This patent application is based on and claims priority pursuant to 35 U.S.C. § 119(a) to Japanese Patent Application No. 2016-212913, filed on Oct. 31, 2016 in the Japan Patent Office, the entire disclosure of which is hereby incorporated by reference herein.
Technical Field
Aspects of the present disclosure relate to a projection optical device, an image projection apparatus, and an adjuster.
Related Art
An image projection apparatus is known that generates a projection image by a digital micro-mirror device (DMD) as an image generating device using light emitted from a light source, transmits the projection image through a set of projection lenses held by a projection lens unit of a projection optical device, and then reflects the projection image by a reflection mirror as a projection optical element to project the reflected projection image onto a projection surface. The projection lens unit and the reflection mirror are held by a holder. The holder is attached to an optical housing to which the DMD is attached.
In an aspect of the present disclosure, there is provided a projection optical device that includes a projection lens unit, a projection optical element, an optical housing, a holder, and a mover. The projection lens unit holds a projection lens on which a projection image generated by an image generating device is incident. The projection optical element guides the projection image, which has passed through the projection lens, to a projection surface. The optical housing is attached with the image generating device. The holder is attached to the optical housing. The holder holds the projection lens unit and the projection optical element. The mover relatively moves the holder with respect to the optical housing in an incident direction in which the projection image is incident on the projection lens.
In another aspect of the present disclosure, there is provided an image projection apparatus that includes a light source, the image generating device, and the projection optical device. The image generating device forms a projection image with light from the light source. The projection optical device projects the projection image onto the projection surface.
In still another aspect of the present disclosure, there is provided an adjuster for adjustment of a distance between an image generating device to generate a projection image and a projection lens unit holding a projection lens on which the projection image generated by the image generating device is incident. The adjuster includes a base portion and a plurality of mount portions. The base portion has a through hole through which the projection lens unit passes. The plurality of mount portions support a holder holding the projection lens unit and a projection optical element that guides the projection image, which has passed the projection lens unit and the projection lens, to a projection surface. The plurality of mount portions are disposed at both ends of the base portion in a direction perpendicular to an incident direction in which the projection image is incident on the projection lens. Each of the plurality of mount portions has a contact surface to contact and relatively move the holder in the incident direction with respect to an optical housing, to which the image generating device is attached, to adjust the distance between the image generating device and the projection lens unit.
A more complete appreciation of the disclosure and many of the attendant advantages and features thereof can be readily obtained and understood from the following detailed description with reference to the accompanying drawings, wherein:
The accompanying drawings are intended to depict embodiments of the present disclosure and should not be interpreted to limit the scope thereof. The accompanying drawings are not to be considered as drawn to scale unless explicitly noted.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the present disclosure. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise.
In describing embodiments illustrated in the drawings, specific terminology is employed for the sake of clarity. However, the disclosure of this specification is not intended to be limited to the specific terminology so selected and it is to be understood that each specific element includes all technical equivalents that have a similar function, operate in a similar manner, and achieve a similar result.
Below, a description is given of a projector as an image projection apparatus according to an embodiment of the present disclosure.
As illustrated in
The reflection mirror 32 and the cover glass 34 are positioned and secured to the projection housing 35 by being pressed against the projection housing 35 by retainers 41 of a flat-spring shape. The curved mirror 33 is pressed against the projection housing 35 at an approximate center of an upper end portion by a curved mirror retainer 42 of a flat-spring shape, and both lower ends of the curved mirror 33 in the Z direction are secured to the projection housing 35 by screws 43.
The light separated by the color wheel 21 is incident on the light tunnel 22. The light tunnel 22 has a square tubular shape, and the inner circumferential surface of the light tunnel 22 is a mirror surface. The light incident on the light tunnel 22 is reflected by the inner circumferential surface of the light tunnel 22 plural times to be a uniform surface light source, and is emitted toward relay lenses 23. The relay lenses 23 converge the light while correcting chromatic aberration on the optical axis.
The light leaving the light tunnel 22 passes through the two relay lenses 23, is reflected by the cylinder mirror 24 and the concave mirror 25, and is converged and imaged on an image generation surface of a digital micro-mirror device (DMD) 26. The DMD 26 is an image generation device disposed in the projection image generating device 10.
A plurality of movable micro-mirrors are arranged in a lattice pattern on the image generation surface of the DMD 26. Each micro-mirror can tilt a mirror surface of the micro-mirror at angles around a torsion axis and can have two states of “ON” and “OFF”. When the micro-mirror is “ON”, as indicated by arrow L2 in
The so-called back focus, which is the distance between the DMD 26 and the projection lens unit 31, may deviate from a prescribed distance due to a manufacturing error of the lighting housing 27 to which the projection optical device 30 and the projection image generating device 10 are attached. As described above, if the back focus deviates from the prescribed distance, prescribed optical characteristics cannot be obtained, as in the occurrence of defocusing, thus degrading the projection image. Therefore, in the manufacturing process, the back focus is adjusted so that the distance between the projection lens unit 31 and the DMD 26 becomes a prescribed distance.
