The present invention relates to a lens moving mechanism.
Priority is claimed on Japanese Patent Application No. 2016-213673 filed Oct. 31, 2016, the content of which is incorporated herein by reference.
Conventionally, a projector including an optical device that includes three light modulating devices (liquid crystal panels) which modulate each of the three colon of light R, G, and B according to image information and a color synthesizing optical device (a cross dichroic prism) to which these light modulating devices are provided and which combines the three modulated light fluxes to form image light, and a projection optical device (a projection lens) that magnifies and projects the thus formed image light, is known.
This projector includes a lens moving mechanism that moves a projected image vertically and horizontally, and performs focus adjustment or the like without moving a projector main body. Patent Literature 1 below discloses a projector including a position adjusting unit that adjusts a position in the three X, Y and Z orthogonal directions. This position adjusting unit includes a base portion which moves in the Z axis direction relative to a pedestal, a leg portion which moves in the X axis direction relative to the base portion, and a connection portion which moves in the Y axis direction relative to the leg portion (see FIG. 5 of Patent Literature 1).
[Patent Literature 1] Japanese Unexamined Patent Application, First Publication No. 2007-286121
In recent in large projectors, the weight of a lens has increased, and a lens moving mechanism has been required to have to weight and high rigidity. For this reason, for example, it is conceivable to form a frame constituting the lens moving mechanism using a lightweight aluminum cast product and to mount a highly rigid linear motion guide device configured by a track body and a moving body on the frame. However, there is a possibility that bending will occur due to the difference in rigidity between the frame and the linear emotion guide device even if a linear motion guide device of an appropriate size is selected.
The present invention provides a lens moving mechanism which can inhibit an occurrence of bending and which is lightweight and has high rigidity.
According to the first aspect of the present invention, a lens moving mechanism includes a lens mount unit on which a lens for projecting light is mounted, and a lens guide unit which supports the lens mount unit and guides the lens mount unit in triaxial orthogonal directions including an optical axis direction of the light, and a fixing member which supports the lens guide unit and is fixed to a mount object. The lens guide unit includes linear motion guide devices which are fixed to the fixing member and guide the mount unit in an orthogonal-to-optical axis direction orthogonal to the optical axis direction.
According to the second aspect of the present invention, each of the linear motion fide devices include a track body in which rolling element rolling grooves are provided along the orthogonal-to-optical axis direction, a moving body in which element load rolling grooves facing the rolling element rolling grooves are provided, a plurality of rolling elements disposed between the rolling element rolling groove and the rolling element load rolling groove, and endless circulation paths for the rolling elements each including a load rolling element rolling path in which the rolling element rolling groove and the rolling element load rolling groove thee each other. The endless circulation paths are provided in at least one pair so that the load rolling element rolling paths extend in parallel in the orthogonal-to-optical axis direction with an interval therebetween in the optical axis direction.
The linear motion guide devices may be provided in at least one pair with an interval therebetween in the optical axis direction.
The linear motion guide devices may have a Young's modulus larger than that of the fixing member.
The fixing member may have fixing holes for fixing the fixing member to the mount object at positions corresponding to the linear motion guide device.
According to the above-described aspects, an occurrence of bending can be inhibited and a lightweight and highly rigid lens moving mechanism can be obtained.
Hereinafter, embodiments of the present invention will be described with reference to the drawings. It should be understood that, in order to allow better understanding of the gist of the invention, the following embodiments are explained by way of examples and do not limit the present invention unless otherwise specified. In the drawings used for the following description, in order to make features of the present invention easy to understand, main parts may be enlarged for convenience and the dimensional ratios between respective components may not necessarily be the same as the actual ones. In addition, for the sake of easy understanding of the features of the present invention, the drawings used for the following description may have omitted parts for convenience.
As shown in
Also, in the following description, an XYZ orthogonal coordinate system is set, and the positional relationship between respective members may be described with reference to the XYZ orthogonal coordinate system. The Y axis direction is the optical axis direction, the X axis direction is an orthogonal-to-optical axis direction (a horizontal direction) orthogonal to the optical axis direction, and the Z axis direction is a vertical direction (one axis direction) orthogonal to the X and Y axis directions.
