WO2010044223A1 - 撮影用光学装置 - Google Patents
撮影用光学装置 Download PDFInfo
- Publication number
- WO2010044223A1 WO2010044223A1 PCT/JP2009/005239 JP2009005239W WO2010044223A1 WO 2010044223 A1 WO2010044223 A1 WO 2010044223A1 JP 2009005239 W JP2009005239 W JP 2009005239W WO 2010044223 A1 WO2010044223 A1 WO 2010044223A1
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- WIPO (PCT)
- Prior art keywords
- spring
- holding
- movable module
- optical axis
- spring portion
- Prior art date
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Classifications
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS 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
- G03B5/00—Adjustment of optical system relative to image or object surface other than for focusing
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS 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
- G03B5/00—Adjustment of optical system relative to image or object surface other than for focusing
- G03B5/02—Lateral adjustment of lens
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS 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
- G03B5/00—Adjustment of optical system relative to image or object surface other than for focusing
- G03B5/04—Vertical adjustment of lens; Rising fronts
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/50—Constructional details
- H04N23/54—Mounting of pick-up tubes, electronic image sensors, deviation or focusing coils
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/50—Constructional details
- H04N23/55—Optical parts specially adapted for electronic image sensors; Mounting thereof
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/57—Mechanical or electrical details of cameras or camera modules specially adapted for being embedded in other devices
Definitions
- the present invention relates to a photographic optical device having a shake correction function for correcting a shake by swinging a lens driving device on which a lens and an image sensor are mounted.
- the optical device described in Patent Document 1 is fixed to a movable portion on which a lens and an image sensor are mounted, a pivot shaft that is fixed to the base of the optical device and contacts the bottom surface of the movable portion, and a base.
- a leaf spring for swingably supporting the movable part and a swinging mechanism for swinging the movable part are provided.
- the swing mechanism is composed of a drive coil and a drive magnet, and the movable portion swings about the pivot shaft as a fulcrum by the drive force of the swing mechanism, and the camera shake is corrected. Yes.
- the leaf spring includes a fixed piece fixed to the base, an outer frame piece connected to the fixed piece via two X-axis deforming portions formed linearly, and a linear shape. And a support piece for the movable part connected to the outer frame piece via two Y-axis deformation parts formed on the X-axis, and when the movable part swings, the X-axis deformation part and the Y-axis deformation part are twisted. It is. Further, the leaf spring supports the bottom surface side of the movable portion, and the leaf spring is formed with a small diameter hole through which the upper end side of the pivot shaft is inserted.
- an object of the present invention is to provide a photographing optical device capable of correcting a shake appropriately by smoothly swinging a lens driving device on which a lens and an imaging element are mounted.
- a photographing optical device includes a movable module having a lens driving device including a lens, an imaging element, and a lens driving mechanism that drives the lens, and a support that supports the movable module.
- a shake correction mechanism that corrects shake by swinging the movable module so that the optical axis of the lens driving device is tilted with respect to the support, and the shake correction mechanism includes a swing drive mechanism that swings the movable module; And a spring member that supports the movable module in a swingable manner.
- the spring member connects the holding unit that holds the movable module, the fixing unit that is fixed to the support, the holding unit and the fixing unit, and the movable module.
- a spring part that enables the swinging movement of the spring part, and the spring part is deformable in a direction orthogonal to the optical axis and in the optical axis direction.
- the spring portion constituting the spring member that supports the movable module so as to be swingable can be deformed both in the direction perpendicular to the optical axis of the lens driving device and in the optical axis direction. . Therefore, the spring constant of the spring member in both the direction orthogonal to the optical axis and the optical axis direction can be made relatively small. Therefore, in the present invention, even when the swing angle of the movable module increases, it is possible to appropriately correct the shake by smoothly swinging the movable module (that is, smoothly swinging the lens driving device). become.
- the spring portion can be deformed in a direction perpendicular to the optical axis, plastic deformation of the spring portion when an impact is applied to the photographing optical device in the direction perpendicular to the optical axis is prevented. It becomes possible.
- the swing drive mechanism includes a plurality of drive magnets and a drive for swinging the movable module, with the first direction and the second direction being substantially orthogonal to the optical axis and substantially orthogonal to each other as the swing axis directions.
- the spring part includes a first spring part substantially parallel to the first direction and a second spring part substantially parallel to the second direction. If comprised in this way, the spring constant of the spring member in a 2nd direction will be made comparatively small by the effect
- the spring constant of the spring member in the direction can be made relatively small.
- the holding portion can be smoothly moved in the second direction by the first spring portion, and the holding portion can be smoothly moved in the first direction by the second spring portion.
- the movable module can be smoothly swung.
- the spring part is preferably formed in a substantially L shape composed of a first spring part and a second spring part.
- the first direction is simplified while simplifying the configuration of the spring portion as compared to the case where the spring portion is formed so that the plurality of first spring portions and the plurality of second spring portions are connected. And it becomes possible to move a holding
- the spring member includes a plurality of spring portions.
- the first spring portion of one spring portion and the first spring portion of another spring portion overlap in the second direction, and the first spring portion of one spring portion overlaps.
- the two spring portions and the second spring portion of the other spring portion overlap in the first direction.
- the movable module is formed so as to be substantially rectangular when viewed from the optical axis direction, and the outer peripheral surface thereof is disposed so as to be substantially parallel to the first direction or the second direction, and the spring
- the member is preferably formed in a substantially rectangular shape as a whole when viewed from the optical axis direction, and is arranged so that the outer peripheral end thereof is substantially parallel to the first direction or the second direction.
- the first spring portion and the second spring portion are disposed between the outer peripheral surface of the movable module and the outer peripheral end of the spring member.
- the spring member is formed in a substantially rectangular shape as a whole, and is arranged so that the outer peripheral end thereof is substantially parallel to the first direction or the second direction, and the fixing portion is the first direction of the spring member.
- the holding portion is formed so that the outer shape thereof is substantially rectangular, and the spring member is substantially in the second direction from the approximate center of the holding portion in the first direction.
- the spring constant of the spring member can be made relatively small while reducing the size of the spring member in the direction orthogonal to the optical axis. Therefore, the movable module can be smoothly swung while reducing the size of the spring member in the direction orthogonal to the optical axis. Further, it is possible to disperse the stress applied to the spring portion and to obtain a stable spring property.
- To the fixing portion side end of the spring portion formed toward the fixing portion disposed at the approximate center in the first direction is adjacent in the first direction, and is substantially in the first direction from the approximate center of the holding portion in the second direction.
- the fixed part side end of the spring part is adjacent in the second direction. If comprised in this way, in the direction orthogonal to an optical axis, it becomes possible to make the length of a spring part comparatively long, reducing a spring member further in size.
- the movable module is formed so as to have a substantially rectangular shape when viewed from the optical axis direction
- the spring member is formed in a substantially rectangular shape as a whole
- the fixing portions are disposed at the four corners of the spring member.
- the holding part is arranged at or near the four corners of the movable module when viewed from the optical axis direction
- the spring part is formed so as to connect the holding part and the fixing part arranged substantially on the diagonal line of the spring member.
- the first spring part of one spring part and the first spring part of the other spring part overlap in the second direction
- the second spring part of one spring part and the second spring part of the other spring part It is preferable that they overlap in the first direction.
- the spring constant of the spring member can be made relatively small, and the movable module can be smoothly swung. Further, it is possible to disperse the stress applied to the spring portion and to obtain a stable spring property.
- the spring member is constituted by four substantially L-shaped spring pieces each including, for example, one holding portion, one fixing portion, and one spring portion.
- the movable module is formed so as to be substantially rectangular when viewed from the optical axis direction, and the outer peripheral surface thereof is disposed so as to be substantially parallel to the first direction or the second direction, and the spring
- the member is formed in a substantially rectangular shape as a whole, and is arranged so that an outer peripheral end thereof is substantially parallel to the first direction or the second direction, and the fixing portion is substantially centered in the first direction of the spring member and the first direction.