In addition, it is necessary to prepare a plurality of adjustment shims 80 having different thicknesses, which causes an increase in cost due to an increase in the number of parts. Further, the plurality of adjusting shims 80 having different thicknesses includes an adjustment shim 80 of a frequently-used thickness and an adjustment shim 80 of a less-frequently-used thickness, thus causing deviation of usage amount. Accordingly, it may become difficult to manage parts inventory at the time of mass production of products.
Hence, in the present embodiment, the projection housing 35 is supported so as to be movable in the vertical direction. The back focus is adjusted by moving the projection housing 35 in the vertical direction while confirming whether the prescribed optical characteristic are obtained. Below, the above-described configuration is further described with reference to the drawings.
A slider 50 as a mover to move the projection housing 35 in the vertical direction (Y direction) is disposed between the lighting housing 27 and the projection housing 35. The vertical direction is an incident direction in which the projection image is incident on the projection lens 31a. The slider 50 includes a base portion 56 and mount portions 52. The base portion 56 has a through hole 51 through which the projection lens unit 31 passes. The mount portions 52 are disposed at both ends of the slider 50 in the Z direction, to support the projection housing 35. The through hole 51 of the base portion 56 has an elongated hole shape extending long in the Z direction. The length of the through hole 51 in the X direction is substantially the same as the diameter of a penetrating portion of the projection lens unit 31 that penetrates the through hole 51. A contact surface of the slider 50 to contact the upper surface of the lighting housing 27 is parallel to the upper surface of the lighting housing 27 and is slidable on the upper surface of the lighting housing 27 without being caught on the upper surface of the lighting housing 27. Accordingly, the slider 50 is slidable in a predetermined range in the Z direction as indicated by arrow D in
A plurality of hemispherical legs 38 are disposed on the lower surface of the projection housing 35. The legs 38 may be provided so as to be supported by the mount portions 52 of the slider 50 without rattling. In the present embodiment, the four legs 38 are arranged at equal intervals so as to surround the projection lens unit 31, and the projection housing 35 is supported at four points on the mount portions 52. Note that the number of legs 38 is not limited to four but, for example, the three legs 38 may be supported at three points on the mount portions 52.
A contact surface 52a of the mount portion 52 to contact the leg 38 is an inclined surface that gradually decreases in height from in an end portion on the +Z direction side (the right-side in
The attachment portions 37 to be attached to attached portions 127 of the lighting housing 27 are disposed on both side surfaces of the projection housing 35 in the Z direction. Unlike the comparative example of
Adjustment of the back focus (the distance L between the projection lens unit 31 and the DMD 26) in the present embodiment is performed as follows. First, the locking screws 235 are loosened to make the projection housing 35 movable in the vertical direction. Next, optical characteristics, such as focus, is checked by, for example, projecting an inspection image on the projection surface 101. When the prescribed optical characteristics are not obtained, the operation lever 53 is operated to slide and move the slider 50 in the D direction of
As illustrated in
When the distance L between the projection lens unit 31 and the DMD 26 is adjusted to a prescribed distance and the prescribed optical characteristics are obtained, the locking screws 235 are tightened to lock the movement of the projection housing 35 in the Z direction. Thus, the distance L between the projection lens unit 31 and the DMD 26 is maintained in an appropriate relationship.
As described above, in the present embodiment, the back focus can be adjusted while viewing the inspection image projected on the projection surface 101. Such a configuration facilitates the back focus adjustment as compared with the comparative example in which the back focus is adjusted by changing the combination of adjustment shims and confirming whether the optical characteristics are optimum plural times. Further, the distance L between the projection lens unit 31 and the DMD 26 can be adjusted to an appropriate relationship without removing the projection optical device 30 from the lighting housing 27. Accordingly, in the present embodiment, the back focus adjustment can be more easily and quickly performed than the comparative example in which the adjustment shim 80 is interposed between the lighting housing 27 and the projection lens unit 31 to adjust the distance between the projection lens unit 31 and the DMD 26 to a prescribed relationship. Accordingly, the adjustment work can be shortened as compared with the comparative example and the lead time of the manufacturing process can be shortened, thus suppressing an increase in the manufacturing cost. Even if there are some manufacturing errors or the like, good optical characteristics can be obtained by sliding the slider 50. There is also a merit that it is not necessary to extremely precisely manufacture components, such as the lighting housing and the projection housing.
In addition, it is not necessary to prepare a plurality of adjustment shims 80 having different thicknesses, thus suppressing an increase in cost due to an increase in the number of parts. In addition, since it is not necessary to use the adjustment shim 80, there is also an advantage that the management of parts inventory at the time of mass production of products becomes easy.
