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Archives · 2020 · 20200408964

Application (pre-grant publication)

ANGLE ENHANCING SCREEN

Number
20200408964
Published
2020-12-31
Filed
2019-06-27
Assignee
Disney Enterprises, Inc.
Inventors
SMITHWICK; Quinn Yorklun Jen
CPC
G03B21/625; G02B27/0081; G02B3/08; G03B21/602; G02B30/00
Verdict
Medium Hardware
Source
Google Patents · FreePatentsOnline

The keeper's note

Angle-enhancing projection screen optics hardware.

Abstract

Implementations of angle-enhancing screens are disclosed herein. The angle-enhancing screens increase the field of view of an image projected thereon by a projection lens while maintaining an increased size of the projected image, by decreasing the size of picture elements making up the image while maintaining their pitch. In some embodiments, the angle-enhancing screen includes a field lens, such as a Fresnel field lens, for straightening the views of light projected thereon and a double lenslet array of matched lenslet pairs, each of the pairs including either two positive lenslets or one positive and one negative lenslet, for increasing the field of view. In another embodiment, the angle-enhancing screen may include a field lens and an array of four positive lenslet quartets. In a further embodiment, the field lens may be replaced with a Gabor superlens including two lenslet arrays of different pitches.

Background

BACKGROUNDField

The present disclosure relates generally to projection screens.Description of the Related Art

Holography is a display medium allowing the reproduction of all three-dimensional (3D) cues. Spatial light modulators (SLMs), including digital micromirror devices (DMDs) and liquid crystal on silicon (LCOS), have been used to produce dynamically programmable holograms. However, such SLMs typically have small areas of about one square inch and coarse pixel pitches of about 10 micrometers. As a result, many SLMs can only produce small holograms of about one square inch and small fields of view of about 3°. Optical demagnification can be used to increase either the size or the field of view of holographic videos produced by SLMs, but the size and field of view cannot be increased simultaneously through such demagnification. This is due to the “optical invariant,” which requires that the product of the angle and the field of view of light rays be a constant throughout space.

Other types of 3D displays, such as optical vortex displays, can also produce dense multiview images, but with relatively small images and small fields of view. Similar to the holograms described above, such images can be optically demagnified to trade off size or field of view, but the size and field of view cannot be increased simultaneously through demagnification (due to the optical invariant).SUMMARY

One embodiment of this disclosure provides an angle-enhancing screen. Th

Claims

1. An angle-enhancing screen, comprising: a first lenslet array; and a second lenslet array, wherein the first and second lenslet arrays are configured to increase a field of view of light that passes through the first and second lenslet arrays. 11. A display system, comprising: a three-dimensional (3D) display configured to generate at least one 3D image; a projection lens configured to project the at least one 3D image onto an angle-enhancing screen; and the angle-enhancing screen, comprising: a double lenslet array configured to increase a field of view of the at least one 3D image projected onto the angle-enhancing screen. 20. A display system, comprising: a three-dimensional (3D) display configured to generate at least one 3D image; a projection lens configured to project the at least one 3D image onto an angle-enhancing screen; the angle-enhancing screen, comprising a double lenticular configured to increase a field of view of the at least one 3D image projected onto the angle-enhancing screen; and a vertical diffuser.