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http://dx.doi.org/10.7836/kses.2012.32.5.041

Design of Heliostat Field for 200kW Tower Type Solar Thermal Power Plant  

Park, Young Chil (Dept. of Electrical Engineering and Information Technology, Seoul National University of Science and Technology)
Publication Information
Journal of the Korean Solar Energy Society / v.32, no.5, 2012 , pp. 41-51 More about this Journal
Abstract
Heliostat field is the most important subsystem in the tower type solar thermal power plant since its optical performance affects the total system efficiency most significantly while the construction cost of it is the major part of total construction cost in such a power plant. Thus a well designed heliostat field to maximize the optical efficiency as well as to minimize the land usage is very important. This work presents methodology, procedures and result of heliostat filed design for 200kW solar thermal power plant built recently in Daegu, Korea. A $2{\times}2(m)$ rectangular shaped receiver located at 43(m) high and tilted $28^{\circ}$ toward heliostat field, 450 of heliostats of which the reflective surface is formed by 4 of $1{\times}1(m)$ flat plate mirror facet, and the land area having about $140{\times}120(m)$ size are used to form the heliostat field. A procedure to deploy 450 heliostats in radial staggered nonblocking formation is developed. Also the procedures to compute the cosine effect, intercept ratio, blocking and shading ratio in the field are developed. Finally the heliostat filed is designed by finding the optimal radial distance and azimuthal spacing in radial staggered nonblocking formation such that the designed heliostat field optical efficiency could be maximized. The designed heliostat field has 77% of annual average optical efficiency, which is obtained by annually averaging the optical efficiencies computed between the time of where sun elevation angle becomes $10^{\circ}$ after sunrise and the time of where sun elevation angle becomes $10^{\circ}$ before sunset in each day.
Keywords
Tower type solar thermal power plant; Heliostat field design; Heliostat field optical efficiency;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 M.H. Park, "Introduction of Daegu City Gas Power Tower Project", The Magazine of Korean Solar Energy Society, Vol. 9, No. 2, 2010, pp.14-18
2 X. Wei, "Study on the Heliostat Filed Design in the Solar Thermal Power Plant", Ph.D Dissertation, Chinese Academy of Sciences, China, May, 2009
3 M. Sanchez and M.Romero, "Methodology for Generation of Heliostat Field Layout in Central Receiver Systems based on Yearly Normalized Energy Surfaces", Solar Energy 20, 2006, pp. 861-874
4 Steve Schell, "Design and Evaluation of esolar's Heliostat Fields", Solar Energy 85, 2011, pp. 614-619   DOI
5 Y.C. Park, "Design of Structure of Heliostat Reflective Surface for 200kW Tower Type Solar Thermal Power Plant", J. of the Korean Solar Energy Society, Vol.31, No.2, 2011, pp. 53-62   과학기술학회마을   DOI
6 Y.C. Park, "Analysis of Energy Concentration Characteristics of Heliostat used in 200kW Tower Type Solar Thermal Power Plant", J. of the Korean Solar Energy Society, Vol. 31, No. 3, 2011, pp. 80-88   과학기술학회마을   DOI
7 http://en.wikipedia.org/wiki/List_of_solar_thermal_power_stations
8 F.M.F. Siala and M.E. Elayeb, "Mathematical Formulation of a Graphical Method for a Nonblocking Heliostat Field Layout", Solar Energy 23, 2001, pp. 77-92
9 M. Schmitz, P. Schwarzbo, R. Buck et. al, "Assessment of Potential Improvement due to Multiple Apertures in Central Receiver Systemswith Secondary Concentrators", Solar Energy, 80, 2006, pp. 111-120   DOI
10 R.H. McFee, "Power Collection Reduction by Mirror Surface Nonflatness and Tracking Error for a Central Receiver Solar Power System", Applied Optics, Vol. 14 No. 7, 1975, pp. 1493-150   DOI
11 Clifford Ho, "Software and Codes for Analysis of Concentrating Solar Power Technologies", SANDIA Report, SAND 2008-8053, 2008