IP Library › Granted Patent US 12,631,878
Granted Patent B1
US 12,631,878 · App. 19/287,756 · Granted May 19, 2026

Light control device

Inventors: Alexander Cole (Milton Keynes, GB); Daniel Molina (Milton Keynes, GB)
Assignee: Envisics Ltd
G02B27/0103G02B2027/0109G02B2027/011G02B2027/0118G02B2027/0145
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Quick Facts
Patent No.
US 12,631,878
App. No.
19/287,756
Granted
May 19, 2026
Kind
B1
Abstract

A head-up display is provided. The head-up display comprises an optical component comprising a surface arranged, during head-up display operation, in a configuration that is conducive to sunlight glare. The head-up display further comprises a reflection suppression device arranged to receive sunlight on an optical path to the surface. The reflection suppression device comprises a lattice structure. The lattice structure extends in a first direction and a second direction. The lattice structure forms a plurality of channels extending in a third direction. Each channel is defined by a respective axis having a first angle in the first direction and second angle in the second direction. The first angle is a function of the first direction.

Claims (46)

1 . A method of head-up display in a vehicle, the method comprising:

displaying a hologram of an image on a spatial light modulator;

illuminating the hologram displayed on the spatial light modulator to form spatially modulated light encoded with the hologram;

propagating the spatially modulated light to a scattering diffuser disposed at an image reconstruction plane of the hologram to provide a reconstructed image on the diffuser and provide the reconstructed image as an output of the scattering diffuser;

coupling the output of the scattering diffuser into an input port of a planar waveguide pupil expander;

replicating the reconstructed image to form an array of replicas of the reconstructed image, the array having a first direction and a second direction;

transmitting the array of replicas of the reconstructed image through a plurality of tilted channels of a reflection suppression device disposed on top of the planar waveguide pupil expander, wherein each tilted channel of the plurality of channels is tilted from vertical by a first angle in the first direction of the array of replicas and tilted from vertical by a second angle in the second direction of the array of replicas, wherein the first angle of the tilted channels increases with distance in the first direction;

relaying the plurality of replicas of the reconstructed image to an eye-box of the head-up display using a windscreen of the vehicle; and

simultaneously with the transmitting, blocking sunlight on an optical path to the eye-box via the planar waveguide pupil expander using walls of the tilted channels.

2 . The method of claim 1 wherein the first angle increases with distance in the first direction from being in the range 15 to 35 degrees on a first side to being in the range 25 to 45 degrees on a second the other side.

3 . The method of claim 1 , wherein the first angle increases with distance in the first direction from a value on a first side to a value on a second side that is at least 3 degrees greater than the value on the first side.

4 . The method of claim 3 , wherein the second angle increases with distance in the second direction.

5 . The method of claim 4 wherein the second angle increases with distance in the second direction from being in the range 5 to 15 degrees on a first side to 15 to 30 degrees on a second the other side.

6 . The method of claim 4 , wherein the second angle increases with distance in the second direction from a value on a first side to a value on a second side that is at least 5 degrees greater than the value on the first side.

7 . The method of claim 3 , wherein the first direction corresponds to a horizontal dimension of the image and the second direction corresponds to a vertical direction of the image.

8 . The method of claim 3 , wherein the first direction is at an angle of 20 to 35 degrees to a horizontal dimension of the image, after relaying using the windscreen, and the second direction corresponds to a vertical direction of the image.

9 . The method of claim 3 , wherein at least one of the tilted channels is substantially parallel to a gut ray of the image.

10 . The method of claim 3 , wherein the tilted channels have the same size and/or shape.

11 . The method of claim 3 , wherein the tilted channels of the reflection suppression device are provided in a plurality of rows of channels, in which channels of each row are offset from channels of a neighboring row.

12 . The method of claim 3 , wherein the reflection suppression device is curved about a first axis parallel to its plane.

13 . The method of claim 1 , wherein the first angle increases with distance in the first direction from a value on a first side to a value on a second side that is at least 5 degrees greater than the value on the first side.

14 . The method of claim 1 , wherein the first angle increases with distance in the first direction from a value on a first side to a value on a second side that is at least 10 degrees greater than the value on the first side.