- the holding part is arranged at or near the four corners of the movable module when viewed from the optical axis direction, and the spring member is folded back in the first direction as the first spring part.
- the spring member includes, for example, two holding portions, two fixing portions, one spring portion having the first folding spring portion, and one having the second folding spring portion. These spring portions are each composed of two spring pieces.
- the spring member is preferably disposed in the vicinity of the swing center of the movable module in the optical axis direction. If comprised in this way, it will become possible to make small the deformation amount of the spring part in the direction orthogonal to an optical axis. Therefore, the spring portion can be reduced in size.
- the spring member is disposed, for example, closer to the swing center side of the movable module than the swing drive mechanism in the optical axis direction.
- the spring constant of the spring part in the optical axis direction is preferably equal to or less than the spring constant of the spring part in the direction orthogonal to the optical axis. If comprised in this way, even if it is a case where the vibration which has a component of the direction orthogonal to an optical axis is provided to the optical device for imaging
- the movable module includes, for example, a sensor for detecting a change in the tilt of the lens driving device.
- the lens driving device can be smoothly swung to appropriately correct the shake.
- FIG. 2 is a cross-sectional view taken along a line EE in FIG. 1.
- FIG. 2 is a perspective view showing a partial configuration of the EE cross section of FIG. 1.
- plate spring shown in FIG. It is a longitudinal cross-sectional view of the F section of FIG.
- It is a top view of the leaf
- FIG. 1 is a plan view of a photographing optical apparatus 1 according to the first embodiment of the present invention.
- 2 is a cross-sectional view taken along the line EE of FIG.
- FIG. 3 is a perspective view showing a partial configuration of the EE cross section of FIG.
- the X1 direction side is the "right” side
- the X2 direction side is the "left” side
- the Y1 direction side is the "front” side
- the Y2 direction side is the “rear (rear)” side
- the Z1 direction side Is the “upper” side
- the Z2 direction side is the “lower” side.
- the photographing optical device 1 of this embodiment is a small and thin camera mounted on a portable device such as a cellular phone, and is formed in a substantially rectangular parallelepiped shape as a whole.
- the photographing optical device 1 includes a lens driving device 2 on which a lens and an image sensor (not shown) are mounted, and a sensor 4 for detecting a change in the tilt of the lens driving device 2.
- a support 5 that supports the lens driving device 2 and a swing driving mechanism 6 that swings the lens driving device 2 so that the optical axis L of the lens driving device 2 is tilted.
- the Z direction coincides with the direction of the optical axis L (optical axis direction) of the imaging optical device 1 when the lens driving device 2 is not swinging, but the lens driving device. Since the maximum swing angle of 2 is slight (for example, about 2 °), the vertical direction and the optical axis direction substantially coincide even when the lens driving device 2 is swinging.
- the lens driving device 2 is equipped with a lens and an image sensor as described above. Specifically, a lens is mounted on the upper end side of the lens driving device 2, and an imaging element is mounted on the lower end of the lens driving device 2.
- the lens driving device 2 is equipped with a lens driving mechanism for driving the lens in the optical axis direction.
- This lens driving mechanism is constituted by, for example, a driving coil and a driving magnet.
- the lens driving device 2 is formed in a substantially rectangular parallelepiped shape as a whole. That is, the lens driving device 2 is formed so that the shape when viewed from the optical axis direction is substantially rectangular. Specifically, the lens driving device 2 is formed so as to have a substantially square shape when viewed from the optical axis direction. Further, the lens driving device 2 is arranged so that the outer peripheral surface thereof is substantially parallel to the left-right direction or the front-rear direction.
- the front and rear and left and right side surfaces of the lens driving device 2 are covered with a cover member 9 formed in a substantially square cylindrical shape with a bottom having an open bottom.
- the cover member 9 is made of a magnetic material.
- a circular through hole 9a is formed at the bottom of the cover member 9 disposed on the upper end side.
- a flange 9b is formed at the lower end of the cover member 9 so as to expand outward in the front-rear direction and outward in the left-right direction.
- a drive magnet 21 (described later) that constitutes the swing drive mechanism 6 is fixed to each of the front and rear and left and right side surfaces of the cover member 9.
- the sensor 4 is a gyroscope for detecting a change in the tilt of the lens driving device 2. That is, the sensor 4 is an angular velocity sensor for detecting the angular velocity of the lens driving device 2.
- the sensor 4 is disposed on the lower side of the lens driving device 2.
- a flexible printed circuit board (FPC) 10 is connected to the sensor 4.
- the FPC 10 is also connected to an image sensor mounted on the lens driving device 2.
- the FPC 10 is drawn around on the lower end side of the photographing optical device 1 and pulled out from, for example, the right side surface of the photographing optical device 1.
- the senor 4 is arranged inside a sensor cover member 11 formed in a flat and substantially rectangular tube shape with a bottom having an upper end opened. Specifically, the sensor 4 is disposed inside the sensor cover member 11 so as to contact the upper surface of the bottom portion 11d of the sensor cover member 11 disposed on the lower end side. The sensor cover member 11 is disposed so that the optical axis L passes through the center of the bottom portion 11d. At the center of the bottom portion 11d, a fulcrum protrusion 11a serving as a fulcrum for swinging the lens driving device 2 is formed so as to protrude downward. The fulcrum protrusion 11a is formed in a substantially spherical shape.
- a flange portion 11b that comes into contact with the flange portion 9b of the cover member 9 from below is formed so as to spread outward in the front-rear direction and outward in the left-right direction.
- the flange portion 9b and the flange portion 11b are fixed to each other. That is, the sensor cover member 11 is fixed to the lower end of the cover member 9.
- the lens driving device 2, the sensor 4, the cover member 9, and the sensor cover member 11 are supported by the support 5 so as to be swingable. That is, the lens driving device 2, the sensor 4, the cover member 9 and the sensor cover member 11 constitute a movable module 12 that can swing with respect to the support 5.
- the movable module 12 is formed so that the shape when viewed from the optical axis direction is substantially rectangular. Specifically, the movable module 12 is formed so that the shape when viewed from the optical axis direction is substantially square.
- the support body 5 includes a base body 15 constituting the lower surface of the photographing optical device 1 and case bodies 16 constituting the front and rear and left and right outer peripheral surfaces of the photographing optical device 1.
- Fixed to the case body 16 are a leaf spring 17 as a spring member that supports the movable module 12 in a swingable manner, and a stopper member 18 for restricting the swing range of the movable module 12.
- the base body 15 is formed in a flat and substantially square cylindrical shape with a bottom that opens at the upper end.
- a projecting portion 15a projecting upward is formed at the approximate center of the bottom of the base body 15 disposed on the lower end side.
- an engaging recess 15b that engages with the fulcrum protrusion 11a is formed in the protruding portion 15a so as to be recessed from the upper surface of the protruding portion 15a.
- the engaging recess 15b is formed in a cylindrical surface having a circular cross-section perpendicular to the vertical direction.
- the diameter of the engaging recess 15b is slightly larger than the diameter of the fulcrum protrusion 11a formed in a substantially spherical shape, and the fulcrum protrusion 11a is in contact with the bottom surface of the engaging recess 15b.
- the engaging recess 15b may be formed in a hemispherical shape having a diameter slightly larger than the diameter of the fulcrum protrusion 11a, or may be formed in a conical surface shape in which the diameter gradually decreases in the downward direction. .
- the fulcrum portion 11 serving as the swing center of the movable module 12 (the swing center of the lens driving device 2) is configured by the fulcrum protrusion 11a and the engagement recess 15b. That is, the swing center of the movable module 12 is disposed below the movable module 12.
