GB2454342A - Optical image stabilizer - Google Patents

Optical image stabilizer Download PDF

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Publication number
GB2454342A
GB2454342A GB0819756A GB0819756A GB2454342A GB 2454342 A GB2454342 A GB 2454342A GB 0819756 A GB0819756 A GB 0819756A GB 0819756 A GB0819756 A GB 0819756A GB 2454342 A GB2454342 A GB 2454342A
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United Kingdom
Prior art keywords
axis direction
stage
direction moving
moving stage
axis
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB0819756A
Other versions
GB2454342B (en
GB0819756D0 (en
Inventor
Hiroshi Nomura
Shinya Suzuka
Ken Endo
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Hoya Corp
Original Assignee
Hoya Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from JP2005192554A external-priority patent/JP4684771B2/en
Priority claimed from JP2006022349A external-priority patent/JP4772520B2/en
Application filed by Hoya Corp filed Critical Hoya Corp
Priority to GB0819756A priority Critical patent/GB2454342B/en
Priority claimed from GB0613124A external-priority patent/GB2427931B/en
Publication of GB0819756D0 publication Critical patent/GB0819756D0/en
Publication of GB2454342A publication Critical patent/GB2454342A/en
Application granted granted Critical
Publication of GB2454342B publication Critical patent/GB2454342B/en
Expired - Fee Related legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/64Imaging systems using optical elements for stabilisation of the lateral and angular position of the image
    • G02B27/646Imaging systems using optical elements for stabilisation of the lateral and angular position of the image compensating for small deviations, e.g. due to vibration or shake
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B5/00Adjustment of optical system relative to image or object surface other than for focusing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/68Control of cameras or camera modules for stable pick-up of the scene, e.g. compensating for camera body vibrations
    • H04N5/23248
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B2205/00Adjustment of optical system relative to image or object surface other than for focusing
    • G03B2205/0007Movement of one or more optical elements for control of motion blur
    • G03B2205/0038Movement of one or more optical elements for control of motion blur by displacing the image plane with respect to the optical axis
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B2205/00Adjustment of optical system relative to image or object surface other than for focusing
    • G03B2205/0053Driving means for the movement of one or more optical element

Abstract

An image stabilizer comprising an X axis direction moving stage (21) on which an image stabilizing optical element (60) is mounted, an X axis direction guide device (72, 74) which supports said X axis direction moving stage in a manner to allow said X axis direction moving stage to freely move linearly in an X axis direction in a plane orthogonal to an optical axis (Z1), an X axis direction moving device (75, 76, 85x) having a first contacting portion (75g) contactable with a second contacting portion (21c) provided on said X axis direction moving stage; and a biassing member (87x) which biases said X axis direction moving stage in a direction to make said first contacting portion and said second contacting portion remain in contact with each other. Said X axis direction guide device, said first contacting portion, said second contacting portion and said biassing member lie in a common plane.

Description

OPTICAL IMAGE STABILIZER
The present invention relates to an optical image stabilizer, incorporated in optical equipment such as a camera or binoculars, for counteracting image shake due to vibrations such as hand shake.
Image stabilizers (optical image stabilizers) for optical equipment prevent image shake from occurring on a focal plane by driving a part (image stabilizing optical element) of an optical system relative to an optical axis thereof in accordance with the direction and the magnitude of vibration, such as hand shake, applied to the optical equipment.
Such image stabilizers may be classified into two types: a first type of image stabilizer which swings the image stabilizing optical element about an axis positioned off the optical axis of the optical system, and a second type of image stabilizer (X and Y axis direction moving stage type of image stabilizer) which moves the image stabilizing optical element forward and reverse in directions orthogonal to each other (two orthogonal directions). The second type of image stabilizer has the advantage that the image stabilizing optical element can be properly moved in two orthogonal directions so as to counteract image shake. However, the driving system for the image stabilizing optical element tends to be heavy. Namely, a Y axis direction moving stage movable in the Y axis direction and a drive mechanism for this Y axis direction moving stage are mounted on an X axis direction moving stage movable in the X axis direction, and accordingly, the X axis direction moving stage tends to be large in size in a conventional image stabilizer having an X and Y axis direction moving stage. This is true for the case where the X axis direction moving stage and a drive mechanism therefor are mounted on the Y axis direction moving stage.
An object of the present invention is to provide an optical image stabilizer using two moving stages driven in two orthogonal directions, wherein the image stabilizer has a structure which does not cause an increase in size of the drive mechanism for either moving stage. The prevent invention further provides a highly reliable optical image stabilizer which can move the image stabilizing optical element at high speed with stability.
According to an aspect of the present invention, an image stabilizer is provided, including a first moving stage supported by a stationary member to be freely movable in a first direction in a plane orthogonal to an optical axis; a second moving stage which holds an image stabilizing optical element and is supported by the first moving member to be freely movable in a second direction in the plane orthogonal to the optical axis, the second direction being substantially orthogonal to the first direction; a first driving device which is supported by the stationary member and drives the first moving stage forward and reverse in the first direction; and a second driving device which is supported by the stationary member and drives the second moving stage forward and reverse in the second direction. The second driving device includes a moving element which is moved in the second direction, and a linkage portion which associatively links the second moving stage and the moving element to each other in a manner to allow the second moving stage and the moving element to move relative to each other in the first direction.
It is desirable for the linkage portion to include a transfer surface provided on one of the moving element and the second moving stage to extend in the first direction; and a movable contact member which is in contact with the transfer surface to be capable of moving thereon. The transfer surface and the movable contact member remain in contact with each other by a biassing force of a spring.
It is desirable for the movable contact member to include a roller which is supported in a manner to roll on the transfer surface when the second moving stage and the moving element move relative to each other in the first direction.
It is desirable for the spring to be installed between the second moving stage and the first moving stage.
It is desirable for the spring to be an extension spring which is extended so as to be installed between the second moving stage and the first moving stage.
It is desirable for the spring to be installed between the second moving stage and the stationary member.
It is desirable for the spring to be an extension spring which is extended so as to be installed between the second moving stage and the stationary member.
It is desirable for the image stabilizer to include at least one intermediate moving element which is driven by the first driving device to transfer a driving force of the first driving device to the first moving stage, wherein the intermediate moving element and the first moving stage include at least one first contacting surface and at least one second contacting surface, respectively, each of which extends in the second direction and which are made to be in contact with each other by an intermediate moving element biassing spring, the first contacting surface and the second contacting surface being capable of being disengaged from each other against a biassing force of the intermediate moving element biassing spring.
It is desirable for the intermediate moving element biassing spring to include an extension spring.
It is desirable for the first driving device to include a first feed screw and a first drive nut which is screw engaged with the first feed screw to be prevented from rotating, and a driving force of the first driving device is transferred to the first moving stage via the first drive nut.
It is desirable for the second driving device to include a second feed screw and a second drive nut which is screw engaged with the second feed screw to be prevented from rotating relative to the stationary member, and a driving force of the second driving device is transferred to the second moving stage via the second drive nut.
It is desirable for the first moving stage to be guided in the first direction by a pair of first guide members to be freely slidable thereon, the pair of first guide members being mounted to the stationary member.
The linkage portion is positioned between one of the pair of first guide members and an imaginary straight line segment which extends in the first direction and passes through the image stabilizing optical element.
It is desirable for at least a part of the pair of first guide members and at least a part of the linkage portion to be positioned in a common plane orthogonal to the optical axis.
It is desirable for the pair of first guide members to be a pair of parallel guide shafts.
It is desirable for the second moving stage to be guided in the second direction by a pair of second guide members to be freely slidable thereon, the pair of second guide members being mounted to the first moving stage. The linkage portion and the spring are positioned on one common side of the pair of second guide members.
It is desirable for the pair of second guide members to include a pair of parallel guide shafts.
It is desirable for at least a part of the pair of second guide members, at least a part of the linkage portion and at least a part of the spring to be positioned in a common plane orthogonal to the optical axis.
It is desirable for each of the first driving device and the second driving device to include a motor.
It is desirable for the image stabilizer to be incorporated in an imaging device, the image stabilizing optical element including an image pickup device.
Even if attention is focussed only on the support structure for supporting, the X axis direction moving stage that supports the image stabilizing optical element, the image stabilizer according to the present invention still has distinctive features.
Namely, in an embodiment, an image stabilizer is provided, including an X axis direction moving stage on which an image stabilizing optical element is mounted; an X axis direction guide device which supports the X axis direction moving stage in a manner to allow the X axis direction moving stage to freely move linearly in an X axis direction in a plane orthogonal to an optical axis; an X axis direction moving device having a first contacting portion contactable with a second contacting portion provided on the X axis direction moving stage; and a biassing member which biases the X axis direction moving stage in a direction to make the first contacting portion and the second contacting portion remain in contact with each other. The X axis direction guide device, the first contacting portion, the second contacting portion and the biassing member lie in a common plane.
With such a support structure, in the case where the X axis direction moving stage is supported by the Y axis direction moving stage thereon which is supported to be freely movable in the Y axis direction orthogonal to the X axis direction in a plane orthogonal to the optical axis, a stable support structure is achieved for the image stabilizing optical element which prevents undesirable moments of force such as bending and torsion which may be caused by movements of the X axis direction moving stage in the X axis direction from acting on the Y axis direction moving stage.
It is desirable for the image stabilizer to include a Y axis direction moving stage which is supported to be freely movable in a Y axis direction in the plane orthogonal to the optical axis, the Y axis direction being orthogonal to the X axis direction, wherein the X axis direction moving stage is supported by the Y axis direction moving stage to be freely movable in the X axis direction.
It is desirable for the first contacting portion and the second contacting portion to move relative to each other when the Y axis direction moving stage moves in the Y axis direction.
It is desirable for the biassing device to be a coil spring, wherein one and the other ends of the coil spring are connected to the X axis direction moving stage and a stationary member, respectively.
It is desirable for the biassing device to be a coil spring, wherein one and the other ends of the coil spring are connected to the X axis direction moving stage and the Y axis direction moving stage, respectively.
It is desirable for one and the other of the first contacting portion and the second contacting portion to include a transfer surface and a roller, respectively. The transfer surface is formed as a flat surface extending in the Y axis direction and is orthogonal to the X axis direction. The roller is supported in a manner to roll on the transfer surface when the roller moves relative to the transfer surface thereon.
It is desirable for the biassing member to be an extension spring.
It is desirable for the X axis direction guide device to include a pair of parallel guide shafts.
It is desirable for the image stabilizer to be incorporated in an imaging device, the image stabilizing optical element including an image pickup device.