In the present embodiment, the projection housing 35 holding the projection lens unit 31, the reflection mirror 32, and the curved mirror 33 is moved in the vertical direction to adjust the distance L (back focus) between the projection lens unit 31 and the DMD 26. Accordingly, the distance relationship between the projection lens unit 31 and the reflection mirror 32 or the curved mirror 33 does not vary even after the back focus adjustment. As a result, such a configuration can prevent occurrence of defects in the projection image due to variations in the positional relationship between the projection lens unit 31 and the reflection mirror 32 or the curved mirror 33 after the adjustment.
In the present embodiment, the projection housing 35 can be moved in the vertical direction by a single operation of moving the slider 50 in the Z direction. Thus, the back focus can be adjusted with a simple operation. Since the projection housing 35 can be continuously moved in the vertical direction by a single operation of moving the slider 50 in the Z direction, fine adjustment can be performed to adjust the back focus with higher precision, thus enhancing the quality of the projection image.
It is also preferable to reduce the angle of inclination of the contact surface 52a. By reducing the angle of inclination of the contact surface 52a, the amount of movement of the projection housing 35 in the vertical direction can be reduced relative to the movement amount of the slider 50 in the Z direction. Thus, there is an advantage that fine adjustment of the back focus can be easily performed.
In the above description, the slider 50 is part of the projection optical device 30. In some embodiments, the slider 50 may be removably attachable to the projection optical device and used in a production process as an adjustment jig that is attached to the projection optical device in the back focus adjustment.
At the time of back focus adjustment, first, the slider 50 is inserted between the lighting housing 27 and the projection housing 35 while inserting the penetrating portion of the projection lens unit 31, which penetrates the through hole 51, into the cutout 54. Next, when the slider 50 is inserted until the penetrating portion of the projection lens unit 31, which penetrates the through hole 51, is positioned in the through hole 51, the slider 50 is slid in the −Z direction (the left side in
As described above, using the slider 50 as an adjustment jig in the production process can obviate the preparation of a plurality of sliders 50 for different devices, thus allowing further cost reduction of the device.
Next, a description is given of variations of the above-described embodiment.
In the present variation, after the distance L (back focus) between the projection lens unit 31 and the DMD 26 is adjusted to an appropriate relationship using the slider 50, a gap between the attachment portion 37 and the lighting housing 27 is measured with a measuring device. As the measuring device, for example, a laser displacement meter can be used. In some embodiments, the gap between the attachment portion 37 and the lighting housing 27 may be captured with a camera and measured based on the captured image data. Next, based on the measured gap, the adjustment shims 80 are combined so as to have the same length as the length of the measured gap in the thickness direction. After removing the projection optical device 30 from the lighting housing 27, the combined set of adjustment shims 80 is interposed between the attachment portion 37 and the lighting housing 27. Then, the projection housing 35 is attached to the lighting housing 27 with attachment screws 135.
In the present variation, a proper combination of the adjustment shims 80 can be easily found that can make the distance L (back focus) between the projection lens unit 31 and the DMD 26 in an appropriate relationship. Such a configuration can more easily perform back focus adjustment than the comparative example in which a proper combination of the adjustment shims 80, which can set the distance L (back focus) between the projection lens unit 31 and the DMD 26 in an appropriate relationship, can be found by changing the combination of the adjustment shims and repeatedly confirming whether the optical characteristics are optimum.
In the present variation, the slider 50 may also be part of the projection optical device 30. In some embodiments, as illustrated in
Alternatively, in some embodiments, the lighting housing 27 may be movable in the vertical direction while the projection housing 35 is stationary, and the back focus may be adjusted by moving the lighting housing 27 in the vertical direction with the slider 50.
The above-described embodiments and variations are only examples and, for example, the following aspects of the present disclosure can give advantages described below.
