IP Library Granted Patent US 12,332,449
Granted Patent B2
US 12,332,449 · App. 17/893,196 · Granted Jun 17, 2025

Light guide, optical unit, virtual image display device, and head-mounted display

Inventor: Takemasa Tsutsui (Kanagawa, JP)
Assignee: RICOH COMPANY, LTD.
G02B27/0172G02B6/0018G02B6/0028G02B17/006G02B6/0011G02B2207/123
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Quick Facts
Patent No.
US 12,332,449
App. No.
17/893,196
Granted
Jun 17, 2025
Kind
B2
Abstract

A light guide includes: a first light guide portion including: an optical entrance; and multiple reflecting surfaces including at least one first reflecting surface and at least one second reflecting surface, the multiple reflecting surfaces configured to separate a light flux entered through the optical entrance, into multiple light fluxes; and a second light guide portion including an optical exit. The second light guide portion is configured to cause the multiple light fluxes to propagate therethrough and exit from the optical exit. A part of the light flux strikes and reflects off the at least one first reflecting surface to propagate into the second light guide portion. Another part of the light flux strikes and reflects off the at least one second reflecting surface without striking the at least first reflecting surface, to propagate into the second light guide portion.

Claims (111)

1. A light guide comprising:

a first light guide portion including:

an optical entrance; and

multiple reflecting surfaces including at least one first reflecting surface and at least one second reflecting surface, the multiple reflecting surfaces configured to separate a light flux entered through the optical entrance, into multiple light fluxes; and

a second light guide portion including:

an optical exit, and

multiple partial reflection surfaces,

wherein the second light guide portion is configured to cause the multiple light fluxes to propagate therethrough,

wherein the multiple partial reflection surfaces are configured to deflect the multiple light fluxes entering the second light guide portion in directions corresponding to angles at which the multiple partial reflection surfaces are oriented, and to cause the multiple light fluxes to exit from the optical exit,

wherein the light guide is configured to guide a part of the light flux to strike and reflect off the at least one first reflecting surface and propagate into the second light guide portion,

wherein the light guide is configured to guide another part of the light flux to strike and reflect off the at least one second reflecting surface without striking the at least one first reflecting surface, and propagate into the second light guide portion,

wherein the at least one second reflecting surface is farther from the optical entrance along an optical path than the at least one first reflecting surface is from the optical entrance,

wherein the at least one second reflecting surface does not transmit incident light,

wherein the at least one first reflecting surface includes at least one partially reflective surface that transmits a part of light striking the at least one first reflecting surface, and

wherein at least two of the multiple reflecting surfaces each have a different area.

2. The light guide according to claim 1 ,

wherein the first light guide portion includes a first surface and a second surface parallel to each other and orthogonal to each of the at least one first reflecting surface and the at least one second reflecting surface, and

wherein each of the at least one first reflecting surface and the at least one second reflecting surface is between the first surface and the second surface.

3. The light guide according to claim 1 ,

wherein one of the at least one first reflecting surface is closest to the optical entrance along the optical path among the multiple reflecting surfaces.

4. The light guide according to claim 1 ,

wherein conditional expression below is satisfied:

0.001< LV 1/ LV< 0.5

where

LV is a total light intensity of light fluxes exiting from the second light guide portion after striking an entrance surface of the optical entrance at an incident angle of 90 degrees and reflecting off each of the multiple reflecting surfaces; and

LV1 is a light intensity of a light flux exiting from the second light guide portion after striking the entrance surface of the optical entrance at an incident angle of 90 degrees and reflecting off one of the at least one first reflecting surface, closest to the optical entrance along an optical path among the multiple reflecting surfaces.

5. The light guide according to claim 1 ,

wherein the first light guide portion further includes a third reflecting surface configured to reflect the light flux entered through the optical entrance toward the multiple reflecting surfaces without transmitting the light flux.

6. The light guide according to claim 1 ,

wherein the at least one first reflecting surface includes at least one partially reflective surface that transmits a part of light striking the at least one first reflecting surface, and

wherein the multiple reflecting surfaces are parallel to each other.

7. The light guide according to claim 6 ,

wherein conditional expression below is satisfied:

0.5 mm< d< 4 mm

where

d is an interval between the multiple reflecting surfaces.

8. The light guide according to claim 1 ,

wherein the light flux is light containing information on an image emitted from an image display element; and

wherein conditional expression below is satisfied:

30°<θ<60°

wherein, in the light guide, a direction in which the first light guide portion and the second light guide portion are arranged is a Y direction, and a direction orthogonal to the Y direction and orthogonal to a direction in which a virtual image is emitted is an X direction, and

wherein θ is an angle between each of the multiple reflecting surfaces and the X direction.

9. The light guide according to claim 1 ,

wherein conditional expression below is satisfied:

4≤ N≤ 14

where

N is the number of the multiple reflecting surfaces.

10. The light guide according to claim 1 ,

wherein conditional expression below is satisfied:

5%< R 1<40%

where

R1 is a reflectance of one of the at least one first reflecting surface, closest to the optical entrance along an optical path among the multiple reflecting surfaces, on which a part of the light flux has struck at an angle of 45°.

