IP Library Granted Patent US 11,624,944
Granted Patent B2
US 11,624,944 · App. 17/387,056 · Granted Apr 11, 2023

Backlight for switchable directional display

Inventors: Michael G Robinson (Boulder, CO); Graham J Woodgate (Henley-on-Thames, GB); Jonathan Harrold (Leamington Spa, GB)
Assignee: RealD Spark, LLC
G02F1/1323G02B6/0053G02B27/30G02F1/133607B60K2370/1523B60K2370/336B60K2370/347G02B5/045
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Quick Facts
Patent No.
US 11,624,944
App. No.
17/387,056
Granted
Apr 11, 2023
Kind
B2
Abstract

A switchable backlight for a switchable privacy display apparatus comprises a collimated waveguide and an optical turning film comprising first and second arrays of elongate prismatic elements. High image luminance and image visibility is provided for off-axis viewers in a public mode of operation while in a privacy mode of operation visual security level above a perceived privacy threshold may be achieved for off-axis snoopers.

Claims (84)

1. An illumination apparatus comprising:

a waveguide extending across a plane and comprising:

first and second opposed light guiding surfaces arranged to guide light along the waveguide, the second light guiding surface being arranged to guide light by total internal reflection, and

an input end arranged between the first and second light guiding surfaces and extending in a lateral direction between the first and second light guiding surfaces;

at least one light source arranged to input light into the waveguide through the input end,

wherein the waveguide is arranged to cause light from the light sources to exit from the waveguide through the second light guiding surface by breaking total internal reflection; and

an optical turning film component comprising:

an input surface arranged to receive the light exiting from the waveguide, the input surface extending across the plane; and

an output surface facing the input surface,

wherein the input surface comprises:

a first array of prismatic elements each comprising a pair of facets defining a ridge therebetween, the ridges extending along a first array of lines across the plane in which the input surface extends; and

a second array of prismatic elements each comprising a pair of facets defining a ridge therebetween, the ridges extending along a second array of lines across the plane in which the input surface extends, the first array of lines and the second array of lines extending at different angles projected on to the plane so that the first array of prismatic elements and the second array of prismatic elements deflect the light exiting from the waveguide into different lobes.

2. An illumination apparatus according to claim 1 , wherein the first array of lines have a first arithmetic mean tangential angle projected on to the plane and the second array of lines have a second arithmetic mean tangential angle projected on to the plane, the second arithmetic mean tangential angle being greater than the first arithmetic mean tangential angle.

3. An illumination apparatus according to claim 1 , wherein the first array of lines have an average tangential angle projected on to the plane of 0° from the lateral direction.

4. An illumination apparatus according to claim 1 , wherein the first and second arrays of lines each have tangential angles projected on to the plane of not more than 55° from the lateral direction.

5. An illumination apparatus according to claim 1 , wherein the optical turning film component has a rectangular shape across the plane and the lateral direction is along a major or minor axis of the rectangular shape.

6. An illumination apparatus according to claim 1 , wherein the first array of lines are straight.

7. An illumination apparatus according to claim 1 , wherein the first array of lines are curved.

8. An illumination apparatus according to claim 1 , wherein the second array of lines are straight.

9. An illumination apparatus according to claim 1 , wherein the second array of lines are curved.

10. An illumination apparatus according to claim 1 , wherein facet angles of respective facets, defined between a normal to the facet and a normal to the plane, are between 40° and 70°, and preferably between 47.5° and 62.5°.

11. An illumination apparatus according to claim 1 , wherein in at least one of the first and second arrays of prismatic elements, the facets on opposite sides of the ridge have facet angles, defined between a normal to the facet and a normal to the plane, that are different.

12. An illumination apparatus according to claim 1 , wherein the output surface is planar.

13. An illumination apparatus according to claim 1 , wherein the at least one light source comprises an array of light sources.

