This invention relates to projection displays and is a way of projecting an image through a light guide with reduced distortion.
Video projectors produce big moving images at low cost. An inexpensive way of making a television is, as shown in
A slim projection display can be made according to the applicant's earlier WO 01/72037 by pointing a video projector into the thick end of a tapered light-guide. The principle is illustrated in
A problem is that, since the projector is much smaller in the lateral dimension than the panel, rays fan out from the point of injection, so the projected image will be V-shaped. Furthermore, the projected image will be broken into bands: each band contains all the rays that undergo a given number of reflections, while the set of rays which have undergone one pair of reflections more or less than rays exiting in adjacent bands will be separated by a gap.
As explained in WO 01/72037, one can insert a transparent input slab of constant thickness between the projector and the tapered light-guide; this means that rays will have the opportunity to fan out before entering the tapered light-guide, so that the projected image becomes trapezoidal. This is less objectionable than a V-shape but there is still significant keystone distortion. Moreover, viewers like images to fill the screen, so it is desirable to fold the input slab behind the tapered light-guide. This can be done with a pair of right-angled prisms spanning the width of the screen.
A ray entering the input slab at slightly less than the critical angle with respect to its faces undergoes many reflections in the slab but few in the tapered light-guide, whereas a ray entering at much less than the critical angle undergoes few reflections in the slab and many in the tapered light-guide. WO 03/013151 by the applicant explains how to shape the tapered light guide in order that the sum of reflections through the system is the same for rays at all angles of entry, so the projected image is no longer broken into bands.
Because this profile is designed for rays along the centre-line, it works less well with skew rays, i.e. rays at a large fan-out angle, and if the projected image is widened, its sides become dim and may still break into bands.
Dimness at the sides can be eliminated by making the shape of the input slab plus tapered light guide equivalent to an extrusion of the profile along the centre-line in a circle about the point of light injection, as shown in
Tapered light-guides can also be used in reverse according to WO 02/45413 so that a camera pointed into the thick end of the input slab captures an image of whatever is placed against the face of the tapered light-guide, but the same problems with polar symmetry arise.
According to the invention there is provided a light guide of the tapered-waveguide type, including an input slab for expanding a projected image between an input end and an output end; an output waveguide arranged to receive rays from the said output end of the input slab, and to emit them at a point on an output surface that corresponds to the angle at which the ray is received; the profile of the output waveguide being such that all rays injected into the input end of the input slab undergo the same number of reflections before leaving the output surface of the output waveguide; wherein, transverse to the general direction of ray travel, the thickness of the input slab varies so that light travelling from the input end of the input slab towards the output waveguide bounces the same number of times, regardless of its fan-out angle, i.e. its angle away from the centre line.
This variation in thickness enables the transition region between input slab and output waveguide to be straight, extending transversely to the general ray travel direction. This line would normally be the bottom edge of the display, with the input slab folded behind.
For a better understanding of this invention a specific embodiment will now be described by way of example with reference to the accompanying drawings, in which:
In a composite flat-panel display or similar optical apparatus consisting of an input slab over the length of which rays fan out to cover the full width of the apparatus, and an output waveguide of the tapered type from which rays exit at a point dependent on their angle of input, rays that form the bottom of the projected image undergo almost no reflections within the tapered light-guide. If all rays are to undergo the same number of reflections before exit, then it follows that rays that form the bottom of the projected image should undergo the same number of reflections as one another within the input slab. Since these rays are to leave the tapered light-guide shortly after entry, the rays should all leave the input slab at close to the critical angle (solid lines in
These conditions cannot be met within a conventional flat-faced input slab because the distance from the projector to the far corners of the slab is greater than along the centre-line, and in such a slab rays at the critical angle undergo the same number of reflections per unit distance of light-guide.
The invention therefore envisages an input slab whose sides are thicker than its centre. That is, a cross-section in the transverse direction perpendicular to a central axis of ray travel is thinner in the centre than at the edges. The thickening of a light-guide in this way increases the distance between reflections in the first place merely by virtue of scale, as shown by the dotted lines in the thicker guide of
The slab 30 can have only one thickness at the point of injection 31, so the variation in thickness between different ray paths 33, 34 is introduced part-way along the slab 30 as a bulge 36 in a region 35, as shown in
The resulting display 39 is shown in
If the centre of the slab has constant thickness, then the profile along the centre-line of the tapered light-guide will be the same as that described in WO 03/013151. But rays which travel through the sides of the input slab 30 will encounter a variable thickness profile within the slab, and it might be expected that the profile for the tapered light-guide will need in turn to be adjusted if all rays are to undergo the same number of bounces as required. Some alterations may indeed be desirable, and these can be found by ray tracing in a manner which will be routine for one who is trained in the art of optical engineering and who has understood WO 03/013151, but it turns out that the alterations are minor.
