Panoramic, multiplane, and transparent collimated display system
11314086 · 2022-04-26
Assignee
Inventors
Cpc classification
G02B2027/013
PHYSICS
G02B30/40
PHYSICS
International classification
Abstract
A display system for creating a multiplane display. The display system includes a viewing space for viewers. The display system includes a convex screen and a mirror element spaced apart from the convex screen to provide a collimated display. The mirror element is both reflective and transmissive of light, and a fraction of light from the convex screen that strikes a front concave surface of the mirror element is reflected into the viewing space. The convex screen and the front concave surface of the mirror element are each shaped to have an optical prescription defined for a collimated display whereby light reflected into the viewing space is collimated to provide variable depth imagery. The display system includes a background space behind the mirror element, and light from the background space from projection screens and illuminated objects is transmitted through the mirror element to viewers in the viewing space.
Claims
1. A display system for providing a multiplane display in a viewing space, comprising: a convex screen; a mirror element spaced apart from the convex screen, wherein the mirror element is reflective and transmissive of light, wherein a fraction of light from the convex screen that strikes a front concave surface of the mirror element is reflected into the viewing space, and wherein the convex screen and the front concave surface of the mirror element are each shaped to have an optical prescription defined for a collimated display whereby the fraction of light reflected into the viewing space is collimated.
2. The display system of claim 1, wherein the mirror element comprises a film of polyester or a sheet of formed glass or plastic.
3. The display system of claim 1, wherein the mirror element has a reflectance such that the fraction is in the range of 5 to 50 percent.
4. The display system of claim 3, wherein the mirror element is configured such that the fraction is the range of 5 to 10 percent.
5. The display system of claim 1, wherein the mirror element is formed of a film of optically clear polyester with a thickness in the range of 0.5 to 2 mils.
6. The display system of claim 1, wherein the front concave surface is shaped to be horizontally and vertically concave to provide the optical prescription of the collimated display.
7. The display system of claim 1, wherein the convex screen and the mirror element have semi-circular or circular cross-sectional shapes with coinciding central axes and extend in the range of 45 to 360 degrees about the central axes.
8. The display system of claim 1, wherein the convex screen comprises a front or rear projection screen and the display system further includes a video projector projecting onto the convex screen to provide images in the collimated light directed into the viewing space.
9. The display system of claim 1, wherein the convex screen includes a screen of a display device bent in two directions to provide the optical prescription of the collimated display.
10. The display system of claim 1, wherein the light from the convex screen is configured to provide one or more images viewable by a viewer in the viewing space and wherein the one or more images are modified over time to appear to be located on two or more planes along the z-axis to the viewer.
11. The display system of claim 1, further comprising a collimated display providing collimated light that is transmitted through the mirror element into the viewing space.
12. A display system for providing a multiplane display, comprising: a media display with a convex screen; and a mirror element with a concave front surface facing the convex screen, wherein the mirror element is reflective and transmissive of light, wherein a fraction of light from the convex screen that strikes the front concave surface of the mirror element is reflected, wherein the convex screen and the front concave surface of the mirror element have an optical prescription defined for the collimated display whereby the fraction of light reflected is collimated, and wherein the front concave surface of the mirror element is shaped to be horizontally and vertically concave to provide the optical prescription of the collimated display.
13. The display system of claim 12, wherein the mirror element comprises a film of polyester or a sheet of formed glass or plastic and wherein the fraction is less than 20 percent, whereby the mirror element is substantially transparent.
14. The display system of claim 12, wherein the mirror element is formed of a film of optically clear polyester.
15. The display system of claim 12, wherein the convex screen and the mirror element have semi-circular or circular cross-sectional shapes with coinciding central axes and extend in the range of 45 to 360 degrees about the central axes.
16. The display system of claim 12, wherein the convex screen comprises a front or rear projection screen and the display system further includes a video projector projecting onto the convex screen to provide images in the collimated light directed into the viewing space.