-10 -Note that although the above described structure refers to an "X axis direction moving stage" and a "Y axis direction moving stage", the terms "X axis direction" and "Y axis direction" thereof are not limited to any specific direction.
Examples of the present invention will be described below in detail with reference to the accompanying drawings in which: Figure 1 is a front elevational view of an embodiment of a digital camera incorporating an image stabilizer of the present invention; Figure 2 is a longitudinal sectional view of the digital camera shown in Figure 1 in a ready to photograph state of the zoom lens thereof; Figure 3 is a longitudinal sectional view of the digital camera shown in Figure 1 in the fully retracted state of the zoom lens; Figure 4 is a perspective view of the zoom lens of the digital camera shown in Figure 1 in the fully retracted state of the zoom lens; Figure 5 is an exploded perspective view of a portion of the zoom lens shown in Figure 4; Figure 6 is an exploded perspective view of another portion of the zoom lens shown in Figure 4; Figure 7 is a front perspective view of an image -11 -stabilizing unit (image stabilizing mechanism) shown in Figure 5; Figure 8 is a rear perspective view of the image stabilizing unit shown in Figure 5; Figure 9 is a rear perspective view of the image stabilizing unit shown in Figure 5, viewed from an angle different from the angle of Figure 8; Figure 10 is an exploded perspective view of the image stabilizing unit shown in Figure 5; Figure 11 is an exploded perspective view of a portion of the image stabilizing unit in the vicinity of a stationary holder thereof; Figure 12 is a. front perspective view of an X axis direction moving stage and associated elements shown in Figure 10; Figure 13 is a rear perspective view of the X axis direction moving stage shown in Figure 12; Figure 14 is a front perspective view of a first X axis direction moving member, a second X axis direction moving member and an associated extension joining spring of the image stabilizing unit, showing an exploded state thereof; Figure 15 is a rear perspective view of the first X axis direction moving member, the second X axis direction moving member and the associated extension -12 -joining spring that are shown in Figure 14, showing an exploded state and an assembled state thereof; Figure 16 is an exploded perspective view of a Y axis direction moving member, a Y axis direction moving stage and an associated extension joining spring of the image stabilizing unit; Figure 17 is a rear perspective view of the Y axis direction moving member, the Y axis direction moving stage and the associated extension joining spring that are shown in Figure 16, showing an exploded state and an assembled state thereof; Figure 18 is a front perspective view of the image stabilizing unit from which the stationary holder is removed; Figure 19 is a rear perspective view of the elements of the image stabilizing unit shown in Figure 18; Figure 20 is a front perspective view of the elements of the image stabilizing unit shown in Figures 18 and 19 from which drive motors, photo interrupters and biassing springs are further removed; Figure 21 is a rear perspective view of the elements of the image stabilizing unit shown in Figure 20; Figure 22 is a front perspective view of the -13 -elements of the image stabilizing unit shown in Figures and 21 from which the second X axis direction moving member and the Y axis direction moving member are further removed; Figure 23 is a rear perspective view of the elements of the image stabilizing unit shown in Figure 22; Figure 24 is a diagrammatic (schematic) illustration of the image stabilizing unit viewed from the rear, showing the structure thereof; Figure 25 is a block diagram illustrating a configuration of electrical circuits of the digital camera shown in Figures 1 through 3; Figure 26 is a view similar to that of Figure 18, showing another embodiment (second embodiment) of the image stabilizing unit from which the stationary holder is removed; Figure 27 is a rear perspective view of the elements of the image stabilizing unit shown in Figure 26; and Figure 28 is a diagrammatic illustration of the second embodiment of the image stabilizing unit, showing the structure thereof.
Figure 1 shows an outward appearance of a digital camera 200 which incorporates an image stabilizer of the -14 -present invention. The digital camera 200 is provided on the front of a camera body 202 thereof with a zoom lens (zoom lens barrel) 201, an optical viewfinder 203 and a flash 204, and is provided on the top of the camera body 202 with a shutter button 205.
The zoom lens 201 of the digital camera 200, longitudinal sectional views of which are shown in Figures 2 and 3, is driven to advance toward the object side (leftward viewed in Figures 2 and 3) from the camera body 202 as shown in Figure 2 during a photographing operation. When photography is not being carried out, the digital camera 200 moves from a ready to photograph state shown in Figure 2 to a fully retracted state shown in Figure 3 in which the zoom lens 201 is accommodated (fully retracted) in the camera body 202 as shown in Figure 3. In Figure 2, the upper half and the lower half of the zoom lens 201 from a photographing optical axis Zl show a ready to photograph state of the zoom lens 201 at the wide angle extremity and the telephoto extremity, respectively. As shown in Figures 5 and 6, the zoom lens 201 is provided with a plurality of ring members (hollow cylindrical members) :-a second linear guide ring 10, a cam ring 11, a third movable barrel 12, a second movable barrel 13, a first linear guide ring 14, a first movable barrel 15, a -15 -helicoid ring 18 and a stationary barrel 22 which are substantially concentrically arranged about a common axis that is shown as a lens barrel axis ZO in Figures 2 and 3.
The zoom lens 201 is provided with a photographing optical system including a first lens group LG1, a shutter S, an adjustable diaphragm A, a second lens group LG2, a third lens group LG3, a low pass filter 25 and a CCD image sensor 60 that serves as an image pickup device. These optical elements, from the first lens group LG1 to the CCD image sensor 60, are positioned on the photographing optical axis (common optical axis) Zi when the zoom lens 201 is in a ready to photograph state. The photographing optical axis Z1 is parallel to the lens barrel axis ZO and positioned below the lens barrel axis ZO, as illustrated. The first lens group LG1 and the second lens group LG2 are moved along the photographing optical axis Zi in a predetermined moving manner to perform a zooming operation, and the third lens group LG3 is moved along the photographing optical axis Z1 to perform a focussing operation. In the following description, the term "optical axis direction" refers to a direction parallel to the photographing optical axis Zi and the terms "object side" and "image side" refer to forward and rearward sides of the digital -16 -camera 200, respectively. Additionally, in the following description, the vertical direction and the horizontal direction of the digital camera 200 in a plane orthogonal to the photographing optical axis Zi are defined as a Y axis direction and an X axis direction, respectively.
The stationary barrel 22 is positioned in the camera body 202 and fixed thereto, while a stationary holder 23 is fixed to a rear portion of the stationary barrel 22. The CCD image sensor 60 and the low pass filter 25 are supported by the stationary holder 23 via a Y axis direction moving stage 71 and an X axis direction moving stage 21 to be movable in the X axis direction and the Y axis direction. The digital camera 200 is provided behind the stationary holder 23 with an LCD panel 20 which indicates visual images and various photographic information.
The zoom lens 201 is provided in the stationary barrel 22 with a third lens frame 51 which supports and holds the third lens group LG3. The zoom lens 201 is provided between the stationary holder 23 and the stationary barrel 22 with a pair of guide shafts 52 and 53 which extend parallel to the photographing optical axis Zi to guide the third lens frame 51 in the optical axis direction without rotating the third lens frame 51 -17 -about the lens barrel axis ZO. The third lens frame 51 is biassed forward by a third lens frame biassing spring (extension coil spring) 55. The digital camera 200 is provided with a focussing motor 160 having a rotary drive shaft which is threaded to serve as a feed screw, and the rotary drive shaft is screwed through a screw hole formed on an AF nut 54. If the AF nut 54 is moved rearward by a rotation of the rotary drive shaft of the focussing motor 160, the third lens frame 51 is pressed by the AF nut 54 to move rearward. Conversely, if the AF nut 54 is moved forward, the third lens frame 51 follows the AF nut 54 to move forward by the biassing force of the third lens frame biassing spring 55. Due to this structure, the third lens frame 51 can be moved forward and rearward in the optical axis direction.
As shown in Figure 4, the digital camera 200 is provided on the stationary barrel 22 with a zoom motor which is supported by the stationary barrel 22. The driving force of the zoom motor 150 is transferred to a zoom gear 28 (see Figure 5) via a reduction gear train (not shown) . The zoom gear 28 is rotatably fitted on a zoom gear shaft 29 extending parallel to the photographing optical axis Zi. Front and rear ends of the zoom gear shaft 29 are fixed to the stationary barrel 22 and the stationary holder 23, respectively.
-18 -The helicoid ring 18 is positioned inside the stationary barrel 22 and supported thereby. The helicoid ring 18 is rotated by rotation of the zoom gear 28. The helicoid ring 18 is moved forward and rearward in the optical axis direction while being rotated about the lens barrel axis ZO via a helicoid structure (provided between the helicoid ring 18 and the stationary barrel 22) within a predetermined range in the optical axis direction between the position in the fully retracted state of the zoom lens 201 shown in Figure 3 to the position in the state of the zoom lens 201 immediately before the zoom lens 201 is in the ready to photograph state thereof at the wide angle extremity shown by the upper half of the zoom lens 201 in Figure 2. In a ready to photograph state of the zoom lens 201 shown in Figure 2 (between the wide angle extremity and the telephoto extremity), the helicoid ring 18 is rotated at a fixed position without moving in the optical axis direction. The first movable barrel 15 is coupled to the helicoid ring 18 to be rotatable together with the helicoid ring 18 about the lens barrel axis ZO and to be movable together with the helicoid ring 18 in the optical axis direction.
The first linear guide ring 14 is positioned inside the first movable barrel 15 and the helicoid ring -19 - 18 and supported thereby. The first linear guide ring 14 is guided linearly in the optical axis direction via linear guide grooves formed on the stationary barrel 22, and is engaged with the first movable barrel 15 and the helicoid ring 18 to be rotatable about the lens barrel axis ZO relative to the first movable barrel 15 and the helicoid ring 18, and to be movable in the optical axis direction together with the first movable barrel 15 and the helicoid ring 18.
