IP Library › Granted Patent US 12,563,162
Granted Patent B2
US 12,563,162 · App. 18/038,236 · Granted Feb 24, 2026

Image projector with LED array illumination

Inventor: Yochay Danziger (Kfar Vradim, IL)
Assignee: LUMUS LTD.
H04N9/3138G03B21/2013G03B21/2066
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Quick Facts
Patent No.
US 12,563,162
App. No.
18/038,236
Granted
Feb 24, 2026
Kind
B2
Abstract

A projector for projecting an image includes an LED array ( 2 ) having separately-controllable LEDs for illuminating a spatial light modulator (SLM) ( 10 ) via illumination optics ( 8 ) with a converging beam. Projection optics ( 12 ) projects the image generated by the SLM. A reflective arrangement ( 16 ) typically having four planar reflectors, is deployed between the LED array ( 2 ) and the illumination optics ( 8 ) so that light from each of LED illuminates a first region of the SLM by direct transmission from the LED via the illumination optics and additional regions of the SLM via reflection in the planar reflectors.

Claims (66)

1 . A projector for projecting an image comprising:

(a) an LED array comprising a plurality of separately-controllable LEDs for generating illumination;

(b) a spatial light modulator (SLM) deployed for modulating an optical property of incident illumination for generating an image;

(c) illumination optics deployed to receive illumination from said LEDs and direct the illumination as a converging beam towards said SLM;

(d) projection optics deployed to project the image generated by said SLM so as to generate a projected image; and

(e) a reflective arrangement comprising at least four planar reflectors, said reflective arrangement being deployed between said LED array and said illumination optics such that light from each of said LEDs illuminates a first region of said SLM by direct transmission from said LED via said illumination optics and additional regions of said SLM, distinct from said first region, via reflection in at least one of said planar reflectors, said at least three planar reflectors forming a polygonal shape, said plane reflectors generating a set of at least nine distinct regions of illumination on said SLM for each of said LEDs.

2 . The projector of claim 1 , further comprising a controller including at least one processor, said controller being associated with said LED array and with said SLM, said controller being configured to:

(a) receive pixel data for an image to be projected;

(b) for each of said LEDs, determine a maximum pixel value occurring within the distinct regions illuminated by said LED;

(c) determine a required level of illumination for each of said LEDs to generate the corresponding maximum pixel value,

(d) calculate scaled pixel values for pixels of said SLM to generate pixel outputs corresponding to the image to be projected when illuminated by said LEDs according to said required levels of illumination;

(e) actuate the SLM according to said scaled pixel values; and

(f) actuate the LED array according to said required levels of illumination.

3 . A projector for projecting an image comprising:

(a) an LED array comprising a plurality of separately-controllable LEDs for generating illumination;

(b) a spatial light modulator (SLM) deployed for modulating an optical property of incident illumination for generating an image;

(c) illumination optics deployed to receive illumination from said LEDs and direct the illumination as a converging beam towards said SLM;

(d) projection optics deployed to project the image generated by said SLM so as to generate a projected image; and

(e) a reflective arrangement comprising four planar reflectors, said reflective arrangement being deployed between said LED array and said illumination optics such that light from each of said LEDs illuminates a first region of said SLM by direct transmission from said LED via said illumination optics and additional regions of said SLM, distinct from said first region, via reflection in at least one of said planar reflectors, said four planar reflectors deployed to form a rectangular shape, said plane reflectors generating a set of at least nine distinct regions of illumination on said SLM for each of said LEDs.

4 . The projector of claim 3 , wherein said four planar reflectors form two pairs of parallel reflectors.

5 . The projector of claim 4 , further comprising a controller including at least one processor, said controller being associated with said LED array and with said SLM, said controller being configured to:

(a) receive pixel data for an image to be projected;

(b) for each of said LEDs, determine a maximum pixel value occurring within the distinct regions illuminated by said LED;

(c) determine a required level of illumination for each of said LEDs to generate the corresponding maximum pixel value,

(d) calculate scaled pixel values for pixels of said SLM to generate pixel outputs corresponding to the image to be projected when illuminated by said LEDs according to said required levels of illumination;

(e) actuate the SLM according to said scaled pixel values; and

(f) actuate the LED array according to said required levels of illumination.

