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Advanced two phase flow model for transient molten salt receiver system simulation.

Authors :
Schwager, Christian
Flesch, Robert
Schwarzbözl, Peter
Herrmann, Ulf
Boura, Cristiano José Teixeira
Source :
Solar Energy. Jan2022, Vol. 232, p362-375. 14p.
Publication Year :
2022

Abstract

• A detailed dynamic simulation model for a Molten Salt Solar Tower system is implemented in Modelica®. • A two-phase flow model is developed for filling and drainage simulations of a molten salt receiver system. • In a discretized absorber tube model maximum values of local fluid and tube wall temperatures are approximated. • Startup and shutdown simulation including the entirely controlled receiver system are conducted. • Validation with CFD simulation is carried out. In order to realistically predict and optimize the actual performance of a concentrating solar power (CSP) plant sophisticated simulation models and methods are required. This paper presents a detailed dynamic simulation model for a Molten Salt Solar Tower (MST) system, which is capable of simulating transient operation including detailed startup and shutdown procedures including drainage and refill. For appropriate representation of the transient behavior of the receiver as well as replication of local bulk and surface temperatures a discretized receiver model based on a novel homogeneous two-phase (2P) flow modelling approach is implemented in Modelica Dymola®. This allows for reasonable representation of the very different hydraulic and thermal properties of molten salt versus air as well as the transition between both. This dynamic 2P receiver model is embedded in a comprehensive one-dimensional model of a commercial scale MST system and coupled with a transient receiver flux density distribution from raytracing based heliostat field simulation. This enables for detailed process prediction with reasonable computational effort, while providing data such as local salt film and wall temperatures, realistic control behavior as well as net performance of the overall system. Besides a model description, this paper presents some results of a validation as well as the simulation of a complete startup procedure. Finally, a study on numerical simulation performance and grid dependencies is presented and discussed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0038092X
Volume :
232
Database :
Academic Search Index
Journal :
Solar Energy
Publication Type :
Academic Journal
Accession number :
154720296
Full Text :
https://doi.org/10.1016/j.solener.2021.12.065