As shown in Figure 5, the first linear guide ring 14 is provided with a set of three through slots 14a (only two of which appear in Figure 5) which radially penetrate the first linear guide ring 14. Each through slot 14a includes a circumferential slot portion and an inclined lead slot portion which extends obliquely rearward from one end of the.circumferential slot portion. The inclined lead slot portion is inclined with respect to the optical axis direction, while the circumferential slot portion extends circumferentially about the lens barrel axis ZO. A set of three followers ha (only two of which appear in Figure 6) which project radially outward from an outer peripheral surface of the cam ring 11 are engaged in the set of three through slots 14a, respectively. The set of three followers ha are further engaged in a set of three rotation transfer -20 -grooves 15a which are formed on an inner peripheral surface of the first movable barrel 15 and extend parallel to the photographing optical axis Zi so that the cam ring 11 rotates with the first movable barrel 15. When the set of three followers ha are engaged in the lead slot portions of the set of three through slots 14a, respectively, the cam ring 11 is moved forward and rearward in the optical axis direction while being rotated about the lens barrel axis ZO and guided by the set of three through slots l4a. On the other hand, when the set of three followers ha are engaged in the circumferential slot portions of the set of three through slots 14a, respectively, the cam ring 11 is rotated at a fixed position without moving in the optical axis direction. Similar to the helicoid ring 18, the cam ring 11 is moved forward and rearward in the optical axis direction while being rotated about the lens barrel axis ZO within a predetermined range in the optical axis direction between the position in the fully retracted state of the zoom lens 201 shown in Figure 3 to the position in the state of the zoom lens 201 immediately before the zoom lens 201 enters the ready to photograph state thereof at the wide angle extremity (shown by the upper half of the zoom lens 201 in Figure 2), and the cam ring 11 is rotated at a fixed position -21 -without moving in the optical axis direction in a ready to photograph state of the zoom lens 201 shown in Figure 2 (between the wide angle extremity and the telephoto extremity) The first linear guide ring 14 guides the second linear guide ring 10 and the second movable ring 13 linearly in the optical axis direction by linear guide grooves which are formed on an inner peripheral surface of the first linear guide ring 14 to extend parallel to the photographing optical axis Zi. The second linear guide ring 10 guides a second lens group moving frame 8, which indirectly supports the second lens group LG2, linearly in the optical axis direction, while the second movable barrel 13 guides the third movable barrel 12, which indirectly supports the first lens group LG1, linearly in the optical axis direction. Each of the second linear guide ring 10 and the second movable barrel 13 is supported by the cam ring 11 to be rotatable relative to the cam ring 11 about the lens barrel axis ZO and to be movable together with the cam ring 11 in the optical axis direction.
The cam ring 11 is provided on an inner peripheral surface thereof with a plurality of inner cam grooves lib for moving the second lens group LG2, and the second lens group moving frame 8 is provided on an outer -22 -peripheral surface thereof with a plurality of cam followers 8a which are engaged in the plurality of inner cam grooves lib, respectively. Since the second lens group moving frame 8 is guided linearly in the optical axis direction without rotating via the second linear guide ring 10, a rotation of the cam ring 11 causes the second lens group moving frame 8 to move in the optical axis direction in a predetermined moving manner in accordance with contours of the plurality of inner cam grooves lib.
As shown in Figure 6, the zoom lens 201 is provided inside the second lens group moving frame 8 with a second lens frame 6 which supports and holds the second lens group LG2. The second lens frame 6 is supported by the second lens group moving frame 8 to be rotatable (swingable) about a pivot shaft 33. The pivot shaft 33 extends parallel to the photographing optical axis Zi. The second lens frame 6 is swingable about the pivot shaft 33 between a photographing position (shown in Figure 2) where the second lens group LG2 is positioned on the photographing optical axis Zi, and a radially retracted position (shown in Figure 3) where the optical axis of the second lens group LG2 is retracted away from the photographing optical axis Zi to be positioned above the photographing optical axis Zi.
-23 -The second lens frame 6 is biassed to rotate in a direction toward the aforementioned photographing position of the second lens frame 6 by a torsion spring 39.
The stationary holder 23 is provided with a position control cam bar (second lens frame removing device) 23a (see Figure 5) which projects forward from the stationary holder 23 to be engageable with the second lens frame 6 so that the position control cam bar 23a comes into pressing contact with the second lens frame 6 to rotate the second lens frame 6 to the radially retracted position thereof against the biassing force of the torsion spring 39 when the second lens group moving frame 8 moves rearward in a retracting direction to approach the stationary holder 23.
The second movable barrel 13, which is guided linearly in the optical axis direction without rotating by the second linear guide ring 10, guides the third movable barrel 12 linearly in the optical axis direction. The third movable barrel 12 is provided on an inner peripheral surface thereof with a set of three cam followers 31 (see Figure 6) which project radially inwards, and the cam ring 11 is provided on an outer peripheral surface thereof with a set of three outer cam grooves lic (cam grooves for moving the first lens group -24 -LG1; only two of them appear in Figure 6) in which the set of three cam followers 31 are slidably engaged, respectively. The zoom lens 201 is provided inside the third movable barrel 12 with a first lens frame 1 which is supported by the third movable barrel 12 via a first lens group adjustment ring 2.
The zoom lens 201 is provided between the first and second lens groups LG1 and LG2 with a shutter unit including the shutter S and the adjustable diaphragm A. The shutter unit 100 is positioned inside the second lens group moving frame 8 and fixed thereto.
Operations of the zoom lens 201 that has the above described structure will be discussed hereinafter. In the state shown in Figure 3, in which the zoom lens 201 is in the fully retracted state, the zoom lens 201 is fully accommodated in the camera body 202. Upon a main switch 101 (see Figure 25) provided on an outer surface of the camera body 202 being turned ON in the fully retracted state of the zoom lens 201 shown in Figure 3, the zoom motor 150 is driven to rotate in a lens barrel advancing direction by control of a control circuit 102 (see Figure 25) provided in the camera body 202. This rotation of the zoom motor 150 rotates the zoom gear 28.
The rotation of the zoom gear 28 causes a combination of the first movable barrel 15 and the helicoid ring 18 to -25 -move forward while rotating about the lens barrel axis ZO due to the aforementioned helicoid structure, and further causes the first linear guide ring 14 to move forward linearly together with the first movable barrel 15 and the helicoid ring 18. At this time, the cam ring 11 which rotates by rotation of the first movable barrel moves forward in the optical axis direction by an amount of movement corresponding to the sum of the amount of the forward movement of the first linear guide ring 14 and the amount of the forward movement of the cam ring 11 by a leading structure between the first linear guide ring 14 and the cam ring 11, i.e., by the engagement of the inclined lead slot portions of the set of three through slots 14a and the set of three followers ha of the cam ring 11, respectively. Once the helicoid ring 18 and the cam ring 11 advance to respective predetermined points thereof, the functions of a rotating/advancing mechanism (the aforementioned helicoid structure) between the helicoid ring 18 and the stationary barrel 22) and another rotating/advancing mechanism (the aforementioned leading structure) between the cam ring 11 and the first linear guide ring 14 are cancelled, so that each of the helicoid ring 18 and the cam ring 11 rotates about the lens barrel axis ZO without moving in the optical axis direction.
-26 -A rotation of the cam ring 11 causes the second lens group moving frame 8, which is positioned inside the cam ring 11 and guided linearly in the optical axis direction via the second linear guide ring 10, to move in the optical axis direction with respect to the cam ring 11 in a predetermined moving manner due to the engagement of the set of three cam followers Ba with the set of three inner cam grooves lib, respectively. In the state shown in Figure 3, in which the zoom lens 201 is in the fully retracted state, the second lens frame 6, which is positioned inside the second lens group moving frame 8, is held in the radially retracted position off the photographing optical axis Zi by the action of the position control cam bar 23a, which projects forward from the stationary holder 23. During the course of movement of the second lens group moving frame 8 from the retracted position to a position in the zooming range, the second lens frame 6 is disengaged from the position control cam bar 23a to rotate about the pivot shaft 33 from the radially retracted position to the photographing position shown in Figure 2, where the optical axis of the second lens group LG2 coincides with the photographing optical axis Zi, by the spring force of the torsion spring 39. Thereafter, the second lens frame 6 remains held in he photographing position -27 -until the zoom lens 201 is retracted into the camera body 201.
In addition, a rotation of the cam ring 11 causes the third movable barrel 12, which is positioned around the cam ring 11 and guided linearly in the optical axis direction via the second movable barrel 13, to move in the optical axis direction relative to the cam ring 11 in a predetermined moving manner due to the engagement of the set of three cam followers 31 with the set of three outer cam grooves llc of the cam ring 11, respectively.
Accordingly, an axial position of the first lens group LG1 relative to a picture plane (imaging surface! light receiving surface of the CCD image sensor 60) when the first lens group LG1 is moved forward from the fully retracted position is determined by the sum of the amount of forward movement of the cam ring 11 relative to the stationary barrel 22 and the amount of movement of the third external barrel 12 relative to the cam ring 11, while an axial position of the second lens group LG2 relative to the picture plane when the second lens group LG2 is moved forward from the fully retracted position is determined by the sum of the amount of forward movement of the cam ring 11 relative to the stationary barrel 22 and the amount of movement of the second lens -28 -group moving frame 8 relative to the cam ring 11.
A zooming operation is carried out by moving the first and second lens groups LG1 and LG2 on the photographing optical axis Zi while changing the air distance therebetween. When the zoom lens 20]. is driven to advance from the fully retracted position shown in Figure 3, the zoom lens 201 firstly moves to a position shown above the photographing lens axis Zi in Figure 2 in which the zoom lens 201 is at the wide angle extremity. Subsequently, the zoom lens 201 moves towards a position state shown below the photographing lens axis Zi in Figure 2 in which the zoom lens 201 is at the telephoto extremity by a further rotation of the zoom motor 150 in a lens barrel advancing direction thereof. As can be seen from Figure 2, the space between the first and second lens groups LG1 and LG2 when the zoom lens 201 is at the wide angle extremity is greater than when the zoom lens 201 is at the telephoto extremity. When the zoom lens 201 is at the telephoto extremity as shown below the photographing lens axis Zi in Figure 2, the first and second lens groups LG1 and LG2 have moved to approach each other to have a space therebetween which is smaller than the space in the zoom lens 201 at the wide angle extremity. This variation of the air distance between the first and second lens groups LG1 and LG2 for the zooming operation is achieved by contours of the plurality of inner cam grooves lib (for moving the second lens group LG2) and the set of three outer cam grooves lic (for moving the first lens group LG1) of the cam ring 11. In the zooming range between the wide angle extremity and the telephoto extremity, the cam ring 11, the first movable barrel 15 and the helicoid ring 18 rotate at their respective axial fixed positions, i.e., without moving in the optical axis direction.
In a ready to photograph state of the zoom lens 201 between the wide angle extremity and the telephoto extremity, a focussing operation is carried out by moving the third lens group LG3 (the third lens frame 51) along the photographing optical axis Z1 by driving the AF motor 160 in accordance with object distance information obtained by a distance measuring device of the digital camera 200.