As shown in
As shown in
As shown in
The frame section 20 includes a base member 21 (a fixing member) fixed to a mounting object, a saddle member 22 (an intermediate member) disposed above the base member 21, and a table member 23 (a support member) disposed above the saddle member 22. The frame section 20 of the present embodiment is made of a die-cast component manufactured by aluminum casting.
The guide section 30 includes a saddle guide unit 31 which guides the saddle member 22 in the orthogonal-to-optical axis direction (X axis direction) relative to the base member 21, a table guide unit 32 which guides the table member 23 in the optical axis direction (Y axis direction) relative to the saddle member 22, and a mount guide unit 33 which guides the lens mount 2 in the vertical direction (Z axis direction) relative to the table member 23. The guide section 30 of the present embodiment includes a linear motion guide device 60 made of stainless steel which is provided with a track rail 61 (a track body) and a slider block 62 (a moving body). The size of the linear motion guide device 60 in each guide unit is the same (same product).
The driving section 40 includes a saddle driving unit 41 (see
The base member 21 is a bottom plate member disposed at a bottom portion of the lens shift unit 3. The base member 21 supports the saddle member 22, the table member 23, the guide section 30, the driving section 40, the lens mount and the lens 100. The saddle member 22 is an intermediate member disposed between the base member 21 and the table member 23. The saddle member 22 supports the table member 23, the table guide unit 32, the table driving unit 42, the lens mount 2, the mount guide unit 33, the mount driving unit 43, and the lens 100. The table member 23 is a member connected to the lens mount 2 disposed above the lens shift unit 3. The table member 23 supports the lens mount 2, the mount guide unit 33, the mount driving unit 43, and the lens 100.
As shown in
The second wall portion 26 is disposed behind the front surface 25a of the first wall portion 25. As shown in
As shown in
The main body portion 50 of the table driving unit 42 is fixed to the saddle member 22. The main body portion 50 of the table driving unit 42 is fixed to an upper surface of the saddle member 22 so that the shaft 51 moves back and forth in the optical axis direction (Y axis direction). A tip of the shaft 51 is fixed to a protruding portion 23a protruding from a lower surface of the table member 23. When the shaft moves back and forth relative to the main body portion 50, the table member 23 moves in the optical axis direction relative to the saddle member 22.
As shown in
The linear motion guide device 60 includes the track rail 61 provided with rolling element rolling grooves 63 along a longitudinal direction thereof, a slider block 62 provided with rolling element load rolling grooves 64 facing the rolling element rolling grooves 63, and a plurality of balls 65 (rolling elements) disposed between the rolling element rolling grooves 63 and the rolling element load rolling grooves 64.
The track rail 61 is an elongated member having a substantially rectangular shape in cross section. The rolling element rolling groove 63 is formed on an outer surface 61b of the track rail 61 in the width direction (the horizontal direction on the page of
Fixing holes 66 (a track body fixing hole) to be fixed to the object (the base member 21, the saddle member 22, or the table member 23) are formed in the track rail 61. The fixing holes 66 are formed to penetrate the track rail 61 in a thickness direction thereof (the vertical direction on the page of
The slider block 62 includes a block main body 67 and a lid body 68 attached to the block main body 67. The block main body 67 has a rail receiving groove 69 for receiving the track rail 61. The rail receiving groove 69 opens in a lower surface of the block main body 67. Fixing holes 70 (moving body fixing hole) for fixing the object (the saddle member 22, the table member 23, or the lens mount 2) are formed in a mounting surface 67a which is an upper surface of the block main body 67. The fixing holes 70 are formed at a predetermined depth in a thickness direction of the block main body 67. The fixing hole 70 is a screw hole and a bolt 81 (see
The rolling element load rolling groove 64 facing the rolling element rolling groove 63 of the track, rail 61 is formed in the rail receiving groove 69. The rolling element load rolling groove 64 is recessed in an are shape with respect to an inner surface of the rail receiving groove 69. A pair of rolling element load rolling grooves 64 are formed on left and right sides of the slider block 62 to sandwich the track rail 61 therebetween. The rolling element load rolling groove 64 faces the rolling element rolling groove 63 of the track rail 61 to form a load rolling element rolling path L1 for rolling the balls 65 in a loaded state.