15 . The method of claim 1 , wherein the second angle increases with distance in the second direction from a value on a first side to a value on a second side that is at least 5 degrees greater than the value on the first side.

16 . The method of claim 1 , wherein the first direction is at an angle of 20 to 35 degrees to a horizontal dimension of the image, after relaying using the windscreen, and the second direction corresponds to a vertical direction of the image.

17 . The method of claim 1 , wherein at least one of the tilted channels is substantially parallel to a gut ray of the image.

18 . The method of claim 1 , wherein the tilted channels of the reflection suppression device are provided in a plurality of rows of channels, in which channels of each row are offset from channels of a neighboring row.

19 . A head-up display for a vehicle, the head-up comprising:

a spatial light modulator arranged to display a hologram of an image;

a light source arranged to illuminate the hologram displayed on the spatial light modulator to form spatially modulated light encoded with the hologram;

a diffuser disposed at an image reconstruction plane of the hologram and arranged to receive the spatially modulated such that a reconstructed image is formed thereon;

a planar waveguide pupil expander comprising:

an input port arranged to receive the reconstructed image from the diffuser; and

a pair of opposing reflective surfaces arranged to waveguide the reconstructed image therebetween by internal reflection to form a plurality of replicas of the reconstructed image for transmission to a viewing window, wherein a first surface of the pair of opposing reflective surfaces is partially transmissive thereby forming an output port for a plurality of replicas of the reconstructed image;

wherein the first surface is arranged, during operation of the head-up display, on an optical path of sunlight from the planar waveguide pupil expander to the viewing window; and

a reflection suppression device arranged on the optical path of the sunlight to the first surface of the planar waveguide pupil expander, the reflection suppression device comprising a plurality of tilted channels, wherein each tilted channel of the plurality of channels is tilted from vertical by a first angle in a first direction of the array of replicas and tilted from vertical by a second angle in a second direction of the array of replicas, wherein the first angle of the tilted channels increases with distance in the first direction.

20 . The head-up display of claim 19 , wherein the first angle increases with distance in the first direction from being in the range 15 to 35 degrees on a first side to that is in the range 25 to 45 degrees on a second side.

21 . The head-up display of claim 19 , wherein the first angle increases with distance in the first direction from a value on a first side to a value on a second side that is at least 5 degrees greater than the value on the first side.

22 . The head-up display of claim 21 , wherein the second angle increases with distance in the second direction.

23 . The head-up display of claim 22 wherein the second angle increases with distance in the second direction from being in the range 5 to 15 degrees on a first side to 15 to 30 degrees on a second.

24 . The head-up display of claim 22 , wherein the second angle increases with distance in the second direction from a value on a first side to a value on a second the other side being at least 3 degrees greater than the value on the first side.

25 . The head-up display of claim 21 , wherein the first direction corresponds to a horizontal dimension of the image and the second direction corresponds to a vertical direction of the image.

26 . The head-up display of claim 21 , wherein the first direction is at an angle of 20 to 35 degrees to a horizontal dimension of the image, after relaying using a windscreen, and the second direction corresponds to a vertical direction of the image.

27 . The head-up display of claim 21 , wherein at least one of the tilted channels is substantially parallel to a gut ray of the image.

28 . The head-up display of claim 21 , wherein the tilted channels have the same size and/or shape.

29 . The head-up display of claim 21 , wherein the tilted channels of the reflection suppression device are provided in a plurality of rows of channels, in which channels of each row are offset from channels of a neighboring row.

30 . The head-up display of claim 21 , wherein the reflection suppression device is curved about a first axis parallel to its plane.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2026
From: ENVISICS LTD
To: DUALITAS LTD
Reel/Frame 076113/0595 →
NUNC PRO TUNC ASSIGNMENT Recorded Aug 1, 2025
From: COLE, ALEXANDER; MOLINA, DANIEL
To: ENVISICS LTD
Reel/Frame 071912/0365 →
Priority Claims (6)
GB 2502382 · Feb 18, 2025 · national
GB 2502388 · Feb 18, 2025 · national
GB 2502390 · Feb 18, 2025 · national
GB 2502393 · Feb 18, 2025 · national
GB 2502396 · Feb 18, 2025 · national
GB 2506223 · Apr 24, 2025 · national
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