Upon the main switch 101 being turned OFF, the zoom motor 150 is driven to rotate in a lens barrel retracting direction so that the zoom lens 201 operates in the reverse manner to the above described advancing operation to fully retract the zoom lens 201 into the camera body 202 as shown in Figure 3. During the course of this retracting movement of the zoom lens 201, the -30 -second lens frame 6 rotates about the pivot shaft 33 to the radially retracted position by the position control cam bar 23a while moving rearward together with the second lens group moving frame 8. When the zoom lens 201 is fully retracted into the camera body 202, the second lens group LG2 is retracted into the space radially outside the space in which the third lens group LG3, the low pass filter LG4 and the CCD image sensor 60 are retracted as shown in Figure 3, i.e., the second lens group LG2 is radially retracted into an axial range substantially identical to an axial range in the optical axis direction in which the third lens group LG3, the low pass filter LG4 and the CCD image sensor 60 are positioned. This structure of the digital camera 200 for retracting the second lens group LG2 in this manner reduces the length of the zoom lens 201 when the zoom lens 201 is fully retracted, thus making it possible to reduce the thickness of the camera body 202 in the optical axis direction, i.e., in the horizontal direction as viewed in Figure 3.
The digital camera 200 is provided with an image stabilizer (optical image stabilizer) . This image stabilizer moves the CCD image sensor 60 in a plane orthogonal to the photographing optical axis Zi to counteract image shake of an object image captured by -31 -the CCD image sensor 60 in accordance with the direction and the magnitude of vibration (hand shake) applied to the digital camera 200. This control is performed by the control circuit 102 (Figure 25) . Figures 7 through 9 show an image stabilizing unit IS including the CCD image sensor 60. Figure 10 is an exploded perspective view of the entire image stabilizing unit IS and Figures 11 through 23 are perspective views or exploded perspective views of various portions of the image stabilizing unit IS.
The stationary holder 23 is provided with a pair of Y axis direction guide rods 73 and 79 which extend in the Y axis direction (the vertical direction of the digital camera 200). The Y axis direction moving stage 71 is provided with a guide hole 71a and a guide groove 71b (see Figure 16) in which the pair of Y axis direction guide rods 73 and 79 are engaged so that the Y axis direction moving stage 71 is supported by the pair of Y axis direction guide rods 73 and 79 to be freely slidable thereon, respectively. A pair of X axis direction guide rods 72 and 74 are fixed to the Y axis direction moving stage 71 to extend in the X axis direction (the horizontal direction of the digital camera 200) that is perpendicular to the Y axis direction. The X axis direction stage 21 is provided -32 -with a guide hole 21a and a guide groove 21b (see Figures 12 and 13) in which the pair of X axis direction guide rods 72 and 74 are engaged so that the X axis direction moving stage 21 is freely slidable thereon, respectively. Accordingly, the CCD image sensor 60 is supported by the stationary holder 23 via the Y axis direction moving stage 71 and the X axis direction moving stage 21 to be movable in two axial directions orthogonal to each other in a plane orthogonal to the photographing optical axis Zi. The range of movement of the X axis direction stage 21 is defined by inner peripheral surfaces of the Y axis direction moving stage 71, while the range of movement of the Y axis direction moving stage 71 is defined by inner peripheral surfaces of the stationary holder 23.
The image stabilizing unit IS is provided with an X axis direction stage biassing spring 87x which is extended and to be installed between a spring hook 21v formed on the X axis direction moving stage 21 and a spring hook 23vx formed on the stationary holder 23.
The X axis direction stage biassing spring 87x is an extension coil spring and biases the X axis direction moving stage 21 rightward as viewed from the front of the zoom lens 201 (leftward as viewed from the rear of the zoom lens 201) . The image stabilizing unit IS is -33 -provided with a Y axis direction stage biassing spring 87y which is extended and to be installed between a spring hook 71v formed on the Y axis direction moving stage 71 and a spring hook 23vy formed on the stationary holder 23. The Y axis direction stage biassing spring 87y is an extension coil spring and biases the Y axis direction moving stage 71 downward. The axis of the X axis direction stage biassing spring 87x lies in a plane in which the axes of the pair of X axis direction guide rods 72 and 74, which serve as an X axis direction guide device for guiding the X axis stage 21 in the X axis direction, lie.
As shown in Figures 16 and 17, the image stabilizing unit IS is provided on one side of the Y axis direction moving stage 71 with a Y axis direction moving member 80 which is supported by the Y axis direction moving stage 71. The Y axis direction moving member 80 is elongated in the Y axis direction and provided in the vicinity of upper and lower ends of the Y axis direction moving member 80 with a movement limit lug 80a and a movement limit lug 80b, respectively. The Y axis direction moving member 80 is provided at a lower end thereof with a guide pin 80c which extends downward from the movement limit lug 80a. The movement limit lug 80b is provided with a pair of guide holes 80d. The Y -34 -axis direction moving member 80 is further provided in the vicinity of the pair of guide holes 80d with a nut contacting portion 80e and a linear groove 80f (see Figure 16), and is further provided, on a vertically straight portion of the Y axis direction moving member between the movement limit lug 80a and the movement limit lug 80b, with a spring hook 80g (see Figure 17) The linear groove 80f is elongated in the Y axis direction.
The Y axis direction moving stage 71 is provided with a movement limit lug 7lc and a movement limit lug 7ld which face the movement limit lug 80a and the movement limit lug 80b of the Y axis direction moving member 80, respectively. The movement limit lug 71c is provided with a guide hole 7le in which the guide pin 80c is slidably engaged, and the movement limit lug 71d is provided with a pair of guide pins 71f which extend upward to be slidably engaged in the pair of guide holes 80d, respectively. The Y axis direction moving stage 71 is provided on a vertically straight portion thereof between the movement limit lug 71c and a movement limit lug 71d, with a spring hook 71g.
The Y axis direction moving stage 7]. and the Y axis direction moving member 80 are guided to be movable relative to each other in the Y axis direction by the engagement of the guide hole 71e with the guide pin SOc and the engagement of the pair of guide pins 71f with the pair of guide holes 80d. The image stabilizing unit IS is provided with an extension joining spring 8ly which is extended and installed between the spring hook 71g of the Y axis direction moving stage 71 and the spring hook 80g of the Y axis direction moving member 80. The extension joining spring 81y biases the Y axis direction moving stage 71 and the Y axis direction moving member 80 in opposite directions to bring the movement limit lug 80a and the movement limit lug 71c into contact with each other and to bring (bias) the movement limit lug 80b and the movement limit lug 71d into contact with each other, i.e., in opposite directions to move the Y axis direction moving stage 71 and the Y axis direction moving member 80 upward and downward, respectively.
Another pair of X axis direction guide rods 77 and 78 that are different from the pair of X axis direction guide rods 72 and 74 are fixed to the stationary holder 23 to extend in the X axis direction. The image stabilizing unit IS is provided with a first X axis direction moving member 75 which, is supported by the stationary holder 23 via the pair of X axis direction guide rods 77 and 78 to be freely slidable thereon. As -36 -shown in Figures 14 and 15, the first X axis direction moving member 75 is elongated in the X axis direction and is provided, in the vicinity of opposite ends of the first X axis direction moving member 75 in the X axis direction, with a movement limit lug 75a and a movement limit lug 75b, respectively. A pair of guide holes 75c in which the X axis direction guide rod 77 is inserted are formed on the movement limit lugs 75a and 75b, respectively, to be aligned in the X axis direction. A guide hole 75d in which the X axis direction guide rod 78 is inserted is formed on the movement limit lug 75a.
No guide hole corresponding to the guide hole 75d is formed on the movement limit lug 75b. The movement limit lug 75a is provided between the associated guide hole 75c and the guide hole 75d with a pair of guide holes 75e. The movement limit lug 75b is provided, above the associated guide hole 75c in the Y axis direction (see Figure 15), with a guide pin 75f which extends in the X axis direction in a direction away from the movement limit lug 75a. The first X axis direction moving member 75 is further provided at the bottom of the movement limit lug 75a with a linkage projection 75g, and is further provided, on a horizontally straight portion of the first X axis direction moving member 75 between the movement limit lug 75a and a movement limit -37 -lug 75b, with a spring hook 75h.
The image stabilizing unit IS is provided on the first X axis direction moving member 75 with a second X axis direction moving member 76. The second X axis direction moving member 76 is provided with a movement limit lug 76a and a movement limit lug 76b which are separate from each other in the X axis direction. The movement limit lug 76a is provided with a pair of guide pins 76c which extend in the X axis direction to be slidably engaged in the pair of guide holes 75e of the first X axis direction moving member 75, respectively, while the movement limit lug 76b is provided with a guide hole 76d in which the guide pin 75f of the first X axis direction moving member 75 is slidably engaged.
The second X axis direction moving member 76 is further provided in the vicinity of the movement limit lug 76a with a nut contacting portion 76e and a linear groove 76f (see Figure 15), and is further provided, on a horizontally straight portion of the second X axis direction moving member 76 between the movement limit lug 76a and the movement limit lug 76b, with a spring hook 76g. The linear groove 76f is elongated in the Y axis direction.
The first X axis direction moving member 75 and the second X axis direction moving member 76 are -38 -guided to be movable relative to each other in the X axis direction by the engagement of the pair of guide pins 76c with the pair of guide holes 75e and the engagement of the guide pin 75f with the guide hole 76d.
The image stabilizing unit IS is provided with an extension joining spring 81x which is extended and to be installed between the spring hook 75h of the first X axis direction moving member 75 and the spring hook 76g of the second X axis direction moving member 76. The extension joining spring 81x biases the first X axis direction moving member 75 and the second X axis direction moving member 76 in opposite directions to bring (bias) the movement limit lug 75a and the movement limit lug 76a into contact with each other and to bring the (bias) movement limit lug 75b and the movement limit lug 76b into contact with each other.
The linkage projection 75g of the first X axis direction moving member 75 is in contact with a transfer roller 2lc (see Figures 12, 13 and 24) mounted to the X axis direction moving stage 21 so that a moving force in the X axis direction is transferred from the first X axis direction moving member 75 to the X axis direction moving stage 21 via the contacting engagement between the linkage projection 75g and the transfer roller 21c.
The transfer roller 2lc is supported by a rotation pin -39 -parallel to the photographing optical axis ZI. so as to be freely rotatable on the rotation pin. When the X axis direction moving stage 21 moves with the Y axis direction moving stage 71 in the Y axis direction, the transfer roller 21c rolls on a contacting surface of the linkage projection 75g. This contacting surface of the linkage projection 75g is a flat surface elongated in the Y axis direction, and accordingly, allows the transfer roller 21c to roll on the contacting surface of the linkage projection 75g and makes it possible for the X axis direction moving stage 21 to move in the Y axis direction without exerting any driving force in the Y axis direction to the first X axis direction moving member 75. The transfer roller 21c and the aforementioned flat contacting surface (transfer surface) of the linkage projection 75g, on which the transfer roller 21c rolls, are in contact with each other in a common plane common with both the axes of the pair of X axis direction guide rods 72 and 74 and the axis of the)C axis direction stage biassing spring 87x.