- the fulcrum portion 19 is disposed at a position where the optical axis L of the lens driving device 2 passes.
- the optical axis L of the lens driving device 2 is disposed at the center of the movable module 12.
- the lubricant for suppressing abrasion of the inner peripheral surface of the fulcrum protrusion 11a and the engagement concave portion 15b is applied to the inner peripheral surface of the engagement concave portion 15b.
- the case body 16 is formed in a substantially rectangular tube shape with an upper end and a lower end opened.
- a base body 15 is fixed to the lower end side of the case body 16.
- the case body 16 of this embodiment is formed of a nonmagnetic metal material.
- the plate spring 17 is formed in a substantially rectangular shape as a whole. Specifically, the plate spring 17 is formed in a substantially square shape as a whole. Further, the leaf spring 17 is arranged so that the outer peripheral end thereof is substantially parallel to the left-right direction or the front-rear direction. The four corners of the leaf spring 17 are fixed to the four corners on the upper end side of the case body 16. Further, the upper end of the movable module 12 (specifically, the upper end of the cover member 9) is fixed to the central portion of the leaf spring 17. That is, in this embodiment, the movable module 12 is disposed between the fulcrum 19 and the leaf spring 17 in the optical axis direction (that is, the lens driving device 2 is disposed). The detailed configuration of the leaf spring 17 will be described later. In addition, the leaf
- the stopper member 18 is fixed to the inner peripheral surface of the case body 16. Specifically, the two stopper members 18 are provided in the case body at positions where they can contact the upper surface of the flange portion 9b of the cover member 9 and positions where they can contact the lower surface of the flange portion 11b of the sensor cover member 11. 16 is fixed to the inner peripheral surface, and the swing range of the movable module 12 is regulated by the stopper member 18 and the flange portions 9b and 11b.
- the rocking drive mechanism 6 includes a drive magnet 21 and a drive coil 23 disposed opposite to the drive magnet 21.
- the swing drive mechanism 6 of this embodiment includes four drive magnets 21 and four drive coils 23.
- the driving magnet 21 is formed in a substantially rectangular plate shape.
- the driving magnet 21 is composed of two magnet pieces, a first magnet piece 21a and a second magnet piece 21b. Specifically, the first magnet piece 21a and the second magnet piece 21b are bonded and fixed while the lower surface of the first magnet piece 21a and the upper surface of the second magnet piece 21b are in contact with each other. Is formed.
- One drive magnet 21 is fixed to each of the front and rear side surfaces and the left and right side surfaces of the cover member 9, and is disposed inside the case body 16.
- the driving magnet 21 swings together with the lens driving device 2.
- the cover member 9 is made of a magnetic material, and the cover member 9 functions as a back yoke of the drive magnet 21.
- the driving magnet 21 fixed to the left and right side surfaces of the cover member 9 is magnetized so that the magnetic pole formed on the right surface of the driving magnet 21 is different from the magnetic pole formed on the left surface.
- the driving magnet 21 fixed to the left and right side surfaces of the cover member 9 includes a magnetic pole formed on the outer surface of the first magnet piece 21a and a magnetic pole formed on the outer surface of the second magnet piece 21b in the left-right direction.
- Are different that is, the magnetic poles formed on the inner surface of the first magnet piece 21a and the magnetic poles formed on the inner surface of the second magnet piece 21b in the left-right direction) are magnetized.
- the driving magnet 21 fixed to the front and rear side surfaces of the cover member 9 is magnetized so that the magnetic pole formed on the front surface of the driving magnet 21 and the magnetic pole formed on the rear surface thereof are different. Further, the driving magnet 21 fixed to the front and rear side surfaces of the cover member 9 includes a magnetic pole formed on the outer surface of the first magnet piece 21a and a magnetic pole formed on the outer surface of the second magnet piece 21b in the front-rear direction. Are magnetized differently.
- the right side surface of the first magnet piece 21 a of the driving magnet 21 fixed to the right side surface of the cover member 9 is magnetized to the S pole and the left side surface is magnetized to the N pole.
- the second magnet piece 21 b of the driving magnet 21 is magnetized.
- the right side is magnetized to the N pole and the left side is magnetized to the S pole.
- the left side surface of the first magnet piece 21a of the driving magnet 21 fixed to the left side surface of the cover member 9 is magnetized to the S pole, and the right side surface is magnetized to the N pole.
- the left side surface of 21b is magnetized to the N pole, and the right side surface is magnetized to the S pole.
- the rear side surface of the first magnet piece 21 a of the driving magnet 21 fixed to the rear side surface of the cover member 9 is magnetized to the N pole, and the front side surface is magnetized to the S pole.
- the rear side of the piece 21b is magnetized to the S pole and the front side is magnetized to the N pole.
- the front side surface of the first magnet piece 21a of the driving magnet 21 fixed to the front side surface of the cover member 9 is magnetized to the N pole, and the rear side surface is magnetized to the S pole.
- the front side surface of 21b is magnetized to the S pole and the rear side surface is magnetized to the N pole.
- the drive coil 23 is formed by winding a fusion wire including an insulating coating covering the periphery of the conducting wire and a fusion coating further covering the periphery of the insulating coating (that is, a core such as a bobbin). Air core coil).
- the driving coil 23 is formed by winding a fusion wire in a substantially rectangular shape.
- One drive coil 23 is fixed to each of the front and rear side surfaces and the left and right side surfaces of the case body 16 via an insulating film.
- the driving magnet 21 and the driving coil 23 are arranged to face each other with a predetermined gap. Specifically, even if the movable module 12 swings with the fulcrum portion 19 as a fulcrum, the drive magnet 21 and the drive coil 23 are set in a predetermined manner so that the drive magnet 21 and the drive coil 23 do not come into contact with each other. Oppositely arranged with a gap. In this embodiment, when no current is supplied to the driving coil 23, the movable module 12 is in a neutral position that is not inclined with respect to the support 5, as shown in FIG.
- the center position of the driving coil 23 in the vertical direction is arranged above the contact surface between the first magnet piece 21a and the second magnet piece 21b.
- the driving magnet 21 and the driving coil 23 are arranged to face each other.
- the drive magnet 21 and the drive coil 23 are opposed to each other in the left-right direction or the front-rear direction, and the drive magnet 21 and the drive coil 23 arranged to face each other in the left-right direction
- a driving force is generated that causes the movable module 12 to swing (that is, swings the movable module 12 about the Y axis) with the direction as the axis direction of the swing.
- the movable module 12 is swung around the X axis (ie, the movable module 12 is swung around the X axis) by the driving magnet 21 and the driving coil 23 that are opposed to each other in the front-rear direction. )
- Driving force is generated.
- the left-right direction is a first direction substantially orthogonal to the optical axis direction
- the front-rear direction is substantially orthogonal to the left-right direction and the optical axis direction, which are the first directions.
- the second direction is substantially orthogonal to the left-right direction and the optical axis direction, which are the first directions.
- the sensor 4 On the basis of the detection result at 4, current is supplied to the driving coil 23, and the movable module 12 swings so that the optical axis L is tilted about the fulcrum portion 19 to correct the shake.
- a current is supplied to the driving coil 23, and the movable module 12 emits light around the fulcrum 19. The camera shake is corrected by swinging (turning) so that the axis L is inclined.
- the optical axis L of the lens driving device 2 is relative to the support 5 by the fulcrum portion 19 including the fulcrum protrusion 11 a and the engagement recess 15 b, the swing drive mechanism 6, and the leaf spring 17.
- a shake correction mechanism is configured to correct the shake by swinging the movable module 12 so as to tilt (that is, swinging the lens driving device 2).
- (Configuration of leaf spring) 4 is a plan view of the leaf spring 17 shown in FIG.
- FIG. 5 is a longitudinal sectional view of a portion F in FIG.