17. A display system for providing a multiplane display in a viewing space, comprising: a mirror element with a concave front surface that is reflective and transmissive of light, wherein the concave front surface reflects collimated light during operations of the collimated display assembly into the viewing space and wherein light transmitted through the mirror element into the viewing space is viewable in the viewing space concurrently with the reflection of the collimated light by the concave front surface of the mirror element; and a media display with a convex screen providing imagery via light output onto the front concave surface of the mirror element, wherein the convex screen and the front concave surface have corresponding optical prescriptions to produce the collimated light, and wherein the mirror element is configured such that a fraction of the light output onto the front concave surface in the range of 5 to 50 percent is reflected by the front concave surface.
18. The display system of claim 17, wherein the mirror element is formed of a film of optically clear polyester.
19. The display system of claim 17, wherein the front concave surface is shaped to be horizontally and vertically concave to provide an optical prescription of the collimated display assembly to provide the collimated light.
20. The display system of claim 17, wherein the mirror element has a semi-circular or circular cross-sectional shape and extends in the range of 45 to 360 degrees about a central axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(5) Briefly, embodiments described herein are directed toward three-dimensional (3D) display devices or systems that are autostereoscopic, as a viewer may perceive depth or the 3D effects in the displayed image without the use of 3D glasses or eyewear (e.g., no need for colored or switching lenses or the like). The display systems of the present description each include a collimated display assembly that differs from prior collimated displays at least because it makes use of a mirror element that is both transmissive and reflective rather than being opaque. The mirror element often has such low reflectance that it may be considered “transparent” such as with reflectance below 50 percent and often in the range of 5 to 15 percent. The mirror element has a concave reflective surface that faces a viewing space and also a projection screen with a convex reflective surface so that it reflects light directed from the projection screen (e.g., images from a projector or other media source) into the viewing space and to any viewers located in this space.
(6) The mirror element and the projection screen are configured with optical prescriptions such that the reflected light from the mirror element's concave reflective surface is collimated light. To further the depth effect or illusion, the display system includes a volumetric background/backdrop space behind the mirror element that includes one or more background display devices (e.g., a projection wall) and/or physical objects or set pieces illuminated by one or more light sources, and, due to the mirror element being transmissive, the viewer in the viewing space is able to observe these background displays and/or objects concurrently with the images provided in the reflected collimated light. In other or the same embodiments, this background/backdrop space may include or be replaced with another collimated display set up, either solid or reflective and transmissive like the first layer. The mirror element may wrap around the periphery of the viewing space along with the volumetric background space and projection screen to provide a large range of viewing angles such as 45 to 360 degrees. The media displayed on the projection screen may be varied over time such as in size to appear to the viewer to be in a plurality of planes along the z-axis so images appear to be at differing distances from the viewer (have varying depth). In this manner, the display system is operable to provide an “in the round” multiplane or multilayer 3D visual experience with variable depth, and, in this regard, the use of the transparent mirror element combined with the visible volumetric background space leads one to consider the display system a variable depth Pepper's Ghost device.
(7) The inventors recognized the significant advantage of using the optical prescriptions and technology of collimated displays to provide collimated light to a viewer but modifying the mirror element to be transparent-to-translucent (e.g., 50 percent or less reflectance with some embodiments using materials that are less than about 20 percent reflective such as in the range of 5 to 10 percent reflective, which may be considered optically clear) rather than opaque (e.g., conventional metalized PET mirrors of collimated displays). Prior collimated displays with opaque mirrors also had issues with segmented mirrors that include seams that are visible. Instead, a large width (e.g., one with a width of at least 10 feet and/or one that wraps 45 to 360 degrees about a viewing space) transparent mirror element can be provided using a single piece of transmissive materials such as a polyester film (such as Clear Mylar®, a transparent (e.g., ultra clear transparent) PVC film (which may offer better flexibility when pulled under vacuum but lack some of the optical clarity of PET-based films such as Clear Mylar® while still being inherently flame retardant), or the like). This material is formed (such as by shaping under vacuum) into a mirror element with horizontal and vertical concavity with an optical prescription corresponding with a projection screen with a mirror surface (that is a section of a hemisphere) facing and spaced apart from the concave “front” surface of the mirror element. In this regard, it is often preferable to use relatively thin films such as those in the range of 0.5 to 2 mils or the like to be shaped accurately to correct optical prescription to reflect collimated light (as the mirror surface normalizes and magnifies light from paired convex projection screen/reflective display).