As shown in Figure 11, the image stabilizing unit IS is provided with an X axis drive motor 170x serving as a drive source for driving the CCD image sensor 60 in the X axis direction and a Y axis drive motor 170y serving as a drive source for driving the CCD image -40 -sensor 60 in the Y axis direction. The X axis drive motor 170x and the Y axis drive motor 170y are fixed to a motor bracket 23bx and a motor bracket 23by, respectively, which are integrally formed on the stationary holder 23. Each of the X axis drive motor 170x and the Y axis drive motor l7Oy is a stepping motor. A drive shaft (rotary shaft) of the X axis drive motor 170x is threaded to serve as a feed screw 171x, and a drive shaft (rotary shaft) of the Y axis drive motor l7Oy is threaded to serve as a feed screw l7ly.
The feed screw l7lx is screwed into a female screw hole of an X axis direction driven nut member 85x and the feed screw 171y is screwed into a female screw hole of a Y axis direction driven nut member 85y. The X axis direction driven nut member 85x is guided linearly in the X axis direction by the linear groove 76f, and is in contact with the nut contacting portion 76e. The Y axis direction driven nut member 85y is guided linearly in the Y axis direction by the linear groove 80f, and is in contact with the nut contacting portion 80e. The X axis direction driven nut member 85x can be screw disengaged from either end of the feed screw 171x, and the Y axis direction driven nut member 85y can be screw disengaged from either end of the feed screw 171y.
A nut member biassing spring 89x is positioned -41 -between the X axis direction driven nut member 85x and the X axis drive motor 170x, and a nut member biassing spring 89y is positioned between the Y axis direction driven nut member 85x and the X axis drive motor l7Oy.
Each of the nut member biassing springs 89x and 89y is a compression coil spring which is loosely fitted on the associated feed screw l7lx and 171y, respectively, in a compressed state. The nut member biassing spring 89x biases the X axis direction driven nut member 85x in a direction to bring (bias) the X axis direction driven nut member 85x back into screw engagement with the X axis drive motor].70x in the case where the X axis direction driven* nut member 85x is disengaged from the X axis drive motor 170x toward the X axis drive motor 170x side. Likewise, the nut member biassing spring 89y biases the Y axis direction driven nut member 85y in a direction to bring (bias) the Y axis direction driven nut member 85y back into screw engagement with the Y axis drive motor l7Oy in the case where the Y axis direction driven nut member 85y is disengaged from the Y axis drive motor l7Oy toward the Y axis drive motor l7Oy side.
Figure 24 schematically shows the structure of the image stabilizing unit IS, viewed from the rear of the digital camera 200. Note that the relative position between the X axis direction guide rod 78 and the pair of guide pins 76c, etc., are different from those shown in Figures 7 through 23 for the purpose of illustration.
As can be understood from this schematic diagram, in the driving mechanism for driving the COD image sensor 60 in the X axis direction, the first X axis direction moving member 75 and the second X axis direction moving member 76 are coupled to each other resiliently by the biassing force of the extension joining spring 81x with the movement limit lug 75a and the movement limit lug 75b in contact with the movement limit lug 76a and the movement limit lug 76b, respectively. The biassing force of the X axis direction stage biassing spring 87x is exerted on the first X axis direction moving member 75 via the transfer roller 21c, which is in contact with the linkage projection 75g. Although the biassing force of the X axis direction stage biassing spring 87x is exerted on the first X axis direction moving member 75 leftward as viewed in Figure 24, i.e., in a direction to disengage the movement limit lugs 75a and 75b from the movement limit lugs 76a and 76b, respectively, the biassing force (spring force) of the extension joining spring 81x is predetermined to be greater than that of the X axis direction stage biassing spring 87x.
Therefore, the first X axis direction moving member 75 -43 -and the second X axis direction moving member 76 are collectively biassed leftward as viewed in Figure 24 while maintaining the movement limit lugs 75a and 75b in resilient contact with the movement limit lugs 76a and 76b, respectively. Since the leftward movement of the second X axis direction moving member 76 is limited by the engagement of the nut contacting portion 76e with the X axis direction driven nut member 85x, the position of the X axis direction driven nut member 85x serves as a reference position for each of the first X axis direction moving member 75 and the second X axis direction moving member 76 in the X axis direction. As can be seen in Figure 24, the end of the feed screw 171x extends through a through hole (see Figures 14 and 15) formed on the nut contacting portion 76e so as not to interfere therewith.
Driving the X axis drive motor 170x to rotate the drive shaft thereof (the feed screw 171x) causes the X axis direction driven nut member 85x, that is screw engaged with the feed screw 171x, to move linearly in the X axis direction, thus causing the relative position between the first X axis direction moving member 75 and the second X axis direction moving member 76 in the X axis direction to vary. For instance, if moved rightward with respect to the view shown in Figure 24, -44 -the x axis direction driven nut member 85x presses the nut contacting portion 76e in the same direction to thereby integrally move the first X axis direction moving member 75 and the second X axis direction moving member 76 rightward as viewed in Figure 24 against the spring force of the X axis direction stage biassing spring 87x. If the first X axis direction moving member is moved rightward with respect to the view shown in Figure 24, the linkage projection 75g presses the transfer roller 21c in the same direction to thereby move the X axis direction stage 21 rightward as viewed in Figure 24. Conversely, if the X axis direction driven nut member 85x is moved leftward as viewed in Figure 24, the first X axis direction moving member /5 and the second X axis direction moving member 76 follow the X axis direction driven nut member 85x to integrally move leftward as viewed in Figure 24 by the biassing force of the X axis direction stage biassing spring 87x.
At this time, the X axis direction stage 21 follows the first x axis direction moving member 75 to move leftward as viewed in Figure 24 by the biassing force of the X axis direction stage biassing spring 87x. The linkage projection 75g and the transfer roller 21c are maintained in contact with each other at all times by the biassing force of the X axis direction stage -45 -biassing spring 87x.
In the driving mechanism for driving the CCD image sensor 60 in the Y axis direction, the Y axis direction moving stage 71 and the Y axis direction moving member 80 are resiliently coupled to each other via the extension joining spring Sly with the movement limit lugs 71c and 71d being in contact with the movement limit lugs 80a and 80b, respectively. Although the Y axis direction moving stage 71 is biassed downward as viewed in Figure 24 by the spring force of the Y axis direction stage biassing spring 87y, i.e., in a direction to disengage the movement limit lugs 71c and 71d from the movement limit lugs 80a and 80b, respectively, the biassing force (spring force) of the extension joining spring 81y is predetermined to be greater than that of the Y axis direction stage biassing spring 87y. Therefore, the Y axis direction moving stage 71 and the Y axis direction moving member 80 are collectively biassed downward while maintaining the movement limit lugs 71c and 71d in resilient contact with the movement limit lugs 80a and 80b, respectively.
Since the downward movement of the Y axis direction moving member 80 is limited by the engagement of the nut contacting portion 80e with the Y axis direction driven nut member 85y, the position of the Y axis direction -46 -driven nut member 85y serves as a reference position for each of the Y axis direction moving stage 71 and the Y axis direction moving member 80 in the Y axis direction.
As can be seen in Figure 24, the end of the feed screw 171y extends through a through hole (see Figures 16 and 17) formed on the nut contacting portion 80e so as not to interfere therewith.
Driving the Y axis drive motor l7Oy to rotate the drive shaft thereof (the feed screw l7ly) causes the Y axis direction driven nut member 85y, that is screw engaged with the feed screw l7ly, to move linearly in the Y axis direction, thus causing the relative position between the Y axis direction moving stage 71 and the Y axis direction moving member 80 in the Y axis direction to vary. For instance, if the Y axis direction driven nut member 85y is moved upward as viewed in Figure 24, the Y axis direction driven nut member 85y presses the nut contacting portion 80e in the same direction to thereby integrally move the Y axis direction moving stage 71 and the Y axis direction moving member 80 upward with respect to the view shown in Figure 24 against the spring force of the Y axis direction stage biassing spring 87y. Conversely, if the Y axis direction driven nut member 85y is moved downward with respect to the view shown in Figure 24, the Y axis -47 -direction moving stage 71 and the Y axis direction moving member 80 follow the Y axis direction driven nut member 85y to integrally move downward by the biassing force of the Y axis direction stage biassing spring 87y.
When the Y axis direction moving stage 71 moves in the Y axis direction, the X axis direction stage 21 that is supported by the Y axis direction moving stage 71 thereon moves together with the Y axis direction moving stage 71. On the other hand, when the X axis direction stage 21 moves together with the Y axis direction moving stage 71 vertically in the Y axis direction, the contacting point between the transfer roller 21c and the contacting surface of the linkage projection 75g varies because the first X axis direction moving member 75, with which the transfer roller 21c is in contact, does not move in the Y axis direction. At this time, the transfer roller 21c rolls on the contacting surface of the linkage projection 75g, so that the X axis direction stage 21 can be moved in the Y axis direction without exerting any driving force in the Y axis direction to the first X axis direction moving member 75.
With the above described structure of the image stabilizing unit IS, the X axis direction stage 21 can be moved forward and reverse in the X axis direction by -48 -driving the X axis drive motor 170x forward and reverse, respectively; and the Y axis direction moving stage 71, together with the X axis direction stage 21 that is supported by the Y axis direction moving stage 71, can be moved forward and reverse in the Y axis direction by driving the Y axis drive motor 170y forward and reverse, respectively.
As shown in Figures 14 and 15, the first X axis direction moving member 75 is provided in the vicinity of the movement limit lug 75a with a position detection lug 75i in the shape of a small thin plate. As shown in Figure 16, the Y axis direction moving stage 71 is provided in the vicinity of the movement limit lug 71c with a position detection lug 71h in the shape of a small thin plate. As shown in Figures 18 and 19, the image stabilizing unit IS is provided with a first photo interrupter 103 and a second photo interrupter 104. The first photo interrupter 103 detects the presence of the position detection lug 75i of the first X axis direction moving member 75 that passes between mutually facing emitter/receiver elements when the light beam is blocked by the position detection lug 75i. Likewise, the second photo interrupter 104 detects the presence of the position detection lug 71h of the Y axis direction moving stage 71 that passes between mutually facing -49 -emitter/receiver elements when the light beam is blocked by the position detection lug 71h. The initial position of the first X axis direction moving member 75 (the X axis direction stage 21) in the X axis direction can be detected by detecting the presence of the position detection lug 75i by the first photo interrupter 103, while the initial position of the Y axis direction moving stage 71 in the Y axis direction can be detected by detecting the presence of the position detection lug 71h by the second photo interrupter 104.