- the leaf spring 17 has four holding parts 17a for holding the movable module 12, four fixing parts 17b fixed to the case body 16, and four holding parts 17a and the fixing parts 17b.
- Spring part 17c In this embodiment, the spring part 17c bends with respect to the fixed part 17b, so that the movable module 12 held by the holding part 17a can swing.
- the holding part 17a is formed in a substantially square shape.
- a circular through hole 17d is formed at the center of the holding portion 17a.
- the through hole 17d is formed so that the optical axis L passes through the center thereof.
- the movable module 12 is fixed to the holding portion 17a. Specifically, as shown in FIG. 2, the upper surface of the bottom portion of the cover member 9 is fixed to the lower surface of the holding portion 17a.
- the fixing portion 17b is formed in a substantially square shape, and is disposed at the four corners of the leaf spring 17.
- a circular fixing hole 17e for fixing the leaf spring 17 to the case body 16 is formed in the fixing portion 17b.
- the spring portion 17c is disposed on the outer peripheral side of the holding portion 17a.
- the spring portion 17c is formed in a substantially L shape.
- the spring portion 17c is formed in a substantially spiral shape from the four corners of the holding portion 17a toward the fixed portion 17b, and is a linear inner spring portion 17g disposed on the inner side in the left-right direction or the front-rear direction. It is formed in a substantially L shape composed of a linear outer spring portion 17h arranged outside in the left-right direction or the front-rear direction.
- an inner spring portion 17g formed from the right front end of the holding portion 17a toward the left direction and a fixed portion formed from the left end of the inner spring portion 17g toward the rear direction and disposed at the left rear end.
- a first spring portion 17c is composed of an outer spring portion 17h connected to the portion 17b.
- an inner spring portion 17g formed from the left front end of the holding portion 17a toward the rear direction and a fixing portion 17b formed from the rear end of the inner spring portion 17g toward the right direction and disposed at the right rear end.
- a second spring portion 17c is formed from the connected outer spring portion 17h.
- the inner spring portion 17g formed from the left rear end of the holding portion 17a toward the right direction and the fixing portion 17b formed from the right end of the inner spring portion 17g toward the front direction and disposed at the right front end are connected.
- a third spring portion 17c is formed from the outer spring portion 17h.
- the inner spring portion 17g formed from the right rear end of the holding portion 17a toward the front direction and the fixing portion 17b formed from the front end of the inner spring portion 17g toward the left direction and disposed at the left front end are connected.
- a fourth spring portion 17c is formed from the outer spring portion 17h.
- the inner spring portion 17g of the first spring portion 17c and the outer spring portion 17h of the fourth spring portion 17c overlap in the front-rear direction on the front end side of the leaf spring 17, and the inner spring of the second spring portion 17c.
- the portion 17g and the outer spring portion 17h of the first spring portion 17c overlap in the left-right direction on the left end side of the leaf spring 17, and the inner spring portion 17g of the third spring portion 17c and the second spring portion 17c
- the outer spring portion 17h overlaps in the front-rear direction on the rear end side of the leaf spring 17, and the inner spring portion 17g of the fourth spring portion 17c and the outer spring portion 17h of the third spring portion 17c On the right end side in the horizontal direction.
- the inner spring portion 17g of the first spring portion 17c and the outer spring portion 17h of the fourth spring portion 17c are substantially parallel to each other, and the inner spring portion 17g of the second spring portion 17c,
- the outer spring part 17h of the third spring part 17c is substantially parallel to the inner spring part 17g of the third spring part 17c and the outer spring part 17h of the second spring part 17c is substantially parallel to each other.
- the inner spring portion 17g of the fourth spring portion 17c and the outer spring portion 17h of the third spring portion 17c are substantially parallel.
- the four spring portions 17c are arranged substantially symmetrically with respect to the optical axis L passing through the center of the holding portion 17a.
- the inner spring portion 17g and the outer spring portion 17h substantially parallel to the left-right direction are first spring portions
- the inner spring portion 17g and the outer spring portion 17h substantially parallel to the front-rear direction are the first spring portions.
- the spring portion 17c of the present embodiment includes a first spring portion that is substantially parallel to the left-right direction and a second spring portion that is substantially parallel to the front-rear direction, and can be deformed in the left-right direction and the front-rear direction.
- the spring portion 17c of this embodiment can be deformed also in the vertical direction.
- the spring constant of the spring portion 17c in the left-right direction and the spring constant of the spring portion 17c in the front-rear direction are equal to or less than the spring constant of the spring portion 17c in the optical axis direction.
- the spring portion 17c is formed such that its width w is equal to or less than its thickness t.
- the width w of the spring portion 17c is 0.13 to 0.15 mm
- the thickness t of the spring portion 17c is 0.15 mm.
- the connecting portion between the inner spring portion 17g and the outer spring portion 17h constituting one spring portion 17c is formed so that the shape when viewed from the optical axis direction is a substantially arc shape.
- the connecting portion of the inner spring portion 17g and the outer spring portion 17h constituting the single spring portion 17c is formed so that the shape when viewed from the optical axis direction is a substantially 1 ⁇ 4 arc shape.
- the leaf spring 17 is disposed at each of the four corners.
- the four fixing portions 17b are connected by a connecting portion 17f in the left-right direction and the front-rear direction.
- the fixing portions 17b adjacent to each other in the circumferential direction of the plate spring 17 are connected to each other by linear connection portions 17f arranged at the front and rear ends and the left and right ends of the plate spring 17.
- the leaf spring 17 generates a pressurizing force for reliably contacting the fulcrum protrusion 11a of the sensor cover member 11 and the bottom surface of the engaging recess 15b of the base body 15 (that is, the movable module 12 is moved downward).
- the case body 16 is fixed to the case body 16 in a bent state (see FIG. 2). That is, the fixing portion 17b is fixed to the case body 16 in a state where the fixing portion 17b is lowered below the holding portion 17a.
- the downward urging force generated in the movable module 12 by the leaf spring 17 is, for example, when the photographing optical device 1 is mounted on a mobile phone, based on the vibration function of the mobile phone.
- the size is set such that the fulcrum protrusion 11a and the engagement recess 15b do not separate even when vibrated.
- the downward biasing force F generated in the movable module 12 by the leaf spring 17 is expressed by the following equation: It is set to satisfy (1).
- the vibration acceleration ⁇ is, for example, 4G or more.
- the spring portion 17c of the leaf spring 17 that supports the movable module 12 so as to be swingable can be deformed in the left-right direction, the front-rear direction, and the up-down direction. Therefore, the spring constant of the leaf spring 17 in all directions of the left-right direction, the front-rear direction, and the up-down direction can be made relatively small. Therefore, in this embodiment, even when the swing angle of the movable module 12 is increased, the movable module 12 is smoothly swung (that is, the lens driving device 2 is swung smoothly) to appropriately correct the shake. It becomes possible.
- the spring portion 17c can be deformed in the left-right direction and the front-rear direction, plastic deformation of the spring portion 17c when an impact is applied to the photographing optical device 1 in the left-right direction and the front-back direction is prevented. It becomes possible to do.
- the spring portion 17c includes a first spring portion that is substantially parallel to the left-right direction and a second spring portion that is substantially parallel to the front-rear direction. Therefore, the spring constant of the leaf spring 17 in the front-rear direction can be made relatively small by the action of the first spring portion, and the spring constant of the leaf spring 17 in the left-right direction can be made relatively small by the action of the second spring member. . Therefore, the holding portion 17a can be smoothly moved in the front-rear direction by the first spring portion, and the holding portion 17a can be smoothly moved in the left-right direction by the second spring portion.
- the spring portion 17c is formed in a substantially L shape including the first spring portion and the second spring portion, and thus, for example, a plurality of first spring portions and a plurality of second spring portions.
- the holding portion 17a can be smoothly moved in the left-right direction and the front-rear direction while simplifying the configuration of the spring portion 17c.
