4.8 Article

Particle circulation loops in solar energy capture and storage: Gas-solid flow and heat transfer considerations

Journal

APPLIED ENERGY
Volume 161, Issue -, Pages 206-224

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.apenergy.2015.10.005

Keywords

Solar energy; Capture storage; Dense particle suspension; Particle circulation; Fluidized bed; Heat transfer coefficient

Funding

  1. European Commission [282 932]
  2. Energy Programme of CNRS
  3. Agence Nationale de la Recherche of the French Government [ANR-10-EQPX-49-SOCRATE]
  4. China Scholarship Council [201206880024]

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A novel application of powders relies on their use as heat transfer medium for heat capture, conveying and storage. The use of powders as heat transfer fluid in concentrated solar systems is discussed with respect to current technologies. The specific application reported upon is the use of powder loops in Solar Power Tower plants. In the proposed receiver technology, SiC powder is conveyed as a dense particle suspension through a multi-tube solar receiver in a bubbling fluidization mode, the upwards flow being established by pressurizing the powder feed. Tests were conducted with a single-tube receiver unit at the 1 MW solar furnace of CNRS (Odeillo Font-Romeu, F). The measured wall-to-suspension heat transfer coefficient is a function of operating temperature, applied air velocity and imposed solid circulation flux: values increased with increasing solids flux from similar to 430 to 1120 W/m(2) K. Empirical approaches and a heat transfer model were applied to compare experimental and predicted values of the heat transfer coefficient, with a fair agreement obtained. The research moreover provides initial data concerning the overall economy of the system. The high temperature of the circulating powder leads to an increased power cycle efficiency, an increased storage density, reduced thermal power requirements, reduced heliostat field size, reduced parasitic power consumption and increased plant capacity factor. (C) 2015 Elsevier Ltd. All rights reserved.

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