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(9) As shown, the mirror element 120 is a concave transparent mirror formed of a material that is both transmissive and reflective and with its concave reflective front surface 122 facing the convex reflective surface 116 of the projection screen 114. The light 117 reflected from the projection screen 114 is directed onto the front surface 122 where a fraction (e.g., 5 to 10 percent or more) is reflected as light 123 that is directed into the viewing space 104 and toward viewer 106. The surface 122 is shaped to be concave in both the vertical and horizontal directions with an optical prescription corresponding to that of surface 116 so that the light 123 is collimated light (for both the horizontal and vertical directions), which forces the viewer 106 to focus to infinity. The distance between the surface 116 and the surface 122 (and relative orientations) is selected to suit the size and/or optical prescriptions of the two surfaces 116 and 122 to achieve the desired collimation of light 123 reflected from the front surface 122. The mirror element 120 may be formed of nearly any material with desired percentages of reflectance and transmissivity such as formed glass. However, some preferred embodiments of system 100 utilize an optically clear polyester film (such as clear PET film or the like) that is shaped (such as by drawing it under vacuum into a frame) to have its front surface be concave with the desired optical prescription to reflect and collimate the received light 117 as shown at 123.
(10) Since the mirror element 120 is also transmissive to light, a fraction of the light 117 that strikes the mirror element 120 is transmitted, as shown with arrows 125, through the element 120 and out via back surface 124 to a volumetric background/backdrop space 130 behind the mirror element 120. Also, since the mirror element 120 is “transparent,” light from the space 130 is transmitted through the mirror element 120 into the viewing space 104 where it can be concurrently perceived by the viewer 106 with the collimated light 123 and any imagery it contains. The display system 100 includes one or more background display devices 132 that display images on one or more of their surfaces, and light 133 from these surfaces is transmitted from the space 130 to strike the back surface 124 of the mirror element 120. The light 133 passes through the transmissive material of the element 120 and then into the viewing space 104 and to viewer 106. In some embodiments, the device 132 is a projection screen/wall that is projected upon (front or rear projection) by a projector.
(11) Images displayed upon the surfaces of the device 132 appear to the viewer 106 to be at a depth or distance, d.sub.1 (i.e., distance between surfaces of device 132 and present location of viewer 106 in the space 104). The imagery provided by the collimated display assembly 110 can be designed to appear at any plane along the z-axis between the viewer 106 and the surfaces of the background display device and their location may be varied over time so that the images appear to move toward or away from the viewer 106. Additionally, the display system 100 may include one or more physical objects or props (or set pieces) 136, and one or more light sources 134 may be operated to illuminate surfaces of the object 136 with light 135. Reflected light 137 from the surfaces of the object 136 is transmitted through the transparent mirror element 120 and into the viewing space 104 so that the viewer 106 perceives the object 136 at a distance, d.sub.2, from their current location in the viewing space. The distance, d.sub.2, may be chosen to differ from the distance, d.sub.1, to the display device's surfaces to further enhance the depth effect of the system 100.
(12) The concepts of a collimated display system that makes use of a “transparent” mirror element shown in
(13) As shown, the system 200 includes a video projector 210 (i.e., to provide the functions of the media display system 112 of
(14) As described for projection screen 114 of
(15) As another piece of the collimated assembly, the system 200 includes a mirror element 220 that extends about the periphery of the viewing space 204. The mirror element 220 is formed of a material that is both reflective and transmissive of light such as a clear-to-translucent polyester film, formed glass or plastic, and the like. The mirror element 220 is also generally toroidal or semi-spherical in shape and its central axis coincides with that of the projection screen 214. The mirror element 220 includes a front reflective surface 222 that is concave in both the horizontal and vertical directions with a shape providing it an optical prescription that when paired with that of the reflective surface 216 of the projection screen 214 enables it to output collimated light.
