IP Library › Granted Patent US 10,389,988
Granted Patent B2
US 10,389,988 · App. 14/818,061 · Granted Aug 20, 2019

High efficiency motion blur reduction and infrared projection

Inventors: Harold R. Streid (Ladue, MO); Carl J. Vorst (Saint Ann, MO)
Assignee: THE BOEING COMPANY
H04N9/3179G02B26/04G03B21/14H04N9/3141H04N9/3197G03B21/26
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Quick Facts
Patent No.
US 10,389,988
App. No.
14/818,061
Granted
Aug 20, 2019
Kind
B2
Abstract

A video projector, a shutter mechanism for a video projector, and a method for providing a visible image and an infrared image. The shutter includes first regions that filter out visible light and second regions that filter out infrared light. The second regions are arranged between adjacent first regions. The shutter can be synchronized with an image modulator that alternately outputs visible light images and infrared images. The infrared images can be viewed using night vision goggles, allowing night vision goggle users to train in a simulated environment.

Claims (36)

1. A video projector, comprising:

a light source operable to output visible light and near infrared (IR) light;

an imaging circuit arranged in a path of light from the light source, wherein the imaging circuit is operable to alternatingly output a visible light image during a first period of time and an IR light image during a second period of time after the first period of time;

a shutter arranged relative to the path of light to receive the visible light image and the IR light image, wherein the shutter includes a first region and a second region, wherein the first region is transmissive to visible light and non-transmissive to IR light, wherein the second region is transmissive to IR light and non-transmissive to visible light; and

a controller communicatively coupled to the shutter and configured to sequentially position the first region and then the second region in the path of light, and wherein operation of the shutter is syncronized with operation of the imaging circuit based on whether the light source is outputting visible light or near IR light such that the first region is in the path of light during the first period of time and the second region is in the path of light during the second period of time.

2. The video projector of claim 1 , wherein the shutter comprises a rotatable disk, wherein the rotatable disk comprises a plurality of first regions and a plurality of second regions, wherein the plurality of first regions are spaced around the rotatable disk, and wherein a second region of the plurality of second regions is arranged between adjacent first regions.

3. The video projector of claim 2 , wherein the rotatable disk comprises a plurality of third regions, wherein a third region of the plurality of third regions is arranged between adjacent first regions and second regions.

4. The video projector of claim 3 , wherein each third region of the plurality of third regions is partially transmissive to at least one of visible light and IR light.

5. The video projector of claim 3 , wherein each third region of the plurality of third regions is non-transmissive to visible light and IR light.

6. The video projector of claim 3 , wherein the rotatable disk comprises a plurality of fourth regions, wherein a fourth region of the plurality of fourth regions is arranged between adjacent first regions and second regions, and wherein a first region, a third region, a second region, and a fourth region are selectively positioned in the path of light during a time interval, and wherein the first region and the second region are positioned in the path of light for shorter portions of the time interval than the third region and the fourth region.

7. The video projector of claim 3 , wherein the rotatable disk comprises a plurality of fourth regions, wherein a fourth region of the plurality of fourth regions is arranged between adjacent first regions and second regions, and wherein a first region, a third region, a second region, and a fourth region are selectively positioned in the path of light during a time interval, and wherein the first region, the second region, the third regions, and the fourth region are positioned in the path of light for equal portions of the time interval.

8. The video projector of claim 1 , wherein the imaging circuit includes:

a visible light image generator operable to output a visible light image signal;

an IR light image generator operable to output an IR light image signal; and

a modulator in communication with the visible light image generator to receive the visible light image signal and in communication with the IR light image generator to receive the IR image signal, wherein the modulator is operable to output the visible light image based on the visible light image signal, and wherein the modulator is operable to output the IR light image based on the IR light image signal.

9. The video projector of claim 1 , wherein the imaging circuit includes:

an image generator operable to output a visible light image signal and an IR light image signal, wherein the image generator outputs the IR light image signal by modifying a particular visible light image signal by applying a gain function to the particular visible light image signal and outputting the modified particular visible light image signal as the IR light image signal; and

a modulator in communication with the image generator to receive the visible light image signal and the IR light image signal, wherein the modulator is operable to output the visible light image based on the visible light image signal, and wherein the modulator is operable to output the IR light image based on the IR light image signal.

10. A shutter for a video projector, comprising:

a rotatable disk, wherein the rotatable disk comprises a plurality of first regions and a plurality of second regions, wherein the plurality of first regions are spaced around the rotatable disk, and wherein a second region of the plurality of second regions is arranged between adjacent first portions, wherein the first region is transmissive to visible light and is non-transmissive to near infrared (IR) light, and wherein the second region is transmissive to IR light and is non-transmissive to visible light,

wherein the rotatable disk comprises a plurality of third regions and a plurality of of fourth regions, wherein each third region of the plurality of third regions and each fourth region of the plurality of fourth regions is arranged between respective pairs of first regions and second regions, wherein each third region of the plurality of third regions and each fourth region of the plurality of fourth regions at least partially filter both visible light and IR light.

11. The shutter of claim 10 , wherein the plurality of third regions are partially transmissive to at least one of visible light and IR light.

12. The shutter of claim 10 , wherein the plurality of third regions are non-transmissive to visible light and IR light.

13. The shutter of claim 10 , wherein a first region of the plurality of first regions, a second region of the plurality of second regions, and a third region of the plurality of third regions are selectively positioned in a path of light during a time interval, and wherein the first region and the second region are positioned in the path of light for shorter portions of the time interval than the third region.

14. The shutter of claim 10 , wherein a first region of the plurality of first regions, a second region of the plurality of second regions, and a third region of the plurality of third regions are selectively positioned in a path of light during a time interval, and wherein the first region, the second region, and the third region are positioned in the path of light for equal portions of the time interval.

15. The shutter of claim 10 , wherein the rotatable disk comprises a glass substrate, wherein each first region of the plurality of first regions comprises a long pass IR filter applied to the glass substrate, and wherein each second region of the plurality of second regions comprises a visible light filter applied to the glass substrate.

16. A method for projecting a video image, the method comprising:

projecting, to a filter from an imaging circuit configured to project a path of light that includes light in the visible spectrum and light in the near infrared (IR) spectrum, a visible light image during a first time interval;

filtering, at the filter during the first time interval, light in the near IR spectrum from the path of light received from the imaging circuit;

projecting, to the filter from the imaging circuit, an IR image during a second time interval; and

filtering, at the filter during the second time interval, light in the visible spectrum from the path of light received from the imaging circuit.

17. The method of claim 16 , further comprising:

for a portion of the first time interval, at least partially filtering light in the visible light spectrum from the path of light; and

for a portion of the second time interval, at least partially filtering light in the IR spectrum from the path of light.

18. The method of claim 17 , wherein the portion of the first time interval comprises 25% of the first time interval, and wherein the portion of the second time interval comprises 25% of the second time interval.

19. The method of claim 17 , wherein the portion of the first time interval comprises 50% of the first time interval, and wherein the portion of the second time interval comprises 50% of the second time interval.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2015
From: STREID, HAROLD R.; VORST, CARL J.
To: THE BOEING COMPANY
Reel/Frame 036251/0190 →
Continuity (2)
Continuation In Part 14478160 · Sep 5, 2014
Related Publication 20160073078A1 · Mar 10, 2016