The uniformity of the image projected through a light-guide is satisfactory if variations in the thickness of the light-guide are gradual, but at wide fan-out angles, the curvature introduced by thickening the sides half way along the slab can be too great and the image appears banded. There can in any case be an advantage if the input slab 30 itself is slightly tapered, as described in GB 0619226.4, because this reduces the curvature at the interface between input slab and tapered output light-guide. A further embodiment of the invention is therefore described in which the slab input 44 is thicker than the slab output 45, but the thickness 46 along the centre-line C diminishes to the output thickness 47 over a short distance (region 37) from the input end 32, whereas the thickness along the slab sides 48 diminishes to the output thickness 47 over a longer distance, say at least half-way along, as shown in
As mentioned above, the same principles apply for a tapered light-guide if it is to be used in reverse with a camera in place of the projector, though here the term “input slab” or “expansion slab” is not so appropriate—“concentrator” or “lateral expansion/contraction slab” might be better—and the tapered output waveguide could be called a “collector” waveguide.
In summary, a light guide of the tapered-waveguide type includes an input slab 30 for expanding a projected image between an input end and an output end 40; and a tapered output slab 10 arranged to receive rays from the said output end of the input slab, and to emit them at a point on its face that corresponds to the angle at which the ray is received. The taper is calculated so that all rays injected into the input end undergo the same number of reflections before leaving the output face.
However, for a known kind of input slab this might still result in distortion at off-axis angles in the plane. Hence in the invention the thickness of the input slab light guide 30 is greater in the transverse direction away from the centre line C, so that light travelling at the critical angle from the input face of the slab waveguide towards the output waveguide 10 bounces the same number of times in the input slab, regardless of its fan-out angle. The interface to the tapered output waveguide can then be a straight line 40.
Number | Date | Country | Kind |
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0619366.8 | Oct 2006 | GB | national |
This application is a continuation of, and claims priority to, U.S. patent application Ser. No. 12/444,003, filed Apr. 2, 2009, which is a National Stage of International Application No. PCT/GB2007/03736, filed on Oct. 2, 2007, which claims priority to Great Britain Patent Application No. 0619366.8, filed on Oct. 2, 2006. All of the above-referenced applications are incorporated by reference herein in their entireties. Any disclaimer that may have occurred during the prosecution of the above-referenced applications is expressly rescinded, and reconsideration of all documents of record is respectfully requested.
Number | Name | Date | Kind |
---|---|---|---|
4678267 | Burns et al. | Jul 1987 | A |
6483967 | Tang et al. | Nov 2002 | B2 |
7101048 | Travis | Sep 2006 | B2 |
8160409 | Large | Apr 2012 | B2 |
20080316768 | Travis | Dec 2008 | A1 |
20100091254 | Travis et al. | Apr 2010 | A1 |
20100150498 | Large | Jun 2010 | A1 |
Number | Date | Country |
---|---|---|
2004514930 | May 2004 | JP |
2004537766 | Dec 2004 | JP |
2005504339 | Feb 2005 | JP |
2005077909 | Mar 2005 | JP |
WO0172037 | Sep 2001 | WO |
WO0243381 | May 2002 | WO |
WO0245413 | Jun 2002 | WO |
WO02060187 | Aug 2002 | WO |
WO03013151 | Feb 2003 | WO |
WO2006082444 | Aug 2006 | WO |
Entry |
---|
European Office Action mailed Apr. 7, 2011 for European Patent Application No. 078239571, a counterpart foreign application of U.S. Appl. No. 12/443,270. |
Office Action for U.S. Appl. No. 12/444,003, mailed on May 13, 2011, Adrian Travis, “Flat-Panel Optical Projection Apparatus with Reduced Distortionn”. |
Travis, et al., “P-127: Linearity in Flat Panel Wedge Projection”. SID 03 Digest, vol. XXXIV, 2003, p. 716. |
Translated Japanese Office Action mailed Jul. 27, 2012 for Japanese patent application No. 2009-530934, a counterpart foreign application of US patent No. 8,152,315, 4 pages. |
Office action for U.S. Appl. No. 13/447,790, mailed on Jul. 13, 2012, Large, “Flat-Panel Optical Projection Apparatus”, 10 pages. |
Number | Date | Country | |
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20120207432 A1 | Aug 2012 | US |
Number | Date | Country | |
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Parent | 12444003 | US | |
Child | 13442332 | US |