(16) Particularly, light 217 that is reflected from the reflective surface 216 is directed onto the concave front surface 222 of the mirror element 220. A fraction (e.g., 5 to 10 percent or more) of the light 217 is reflected as shown with arrow 223 into the viewing space 204 as collimated light. As a result, the viewers 206 can perceive images 224 in a plane at nearly any point (any depth) along the z-axis. In this example, the images 224 are shown to appear to be located between the window 206 and the front surface 222 of the mirror element 220, but they may also be generated (via media supplied to projector 210) to appear at some distance behind a back surface 226 of the mirror element 220.
(17) In contrast to conventional Pepper's Ghost displays, the depth at which the images 224 appear to be located is not static or limited by a location of the projection screen 214, but, instead, the images 224 are provided by collimated light 223 so that they can have variable depth or a depth that can be changed over time. The mirror element 220 may be quite large without seams (or with minimal seams) such as with a height in the range of 6 to 10 feet or more and with a diameter of 10 to 50 feet or more. To facilitate fabrication of such a large mirror element 220, it may be useful to fabricate it from an optically clear (or translucent in some cases) polyester film (e.g., Clear Mylar® or Type A Mylar® or the like), and the shape with the optical prescription for collimation of light 206 may be created by drawing it down onto framing elements under vacuum. As with the projection screen 214, the mirror element 220 may extend wholly or some fraction of a circumference to enclose the viewing space 204 such as 45 to 180 degrees (as shown in
(18) To further the depth effect, the display system 200 includes a volumetric background/backdrop space 230 behind the back surface 226 of the mirror element. The volumetric background space 230 is visible to the viewers 206 in the viewing space 204 under proper lighting conditions through the mirror element 220, which is at least translucent to light and more typically optically clear. As shown, a projection wall 232 is provided in the space 230 a distance (e.g., 2 to 20 feet or more) from the back surface 226 of the mirror element 220. The projection wall 232 may be belt or hoop shaped as shown and extend about the entire length or circumference of the mirror element 220 or some fraction of this length/circumference. One projection wall 232 may be used as shown or two, three, or more projection walls 232 may be used as desired. The display system 200 may also include one or more physical objects (props, set pieces, characters/actors (human or robotic), and the like) positioned between the mirror element 220 and the projection wall 232 (which is opaque in many cases).
(19) The projection wall 232 may be provided via a front or rear projection screen in some cases along with one or more video projectors (not shown in
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(21) The design of display system 200 provides a nearly complete theater “in the round” experience as the viewers in space 204 can change their horizontal viewing angles or POVs in nearly a full circle and still concurrently observe images via the reflected collimated light from the surfaces 222 and via light transmitted or reflected from the inner surface 234 of the projection wall 232 that pass through the transparent-to-translucent mirror element 220. Other designs may provide a full 360-degree experience (or provide one with a smaller extension than shown such as in the range of 45 to 180 degrees or the like about the central axis 302).
(22) Each component 214, 220, and 232 is a concentric shape (a toroidal shape, semi-cylindrical or belt shape, or semi-spherical shape) about the central axis 302. To achieve a desired normalization and magnification (or collimation) of light from the projection screen 214, the mirror element's front or inner surface 222 is spaced apart from the reflective surface 216 of the projection screen 214 a predefined distance, d.sub.3, such as 3 to 15 feet or more in this large-scale implementation of the display system 200.