No-load rolling element rolling paths L2 are formed in the block main body 67. The no-load rolling element rolling path L2 is formed to pass through the block main body 67 in the longitudinal direction. An inner diameter of the no-load rolling element rolling path L2 is larger than a ball diameter of the ball 65 and no load is applied to the ball 65. A pair of no-load rolling element rolling paths L2 are formed on left and right sides of the slider block 62 corresponding to the rolling element load rolling groove 64 the load rolling element rolling path L1).
The body 68 is attached to both end faces of the block main body 67 (see
Like the block main body 67, the lid body 68 has a rail receiving groove 71 for receiving the track rail 61. In the lid body 68, rolling element direction change paths L3 are foamed on opposing surfaces facing both end faces of the block main body 67. Each of a pair of rolling element direction change paths L3 connects both ends of the load rolling element rolling path L1 and the no-load rolling, element rolling path L2 to form an endless circulation path L for the balls 65.
The endless circulation path L is configured by a pair of linear portions (the load rolling element rolling path L1 and the no-load rolling element rolling path L2) extending in the longitudinal direction of the track rail 61, and a pair of semicircular arcuate curved portions (the rolling element direction change paths L3) connecting end portions of the pair of linear portions. In the present embodiment, two looped endless circulation paths L are formed to extend in parallel in the longitudinal direction of the track rail 61 at intervals in the width direction of the track rail 61. Also, the linear motion guide device 60 in which a total of four endless circulation paths L, two on each of left and right sides, are formed may be used. A finite stroke type linear motion guide device in which the endless circulation path L is not formed may be used for the linear motion guide device 60. In this finite stroke type linear motion guide device, a cage (a rolling element holding member) is disposed between the rolling element rolling groove 63 and the rolling element load rolling, groove 64, and the balls 65 are rotatably held by ball holders provided in the cage.
The ball 65 intervenes between the track rail 61 and the slider block 62 to smoothly move the slider block 62 with respect to the track rail 61. The ball 65 of the present embodiment is disposed in the endless circulation path L substantially without any gap therebetween and circulates in the endless circulation path L.
As shown in
The first linear motion guide device 60A includes a first track rail 61A (a first track body) fixed to the base member 21, and a first slider block 62A (a first moving body) which supports the saddle member 22 and is provided to be relatively movable along the first track rail 61A. A plurality of first linear motion guide devices 60A are provided coaxially in the orthogonal-to-optical axis direction (X axis direction), and at least a pair (four in total in this embodiment) of first linear motion guide devices 60A are provided at intervals in the optical axis direction (Y axis direction).
The second linear motion guide device 60B includes a second track rail 61B fixed to the saddle member 22, and a second slider block 62B which supports the table member 23 and is provided to be relatively movable along the second track rail 61B. A plurality of second linear motion guide devices 60B are provided coaxially in the optical axis direction (Y axis direction), and at least a pair (four in total in this embodiment) of the second linear motion guide device 60B are provided at intervals in the orthogonal-to-optical axis direction (X axis direction).
The first track rail 61A and the second track rail 61B are disposed to cross each other along the two orthogonal axis directions of the X and Y axes. A plurality of first track rails 61A fixed to the base member 21 and a plurality of second track rails 61B fixed to the saddle member 22 are disposed to form an overall shape of crossing parallel lines. Also, the track rails 61 disposed coaxially with each other may be in contact with each other or may be disposed at intervals.