As shown in the block diagram in Figure 25, the digital camera 200 is provided with an X axis direction gyro sensor (angular velocity sensor) 105 and a Y axis direction gyro sensor (angular velocity sensor) 106 which detect the angular velocity (angular speed) about two axes (the X axis and the Y axis) orthogonal to each other. The magnitude and the direction of camera shake (vibrations) applied to the digital camera 200 are detected by these two gyro sensors 105 and 106.
Subsequently, the control circuit 102 determines a moving angle by time integrating the angular velocity of the camera shake in the two axial directions, detected by the two gyro sensors 105 and 106. Subsequently, the control circuit 102 calculates from the moving angle the moving amounts of the image on a focal plane (imaging -50 -surface of the CCD image sensor 60) in the X axis direction and in the Y axis direction. The control circuit 102 further calculates the driving amounts and the driving directions of the X axis direction stage 21 (the first X axis direction moving member 75 and the second X axis direction moving member 76) and the Y axis direction moving stage 71 (the Y axis direction moving member 80) for the respective axial directions (driving pulses for the X axis drive motor 170x and the Y axis drive motor l7Oy) in order to counteract camera shake.
Thereupon, the X axis drive motor 170x and the Y axis drive motor l7Oy are actuated and the operations thereof are controlled in accordance with the calculated values, which counteract image shake of an object image captured by the CCD image sensor 60. The digital camera can be put into this image stabilization mode by turning on a photographing mode select switch 107 (see Figure 25) . If the photographing mode select switch 107 is in an off state, the image stabilizing capability is deactivated so that a normal photographing operation is performed.
Additionally, by operating the photographing mode select switch 107, either a first tracking mode or a second tracking mode can be selected in the image stabilization mode. The image stabilizing capability -51 -remains activated by driving the X axis drive motor l7Ox and the Y axis drive motor 170y in the first tracking mode, while the image stabilizing capability is activated by driving the X axis drive motor 170x and the Y axis drive motor l7Oy only when a photometric switch 108 or a release switch 109 (see Figure 25) provided in the digital camera 200 is turned ON in the second tracking mode. The photometric switch 108 is turned ON by depressing the shutter button 205 half way, and the release switch 109 is turned ON by fully depressing the shutter button 205.
The above illustrated image stabilizer of the digital camera 200 is provided with a damage protection structure which absorbs loads and impacts on a driving force transfer mechanism from each of the X axis drive motor 170x and the Y axis drive motor l7Oy to the CCD image sensor 60 (the X axis direction stage 21) to prevent damage to the feed screws l7lx and 171y and other associated elements. This damage protection structure comprises two major components: a first component having the first X axis direction moving member 75 and the second X axis direction moving member 76 (which are resiliently coupled to each other by the extension joining spring 81x) in the driving mechanism for driving the CCD image sensor 60 in the X axis -52 -direction and a second component having the Y axis direction stage 71 and the Y axis direction moving member 80 (which are resiliently coupled to each other by the extension joining spring 81y) in the driving mechanism for driving the CCD image sensor 60 in the Y axis direction.
The driving mechanism for driving the CCD image sensor 60 in the X axis direction has the capability of protecting itself from damage. This capability will be discussed hereinafter.
For instance, when the X axis direction driven nut member 85x is moved rightward with respect to the view shown in Figure 24 by the X axis drive motor 170x, the first X axis direction moving member 75 and the second X axis direction moving member 76, which move integrally in a normal state, move relative to each other in the X axis direction so as to disengage the movement limit lug 75a and the movement limit lug 76a (and also the movement limit lug 75b and the movement limit lug 76b) from each other against the biassing force of the extension joining spring 81x in the event of the X axis direction stage 21 abutting against the Y axis direction stage 71 upon reaching a mechanical limit of movement of the X axis direction stage 21 or other causes which interfere with movement of the X axis direction stage -53 - 21. Specifically, the second X axis direction moving member 76 can solely move rightward in the X axis direction relative to the first X axis direction moving member 75 in the case where movement of the first X axis direction moving member 75, together with the X axis direction stage 21, is prevented for some reason. This structure makes it possible for the X axis direction driven nut member 85x to move along the feed screw 171x even if the X axis direction stage 21 becomes immobilized. This prevents excessive loads on the aforementioned driving force transfer mechanism, thus preventing thread lamming between the feed screw 171x and the X axis direction driven nut member 85x and further preventing damage to other associated parts of the driving force transfer mechanism.
When the X axis direction driven nut member 85x is moved leftward with respect to the view shown in Figure 24 by the X axis drive motor 170x, the X axis direction driven nut member 85x moves in a direction away from the nut contacting portion 76e, and accordingly, the driving force of the X axis drive motor 170x does not act on either the first X axis direction moving member 75 or the second X axis direction moving member 76. Hence, no undue loads are exerted on the driving force transfer mechanism even if movement of the -54 -X axis direction stage 21 is prevented for some reason.
Similar to the driving mechanism for driving the CCD image sensor 60 in the X axis direction, the driving mechanism for driving the CCD image sensor 60 in the Y axis direction also has the capability of protecting itself from damage. This capability will be discussed hereinafter.
For instance, when the Y axis direction driven nut member 85y is moved upward with respect to the view shown in Figure 24 by the Y axis drive motor l7Oy, the Y axis direction moving member 80 and the Y axis direction moving stage 71, which move integrally in a normal state, move relative to each other in the Y axis direction to disengage the movement limit lug 71c and the movement limit lug 80a (and also the movement limit lug 71d and the movement limit lug 80b) away from each other against the biassing force of the extension joining spring 8iy in the event of the Y axis direction stage 71 abutting against the stationary holder 23 upon reaching a mechanical limit of movement of the Y axis direction stage 71 or other causes which interfere with movement of the Y axis direction stage 71 (or the X axis direction stage 21). Specifically, the Y axis direction moving member 80 can solely move upward in the Y axis direction relative to the Y axis direction moving stage -55 - 71 in the case where movement of the Y axis direction stage 71 is prevented for some reason. This structure makes it possible for the Y axis direction driven nut member 85y to move along the feed screw l7ly even if the Y axis direction stage 71 becomes immobilized. This prevents excessive loads on the aforementioned driving force transfer mechanism, thus preventing thread jamming between the feed screw l7ly and the Y axis direction driven nut member 85y and further preventing damage to other associated parts of the driving force transfer mechanism.
When the Y axis direction driven nut member 85y is moved downward with respect to the view shown in Figure 24 by the Y axis drive motor 170y, the Y axis direction driven nut member 85y moves in a direction away from the nut contacting portion 80e, and accordingly, the driving force of the Y axis drive motor l7Oy does not act on either the Y axis direction moving member 80 or the Y axis direction moving stage 71.
Hence, no undue loads are exerted on the driving force transfer mechanism even if movement of the Y axis direction stage 71 is prevented for some reason.
As mentioned above, the range of movement of the X axis direction stage 21 is defined by inner peripheral surfaces of the Y axis direction moving stage 71, while the range of movement of the Y axis direction moving stage 71 is defined by inner peripheral surfaces of the stationary holder 23. Namely, the mechanical limits of movement of the X axis direction stage 21 in the X axis direction are defined by inner peripheral surfaces of the Y axis direction moving stage 71, while the mechanical limits of movement of the Y axis direction stage 71 in the Y axis direction are defined by inner peripheral surfaces of the stationary holder 23. It is desirable that the driving force of the X axis drive motor 170x be stopped being transferred from the feed screw 171x to the X axis direction driven nut member 85x upon the X axis direction stage 21 reaching either of the right and left limits of movement thereof, and that the driving force of the Y axis drive motor l7Oy be stopped being transferred from the feed screw l7ly to the Y axis direction driven nut member 85y upon the Y axis direction stage 71 reaching either of the upper and lower limits of movement thereof.
However, taking manufacturing tolerances of the associated components into consideration, such an ideal correlation cannot be always achieved. For instance, if the X axis direction driven nut member 85x and the feed screw 171x (or the Y axis direction driven nut member 85y and the feed screw l7ly) are still screw engaged -57 -with each other by a sufficient axial length in a state where the X axis direction stage 21 (or the Y axis direction stage 71) has reached a mechanical limit of movement thereof, there will be a possibility of jamming occurring between the feed screw l7lx and the X axis direction driven nut member 85x (or the feed screw 171y and the Y axis direction driven nut member 85y) due to loads placed on each of the X axis direction driven nut member 85x and the feed screw 171x (or the Y axis direction driven nut member 85y and the feed screw 171y) by a further rotation of the X axis drive motor 170x (or the Y axis drive motor l7Oy) if the image stabilizer of the digital camera 200 incorporates no damage protection structure such as the above described damage protection structure.
To prevent this problem from occurring, the image stabilizing mechanism can be considered to be constructed so that the X axis direction driven nut member 85x (the Y axis direction driven nut member 85y) is disengaged from the feed screw 171x (l7ly) to come off upon reaching either end of the feed screw 171x (l7ly) after giving the X axis direction driven nut member 85x (the Y axis direction driven nut member 85y) a sufficient range of movement on the feed screw l7lx (l7ly) so that the X axis direction stage 21 (the Y axis -58 -direction stage 71) may not reach a mechanical limit of movement thereof easily. However, with this structure, the range of movement of each of the X axis direction stage 21 and the Y axis direction stage 71 is required to be increased more than necessary, which may undesirably increase the size of the whole image stabilizer. Additionally, if the X axis direction stage 21 or the Y axis direction stage 71 is jammed accidentally at some middle point in the range of movement thereof (i.e., not at either end of the range of movement thereof), heavy loads are put on the screw engaged portion between the X axis direction driven nut member 85x (or the Y axis direction driven nut member 85y) and the feed screw 171x (or 171y), regardless of the range of movement of the X axis direction stage 21 or the Y axis direction stage 71.