- the spring portion 17c formed in an approximately L shape by the inner spring portion 17g and the outer spring portion 17h is formed from the four corners of the holding portion 17a toward the fixed portions 17b disposed at the four corners of the leaf spring 17. ing. Therefore, the length of the spring part 17c can be lengthened.
- the inner spring portion 17g of the first spring portion 17c and the outer spring portion 17h of the fourth spring portion 17c are substantially parallel, and the inner spring portion of the second spring portion 17c.
- the connecting portion between the inner spring portion 17g and the outer spring portion 17h constituting the single spring portion 17c, the connecting portion between the holding portion 17a and the inner spring portion 17g, and the fixing portion 17b are included in the plate spring 17. It is arranged at each of the four corners. Therefore, the length of the spring part 17c can be made longer. Therefore, the spring constant of the leaf spring 17 can be further reduced. Moreover, since the length of the spring part 17c can be lengthened, the displacement amount of the spring part 17c in the left-right direction, the front-back direction, and the up-down direction can be increased.
- the connecting portion between the inner spring portion 17g and the outer spring portion 17h constituting one spring portion 17c is formed so that the shape when viewed from the optical axis direction is a substantially arc shape. Therefore, the stress concentration of the bending stress at the connecting portion between the inner spring portion 17g and the outer spring portion 17h can be reduced. Accordingly, it is possible to prevent plastic deformation of the spring portion 17c.
- the width w of the spring portion 17c is equal to or less than the thickness t of the spring portion 17c. Therefore, the spring portion 17c is easily deformed in the left-right direction and the front-rear direction. Accordingly, even when the leaf spring 17 is disposed on the upper end side of the movable module 12 where the amount of fluctuation in the left-right direction and the front-rear direction increases when the movable module 12 swings, the holding portion 17a that holds the movable module 12 is smooth. The movable module 12 can be smoothly swung.
- FIG. 6 is a cross-sectional view of the photographic optical device 31 according to the second embodiment of the present invention.
- the same components as those in the first embodiment are denoted by the same reference numerals, and the description thereof is omitted or simplified.
- the three directions orthogonal to each other are defined as the X direction, the Y direction, and the Z direction, the X1 direction side is the “right” side, and the X2 direction side is the “left”.
- the Y1 direction side is the “front” side
- the Y2 direction side is the “rear (rear)” side
- the Z1 direction side is the “upper” side
- the Z2 direction side is the “lower” side.
- the photographic optical device 31 of the present embodiment is a small and thin camera mounted on a portable device such as a mobile phone, as in the photographic optical device 1 of the first embodiment, and is formed in a substantially rectangular parallelepiped shape as a whole. ing.
- the photographing optical device 31 includes a lens driving device 2, a sensor 4, a swing driving mechanism 6, and a support body 35 that supports the lens driving device 2.
- the vertical direction coincides with the optical axis direction of the photographing optical device 31 when the lens driving device 2 is not swinging.
- the front and rear and left and right side surfaces of the lens driving device 2 are covered with a cover member 39 formed in a substantially rectangular tube shape having upper and lower ends opened.
- the front and rear and left and right side surfaces of the cover member 39 are formed substantially parallel to the optical axis direction, and the driving magnet 21 is fixed to each of the side surfaces.
- An upper cover member 38 formed in a substantially rectangular plate shape is attached to the upper end of the cover member 39.
- a circular through hole 38 a is formed at the center of the upper cover member 38.
- the sensor 4 is disposed below the lens driving device 2. Specifically, the sensor 4 is disposed on the lower side of the lens driving device 2 with the optical axis L and the center of the sensor 4 being shifted.
- An FPC 40 is connected to the sensor 4.
- the lower surface side of the sensor 4 is covered with a lower cover member 41 formed in a substantially rectangular plate shape.
- the lower cover member 41 is attached to the lower end of the cover member 39 and covers the lower end side of the cover member 39.
- a contact member 43 is fixed to the lower surface of the lower cover member 41.
- the contact member 43 has a flat contact surface 43a with which a later-described fulcrum protrusion 45a contacts.
- the lens driving device 2, the sensor 4, the cover member 39, the upper cover member 38, the lower cover member 41, the contact member 43, and a spring fixing member 50 described later are supported by the support 35 so as to be swingable.
- the movable module 42 that can swing relative to the support 35 is configured by the lens driving device 2, the sensor 4, the cover member 39, the upper cover member 38, the lower cover member 41, the contact member 43, and the spring fixing member 50.
- the movable module 42 is formed so that the shape when viewed from the optical axis direction is substantially rectangular. Specifically, the movable module 42 is formed so as to have a substantially square shape when viewed from the optical axis direction.
- the support 35 includes a base body 45 that forms the lower surface of the photographic optical device 31, a case body 46 that forms the front and rear and left and right outer peripheral surfaces of the photographic optical device 31, and a coil holding member that holds the drive coil 23. 44.
- a leaf spring 47 as a spring member that supports the movable module 42 so as to be swingable is fixed to the coil holding member 44 or the case body 46.
- the base body 45 is formed in a substantially rectangular flat plate shape.
- a fulcrum protrusion 45a serving as a fulcrum for swinging the movable module 42 is formed at the approximate center of the base body 45 so as to protrude upward.
- a swinging fulcrum of the movable module 42 is disposed below the movable module 42.
- the fulcrum protrusion 45 a is formed in, for example, a hemispherical shape, and is in contact with the contact surface 43 a of the contact member 43.
- a fulcrum portion 49 serving as the center of oscillation of the lens driving device 2 is configured by the fulcrum protrusion 45a and the contact surface 43a.
- the fulcrum part 49 is disposed at a position through which the optical axis L passes. In this embodiment, the optical axis L passes through the substantially center position of the movable module 42.
- the case body 46 is formed in a substantially rectangular tube shape with an upper end and a lower end opened.
- the front and rear and left and right side surfaces of the case body 46 are formed substantially parallel to the optical axis direction.
- the coil holding member 44 is made of, for example, an insulating resin.
- the coil holding member 44 is formed in a substantially rectangular tube shape having four side surfaces substantially parallel to the side surfaces of the case body 46.
- the coil holding member 44 is fixed to the inner peripheral surface of the case body 46.
- an arrangement hole 44 a in which the driving coil 23 is arranged is formed so as to penetrate the side surface of the coil holding member 44.
- the plate spring 47 is formed in a substantially rectangular shape as a whole. Specifically, the plate spring 47 is formed in a substantially square shape as a whole. Further, the leaf spring 47 is disposed so that the outer peripheral end thereof is substantially parallel to the left-right direction or the front-rear direction.
- the outer peripheral side of the leaf spring 47 is fixed to the lower end side of the support 35. Specifically, the outer peripheral side of the leaf spring 47 is fixed to a spring fixing member 48 fixed to the lower end side of the coil holding member 44 or the case body 46. Further, the lower end side of the movable module 42 is fixed to the center portion of the leaf spring 47. Specifically, a spring fixing member 50 fixed to the outer peripheral surface on the lower end side of the cover member 39 is fixed to the central portion of the leaf spring 47.
- the leaf spring 47 is disposed in the vicinity of the fulcrum 49 serving as the swing center of the movable module 42 in the optical axis direction. Specifically, the leaf spring 47 is disposed slightly above the fulcrum portion 49 in the optical axis direction, and is disposed closer to the fulcrum portion 49 than the swing drive mechanism 6. The detailed configuration of the leaf spring 47 will be described later.
- the movable module 42 is swung with the driving magnet 21 and the driving coil 23 facing each other in the left-right direction, with the front-rear direction as the axis direction of the swing (that is, A driving force is generated that swings the movable module 42 around the Y axis. Further, the driving module 21 and the driving coil 23 opposed to each other in the front-rear direction swing the movable module 42 with the left-right direction as the swinging axial direction (that is, swinging the movable module 42 about the X axis). Driving force is generated.