14. An illumination apparatus according to claim 1 , wherein the waveguide further comprises a second input end arranged between the first and second light guiding surfaces opposite to the first mentioned input end, and the illumination apparatus further comprises at least one second light source arranged to input light into the waveguide through the second input end.

15. An illumination apparatus according to claim 14 , further comprising a control system arranged to control the at least one first light source and the at least one second light source independently.

16. An illumination apparatus according to claim 14 , wherein the waveguide is arranged to cause light from the at least one first light source and the at least one second light source to exit from the waveguide with different angular distributions.

17. An illumination apparatus according to claim 14 , wherein the waveguide is arranged to cause light from the at least one first light source and the at least one second light source to exit from the waveguide with a common angular distribution.

18. An illumination apparatus according to claim 1 , wherein the illumination apparatus comprises:

at least one first light source arranged to provide input light;

at least one second light source arranged to provide input light in an opposite direction from the at least one first light source;

a waveguide arrangement arranged to receive the input light from the at least one first light source and the at least one second light source and to cause light from the at least one first light source and the at least one second light source to exit from the waveguide arrangement by breaking total internal reflection, wherein the waveguide arrangement comprises at least one waveguide; and

an optical turning film component comprising:

an input surface arranged to receive the light exiting from a waveguide through a light guiding surface of the waveguide by breaking total internal reflection, the input surface extending across the plane; and

an output surface facing the input surface,

wherein the input surface comprises:

a first array of prismatic elements each comprising a pair of facets defining a ridge therebetween, the ridges extending along a first array of lines across the plane in which the input surface extends; and

a second array of prismatic elements each comprising a pair of facets defining a ridge therebetween, the ridges extending along a second array of lines across the plane in which the input surface extends, the first array of lines and the second array of lines extending at different angles projected on to the plane so that the first array of prismatic elements and the second array of prismatic elements deflect the light exiting from the waveguide into different lobes.

19. An illumination apparatus according to claim 18 , wherein the waveguide arrangement comprises:

a waveguide extending across a plane and comprising:

first and second opposed light guiding surfaces arranged to guide light along the optical waveguide, the second light guiding surface being arranged to guide light by total internal reflection, and

first and second input ends arranged between the first and second light guiding surfaces and extending in a lateral direction between the first and second light guiding surfaces;

wherein the at least one first light source is arranged to input light into the waveguide through the first input end and the at least one second light source is arranged to input light into the waveguide through the second input end, and

the waveguide is arranged to cause light from the at least one first light source and the at least one second light source to exit from the waveguide through one of the first and second light guiding surfaces by breaking total internal reflection.

20. An illumination apparatus according to claim 18 , wherein the waveguide arrangement comprises:

a first waveguide extending across a plane and comprising

first and second opposed light guiding surfaces arranged to guide light along the optical waveguide, the second light guiding surface being arranged to guide light by total internal reflection; and

a first input end arranged between the first and second light guiding surfaces and extending in a lateral direction between the first and second light guiding surfaces;

wherein the at least one first light source is arranged to input light into the first waveguide through the first input end, and the first waveguide is arranged to cause light from the at least one first light source to exit from the first waveguide through one of the first and second light guiding surface by breaking total internal reflection;

a second waveguide extending across the plane arranged in series with the first waveguide and comprising

first and second opposed light guiding surfaces arranged to guide light along the optical waveguide, the second light guiding surface being arranged to guide light by total internal reflection, and

a second input end arranged between the first and second light guiding surfaces and extending in a lateral direction between the first and second light guiding surfaces;

wherein the at least one second light source is arranged to input light into the second waveguide through the second input end, and the second waveguide is arranged to cause light from the at least one second light source to exit from the second waveguide through one of the first and second light guiding surfaces by breaking total internal reflection, and

wherein the first and second waveguides are oriented so that at least one first light source and at least one second light source input light into the first and second waveguides in opposite directions.