Conversely, with the above illustrated embodiment of the image stabilizer, a difference in amount of movement in the X axis direction between the X axis direction driven nut member 85x and the X axis direction stage 21 is absorbed by intermediate members (i.e., the first X axis direction moving member 75 and the second X axis direction moving member 76), while a difference in amount of movement in the Y axis direction between the Y axis direction driven nut member 85y and the X - 59 -axis direction stage 21 is absorbed by intermediate members (i.e., the Y axis direction stage 71 and the Y axis direction moving member 80), and therefore, the range of movement of each of the X axis direction stage 21 and the Y axis direction stage 71 does not need to be increased more than necessary. Moreover, even if the X axis direction stage 21 or the Y axis direction stage 71 is jammed accidentally at some middle point in the range of movement thereof (i.e., not at either end of the range of movement thereof), no heavy loads are put on the screw engaged portion between the X axis direction driven nut member 85x (or the Y axis direction driven nut member 85y) and the feed screw 171x (or 171y) because a difference in amount of movement in the X axis direction between the X axis direction driven nut member 85x and the X axis direction stage 21 (or a difference in amount of movement in the Y axis direction between the X axis direction driven nut member 85y and the Y axis direction stage 21) is absorbed by the aforementioned intermediate members (the first X axis direction moving member 75 and the second X axis direction moving member 76, or the Y axis direction stage 71 and the Y axis direction moving member 80).
In the present embodiment of the image stabilizer, the maximum amount of relative movement between the -60 -first X axis direction moving member 75 and the second X axis direction moving member 76 is predetermined to be capable of absorbing any difference in amount of movement between the X axis direction driven nut member 85x and the X axis direction stage 21 wherever each of the X axis direction driven nut member 85x and the X axis direction stage 21 may be positioned in the range of movement thereof. Likewise, the maximum amount of relative movement between the Y axis direction stage 71 and the Y axis direction moving member 80 is predetermined to be capable of absorbing any difference in amount of movement between the Y axis direction driven nut member 85y and the Y axis direction stage 71 wherever each of the y axis direction driven nut member 85y and the Y axis direction stage 71 may be positioned in the range of movement thereof.
A restriction on movement on the X axis direction stage 21 or the Y axis direction stage 71 is not the only cause of imposing loads on the driving force transfer mechanism. Since the CCD image sensor 60, that serves as an optical element for counteracting image shake, is supported to be freely movable in the X axis direction and the Y axis direction, there is a possibility of the X axis direction stage 21 (which holds the CCD image sensor 60) or the Y axis direction -61 -stage 71 (which holds the X axis direction stage 21) being subjected to a force which forces the X axis direction stage 21 or the Y axis direction stage 71 to move even though no driving force is applied thereto by the X axis drive motor 170x or the Y axis drive motor l7Oy, respectively, in the case where a shock or sudden impact is applied to the digital camera 200 when the digital camera 200 is, e.g., dropped to the ground.
Even in such a case, such loads, shock or sudden impact can be securely absorbed in the present embodiment of the image stabilizer.
For instance, if the X axis direction stage 21 is moved leftward with respect to the view shown in Figure 24 by an external force other than the driving force of the X axis drive motor 170x, the first X axis direction moving member 75 is pressed in the same direction via the transfer roller 21c. Since this direction of pressing the first X axis direction moving member 75 is a direction which disengages the movement limit lugs 75a and 75b from the movement limit lugs 76a and 76b, respectively, the first X axis direction moving member can solely move leftward relative to the second X axis direction moving member 76 against the biassing force of the extension joining spring 8lx. At this time, the first X axis direction moving member 75 does -62 -not mechanically press the second X axis direction moving member 76 so that only a resilient tensile force of the extension joining spring 81x acts on the second X axis direction moving member 76, and accordingly, no excessive force is applied to the X axis direction driven nut member 85x from the second X axis direction moving member 76. If the X axis direction stage 21 is moved rightward with respect to the view shown in Figure 24 by an external force other than the driving force of the X axis drive motor 170x, the X axis direction stage 21 moves in a direction to disengage the transfer roller 21c from the linkage projection 75g, neither the first X axis direction moving member 75 nor the second X axis direction moving member 76 is subjected to the moving force of the X axis direction stage 21. Namely, even if the X axis direction stage 21 is forced to move forward or reverse in the X axis direction by an external force or the like when the X axis drive motor 170x is not in operation, no undue loads are exerted on the screw engaged portion between the X axis direction driven nut member 85x and the feed screw l7lx.
On the other hand, if the Y axis direction stage 71 is moved downward with respect to the view shown in Figure 24 by an external force other than the driving force of the Y axis drive motor l7Oy, this moving direction of the Y axis direction stage 71 is a direction which disengages the movement limit lugs 80a and 80b from the movement limit lugs 71c and 71d, respectively, and accordingly, the Y axis direction stage 71 can solely move downward relative to the Y axis direction moving member 80 against the biassing force of the extension joining spring 81y. At this time, the Y axis direction stage 71 does not mechanically press the Y axis direction moving member 80, so that only a resilient tensile force of the extension joining spring 81y acts on the Y axis direction moving member 80, and accordingly, no excessive force is applied to the Y axis direction driven nut member 85y from the Y axis direction moving member 80. If the Y axis direction stage 71 is moved upward with respect to the view shown in Figure 24 by an external force other than the driving force of the Y axis drive motor l7Oy, the Y axis direction moving member 80 is pressed upward via the engagement between the movement limit lug 80a and the movement limit lug 71c and the engagement between the movement limit lug BOb and the movement limit lug 71d.
At this time, the moving force of the Y axis direction moving member 80 does not act on the Y axis direction driven nut member 85y because this direction of movement of the Y axis direction moving member 80 is a direction -64 -to disengage the nut contacting portion 80e from the Y axis direction driven nut member 85y. Namely, even if the Y axis direction stage 71 is forced to move forward or reverse in the Y axis direction by an external force or the like when the Y axis drive motor l7Oy is not in operation, no undue loads are exerted on the screw engaged portion between the Y axis direction driven nut member 85y and the feed screw l7ly.
As can be understood from the above description,
with the above illustrated embodiment of the image stabilizer, in either of the following two cases, i.e., the case where a malfunction occurs in the moving operation of the X axis direction stage 21 and/or the Y axis direction stage 71 when it is driven by the X axis drive motor 170x or the Y axis drive motor l7Oy; and the case where the X axis direction stage 21 and/or the Y axis direction stage 71 is forced to move unexpectedly by an external force or the like, such an accidental movement can be absorbed to thereby prevent the driving mechanism for the image stabilizing optical element from being damaged. Specifically, the image stabilizer is designed so that no heavy loads are put on either of the two screw engaged portions between the X axis direction driven nut member 85x and the feed screw 171x and between the Y axis direction driven nut member 85y and -65 -the feed screw 171y, which produces a high degree of effectiveness of preventing each of these two screw engaged portions from being damaged. Although it is possible to drive the X axis direction stage 21 and the Y axis direction stage 71 with a high degree of precision by narrowing the lead angles of the feed screws 171x and l7ly, respectively, a narrowing of the lead angle of either feed screw disadvantageously reduces the strength of the feed screw mechanism.
However, with the above illustrated embodiment of the image stabilizer, the lead angle of each feed screw can be narrowed since no heavy loads are applied on either of the aforementioned two screw engaged portions.
Figures 26 through 28 show another embodiment (second embodiment) of the image stabilizing unit IS.
In this embodiment, the elements corresponding to those in the previous embodiment (first embodiment) of the image stabilizer IS are designated with like reference numerals. The second embodiment of the image stabilizing unit is the same as the first embodiment of the image stabilizing unit except that one end (left side as viewed in Figure 28) of the X axis direction stage biassing spring 87x is hooked on the Y axis direction stage 71, not on the stationary holder 23.
More specifically, the X axis direction stage biassing -66 -spring 87x is extended and installed between a spring hook 71w formed on the Y axis direction stage 71 and the spring hook 21v of the X axis direction stage 21. The same effect as that of the first embodiment of the image stabilizing unit can be obtained in the second embodiment of the image stabilizing unit.
As described in the above illustrated embodiments of the image stabilizing unit (image stabilizer) IS, the Y axis direction moving stage (first moving stage) 71 is supported by the stationary holder (stationary member) 23 thereon to be freely movable linearly in the Y axis direction (first direction) in a plane orthogonal to the photographing optical axis Zi, the X axis direction moving stage (second moving stage) 21 is supported by the I axis direction moving stage 71 thereon to be freely movable linearly in the X axis direction (second direction; which is orthogonal to the Y axis direction) in the aforementioned plane orthogonal to the photographing optical axis Zi, and the CCD image sensor (image stabilizing optical element) 60 is mounted on the X axis moving stage 21. Additionally, both the X axis drive motor (second driving device) 170x, which serves as a drive source for driving the CCD image sensor 60 forward and reverse in the X axis direction, and the Y axis drive motor (first driving device) 170y, which -67 -serves as a drive source for driving the CCD image sensor 60 forward and reverse in the Y axis direction, are mounted on the stationary holder 23.
The Y axis direction driven nut member (intermediate moving element/ first drive nut) 85y and the Y axis direction moving member (intermediate moving element) 80 are directly linked with each other by a direct mechanical linkage portion which is composed of the movement limit lugs (contacting surfaces! first contacting surfaces) 80a and 80b, the movement limit lugs (contacting surfaces! second contacting surfaces) 7lc and 71d and the extension joining spring (intermediate moving element biassing spring) 8ly, which biases the Y axis direction moving stage 71 and the Y axis direction moving member 80 in opposite directions to bring (bias) the movement limit lug 80a and the movement limit lug 71c into contact with each other and to bring the movement limit lug 80b and the movement limit lug 71d into contact with each other.
Constructing the direct mechanical linkage portion from the two sets of movement limit lugs (contacting surfaces) 71c, 71d, 80a and 80b and the extension joining spring (Y axis direction biassing spring! intermediate moving element biassing spring) 81y in such a manner makes it possible to achieve an escape -68 - (absorber/relief) for relieving mechanical strain upon an excessive load being applied to the Y axis direction moving stage 71. However, it is possible to modify the above described embodiment so that the Y axis direction driven nut member 85y, the Y axis direction moving member 80 and the Y axis direction moving stage 71 are formed as one integral member with such a direct mechanical linkage portion being omitted.
The X axis direction driven nut member (moving element/ second drive nut) 85x, the second X axis direction moving member (moving element) 76 and the first X axis direction moving member (moving element) 75 are associatively linked to the X axis direction moving stage 21 in a manner to be allowed to move in the Y axis direction relative to the X axis direction moving stage 21 through a linkage portion (X axis direction linkage portion) which is composed of the linkage projection (transfer surface/first contacting portion) 75g and the transfer roller (movable contact member/second contacting portion) 21c which contact with each other by a biassing force of the X axis direction stage biassing spring (biassing member! X axis direction biassing spring) 87x.