- the movable module 42 swings around the fulcrum 49 to correct the shake.
- a shake correction mechanism that uses the fulcrum 49, the swing drive mechanism 6, and the leaf spring 47 to swing the lens drive device 2 based on the detection result of the sensor 4 to correct the shake. It is configured.
- FIG. 7 is a plan view of the leaf spring 47 shown in FIG.
- the leaf spring 47 has four holding portions 47a for holding the movable module 42, four fixing portions 47b fixed to the support 35, and four holding portions 47a and the fixing portions 47b.
- Spring part 47c The leaf spring 47 is arranged so that the optical axis L passes through the approximate center thereof. Further, similarly to the first embodiment, in this embodiment, the spring portion 47c bends with respect to the fixed portion 47b, whereby the movable module 42 held by the holding portion 47a can swing.
- the holding portion 47a is formed in a substantially square frame shape. As shown in FIG. 6, the lower surface of the spring fixing member 50 constituting the movable module 42 is fixed to the upper surface of the holding portion 47a.
- the fixing portion 47b is disposed at the approximate center in the left-right direction and the approximate center in the front-rear direction of the leaf spring 47.
- the lower surface of the fixing portion 47 b is fixed to the upper surface of the spring fixing member 48.
- the entire outer peripheral frame of the leaf spring 47 including the connecting portion 47 f described later is fixed to the upper surface of the spring fixing member 48.
- the spring portion 47c is disposed on the outer peripheral side of the holding portion 47a.
- the spring portion 47c is formed in a substantially L shape from the approximate center in the left-right direction or the front-rear direction of the holding portion 47a toward the fixed portion 47b.
- the spring part 47c is formed in a substantially L shape including a linear holding part side spring part 47g connected to the holding part 47a and a linear fixed part side spring part 47h connected to the fixing part 47b. ing.
- a holding portion side spring portion 47g formed from the approximate center of the right end of the holding portion 47a in the front-rear direction toward the rear direction, and a rear end of the holding portion side spring portion 47g toward the left direction.
- the first spring portion 47c is constituted by the fixed portion side spring portion 47h connected to the fixed portion 47b that is formed and disposed at the rear side of the leaf spring 47 and at the approximate center in the left-right direction.
- a holding portion side spring portion 47g formed from the approximate center in the left-right direction of the rear end of the holding portion 47a toward the left direction, and a leaf spring formed from the left end of the holding portion side spring portion 47g toward the front direction.
- a second spring portion 47c is configured by the fixed portion side spring portion 47h connected to the fixed portion 47b arranged at the left side of 47 and substantially at the center in the front-rear direction. Further, a holding portion side spring portion 47g formed from the approximate center of the left end of the holding portion 47a in the front-rear direction toward the front direction, and a leaf spring 47 formed from the front end of the holding portion side spring portion 47g toward the right direction.
- a third spring portion 47c is constituted by a fixed portion-side spring portion 47h connected to the fixed portion 47b disposed at the front side and substantially at the center in the left-right direction.
- a holding portion side spring portion 47g formed from the approximate center of the front end of the holding portion 47a in the left-right direction toward the right direction, and a leaf spring 47 formed from the right end of the holding portion side spring portion 47g toward the rear direction.
- a fourth spring portion 47c is configured by a fixed portion-side spring portion 47h connected to the fixed portion 47b arranged at the approximate center in the front-rear direction on the right side.
- the leaf spring 47 includes two spring portions 47c formed from a substantially horizontal center of the holding portion 47a toward a fixing portion 47b disposed at a substantially center in the front-rear direction, and the front-rear direction of the holding portion 47a. And two spring portions 47c formed from the approximate center toward the fixed portion 47b disposed at the approximate center in the left-right direction.
- the leaf spring 47 is formed from two substantially centered portions in the left-right direction of the holding portion 47a toward the fixed portion 47b disposed at the approximately center in the front-rear direction adjacent in the counterclockwise direction of FIG.
- the spring portion 47c and two spring portions 47c formed from the approximate center in the front-rear direction of the holding portion 47a toward the fixed portion 47b disposed at the approximate center in the left-right direction adjacent in the counterclockwise direction of FIG. I have.
- the holding portion side end 47j of the first spring portion 47c and the fixing portion side end 47k of the fourth spring portion 47c are adjacent to each other in the front-rear direction.
- the holding portion side end 47j of the second spring portion 47c and the fixing portion side end 47k of the first spring portion 47c are adjacent in the left-right direction, and the holding portion side end 47j of the third spring portion 47c.
- the fixing portion side end 47k of the second spring portion 47c are adjacent in the front-rear direction, and the holding portion side end 47j of the fourth spring portion 47c and the fixing portion side end 47k of the third spring portion 47c Are adjacent in the left-right direction.
- the holding portion side end 47j of the spring portion 47c formed from the approximate center of the holding portion 47a in the front-rear direction toward the fixed portion 47b disposed at the approximate center in the left-right direction, and the approximate center of the holding portion 47a in the left-right direction To the fixing portion side end 47k of the spring portion 47c formed toward the fixing portion 47b disposed at the approximate center in the front-rear direction.
- the leaf spring 47 in the leaf spring 47, four spring portions 47c are arranged substantially symmetrically with respect to the optical axis L passing through the center of the holding portion 47a.
- the holding part side spring part 47g and the fixing part side spring part 47h substantially parallel to the left-right direction are the first spring parts, and the holding part side spring part 47g and the fixing part side spring part 47g substantially parallel to the front-rear direction are fixed.
- the part side spring part 47h is a second spring part.
- the fixing portions 47b adjacent to each other in the circumferential direction of the leaf spring 47 are connected to each other by a connecting portion 47f formed in a substantially L shape.
- the lower surface of the spring fixing member 50 fixed to the outer peripheral surface of the cover member 39 is fixed to the upper surface of the holding portion 47a.
- the spring portion 47c is disposed between the outer peripheral frame of the plate spring 47 constituted by the fixing portion 47b and the connecting portion 47f and the holding portion 47a. That is, in this embodiment, the holding portion side spring portion 47 g and the fixed portion side spring portion 47 h are disposed between the outer peripheral surface of the movable module 42 and the outer peripheral end of the leaf spring 47.
- the spring constant of the spring part 47c in the optical axis direction is equal to or less than the spring constant of the spring part 47c in the left-right direction and the spring constant of the spring part 47c in the front-rear direction.
- the spring portion 47c is formed so that its thickness is less than or equal to its width.
- the thickness of the spring part 47c is 0.15 mm
- the width of the spring part 47c is 0.21 mm or 0.15 mm.
- the leaf spring 47 is fixed to the support body 35 in a bent state so as to generate a pressurization for reliably bringing the fulcrum protrusion 45a and the contact surface 43a into contact with each other.
- the length of the spring portion 47c is compared while further downsizing the leaf spring 47 in the left-right direction and the front-rear direction. Can be made longer.
- the spring constant of the leaf spring 47 can be made relatively small while downsizing the leaf spring 47 in the left-right direction and the front-rear direction.
- the movable module 47 can be smoothly swung while the leaf spring 47 is downsized in the left-right direction and the front-rear direction.
- the holding part-side spring part 47g and the fixed part side substantially parallel to the left-right direction or the front-rear direction.
- a spring portion 47h is arranged between the outer peripheral surface of the movable module 42 and the outer peripheral end of the leaf spring 47.
- the space between the outer peripheral surface of the movable module 42 and the outer peripheral end of the leaf spring 47 (specifically, the space between the outer peripheral surface of the cover member 39 and the outer peripheral end of the leaf spring 47) is narrow.
- the holding portion side spring portion 47g and the fixing portion side spring portion 47h in this space. Therefore, the photographing optical device 31 can be reduced in size in the left-right direction and the front-rear direction.
