Performance Limits of Heliostat Fields
- 1 November 1998
- journal article
- Published by ASME International in Journal of Solar Energy Engineering
- Vol. 120 (4), 240-246
- https://doi.org/10.1115/1.2888126
Abstract
Geometric and thermodynamic arguments are used to derive upper limits on the performance of a solar energy collection system, consisting of an axisymmetric heliostat field, a solar tower, secondary optics and a black receiver. Performance limits on collected power, concentration, and work output are presented. Performance of tower systems with several secondary optics options is compared: tower-top Compound Parabolic Concentrator (CPC), Tailored Edge-Ray Concentrator (TERC) approximated by a cone, and Cassegrainian with ground-level CPC or Compound Elliptic Concentrator (CEC). Optimized ray tracing is used to generate the design parameters of the secondary concentrators that yield the highest optical efficiency. The results show that the tower-top Cone provides the best performance regarding both concentration and efficiency, except for very large fields. The Cassegrainian designs come in second, but become equal and even better than the Cone for large fields. The results for the Cassegrainian are sensitive to the value of the reflectivity, due to the additional reflections incurred. The choice of a CEC is better than a CPC for the terminal concentration in a Cassegrainian system, but the difference is small. The suitability of the different design options for high-temperature solar applications is discussed. The recommendations regarding optical configuration depend on field size, as well as on application-specific constraints.Keywords
This publication has 14 references indexed in Scilit:
- Advanced Engineering ThermodynamicsPublished by Wiley ,2016
- A solar-driven combined cycle power plantSolar Energy, 1998
- Toward large-scale solar energy systems with peak concentrations of 20,000 sunsPublished by SPIE-Intl Soc Optical Eng ,1997
- The DIAPR: A High-Pressure, High-Temperature Solar ReceiverJournal of Solar Energy Engineering, 1997
- Metals, nitrides, and carbides via solar carbothermal reduction of metal oxidesEnergy, 1995
- Tailored edge-ray concentrators as ideal second stages for Fresnel reflectorsApplied Optics, 1993
- A cellwise method for the optimization of large central receiver systemsSolar Energy, 1978
- Hydrogen- and Oxygen from WaterScience, 1977
- Tower reflector for solar power plantSolar Energy, 1976
- A Theory of Concentrators of Solar Energy on a Central Receiver for Electric Power GenerationJournal of Engineering for Power, 1976