21. A backlight apparatus comprising:

an illumination apparatus according to claim 1 ; and

a rear reflector arranged to receive light exiting from the first surface of waveguide and direct it back through the waveguide.

22. A display apparatus comprising:

a backlight apparatus according to claim 21 ; and

a spatial light modulator arranged to receive light from the backlight apparatus.

23. A display apparatus according to claim 22 , further comprising:

at least one display polariser arranged on a side of the spatial light modulator;

an additional polariser arranged on the same side of the spatial light modulator as the display polariser; and

at least one polar control retarder arranged between the display polariser and the additional polariser, the at least one polar control retarder including a switchable liquid crystal retarder comprising a layer of liquid crystal material.

24. A vehicle having a display apparatus according to claim 23 mounted therein.

25. A vehicle according to claim 24 , wherein the different lobes into which light exiting from the waveguide is deflected are lobes directed at locations of two occupants in the vehicle.

26. A vehicle according to claim 25 , wherein the different lobes into which light exiting from the waveguide is deflected are lobes respectively directed at a location of an occupant in the vehicle and at a location of an internal surface of the vehicle.

27. An optical turning film component comprising:

an input surface for receiving light exiting from a waveguide through a light guiding surface of the waveguide by breaking total internal reflection, the input surface extending across a plane; and

an output surface facing the input surface,

wherein the input surface comprises:

a first array of prismatic elements each comprising a pair of facets defining a ridge therebetween, the ridges extending along a first array of lines across the plane; and

a second array of prismatic elements each comprising a pair of facets defining a ridge therebetween, the ridges extending along a second array of lines across the plane, the first array of lines and the second array of lines extending at different angles projected on to the plane so that the first array of prismatic elements and the second array of prismatic elements deflect the light exiting from the waveguide into different lobes.

28. An optical turning film component according to claim 27 , wherein the first array of lines have a first arithmetic mean tangential angle projected on to the plane and second array of lines have a second arithmetic mean tangential angle projected on to the plane in which the input surface extends, the second arithmetic mean tangential angle being greater than the first arithmetic mean tangential angle.

29. An optical turning film component according to claim 27 , wherein the first array of lines have an average tangential angle projected on to the plane of 0° from a lateral direction.

30. An optical turning film component according to claim 27 , wherein the first and second arrays of lines have tangential angles projected on to the plane of not more than 55° from a lateral direction.

31. An optical turning film component according to claim 27 , wherein the optical turning film component has a rectangular shape in the plane and the lateral direction is along a major or minor axis of the rectangular shape.

32. An optical turning film component according to claim 27 , wherein the first array of lines are straight.

33. An optical turning film component according to claim 27 , wherein the first array of lines are curved.

34. An optical turning film component according to claim 27 , wherein the second array of lines are straight.

35. An optical turning film component according to claim 27 , wherein the second array of lines are curved.

36. An optical turning film component according to claim 27 , wherein facet angles of respective facets, defined between a normal to the facet and a normal to the plane, are between 40° and 70°, and preferably between 47.5° and 62.5°.

37. An optical turning film component according to claim 27 , wherein in at least one of the first and second arrays of prismatic elements, the facets on opposite sides of the ridge have facet angles of respective facets, defined between a normal to the facet and a normal to the plane, that are different.

38. An optical turning film component according to claim 27 , wherein the output surface is planar.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 29, 2021
From: ROBINSON, MICHAEL G; HARROLD, JONATHAN; WOODGATE, GRAHAM J
To: REALD SPARK, LLC
Reel/Frame 057968/0316 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2021
From: ROBINSON, MICHAEL G; WOODGATE, GRAHAM J; HARROLD, JONATHAN
To: REALD SPARK, LLC
Reel/Frame 057018/0375 →
Continuity (3)
Provisional Application 63112821 · Nov 12, 2020
Provisional Application 63058308 · Jul 29, 2020
Related Publication 20220035187A1 · Feb 3, 2022