11. The light guide according to claim 1 ,

wherein the at least one first reflecting surface includes multiple first reflecting surfaces, each being a partially reflective surface configured to transmit a part of light striking a corresponding one first reflecting surface of the multiple first reflecting surfaces, and

wherein the multiple first reflecting surfaces include:

a first partially reflective surface; and

a second partially reflective surface farther from the optical entrance along an optical path than the first partially reflective surface, and

wherein a reflectance is higher for the second partially reflective surface on which a part of the light flux has struck at an angle of 45° than for the first partially reflective surface on which another part of the light flux has struck at an angle of 45°.

12. The light guide according to claim 1 ,

wherein the second light guide portion includes two surfaces parallel to each other, the two surfaces configured to guide and deflect each of the multiple light fluxes entered from the first light guide portion, so as to allow the multiple light fluxes to exit through the optical exit of the light guide.

13. The light guide according to claim 1 ,

wherein the first light guide portion and the second light guide portion are separate from each other, and

wherein the first light guide portion includes an exit surface from which the multiple light fluxes exit; and

wherein the second light guide portion includes an entrance surface on which the multiple light fluxes exited from the exit surface strike, and

wherein the exit surface and the entrance surface are parallel to each other.

14. An optical unit comprising:

the light guide according to claim 1 ; and

an optical system configured to cause light from a light source to strike the optical entrance of the light guide as parallel light.

15. A virtual image display device comprising:

an image display element configured to display an image; and

the optical unit according to claim 14 configured to receive light containing information on the image from the image display element,

wherein the optical system causes the received light to strike the optical entrance of the light guide.

16. A head-mounted display comprising:

an image display element configured to display an image; and

the optical unit according to claim 14 configured to receive light containing information on the image from the image display element,

wherein the optical system causes the received light to strike the optical entrance of the light guide.

17. A light guide comprising:

a first light guide portion including:

an optical entrance; and

multiple reflecting surfaces including at least one first reflecting surface and at least one second reflecting surface, the multiple reflecting surfaces configured to separate a light flux entered through the optical entrance, into multiple light fluxes; and

a second light guide portion including:

an optical exit, and

multiple partial reflection surfaces,

wherein the second light guide portion is configured to cause the multiple light fluxes to propagate therethrough,

wherein the multiple partial reflection surfaces are configured to deflect the multiple light fluxes entering the second light guide portion in directions corresponding to angles at which the multiple partial reflection surfaces are oriented, and to cause the multiple light fluxes to exit from the optical exit,

wherein the light guide is configured to guide a part of the light flux to strike and reflect off the at least one first reflecting surface and propagate into the second light guide portion,

wherein the light guide is configured to guide another part of the light flux to strike and reflect off the at least one second reflecting surface without striking the at least one first reflecting surface, and propagate into the second light guide portion,

wherein the at least one second reflecting surface is farther from the optical entrance along an optical path than the at least one first reflecting surface is from the optical entrance,

wherein the at least one second reflecting surface does not transmit incident light,

wherein the at least one first reflecting surface includes multiple first reflecting surfaces, each being a partially reflective surface configured to transmit a part of light striking a corresponding one first reflecting surface of the multiple first reflecting surfaces, and

wherein the multiple first reflecting surfaces include:

a first partially reflective surface; and

a second partially reflective surface farther from the optical entrance along an optical path than the first partially reflective surface, and

wherein a reflectance is higher for the second partially reflective surface on which a part of the light flux has struck at an angle of 45° than for the first partially reflective surface on which another part of the light flux has struck at an angle of 45°.

18. A light guide comprising:

a first light guide portion including:

an optical entrance; and

multiple reflecting surfaces including at least one first reflecting surface and at least one second reflecting surface, the multiple reflecting surfaces configured to separate a light flux entered through the optical entrance, into multiple light fluxes; and

a second light guide portion including:

an optical exit, and

multiple partial reflection surfaces,

wherein the second light guide portion is configured to cause the multiple light fluxes to propagate therethrough,

wherein the multiple partial reflection surfaces are configured to deflect the multiple light fluxes entering the second light guide portion in directions corresponding to angles at which the multiple partial reflection surfaces are oriented, and to cause the multiple light fluxes to exit from the optical exit,

wherein the light guide is configured to guide a part of the light flux to strike and reflect off the at least one first reflecting surface and propagate into the second light guide portion,

wherein the light guide is configured to guide another part of the light flux to strike and reflect off the at least one second reflecting surface without striking the at least one first reflecting surface, and propagate into the second light guide portion,

wherein the at least one second reflecting surface is farther from the optical entrance along an optical path than the at least one first reflecting surface is from the optical entrance,

wherein the at least one second reflecting surface does not transmit incident light,

wherein the first light guide portion and the second light guide portion are separate from each other,

wherein the first light guide portion includes an exit surface from which the multiple light fluxes exit;

wherein the second light guide portion includes an entrance surface on which the multiple light fluxes exited from the exit surface strike, and

wherein the exit surface and the entrance surface are parallel to each other.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 23, 2022
From: TSUTSUI, TAKEMASA
To: RICOH COMPANY, LTD.
Reel/Frame 060864/0661 →
Priority Claims (1)
JP 2021-147830 · Sep 10, 2021 · national
Continuity (1)
Related Publication 20230100029A1 · Mar 30, 2023
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