6 . The projector of claim 3 , wherein said four planar reflectors include at least one pair of diverging reflectors.

7 . The projector of claim 6 , further comprising a controller including at least one processor, said controller being associated with said LED array and with said SLM, said controller being configured to:

(a) receive pixel data for an image to be projected;

(b) for each of said LEDs, determine a maximum pixel value occurring within the distinct regions illuminated by said LED;

(c) determine a required level of illumination for each of said LEDs to generate the corresponding maximum pixel value,

(d) calculate scaled pixel values for pixels of said SLM to generate pixel outputs corresponding to the image to be projected when illuminated by said LEDs according to said required levels of illumination;

(e) actuate the SLM according to said scaled pixel values; and

(f) actuate the LED array according to said required levels of illumination.

8 . The projector of claim 3 , wherein said four planar reflectors include at least one pair of converging reflectors.

9 . The projector of claim 8 , further comprising a controller including at least one processor, said controller being associated with said LED array and with said SLM, said controller being configured to:

(a) receive pixel data for an image to be projected;

(b) for each of said LEDs, determine a maximum pixel value occurring within the distinct regions illuminated by said LED;

(c) determine a required level of illumination for each of said LEDs to generate the corresponding maximum pixel value,

(d) calculate scaled pixel values for pixels of said SLM to generate pixel outputs corresponding to the image to be projected when illuminated by said LEDs according to said required levels of illumination;

(e) actuate the SLM according to said scaled pixel values; and

(f) actuate the LED array according to said required levels of illumination.

10 . The projector of claim 3 , wherein said four planar reflectors are provided by external surfaces of a light-guiding prism.

11 . The projector of claim 10 , further comprising a controller including at least one processor, said controller being associated with said LED array and with said SLM, said controller being configured to:

(a) receive pixel data for an image to be projected;

(b) for each of said LEDs, determine a maximum pixel value occurring within the distinct regions illuminated by said LED;

(c) determine a required level of illumination for each of said LEDs to generate the corresponding maximum pixel value,

(d) calculate scaled pixel values for pixels of said SLM to generate pixel outputs corresponding to the image to be projected when illuminated by said LEDs according to said required levels of illumination;

(e) actuate the SLM according to said scaled pixel values; and

(f) actuate the LED array according to said required levels of illumination.

12 . The projector of claim 3 , wherein an end of said reflective arrangement defines an illumination stop, and wherein said illumination stop is imaged by said illumination optics and said projection optics onto an exit aperture of the projector.

13 . The projector of claim 12 , further comprising a controller including at least one processor, said controller being associated with said LED array and with said SLM, said controller being configured to:

(a) receive pixel data for an image to be projected;

(b) for each of said LEDs, determine a maximum pixel value occurring within the distinct regions illuminated by said LED;

(c) determine a required level of illumination for each of said LEDs to generate the corresponding maximum pixel value,

(d) calculate scaled pixel values for pixels of said SLM to generate pixel outputs corresponding to the image to be projected when illuminated by said LEDs according to said required levels of illumination;

(e) actuate the SLM according to said scaled pixel values; and

(f) actuate the LED array according to said required levels of illumination.

14 . The projector of claim 3 , further comprising a controller including at least one processor, said controller being associated with said LED array and with said SLM, said controller being configured to:

(a) receive pixel data for an image to be projected;

(b) for each of said LEDs, determine a maximum pixel value occurring within the distinct regions illuminated by said LED;

(c) determine a required level of illumination for each of said LEDs to generate the corresponding maximum pixel value,

(d) calculate scaled pixel values for pixels of said SLM to generate pixel outputs corresponding to the image to be projected when illuminated by said LEDs according to said required levels of illumination;

(e) actuate the SLM according to said scaled pixel values; and

(f) actuate the LED array according to said required levels of illumination.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 23, 2023
From: DANZIGER, YOCHAY
To: LUMUS LTD.
Reel/Frame 063724/0034 →
Continuity (2)
Provisional Application 63147365 · Feb 9, 2021
Related Publication 20240098230A1 · Mar 21, 2024
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