- the leaf spring 47 is disposed in the vicinity of the fulcrum 49 serving as the swing center of the movable module 42 in the optical axis direction. Therefore, it is possible to reduce the amount of deformation of the spring part 47c in the left-right direction and the front-rear direction compared to the spring part 17c of the leaf spring 17 of the first embodiment. Therefore, compared to the spring portion 17c of the leaf spring 17, the spring portion 47c of the leaf spring 47 can be shortened, and the leaf spring 47 can be downsized.
- the spring constant of the spring part 47c in the optical axis direction is smaller than the spring constant of the spring part 47c in the left-right direction and the spring constant of the spring part 47c in the front-rear direction. Therefore, even when a vibration having a component in the left-right direction and / or the front-rear direction is applied to the photographing optical device 31 from the outside, it is possible to suppress the wobbling of the movable module 42.
- FIG. 8 is a cross-sectional view of the photographic optical device 51 according to the third embodiment of the present invention.
- FIG. 9 is a plan view of the leaf spring 67 shown in FIG.
- the same components as those in the first and second embodiments are denoted by the same reference numerals, and the description thereof is omitted or simplified.
- the three directions orthogonal to each other are defined as the X direction, the Y direction, and the Z direction
- the X1 direction side is the “right” side
- the X2 direction side is the X direction.
- the photographic optical device 51 of the present embodiment is a small and thin camera mounted on a portable device such as a mobile phone, like the above-described photographic optical devices 1 and 31, and is formed in a substantially rectangular parallelepiped shape as a whole. Yes.
- the photographing optical device 51 includes a lens driving device 2, a sensor 4, a support body 55 that supports the lens driving device 2, and a swing driving mechanism 56 that swings the lens driving device 2.
- the vertical direction coincides with the optical axis direction of the photographing optical device 51 when the lens driving device 2 is not swinging.
- the front and rear and left and right side surfaces of the lens driving device 2 are covered with a cover member 39.
- driving magnets 71 and 72, which will be described later, constituting the swing driving mechanism 56 are fixed.
- An upper cover member 38 is attached to the upper end of the cover member 39.
- the sensor 4 is disposed below the lens driving device 2. Specifically, the sensor 4 is disposed below the lens driving device 2 so that the sensor 4 is deviated from the optical axis L.
- An FPC 40 is connected to the sensor 4. Note that a connector 57 to which an image pickup device or the like mounted on the lens driving device 2 is electrically connected is disposed on the lower surface of the lens driving device 2 so as to be adjacent to the sensor 4. Further, the lower surface side of the sensor 4 is covered with a lower cover member 41.
- the lens driving device 2, the sensor 4, the cover member 39, the upper cover member 38, and the lower cover member 41 are supported by the support body 55 so as to be swingable.
- the lens driving device 2, the sensor 4, the cover member 39, the upper cover member 38, and the lower cover member 41 constitute a movable module 62 that can swing with respect to the support body 55.
- the movable module 62 is formed so that the shape when viewed from the optical axis direction is substantially rectangular.
- the movable module 62 is formed so that the shape when viewed from the optical axis direction is substantially square.
- the support body 55 is a coil holding member 64, 65 that holds a case body 46 that forms the front and rear and left and right outer peripheral surfaces of the photographing optical device 51, and drive coils 73, 74 that will be described later that form the swing drive mechanism 56. And.
- a leaf spring 67 as a spring member that supports the movable module 62 in a swingable manner is fixed to the coil holding members 64 and 65 or the case body 46.
- the coil holding members 64 and 65 are made of, for example, insulating resin.
- the coil holding members 64 and 65 are formed in a substantially rectangular tube shape having four side surfaces substantially parallel to the side surfaces of the case body 46.
- the coil holding members 64 and 65 are fixed to the inner peripheral surface of the case body 46. Specifically, the coil holding members 64 and 65 are fixed to the inner peripheral surface of the case body 46 so as to overlap in the optical axis direction. Further, the coil holding member 64 is disposed on the upper side, and the coil holding member 65 is disposed on the lower side.
- an arrangement hole 64a in which a driving coil 73 described later is disposed is formed so as to penetrate the side surface of the coil holding member 64.
- Each of the four side surfaces of the coil holding member 65 is formed with an arrangement hole 65 a in which a driving coil 74 described later is disposed so as to penetrate the side surface of the coil holding member 65.
- the plate spring 67 is formed in a substantially rectangular shape as a whole. Further, the leaf spring 67 is arranged so that the outer peripheral end thereof is substantially parallel to the left-right direction or the front-rear direction. The outer peripheral side of the leaf spring 67 is fixed to the support body 55, and the movable module 62 is fixed to the center portion of the leaf spring 67.
- the substantially center position of the cover member 39 in the optical axis direction is fixed to the center portion of the leaf spring 67.
- the approximate center position of the cover member 39 in the optical axis direction is fixed to the central portion of the leaf spring 67 via a spacer 68 fixed to the approximate center position of the cover member 39 in the optical axis direction.
- the leaf spring 67 is disposed at an intermediate position of the movable module 62 in the optical axis direction.
- the substantially center position of the leaf spring 67 is the swing center 69 of the movable module 62.
- the swing center 69 is disposed at a position where the optical axis L of the lens driving device 2 passes.
- the optical axis L of the lens driving device 2 is arranged at the center of the movable module 62.
- the leaf spring 67 is formed in the same manner as the leaf spring 47 except that the fixing portions 67 b adjacent to each other in the circumferential direction of the leaf spring 67 are not connected to each other. That is, each of the holding portion 67a, the fixing portion 67b, the spring portion 67c, the holding portion side spring portion 67g, the fixing portion side spring portion 67h, the holding portion side end 67j, and the fixing portion side end 67k of the plate spring 67 is a plate spring 47.
- the holding part 47a, the fixing part 47b, the spring part 47c, the holding part side spring part 47g, the fixing part side spring part 47h, the holding part side end 47j, and the fixing part side end 47k have substantially the same configuration. Therefore, detailed description of the leaf spring 67 is omitted.
- the swing drive mechanism 56 includes a drive magnet 71 disposed above the swing center 69 in the optical axis direction, a drive coil 73 disposed to face the drive magnet 71, and a swing in the optical axis direction.
- a driving magnet 72 disposed below the moving center 69 and a driving coil 74 disposed to face the driving magnet 72 are provided.
- the swing drive mechanism 56 of this embodiment includes four drive magnets 71, four drive magnets 72, four drive coils 73, and four drive coils 74.
- the driving magnets 71 and 72 are formed in the same manner as the driving magnet 21. That is, the drive magnet 71 is configured by a first magnet piece 71a and a second magnet piece 71b that are in contact with each other in the optical axis direction, and the drive magnet 72 is a first magnet piece 72a that is in contact with each other in the optical axis direction. It is comprised by the 2nd magnet piece 72b.
- the driving magnets 71 and 72 are fixed to the front and rear side surfaces and the left and right side surfaces of the cover member 39 one by one. Specifically, one driving magnet 71 is fixed to each of the front and rear side surfaces and the left and right side surfaces of the cover member 39 above the leaf spring 67, and the front and rear sides of the cover member 39 below the leaf spring 67. One driving magnet 72 is fixed to each of the side surfaces and the left and right side surfaces. The drive magnets 71 and 72 are fixed to the side surface of the cover member 39 in a state where the drive magnets 71 and 72 are positioned in the optical axis direction by spacers 68 formed in a substantially rectangular frame shape.
- the driving magnets 71 and 72 fixed to the left and right side surfaces of the cover member 39 are formed on the left side and the magnetic poles formed on the right side of the driving magnets 71 and 72. It is magnetized so that it is different from the magnetic pole.