(23) To provide further depth to the display system 200, the inner or front surface 234 of the projection wall 232 is spaced apart the distance, d.sub.1, from the back surface 226 of the mirror element 220. The spacing defines the size of the visible volumetric background space 230 in which additional display devices and/or physical objects (e.g., set pieces or props or characters) may be positioned and illuminated for viewing by viewers in the centrally-located viewing space 204. This distance, d.sub.1, may be constant or may be varied to achieve desired depth and/or display effects in the display system 200. The projection wall 232 has a height that typically is at the same or greater than a height of the mirror element 220 so that viewers can see imagery displayed on surface 234 regardless of their vertical viewing angle or POV. The projection wall may be achieved with front or rear projection techniques, but some embodiments of the display system 200 may provide the projection wall 232 using an additional collimated display assembly included in the display system 200 (not shown but understood through the discussion of
(24) In
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(26) Although the invention has been described and illustrated with a certain degree of particularity, it is understood that the present disclosure has been made only by way of example, and that numerous changes in the combination and arrangement of parts can be resorted to by those skilled in the art without departing from the spirit and scope of the invention, as hereinafter claimed.
(27) The transparent collimation display assembly of the systems taught herein may use lightweight, low-cost polyester membranes to create the 3D illusion. The optically clear polyester material can be purchased in very large web widths (e.g., 25 to 100 feet or more) while metalized polyester is presently only available up to ten feet wide. The availability of wide width clear polyester unlocks the ability to create extremely large collimated environments—as the clear reflector can be wrapped around all or parts of a relatively large viewing space—that are suited to large scale attractions, restaurants, and special event venues. In addition, this clear material for the reflector of the collimated display assembly is available in Underwriters' Laboratories (UL) certified flame-retardant formulations (VTM-0 class UL 94 flame retardant), which may be very desirable for use in many entertainment and other facilities.
(28) An additional advantage of thin polyester films (non-metallized) is that the material is so thin (e.g., 0.5 to 1 mil for transparent standard grade PET film and up to 0.5 to 10 mils for optically clear polyester PET or the like) that it eliminates double reflection due to material thickness. This thin material can be drawn down with a vacuum or pressurized with positive pressure to create the optical prescription required to provide collimation of reflected light. This compound shape—the front surface of the reflector or mirror element is horizontally and vertically concave—can be accurately maintained at the proper shape using sensors and controls that constantly monitor the shape and depth of the material.
(29) The display systems are also unique in their ability to create a truly immersive environment using collimated optics at a huge scale. A key feature in this regard is the use of the clear material as the primary reflector or mirror element of the collimated display assembly. By controlling the shape of its front surface (surface facing the viewing space), the benefit of collimation is obtained in combination with the physical depth of a classic Pepper's Ghost illusion so that the display system may be thought of as a variable depth Pepper's Ghost system (as the reflected image can be generated by the media display system to appear at nearly any depth or at any plane along the z-axis). Unlike a conventional Pepper's Ghost system, the technique described herein forces the human eye to accommodate at infinity. This depth cue causes the brain to accept the reflected imagery at infinity so that the perception of the environment can be controlled. For example, an outer space environment will no longer look like a two-dimensional (2D) display representing an infinite environment.
(30) Included in this advantage is that the physical environment behind the collimation optics (often labeled the visible volumetric display (or backdrop or background) space or assembly) can be physically augmented with scenery and/or projection surfaces (or other display devices) that can be coordinated spatially with digital 2D or 3D rendered media (not stereo so no eyewear required). This includes interactive elements such as laser blasts or similar visual special effects that appear to emanate from the viewer's point of view (POV) and into the environment, which is a unique feature previously only available using stereo techniques that utilized glasses or head-mounted VR/AR hardware.
(31) In the theme park setting, one can foresee a ride system that passes along a viewing path that incorporates the display system in long linear paths allowing the rider to look at infinity with foreground real-time generated content that is interactive. In other settings, a restaurant can provide tables in the viewing space to provide a 360-degree view of outer space with foreground space ships and planets while the galaxies in the background are perceived at infinity. In another example, an underwater experience may be provided that looks and is perceived to be infinitely deep with fish creating a truly digital aquarium. Further, a theatrical experience can be provided with a theater designed to accommodate the display system and its display techniques in a wide field of view for the audience.