Fresnel lens concentrator

4799778
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Inventors

Jebens, Robert W.

Application #

849437

Filed

Apr-8-1986

Published

Jan-24-1989

Current US Class

126/698
136/246
136/259
359/721
359/742

International Classes

G02B 003/08

Field of Search

350/452 350/437 136/246 126/440

Assignee

General Electric Company (Fairfield, CT)

Examiners

Corbin; John K.

Attorney, Agent or Firm

Magee; T. H.

US Patent References

3991741   Roof-lens solar coll...
4050782   Mode separator an...
4103673   Non-tracking solar...
4134393   Solar energy collec...
4165734   Solar motor
4282858   Solar energy syste...
4312330   Focusing device for...

Referenced by:

View Backward References

Other References

James et al., "Fresnel Optics for Solar Concentration on Photovoltaic Cells", 13th IEEE Photovoltaic Specialists Conference, June 5-8, 1978. Burgess et al., "One Kilowatt Photovoltaic Subsystem using Fresnel Lens Concentrators", 12th IEEE Photovoltaic Specialists Conference, Nov. 15-18, 1976.

Citation

Cite This Patent

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Abstract
The Fresnel lens concentrator is formed by a specially designed Fresnel lens and a solar cell located on the axis of the lens at its focal plane. The lens is designed so that its central facets project the light from the sun towards the outer periphery of the cell and facets progressively toward the periphery of the lens project light progressively toward the center of the cell to obtain a uniform distribution of light on the cell. Adjacent groups of facets of the lens project the light alternately in front and beyond the cell to maintain a constant light intensity for a certain depth of focus of the lens.
 
Claims
What is claimed is:

1. A Fresnel lens having a central optical axis passing through perpendicularly to the lens plane and comprising a plurality of concentric ring-like facets for converging light onto a target plane through which said central optical axis passes at least substantially perpendicularly to illuminate said target plane in a plurality n'.sub.t in number of concentric ring-like areas about said axis, wherein successive groups of contiguous facets of said lens have respective consecutive ordinal numbers respectively from the center at the optical axis to the periphery of said lens, which successive odd-numbered groups of contiguous facets converge light onto successive ring-like areas of said target plane respectively from the periphery to the center of said target at said axis, which successive even-numbered groups of contiguous facets also converge light onto said successive ring-like areas of said target plane respectively from the periphery to the center of said target, wherein each ring-like area of said target plane receives substantially focussed light passing through a respective group of consecutive ring-like facets, said groups each containing a predetermined number of such facets according to a fraction of the total light as would pass through that group as through the entire leans under conditions of uniform illumination by light parallel to said optical axis so as to maintain a uniform light intensity over the surface of the target plane under such illumination conditions wherein each even-numbered group of said consecutive ring-like facets is arranged to converge its fraction of said light so as not to cross the optical axis before reaching the target plane and wherein each odd-numbered group of said consecutive ring-like facets is arranged to converge its fraction of said light so as to cross the optical axis before reaching the target plane.



Description
This invention relates to a new Fresnel lens design for solar concentrators.

BACKGROUND OF THE INVENTION

The usual procedure in solar concentrators is to use a standard type Fresnel lens designed for point focus and to place the target inside of focus to obtain the desired concentration ratio and to slightly modify the lens facet angles to improve the uniformity of the intensity. There are three problems with this design approach which are particularly noticeable for photovoltaic concentrator arrays where one wants to use minimum size cells.

First, the image of the sun projected on the target has poorly defined boundaries because (assuming the lens is circular) they are formed by the rays mainly passing through the edge portion of the lens. The outer rays are more poorly defined at the target plane than the central rays due to the greater spread from dispersion and facet imperfections. These outer rays also have a longer path length giving rise to a larger spread due to the finite angle (one half degree) the sun subtends.
 
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