Control of directional display
US-9740034-B2 · Aug 22, 2017 · US
US10359560B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10359560-B2 |
| Application number | US-201615097750-A |
| Country | US |
| Kind code | B2 |
| Filing date | Apr 13, 2016 |
| Priority date | Apr 13, 2015 |
| Publication date | Jul 23, 2019 |
| Grant date | Jul 23, 2019 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
An imaging directional backlight apparatus including a waveguide, a light source array, for providing large area directed illumination from localized light sources. The waveguide may include a stepped structure, in which the steps may further include extraction features optically hidden to guided light, propagating in a first forward direction. Returning light propagating in a second backward direction may be refracted, diffracted, or reflected by the features to provide discrete illumination beams exiting from the top surface of the waveguide. Viewing windows are formed through imaging individual light sources and hence defines the relative positions of system elements and ray paths. Lateral non-uniformities of output image are improved by means of adjustment of input aperture shape and reflective aperture shape. Cross talk in autostereoscopic and privacy displays may further be improved by light blocking layers arranged on the input end of the waveguide.
Opening claim text (preview).
The invention claimed is: 1. A directional waveguide comprising: an input end; first and second opposed, laterally extending guide surfaces for guiding light along the waveguide; and a reflective end facing the input end for reflecting the input light back along the waveguide, the second guide surface being arranged to deflect the reflected input light through the first guide surface as output light, and the waveguide being arranged to direct the output light into optical windows in output directions that are distributed in a lateral direction in dependence on the input position of the input light, wherein the reflective end is a Fresnel reflector comprising alternating reflective facets and draft facets, the reflective facets providing the Fresnel reflector with positive optical power laterally, and wherein the ratio between (a) a height of the input end between the first and second guide surfaces and (b) a height of the reflective end between the first and second guide surfaces has a profile across the lateral direction that is greatest at the optical axis of the Fresnel reflector and reduces towards each side of the optical axis. 2. A directional waveguide according to claim 1 , wherein said profile of said ratio compensates for reduction with lateral position in the efficiency of reflection of light by the Fresnel reflector. 3. A directional waveguide according to claim 1 , wherein the height of the input end between the first and second guide surfaces has a profile across the lateral direction that is highest at the optical axis of the Fresnel reflector and reduces towards each side of the optical axis. 4. A directional waveguide according to claim 3 , wherein the edge of the input end at the first guide surface is curved and the edge of the input end at the second guide surface is straight to provide said profile. 5. A directional waveguide according to claim 3 , wherein the edge of the input end at the first guide surface is straight and the edge of the input end at the second guide surface is curved to provide said profile. 6. A directional waveguide according to claim 3 , wherein the edges of the input end at the first guide surface and at the second guide surface are each curved to provide said profile. 7. A directional waveguide according to claim 3 , wherein the height of the reflective end between the first and second guide surfaces has a profile across the lateral direction that is lowest at the optical axis of the Fresnel reflector and increases towards each side of the optical axis. 8. A directional waveguide according to claim 1 , wherein the height of the reflective end between the first and second guide surfaces has a profile across the lateral direction that is flat. 9. A directional waveguide according to claim 1 , wherein the height of the reflective end between the first and second guide surfaces has a profile across the lateral direction that is lowest at the optical axis of the Fresnel reflector and increases towards each side of the optical axis. 10. A directional waveguide according to claim 9 , wherein the height of the input end between the first and second guide surfaces has a profile across the lateral direction that is flat. 11. A directional waveguide according to claim 9 , wherein the edge of the reflective end at the first guide surface is curved and the edge of the reflective end at the second guide surface is straight to provide said profile. 12. A directional waveguide according to claim 9 , wherein the edge of the reflective end at the first guide surface is straight and the edge of the reflective end at the second guide surface is curved to provide said profile. 13. A directional waveguide according to claim 9 , wherein the edges of the reflective end at the first guide surface and at the second guide surface are each curved to provide said profile. 14. A directional waveguide according to claim 1 , wherein the first guide surface is arranged to guide light by total internal reflection and the second guide surface comprises a plurality of light extraction features oriented to direct light guided along the waveguide in directions allowing exit through the first guide surface as the output light and intermediate regions between the light extraction features that are arranged to guide light along the waveguide. 15. A directional waveguide according to claim 14 , wherein the second guide surface has a stepped shape in which said light extraction features are facets between the intermediate regions. 16. A directional waveguide according to claim 14 , wherein the light extraction features have positive optical power in the lateral direction. 17. A directional backlight comprising: a directional waveguide according to claim 1 ; and an array of input light sources arranged at different input positions in a lateral direction across the input end of the waveguide and arranged to input input light into the waveguide. 18. A directional display device comprising: a directional backlight according to claim 17 ; and a transmissive spatial light modulator arranged to receive the output light from the waveguide and to modulate it to display an image. 19. A directional display apparatus comprising: a directional display device according to claim 18 ; and a control system arranged to control the light sources.
Reflecting element, sheet or layer · CPC title
Multifaceted or polygonal mirrors {, e.g. polygonal scanning mirrors; Fresnel mirrors} · CPC title
Manufacturing aspects; Material aspects · CPC title
Arrangements of plural sources, e.g. multi-colour light sources · CPC title
with stepwise taper · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.