IP Library Granted Patent US 10,477,196
Granted Patent B2
US 10,477,196 · App. 15/283,621 · Granted Nov 12, 2019

Method and system using refractive bam mapper to reduce moire interference in a display system including multiple displays

Inventors: Gareth Paul Bell (Auckland, NZ); Darryl Singh (Auckland, NZ)
Assignee: PURE DEPTH LIMITED
H04N13/349G02B27/22G02B27/2242G02F1/1347G02F1/133526G09G3/003G09G3/3607H04N13/395G02F1/133504G02F1/133514G02F2001/13356G02F2201/38G02F2201/52G09G2300/023G09G2320/02G09G2320/0209
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Quick Facts
Patent No.
US 10,477,196
App. No.
15/283,621
Granted
Nov 12, 2019
Kind
B2
Abstract

A multi-display system (e.g., a display including multiple display panels) includes at least first and second displays (e.g., display panels or display layers) arranged substantially parallel to each other in order to display three-dimensional (3D) features to a viewer(s). An optical element(s) such as at least a refractive beam mapper (RBM) is utilized in order to reduce moiré interference.

Claims (57)

1. A display device comprising:

a first display in a first plane for displaying a first image;

a second display in a second plane for displaying a second image, wherein said first and second planes are approximately parallel to each other;

a beam mapping element located between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein each of the microlenses has a diameter that is less than a length and a width of a subpixel in the second display.

2. The display device of claim 1 , wherein the beam mapping element comprises a refractive beam mapper.

3. The display device of claim 2 , wherein the refractive beam mapper has asymmetric scattering angles.

4. The display device of claim 2 , wherein the refractive beam mapper substantially preserves polarization.

5. The display device of claim 2 , wherein the refractive beam mapper has refractive optics for realizing substantially a flat top profile, such that a far field pattern of output is close to a flat top profile.

6. The display device of claim 1 , wherein the beam mapping element limits divergence from any point on the second display to less than a distance of one pixel offset when the rays proceed through the first display.

7. The display device of claim 1 , wherein the microlenses are characterized by a phase number M of 8 or more.

8. The display device of claim 7 , wherein each of the microlenses has a diameter that is less than a length and a width of a subpixel in the second display.

9. The display device of claim 1 , wherein the microlenses have a distribution of surface normals between 0 and approximately 20 degrees.

10. A display device comprising:

a first display in a first plane for displaying a first image;

a second display in a second plane for displaying a second image, wherein said first and second planes are approximately parallel to each other;

a beam mapping element located between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein the beam mapping element is laminated to the second display.

11. A display device comprising:

a first display in a first plane for displaying a first image;

a second display in a second plane for displaying a second image, wherein said first and second planes are approximately parallel to each other;

a beam mapping element located between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein curved surfaces of the microlenses contact a high refractive index material having a refractive index of at least 1.4.

12. The display device of claim 1 , wherein the second display is a rear display, and the first display is a front display, of the display device.

13. The display device of claim 1 , wherein rays from a given subpixel in the second display are directed toward multiple different subpixels of the first display, and wherein rays from a plurality of different subpixels of the second display proceed through a given subpixel of the first display.

14. A method of displaying an image via a display device including a first display in a first plane for displaying a first image, and a second display in a second plane for displaying a second image, wherein said first and second planes are approximately parallel to each other, the method comprising:

directing light rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer, via a plurality of microlenses located between the first and second displays, and

wherein curved surfaces of the microlenses contact a material having a refractive index of at least 1.4.

15. The method of claim 14 , wherein each of the microlenses has a diameter that is less than a length and a width of a subpixel in the second display.

16. The method of claim 14 , wherein the microlenses are laminated to the second display.

17. The method of claim 14 , wherein the second display is a rear display, and the first display is a front display, of the display device.

18. The method of claim 14 , wherein rays from a given subpixel in the second display are directed toward multiple different subpixels of the first display, and wherein rays from a plurality of different subpixels of the second display proceed through a given subpixel of the first display.

19. A display device comprising:

a first display for displaying a first image;

a second display for displaying a second image, wherein said first and second images overlap each other;

a beam mapping element located optically between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein each of the microlenses has a diameter that is less than a length and a width of a subpixel in the second display.

20. A display device comprising:

a first display for displaying a first image;

a second display for displaying a second image, wherein said first and second images overlap each other;

a beam mapping element located optically between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein the microlenses are characterized by a phase number M of 8 or more.

21. A display device comprising:

a first display for displaying a first image;

a second display for displaying a second image, wherein said first and second images overlap each other;

a beam mapping element located optically between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein the microlenses have a distribution of surface normals between 0 and approximately 20 degrees.

22. A display device comprising:

a first display for displaying a first image;

a second display for displaying a second image, wherein said first and second images overlap each other;

a beam mapping element located optically between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein the beam mapping element is laminated to the second display.

23. A display device comprising:

a first display for displaying a first image;

a second display for displaying a second image, wherein said first and second images overlap each other;

a beam mapping element located optically between the first and second displays and comprising a plurality of microlenses configured to direct rays output from the second display in a pseudo random manner through sub-pixels of the first display and toward a viewer; and

wherein curved surfaces of the microlenses contact a high refractive index material having a refractive index of at least 1.4.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2024
From: APTIV MANUFACTURING MANAGEMENT SERVICES S.À R.L.
To: APTIV TECHNOLOGIES AG
Reel/Frame 066551/0219 →
MERGER Recorded Feb 11, 2024
From: APTIV TECHNOLOGIES (2) S.À R.L.
To: APTIV MANUFACTURING MANAGEMENT SERVICES S.À R.L.
Reel/Frame 066566/0173 →
ENTITY CONVERSION Recorded Feb 11, 2024
From: APTIV TECHNOLOGIES LIMITED
To: APTIV TECHNOLOGIES (2) S.À R.L.
Reel/Frame 066746/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 5, 2022
From: PUREDEPTH LIMITED (ALSO REFERRED TO AS PURE DEPTH LIMITED); PUREDEPTH INC. (ALSO REFERRED TO AS PURE DEPTH)
To: APTIV TECHNOLOGIES LIMITED
Reel/Frame 059596/0413 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2017
From: BELL, GARETH P.; SINGH, DARRYL
To: PURE DEPTH LIMITED
Reel/Frame 042625/0868 →
Continuity (4)
Provisional Application 62281037 · Jan 20, 2016
Provisional Application 62280993 · Jan 20, 2016
Provisional Application 62236776 · Oct 2, 2015
Related Publication 20170099483A1 · Apr 6, 2017