Model za numeričku simulaciju skladišnika osetne toplote
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U ovom radu je predstavljen model numeričke simulacije skladišnika osetne toplote. Program je razvijan za skladišnike cilindričnog oblika, kakvi se često sreću u instalacijama u kojima je nosilac toplote tečnost. Model omogućava prostornu (trodimenzionalnu) analizu prenosa toplote i mase u skladišniku. U tekstu je opisana korišćena metodologija, da bi zatim bio prikazan ilustrativni primer.
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IVANČIĆ, Aleksandar; OLIVA, Assensi.
Model za numeričku simulaciju skladišnika osetne toplote.
KGH – Klimatizacija, grejanje, hlađenje, [S.l.], v. 25, n. 1, p. 63-67, nov. 2016.
ISSN 2560-340X.
Dostupno na: <https://izdanja.smeits.rs/index.php/kgh/article/view/519>. Datum pristupa: 13 july 2026
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Reference
[1] Duffie, J. A., Beckman, W. A.: Solar Engineering of Thermal Processes. Wiley Interscience, New York, 1991.
[2] Fanney, A. H., Klein, S. A.: Thermal Performance Comparison for Solar Hot Water Syslem Subjected to Various Collectors and Heat Exchanger Flow Rates, Solar Energy,40, 1988, pp. 1-11.
[3] *** : Handbook of Numerical Heat Transfer, Wiley Interscience, New York, 1988
[4] Hollands, K. G. T., Lightstone, M. F.: A Review of Low Flow, Stratified-Tank Solar Water Heating Systems, Solar Energy, 43, 1989, pp. 97-105,
[5] Ivančić, A., Oliva, A., Perez Segarra, C. D., Schweiger, H.: Three-Dimensional Numerical Simulation of Liquid Thermal Storage Tanks, ISES Solar World Congress, Budapest, 1993.
[6] Ivančić, A., Oliva, A., Perez Segarra, C. D., Costa, M.: Transfer Simulation in Vertical Cylindrical Enclosures for Supercritical Rayleigh Number and Arbitrary Side-Wall Conductivity. submitted to Int. J. of Heat and Mass Transfer, 1996.
[7] Mutch, J. J.: Residential Water Heating, Fuel Consumption Economics and Public Policy, RAND, Dept. R. 1498, NSF, 1974.
[8] Van Doormaal, J. P., Raithby, G. D.: Enhancements of the Simple Method for Predicting Incompressible Fluid Flow, Numerical Heat Transfer, 7, 1984, pp. 147-163.
[9] Wong, H. Y.: Heat Transfer for Engineers, Longman, London, 1977.
[10] Wuestling, M. D., Klein, S. A., Duffie, J. A.: Promising Control Alternatives for Solar Water Heating Syslem, J. Solar Energy Eng., 107, 1985, pp. 215-221
[11] Zurigat, Y. H., Maloney, K. J. Ghajar, A. J.: A Comparison Study of One-Dimensional Models for Stratified Thermal Storage Tanks, ASME J. Solar Energy Eng., 111, 1989,pp. 204-210.
[2] Fanney, A. H., Klein, S. A.: Thermal Performance Comparison for Solar Hot Water Syslem Subjected to Various Collectors and Heat Exchanger Flow Rates, Solar Energy,40, 1988, pp. 1-11.
[3] *** : Handbook of Numerical Heat Transfer, Wiley Interscience, New York, 1988
[4] Hollands, K. G. T., Lightstone, M. F.: A Review of Low Flow, Stratified-Tank Solar Water Heating Systems, Solar Energy, 43, 1989, pp. 97-105,
[5] Ivančić, A., Oliva, A., Perez Segarra, C. D., Schweiger, H.: Three-Dimensional Numerical Simulation of Liquid Thermal Storage Tanks, ISES Solar World Congress, Budapest, 1993.
[6] Ivančić, A., Oliva, A., Perez Segarra, C. D., Costa, M.: Transfer Simulation in Vertical Cylindrical Enclosures for Supercritical Rayleigh Number and Arbitrary Side-Wall Conductivity. submitted to Int. J. of Heat and Mass Transfer, 1996.
[7] Mutch, J. J.: Residential Water Heating, Fuel Consumption Economics and Public Policy, RAND, Dept. R. 1498, NSF, 1974.
[8] Van Doormaal, J. P., Raithby, G. D.: Enhancements of the Simple Method for Predicting Incompressible Fluid Flow, Numerical Heat Transfer, 7, 1984, pp. 147-163.
[9] Wong, H. Y.: Heat Transfer for Engineers, Longman, London, 1977.
[10] Wuestling, M. D., Klein, S. A., Duffie, J. A.: Promising Control Alternatives for Solar Water Heating Syslem, J. Solar Energy Eng., 107, 1985, pp. 215-221
[11] Zurigat, Y. H., Maloney, K. J. Ghajar, A. J.: A Comparison Study of One-Dimensional Models for Stratified Thermal Storage Tanks, ASME J. Solar Energy Eng., 111, 1989,pp. 204-210.