As shown in
A plurality of fixing holes 70 are provided in the slider block 62 (the first slider block 62A) at intervals in the a direction (Y axis direction). In the present embodiment, a pair of fixing holes 70 are formed in both left and right end portions of the slider block 62 in the width direction at two positions in total. These fixing holes 70 are disposed in a central portion of the slider block 62 in the longitudinal direction (the direction orthogonal to the width direction). The bolts 81 (see
When the lens 100 is positioned at a home position, the first slider block 62A is positioned at a central portion of the first track rail 61A in the longitudinal direction, as shown in
The first slider block 62A is relatively movable in a movable range R1 along the first track rail 61A. The movable range R1 of the first slider block 62A is set by a movable stroke of the saddle driving unit 41 (see
As shown in
Bolts (not shown) are screwed into the fixing holes 70 of the second slider block 62B and the second slider block 62B is fixed to the table member 23 at two positions. When the lens 100 is positioned at the borne position, the second slider block 62B is disposed at the central portion of the second track rail 61B in the longitudinal direction, as shown in
When the lens 100 is positioned at the home position, the second slider block 62B is disposed to substantially entirely overlap the first slider block 62A in the Z axis direction (one axis direction). As shown in
As shown in
In a mounting procedure, first, the saddle member 22 is fixed to the first slider blocks 62A via the bolts 81. Next, the second track rails 61B are fixed to the saddle member 22 via the bolts 80 so as to close the first fixing holes 22b which are connected with the first slider blocks 62A via the bolts 81. That is, the saddle member 22 is fixed to the first slider blocks 62A immediately below the second track rails 61B.
Returning to
As shown in
Returning to
As shown in
As shown in
A third linear motion guide device 60C includes a third track rail 61C fixed to the table member 23, and a third slider block 62C which supports the lens mount 2 and is mounted to be relatively movable along the third track rail 61C. The plurality of third linear motion guide devices 60C are provided coaxially in the vertical direction (Z axis direction), and at least a pair (a total of four in this embodiment) of third linear motion guide devices 60C are provided at intervals in the orthogonal-to-optical axis direction (X axis direction).
A plurality of third track rails 61C are coaxially disposed at intervals on the table member 23. Reinforcing portions 27 are provided between the third track rails 61C coaxially adjacent to each other. The reinforcing portion 27 has abutting surfaces 27a with which end faces 61c of the third track rails 61C coaxially adjacent to each other are brought in contact. The abutting surface 27a is formed in a planar shape parallel to the XY plane. The reinforcing portion 27 is in contact with the end faces 61c of the third track rails 61C and secures the rigidity between the coaxially adjacent third track rails 61C.
As shown in
The reinforcing portion 27 is formed in a rectangular block shape in a front view shown in
Subsequently, operations of the lens moving mechanism 1 configured as described above will be described.
The lens moving mechanism 1 supports the lens 100 on the lens mount 2 as shown in
The lens 100 for large projectors is heavy and the frame section 20 of the lens shift unit 3 is easily bent. When the base member 21, the saddle member 22 and the table member 23 are made of die-cast components made by aluminum casting as in the present embodiment for the purpose of weight reduction, this bending becomes larger. For this reason, in the present embodiment, the linear motion guide device 60 (the track rail 61, the block main body 67, and the balls 65) made of stainless steel having a larger Young's modulus than those of the base member 21, the saddle member 22 and the table member 23 is adopted to enhance the rigidity of the lens shift unit 3.
However, in the lens moving mechanism 1, most of the load of the lens 100 is received by the linear motion guide device 60. Even though the linear motion guide device 60 is highly rigid, if the first linear motion guide device 60A mounted on the base member 21 is disposed in the optical axis direction (Y axis direction), the first linear motion guide device 60A receives a tilting load of the lens shift unit 3 in a pitching direction (Ma direction: around a horizontal axis orthogonal to the longitudinal direction of the first track rail 61A). For this reason, such a configuration is disadvantageous to the tilting and impact. That is, in that configuration, since a large load of pulling or pressing is locally applied to the balls 65 disposed at the both ends of the load rolling element rolling path L1 in the longitudinal direction, an indentation or the like may be formed on the first track rail 61A.
Therefore, in the present embodiment, the first linear motion guide device 60A fixed to the base member 21 is disposed in the orthogonal-to-optical axis direction (X axis direction). That is, the first linear guide device 60A includes a first track rail 61A in which the rolling element rolling grooves 63 are provided along the orthogonal-to-optical axis direction, a first slider block 62A in which the rolling element load rolling grooves 64 respectively facing the rolling element rolling grooves 63 are provided, and the plurality of balls 65 disposed between the rolling element rolling groove 63 and the rolling element load rolling groove 64.
According to this configuration, it is possible to receive the tilting load of the lens shift unit 3 in a rolling direction (Mc direction: around an axis extending in the longitudinal direction of the first track rail 61A) of the first linear guide device 60A.
