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Tytuł artykułu

Modelling heat flow in a heat storage system with the use of the Finite Volume Method

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Non-stationary heat flow was analysed in a heat storage system comprising a flat multilayer structure with different parameters and thickness. Concrete was the heat storage material, and water was the transfer medium responsible for supplying and evacuating heat from the storage medium. It was assumed that the modelled heat storage system may be powered by a solar thermal collector. Data were collected over a period of 24 hours, and they were analysed separately for the heat accumulation phase and the heat recovery phase. Calculations were performed in a program developed by the author based on the Finite Volume Method (FVM). The main aim is to illustrate the basic features of the developed numerical code and to find effective methods for evaluating the applicability of the modelled structures for heat storage. Except that, in the paper the possibilities are discussed for the use of the source component of the diffusion equation to describe various phenomena of physical, chemical and biological nature. The present article was motivated by the observation that FVM is currently not applied in the process of designing heat storage systems.
Rocznik
Strony
27--49
Opis fizyczny
Bibliogr. 37 poz., il. (w tym kolor.), rys., wykr.
Twórcy
  • Department of Mechanics and Machine Design, University of Warmia and Mazury in Olsztyn
Bibliografia
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  • [9] Laing D., Bauer T., Steinmann, W.-D., Lehmann D., Advanced high temperature latent heat storage system - design and test results, The 11th International Conference on Thermal Energy Storage, E stock 14-17 June 2009, Stockholm, Sweden.
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  • [12] Liu Y-M., Chung K-M, Chang K-C., Lee T-S., Performance of Thermosyphon Solar Water Heaters in Series, Energies, Vol. 5, 2012, 3266-3278.
  • [13] Martin K., Escudero C., Erkoreka A., Flores I., Sala J.M., Equivalent wall method for dynamic characterisation of thermal bridges, Energy and Buildings, Vol. 55, 2012, 704-714.
  • [14] Mierzwiczak M., Steady-state heat conduction in multilayered plate with temperature-dependent thermal conductivity (in Polish), Scientific papers of Poznan University of Technology, Vol. 9 (2008), 67-79.
  • [15] Nance D.V., Finite volume algorithms for heat conduction, Air Force Research Laboratory, Technical Report for period December 2009 - May 2010. AFRL-RW-EG-TR-2010-049.
  • [16] Nikitin V., Lapko A., On modelling heat and moisture transfer in sandwich wall and slab structures, Journal of Civil Engineering and Management, Vol. 12(4), 2006, 337-343.
  • [17] Niu F., Yu Y., Location and optimization analysis of capillary tube network embedded in active tuning building wall, Energy, Vol. 97, 2016, 36-45.
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  • [19] Pasupathy A., Velraj R., Phase Change Material Based Thermal Storage for Energy Conservation in Building Architecture International Energy Journal, Vol. 7(2), 2006, 147-159.
  • [20] Patil P., Prasad J.S.V.R.K., The unsteady state finite volume numerical grid technique for multidimensional problems, International journal of advances in applied mathematics and mechanics, Vol. 2(2), 2014, 78-87.
  • [21] Pomianowski M., Heiselberg P., Jensen R.L., Dynamic heat storage and cooling capacity of a concrete deck with PCM and thermally activated building system, Energy and Buildings, Vol. 53, 2012, 96-107.
  • [22] Ramin H., Hanafizadeh P, AkhavanBehabadi M.A., Comparative study between dynamic transient and degree-hours methods to estimate heating and cooling loads of building’s wall, JCAMECH, Vol. 46(2), 2015, 135-165.
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  • [28] Sobieski W., Trykozko A., Discretisation of a thermal diffusion equation in multilayer structures with variable material parameters and dierent thicknesses (submitted).
  • [29] Szymocha K., Advanced thermal solar system with heat storage for residential house space heating, SESCI 2005 Conference British Columbia Institute of Technology, Burnaby, British Columbia, Canada, August 20-24, 2005.
  • [30] Tamene Y., Numerical and Economical Study of Thermal Insulation in Multilayer Wall Exposed to Real Climatic Conditions, Athens Journal of Technology Engineering, Vol. 1(2), (2014), 137-148.
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  • [33] Wongpanyo W., Charoensawan P., Rakwichian W., Seetapand P., Improving Heat Transfer Performance of Concrete Thermal Energy Storage with Use of Local Material, International Journal of Renewable Energy, Vol. 3(2), 2008, 15-26.
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  • [36] Valentina A. S., Carmelo E. M., Giuseppe M. G., Rosa Di Maggio, Fabrizio G., Domenico M., Marco L., Application of Solar Energy, chapter 6 "Conceptual Study of a Thermal Storage Module for Solar Power Plants with Parabolic Trough Concentrators". INTECH, 2013.
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Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-de766530-8637-4a6d-87c8-d38fe4335c3e
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