Dish-Stirling solar receiver designs are investigated and evaluated for possible use with sensible energy storage in single-phase materials. The designs differ from previous receivers in utilizing axial conduction in the storage material for attenuation of the solar flux transients due to intermittent cloud cover, and in having convective heat removal at the base of the receiver. One-dimensional, time-dependent heat transfer equations are formulated for the storage material temperature field, including losses to the environment, and a general heat exchange effectiveness boundary condition at the base. The solar source flux is represented as the sum of steady and periodic cloud-transient components, with the steady component solved subject to specified receiver thermal efficiency. For the transient cloud-cover component the Fast Fourier Transform algorithm (FFT) is applied, and the complex transfer function of the receiver is obtained as a filter for the input flux spectrum. Inverse transformation results in the amplitudes and mode shapes of the transient temperature component. By adjustment of design parameters, the cloud-cover amplitude variations of the outlet gas temperature can be limited to acceptable magnitudes, thus simplifying control systems.
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February 1996
Research Papers
A Direct-Heating Energy-Storage Receiver for Dish-Stirling Solar Energy Systems
K. O. Lund
K. O. Lund
Center for Energy and Combustion Research, 0411 Department of AMES, University of California, La Jolla, CA 92093-0411
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K. O. Lund
Center for Energy and Combustion Research, 0411 Department of AMES, University of California, La Jolla, CA 92093-0411
J. Sol. Energy Eng. Feb 1996, 118(1): 15-19 (5 pages)
Published Online: February 1, 1996
Article history
Received:
June 1, 1994
Revised:
September 1, 1995
Online:
February 14, 2008
Citation
Lund, K. O. (February 1, 1996). "A Direct-Heating Energy-Storage Receiver for Dish-Stirling Solar Energy Systems." ASME. J. Sol. Energy Eng. February 1996; 118(1): 15–19. https://doi.org/10.1115/1.2847900
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