S., Incropera, F.P., DeWitt, D.P.: Fundamentals of Heat and Mass Transfer. Wiley, Hoboken (2017)
5. Borghesi, G., Krisman, A., Lu, T., Chen, J.H.: Direct numerical simulation of a temporally evolving air/n-dodecane jet at low-temperature diesel-relevant conditions. Combust. Flame. 195, 183–202 (2018). https://doi.org/10.1016/j.combustflame.2018.02.020
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