Aspect 1
A projection optical device, such as the projection optical device 30, includes a projection lens unit, such as the projection lens unit 31, holding a projection lens, such as the plurality of projection lenses 31a, on which a projection image generated by an image generating device, such as the DMD 26, is incident; a projection optical element, such as the reflection mirror 32 and the curved mirror 33, to guide the projection image, which has passed through the projection lens, to a projection surface, such as the projection surface 101; an optical housing, such as the lighting housing 27, attached with the image generating device; a holder, such as the projection housing 35, attached to the optical housing, the holder holding the projection lens unit and the projection optical element; and a mover, such as the slider 50, to relatively move the holder with respect to the optical housing in an incident direction in which the projection image is incident on the projection lens. According to the aspect 1, as described in the above-described embodiment, the mover, such as the slider 50, moves the holder, such as the projection housing 35, holding the projection lens unit, such as the projection lens unit 31, relatively with respect to the optical housing, such as the lighting housing 27, to which the image generating device, such as the DMD 26, is attached, in the incident direction in which the projection image is incident on the projection lenses, such as the plurality of projection lenses 31a. Accordingly, the distance between the projection lens unit, such as the projection lens unit 31, and the image generating device, such as the DMD 26, can be adjusted. Thus, the distance between the projection lens unit and the image generating device can be adjusted with the mover so that the prescribed optical characteristics, such as focus, can be obtained. Such a configuration can more simplify the adjustment work than a configuration in which the distance between the projection lens unit, such as the projection lens unit 31, and the image generating device is adjusted by changing the number of adjustment members, such as the adjustment shims 80, interposed between the projection lens unit and the optical housing. Since the holder holds the projection optical element, such as the reflection mirror 32 and the curved mirror 33, the positional relationship between the projection lens unit, such as the projection lens unit 31, and the projection optical element does not change after adjustment. Such a configuration can obviate adjustment of the positional relationship between the projection lens unit, such as the projection lens unit 31, and the projection optical element, such as the reflection mirror 32 and the curved mirror 33, to a prescribed relationship after the adjustment.
Aspect 2
In the aspect 1, the mover, such as the slider 50, continuously moves the holder, such as the projection housing 35, in the incident direction relatively with respect to the optical housing, such as the lighting housing 27, by a single operation. As described in the above-described embodiment, such a configuration can finely adjust the distance, such as the distance L, between the projection lens unit, such as the projection lens unit 31, and the image generating device, such as the DMD 26, by a simple operation.
Aspect 3
In the aspect 2, the mover, such as the slider 50, is disposed between the optical housing, such as the lighting housing 27, and the holder, such as the projection housing 35, and is movable in a direction perpendicular to the incident direction. The holder is configured to move relatively with respect to the optical housing in the incident direction in conjunction with the movement of the mover in the direction perpendicular to the incident direction. In the above-described embodiment, the holder includes a plurality of projections, such as the plurality of legs 38, projecting toward the optical housing side. The mover includes a plurality of contact portions, such as the mount portions 52, to contact the projections from the incident direction. A contact surface of the contact portion is inclined with respect to the direction perpendicular to the incident direction. According to the aspect 3, as described in the embodiment, by moving the mover in the direction perpendicular to the incident direction, the holder, such as the projection housing 35, can be moved relatively with respect to the optical housing, such as the lighting housing 27 in the incident direction.
Aspect 4
In any of the aspects 1 to 3, the projection optical device includes a lock, such as the locking screws 235 to lock the relative movement of the holder, such as the projection housing 35, with respect to the optical housing, such as the lighting housing 27, in the incident direction. According to the aspect 4, as described in the above-described embodiment, after the distance, such as the distance L, between the image generating device, such as the DMD 26, and the projection lens unit, such as the projection lens unit 31, is appropriately adjusted, the relative movement of the holder, such as the projection housing 35, with respect to the optical housing, such as the lighting housing 27, in the incident direction can be prevented, thus suppressing loss of the appropriate distance relationship between the image generating device and the projection lens unit.
Aspect 5
An image projection apparatus, such as the projector 1, includes a light source, such as the light source device 60; the image generating device, such as the DMD 26, to form a projection image with light from the light source; and the projection optical device, such as the projection optical device 30, according to any of the aspects 1 to 4 to project the projection image onto the projection surface, such as the projection surface 101. Such a configuration can suppress an increase in manufacturing cost and project a favorable projection image onto the projection surface.
Aspect 6
An adjuster, such as the slider 50, adjusts a distance between an image generating device, such as the DMD 26, to generate a projection image and a projection lens unit, such as the projection lens unit 31, holding a projection lens, such as the plurality of projection lenses 31a, on which the projection image generated by the image generating device is incident. The adjuster moves a holder, such as the projection housing 35, holding the projection lens unit and a projection optical element, such as the reflection mirror 32 and the curved mirror 33, that guides the projection image having passed through the projection lens 31a to the projection surface, such as the projection surface 101, relatively with respect to the optical housing, such as the lighting housing 27, attached with the image generating device in an incident direction in which the projection image is incident on the projection lens, to adjust the distance between the image generating device and the projection lens unit. In the above-described embodiment, the image generating device, such as the DMD 26, is attached to illumination brackets via the projection image generating device 10 holding the image generating device.
The above-described embodiments are illustrative and do not limit the present disclosure. Thus, numerous additional modifications and variations are possible in light of the above teachings. For example, elements and features of different illustrative embodiments may be combined with each other and substituted for each other within the scope of the present invention.
Any one of the above-described operations may be performed in various other ways, for example, in an order different from the one described above.
Number | Date | Country | Kind |
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2016-212913 | Oct 2016 | JP | national |