As shown in
In the present embodiment, as shown in
As shown in
In the present embodiment, as shown in
As described above, the aforementioned lens moving mechanism 1 of the present embodiment includes the lens mount 2 on which the lens 100 for projecting light is mounted, the first lens guide unit 3A which supports the lens mount 2 and a guide section 30 which guides the lens mount 2 in the triaxial orthogonal directions including the optical axis direction of the light, and the base member 21 which supports the saddle guide unit 31 of the guide section 30 and is fixed to the projector main body 102. The saddle guide unit 31 includes the first linear motion guiding device 60A which is fixed to the base member 21 and guides the lens mount 2 in the orthogonal-to-optical axis direction orthogonal to the optical axis direction of the light. By adopting this configuration, occurrence of the bending can be suppressed and a lightweight and highly rigid lens moving mechanism 1 can be obtained.
As described above, although a suitable embodiment of the present invention has been described with reference to the drawings, the present invention is not limited to the above-mentioned embodiment. It should be understood that the shapes, combinations, and the like of the constituent members shown in the above-described embodiment are merely examples, and various changes can be made based on design requirements and the like without departing from the spirit of the present invention.
For example, the embodiment of the present invention may employ modified examples shown in
The first slider block 62A shown in
A linear motion guide device 60D shown in
On the other hand, as shown in
The fixing holes 21a of the base member 21 shown in
In the above embodiment, the fixing, holes 21a of the base member 21 has been disposed in the vicinity of the first slider block 62A. However, the fixing holes 21a of the base member 21 may be dispose, for example, immediately below the first track rail 61A or the first slider block 62A and be bolted from the back side of the base member 21. The fixing holes 21a may be disposed immediately below the fixing holes 66 of the first track rail 61A, and both of the first track rail 61A and the base member 21 may be fixed to the projector main body 102 by the bolts 80.
In the above embodiment, although balls are used as rolling elements, other rolling elements such as rollers may be used, for example.
The occurrence of bending can be inhibited, and a lightweight and highly rigid lens moving mechanism can be obtained.
1 Lens moving mechanism
2 Lens mount (lens mount unit)
21 Base member (fixing member)
30 Guide section (lens guide unit)
31 Saddle guide unit
60A First linear motion guide device (linear motion guide device)
61A First track rail (track body)
62A First slider block (moving body)
63 Rolling element rolling groove
64 Rolling element load rolling groove
65 Ball
100 Lens
101 Optical axis
102 Projector main body (mount object)
L Endless circulation path
L1 Load rolling element rolling path
L2 No-load rolling element rolling path
L3 Rolling element direction change path
Number | Date | Country | Kind |
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2016-213673 | Oct 2016 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/038722 | 10/26/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2018/079660 | 5/3/2018 | WO | A |
Number | Name | Date | Kind |
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6174102 | Do et al. | Jan 2001 | B1 |
20040070851 | Koba et al. | Apr 2004 | A1 |
20150370151 | Chen | Dec 2015 | A1 |
Number | Date | Country |
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101288012 | Oct 2008 | CN |
10336817 | Apr 2004 | DE |
2000-2241 | Jan 2000 | JP |
2007-286121 | Nov 2007 | JP |
2011-123509 | Jun 2011 | JP |
201614302 | Apr 2016 | TW |
Entry |
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Office Action dated Jun. 5, 2019, issued in counterpart TW Application No. 106136857, with English translation (6 pages). |
Office Action dated Jul. 19, 2019, issued in counterpart CN application No. 201780065683.0, with English translation. (10 pages). |
Notification of Reasons for Refusal dated Jun. 5, 2018, issued in counterpart Japanese Patent Application No. 2016-213673, w/English translation (4 pages). |
International Search Report dated Jan. 30, 2018, issued in counterpart International Application No. PCT/JP2017/038722, w/English translation (2 pages). |
Notification of Reasons for Refusal dated May 25, 2018, issued in counterpart Japanese Patent Application No. 2016-213673, w/English translation (4 pages). |
Office Action dated Jan. 20, 2020, issued in counterpart DE Application No. 112017005488.5, with English tanslation. (11 pages). |
Number | Date | Country | |
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20190250365 A1 | Aug 2019 | US |