Constructing the X axis direction linkage portion from a Y axis direction surface (transfer -69 -surface/linkage projection 75g) and the moving member (transfer roller 21c), which are resiliently connected via the X axis direction stage biassing spring (X axis direction biassing spring! biassing member) 87x, in such a manner makes it possible to drive the X axis direction moving stage 21 smoothly in the X axis direction by the X axis direction driving device (the X axis drive motor 170x), which is supported by a stationary member (the stationary holder 23) thereon. The first X axis direction moving member 75, the second X axis direction moving member 76, the X axis direction linkage portion, and the extension joining spring 81x are components of an X axis direction moving device.
Note that, alternative to the above illustrated embodiments, the X axis direction driven nut member 85x, the second X axis direction moving member 76 and the first X axis direction moving member 75 can be formed as one integral member. Furthermore, instead of providing the image stabilizing unit IS with the linkage projection 75g, the transfer roller 21c and the X axis direction moving stage biassing sprig 87x, which serve as the Y axis direction surface (transfer surface), the moving member and the X axis direction biassing spring (biassing member), respectively, it is possible to provide the image stabilizing unit IS with an engaging hole elongated in the first direction (the Y axis direction) and to make a roller or the like which is supported by the X axis direction moving stage 21 engaged in the elongated engaging hole to be freely movable in the direction of elongation of the elongated engaging hole. The transfer roller 21c can be provided as a fixed member made of a low friction material.
Alternative to the above illustrated embodiments of the image stabilizing unit IS, each of the extension joining springs 8lx and 8ly, the X axis direction stage biassing spring 87x and the Y axis direction stage biassing spring 87y can be made as a compression spring instead of an extension spring by modifying the configurations and shapes of the associated elements.
Although the X axis direction driving device (second driving device) and the Y axis direction driving device (first driving device) respectively include the feed screw (second feed screw) 171x and the feed screw (first feed screw) 171y, that are rotated forward and reverse, and the moving element movable in the X axis direction and the moving element movable in the Y axis direction are respectively composed of the X axis direction driven nut member 85x and the Y axis direction driven nut member 85y that are screw engaged with the feed screws 171x and lily in the above illustrated -71 -embodiments of the image stabilizing unit IS, any other alternative actuators (driving devices) can be used.
In the above illustrated embodiments of the image stabilizing unit IS, the Y axis moving stage 71 is guided in the Y axis direction by the pair of Y axis direction guide rods (first guide members) 73 and 79 that are provided on the stationary holder 23 to be freely slidable on the pair of Y axis direction guide rods 73 and 79, while the linkage projection 75g and the transfer roller 21c that are elements of the X axis direction linkage portion are positioned between the Y axis direction guide rod 73 and an imaginary straight line segment which extends in the Y axis direction and passes through the CCD image sensor (image stabilizing optical element) 60.
According to this configuration, the parallelism between the Y axis direction guide rod 73 and the X axis direction linkage portion (75g, 21c) can be easily maintained. Moreover, a secure linkage between the first X axis direction moving member 75 (and 76 and 85x) and the X axis direction moving stage 21 can be achieved. The pair of Y axis direction guide rods (first guide members) 73 and 79 and the X axis direction linkage portion can prevent interference with the motion (e.g., mechanical distortion) of the image stabilizing -72 -optical element (the CCD image sensor 60) if at least a part of the pair of Y axis direction guide rods 73 and 79 and at least a part of the X axis direction linkage portion are positioned in a common plane orthogonal to the photographing optical axis Zi (more desirably, if the pair of Y axis direction guide rods 73 and 79 and the X axis direction linkage portion are precisely positioned in a common plane orthogonal to the photographing optical axis Zi).
In the above illustrated embodiments of the image stabilizing unit IS, the X axis direction moving stage 21 is guided in the X axis direction by the pair of X axis direction guide rods (second guide members/X axis direction guide device) 72 and 74, provided on the Y axis direction moving stage 71, to be freely slidable on the pair of X axis direction guide rods 72 and 74, while the linkage projection 75g, the transfer roller 21c and the X axis direction stage biassing spring 87x are positioned on one side of the pair of X axis direction guide rods 72 and 74 (i.e., above the pair of X axis direction guide rods 72 and 74 in the drawings) According to this configuration, the spring force of the X axis direction stage biassing spring 87x can be reliably applied to the X axis direction linkage portion (75g and 21c) to ensure that the linkage projection 75g -73 -and the transfer roller 21c contact each other. The pair of X axis direction guide rods (second guide members/X axis direction guide device) 72 and 74, the X axis direction linkage portion (75g and 21c) and the X axis direction stage biassing spring (biassing member/X axis direction biassing spring) 87x can prevent interference with the motion (e.g., mechanical distortion) of the image stabilizing optical element (the CCD image sensor 60) if at least a part of the pair of X axis direction guide rods 72 and 74, at least a part of the X axis direction linkage portion (75g and 21c) and at least a part of the X axis direction stage biassing spring 87x are positioned in a common plane orthogonal to the photographing optical axis Zl (more desirably, if the pair of X axis direction guide rods 72 and 74, the X axis direction linkage portion and the X axis direction stage biassing spring 87x are precisely positioned in a common plane orthogonal to the photographing optical axis Zi). Moreover, it is desirable that the pair of Y axis direction guide rods (first guide members) 73 and 79, the X axis direction linkage portion (75g and 21c), the pair of X axis direction guide rods (second guide members/X axis direction guide device) 72 and 74, and the X axis direction biassing spring (biassing member) 87x are all -74 -positioned in a common plane orthogonal to the photographing optical axis Zi.
In regard to the support structure for supporting the X axis direction moving stage, the X axis direction moving stage 21 is supported by the Y axis direction moving stage 71 thereon to be freely movable in the X axis direction by the pair of X direction guide rods (guide device) 72 and 74, and is biassed in a direction to make the transfer roller 21c and the transfer surface of the linkage projection 75g remain in contact with each other by the biassing force of the X axis direction stage biassing spring 87x. Moreover, the guide device (72), the X axis direction linkage portion (75g and 21c) and the biassing member (87x) lie in a common plane orthogonal to the photographing optical axis Zi.
Therefore, undesirable moments of force such as bending and torsion which may be caused by movements of the X axis direction moving stage 21 in the X axis direction do not act on the Y axis direction moving stage. To prevent movements of the X axis direction moving stage 21 from exerting an influence upon the Y axis direction moving stage 71, the arrangement shown in Figures 8 and 9 in which one end (the left end as viewed in Figures 8 and 9) of the X axis direction stage biassing spring 87x is hooked on the spring hook 23vx of the stationary -75 -holder 23 is more desirable than the arrangement shown in Figures 18, 24 and 26 through 28 in which the same end of the X axis direction stage biassing spring 87x is hooked on the spring hook 21v of the X axis direction moving stage 21.
Although the present invention has been described based on the above illustrated embodiments, the present invention is not limited solely to these particular embodiments. For instance, although each of the above described embodiments of the image stabilizing unit IS of the present invention is an optical image stabilizer incorporated in a digital camera, the present invention can also be applied to an optical image stabilizer incorporated in any other type of optical equipment, for example such as binoculars.
Although the CCD image sensor 60 is supported to be movable linearly in two axial directions (the X axis direction and the Y axis direction) in the above illustrated embodiments of the image stabilizing units, the manner (driving directions) of driving the image stabilizing optical element is not limited solely to this particular driving manner. For instance, the present invention can also be applied to another type of optical image stabilizer which moves the image stabilizing optical element only in one of the X axis -76 -direction and the Y axis direction to counteract image shake.
Although the X axis direction and the Y axis direction correspond to the horizontal direction and the vertical direction in the above illustrated embodiment of the digital camera, respectively, moving directions of the X axis direction moving stage and the Y axis direction moving stage are not limited solely to these particular directions. For instance, the member referred as "X axis direction moving stage (second moving stage)" and the member referred as "Y axis direction moving stage (first moving stage)" in the claims can be driven in the vertical direction and the horizontal direction, respectively. Alternatively, the member referred as "X axis direction moving stage (second moving stage)" and the member referred as "Y axis direction moving stage (first moving stage)" in the claims can be driven in two oblique directions, respectively, in a plane orthogonal to the photographing optical axis other than the horizontal and vertical directions.

Claims (9)

-77 - CLAIMS
1. An image stabilizer comprising:-an X axis direction moving stage on which an image stabilizing optical element is mounted; an X axis direction guide device which supports said X axis direction moving stage in a manner to allow said X axis direction moving stage to freely move linearly in an X axis direction in a plane orthogonal to an optical axis; an X axis direction moving device having a first contacting portion contactable with a second contacting portion provided on said X axis direction moving stage; and a biassing member which biases said X axis direction moving stage in a direction to make said first contacting portion and said second contacting portion remain in contact with each other; wherein said X axis direction guide device, said first contacting portion, said second contacting portion and said biassing member lie in a common plane.
2. An image stabilizer according to claim 1 further comprising a Y axis direction moving stage which is supported to be freely movable in a Y axis direction in said plane orthogonal to said optical axis, said Y -78 -axis direction being orthogonal to said X axis direction; wherein said X axis direction moving stage is supported by said Y axis direction moving stage to be freely movable in said X axis direction.
3. An image stabilizer according to claim 2 wherein said first contacting portion and said second contacting portion move relative to each other when said Y axis direction moving stage moves in said Y axis direction.
4. An image stabilizer according to any preceding claim wherein said biassing member comprises a coil spring, wherein one and the other ends of said coil spring are connected to said X axis direction moving stage and a stationary member, respectively.
5. An image stabilizer according to claim 2 or 3 wherein said biassing member comprises a coil spring, wherein one and the other ends of said coil spring are connected to said X axis direction moving stage and said Y axis direction moving stage, respectively.
6. An image stabilizer according to any preceding claim wherein one and the other of said first contacting portion and said second contacting portion comprise a transfer surface and a roller, respectively; wherein said transfer surface is formed as a flat -79 -surface extending in said Y axis direction and is orthogonal to said X axis direction; and wherein said roller is supported in a manner to roll on said transfer surface when said roller moves relative to said transfer surface thereon.
7. An image stabilizer according to any preceding claim wherein said biassing member comprises an extension spring.
8. An image stabilizer according to any preceding claim wherein said X axis direction guide device comprises a pair of parallel guide shafts.
9. An image stabilizer according to any preceding claim wherein said image stabilizer is incorporated in an imaging device, said image stabilizing optical element comprising an image pickup device.
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JP2006022349A JP4772520B2 (en) 2005-10-07 2006-01-31 Image blur correction device
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