- the driving magnets 71 and 72 fixed to the left and right side surfaces of the cover member 39 are magnetic poles formed on the outer side surfaces of the first magnet pieces 71a and 72a in the left and right direction and the outer side surfaces of the second magnet pieces 71b and 72b. The magnets are magnetized so as to be different from the magnetic poles.
- the driving magnets 71 and 72 fixed to the front and rear side surfaces of the cover member 39 are magnetized so that the magnetic poles formed on the front surfaces of the driving magnets 71 and 72 are different from the magnetic poles formed on the rear surface.
- the driving magnets 71 and 72 fixed to the front and rear side surfaces of the cover member 39 are magnetic poles formed on the outer side surfaces of the first magnet pieces 71a and 72a in the front and rear direction and the outer side surfaces of the second magnet pieces 71b and 72b. The magnets are magnetized so as to be different from the magnetic poles.
- the driving coils 73 and 74 are air core coils similar to the driving coil 23.
- One driving coil 73 is fixed to each of the front and rear side surfaces and the left and right side surfaces of the coil holding member 64.
- One driving coil 74 is fixed to each of the front and rear side surfaces and the left and right side surfaces of the coil holding member 65.
- the drive magnet 71 and the drive coil 73 are arranged to face each other with a predetermined gap.
- the drive magnet 71 and the drive coil 73 are predetermined so that the drive magnet 71 and the drive coil 73 do not come into contact with each other even when the movable module 62 swings around the swing center 69.
- the drive magnet 72 and the drive coil 74 are separated from each other by a predetermined gap so that the drive magnet 72 and the drive coil 74 do not contact each other. They are placed opposite each other with a gap between them.
- the shake correction mechanism that corrects the shake by swinging the lens driving device 2 based on the detection result of the sensor 4 is configured by the swing drive mechanism 56 and the leaf spring 67.
- the leaf springs 17, 47, 67 are integrally formed.
- a plurality of spring pieces 76, 85, 86, 96 may constitute leaf springs 77, 87, 97.
- the leaf spring 77 is referred to as “plate spring modification 1”
- the leaf spring 87 as “leaf spring modification 2”
- the leaf spring 97 as “leaf spring modification 3”. The configuration will be described in order. Further, other modifications of the leaf spring will be described together.
- the plate spring 77 is formed in a substantially rectangular shape as a whole. Specifically, the plate spring 77 is formed in a substantially rectangular shape as a whole. Further, the leaf spring 77 is constituted by four spring pieces 76 formed in a substantially L shape. Each of the four spring pieces 76 includes one holding portion 76a that holds the movable modules 12, 42, and 62, one fixing portion 76b that is fixed to the support bodies 5, 35, and 55, and a holding portion 76a. And a single spring portion 76c connecting the fixed portion 76b.
- the holding portion 76a is formed in a substantially square shape.
- the movable modules 12, 42 and 62 are fixed to the holding portion 76a.
- the four corners or the vicinity of the four corners of the movable modules 12, 42, 62 when viewed from the optical axis direction are fixed to the holding portion 76a.
- the fixing portions 76 b are formed in a substantially square shape and are disposed at the four corners of the leaf spring 77. Further, the fixing portions 76b are arranged at the four corners of the inner peripheral surfaces of the case bodies 16 and 46 or near the four corners.
- the spring portion 76c is formed in a substantially L shape including a holding portion side spring portion 76g connected to the holding portion 76a and a fixed portion side spring portion 76h connected to the fixing portion 76b. That is, the spring portion 76c is formed in a substantially L shape that connects the holding portion 76a and the fixing portion 76b that are disposed on a substantially diagonal line of the leaf spring 77 (on a substantially diagonal line of the photographing optical devices 1, 31, 51). Yes.
- the holding part side spring part 76g is formed in a straight line.
- the fixed portion side spring portion 76h is formed in a polygonal line shape so as to avoid the holding portion 76a and the like.
- the two straight portions 76j and 76k disposed substantially parallel to the left-right direction or the front-rear direction and the two straight portions 76j, 76k disposed so as to be inclined with respect to the left-right direction and the front-rear direction are connected.
- a broken line-like fixed portion side spring portion 76h is constituted by one oblique line portion 76m. In the example shown in FIG.
- the straight line portion 76j is arranged on the inner side in the left-right direction or the front-rear direction and is connected to the fixed portion 76b. Further, the straight portion 76k is disposed on the outer side in the left-right direction or the front-rear direction and is connected to the holding portion side spring portion 76g.
- the four spring pieces 76 are arranged substantially symmetrically with respect to the center of the leaf spring 77 when viewed from the optical axis direction.
- the four spring pieces 76 are arranged so that the holding portion side spring portion 76g of one spring portion 76c and the fixed portion side spring portion 76h of the other spring portion 76c overlap in the left-right direction or the front-rear direction.
- the holding part side spring part 76g and the fixing part side spring part 76h substantially parallel to the left-right direction are first spring parts, and the holding part side spring part 76g and the fixing part substantially parallel to the front-rear direction.
- the side spring portion 76h is a second spring portion. In the example shown in FIG.
- the holding portion side spring portion 76 g and the fixed portion side spring portion 76 h are formed between the outer peripheral surface of the movable modules 12, 42, 62 and the outer peripheral end of the leaf spring 77. Arranged between.
- the spring portion 76c is formed in a substantially L shape that connects the holding portion 76a and the fixing portion 76b that are arranged on a substantially diagonal line of the photographing optical device 1, 31, 51. Therefore, the length of the spring portion 76c can be increased. Accordingly, the spring constant of the leaf spring 77 can be reduced, and the movable modules 12, 42, 62 can be smoothly swung. Further, it is possible to disperse the stress applied to the spring portion 76c and to obtain a stable spring property.
- the fixed portion side spring 77 since the two straight portions 76j and 76k are connected by the hatched portion 76m, the fixed portion side spring is compared with the case where the fixed portion side spring portion 76h is formed in a linear shape. The length of the portion 76h can be made longer. Further, since the two straight portions 76j and 76k are connected by the hatched portion 76m, the stress concentration of the bending stress at the connecting portion between the straight portion 76j and the straight portion 76k can be reduced. Therefore, it is possible to prevent plastic deformation of the fixed portion side spring portion 76h.
- the leaf spring 77 shown in FIG. 10 is composed of four spring pieces 76 formed in the same shape. However, the shape of the two spring pieces 85 is different from that of the spring pieces 85 as shown in FIG.
- the plate spring 87 may be configured by two types of spring pieces 85 and 86 having different shapes from the two spring pieces 86.
- Each of the two spring pieces 85 includes one holding portion 85a that holds the movable modules 12, 42, 62, one fixing portion 85b that is fixed to the support bodies 5, 35, and 55, and a holding portion 85a. And a single spring portion 85c that connects the fixing portion 85b.
- Each of the two spring pieces 86 includes one holding portion 86a that holds the movable modules 12, 42, and 62, one fixing portion 86b that is fixed to the supports 5, 35, and 55, and a holding portion.
- One spring portion 86c that connects the portion 86a and the fixed portion 86b is provided.
- the holding portions 85a and 86a are formed in a substantially square shape.
- the four corners of the movable modules 12, 42, and 62 or the vicinity of the four corners when viewed from the optical axis direction are fixed to the holding portions 85 a and 86 a.
- the two holding portions 85 a are arranged on a substantially diagonal line of the movable modules 12, 42, 62
- the two holding portions 86 a are arranged on a substantially diagonal line of the movable modules 12, 42, 62.
- the fixing portions 85 b and 86 b are formed in a substantially square shape and are arranged at the four corners of the leaf spring 87.
- the fixing portions 85b and 86b are arranged at the four corners of the inner peripheral surface of the case bodies 16 and 46 or in the vicinity of the four corners. Further, the two fixing portions 85 b are arranged on the diagonal lines of the inner peripheral surfaces of the case bodies 16 and 46, and the two fixing portions 86 b are arranged on the diagonal lines of the inner peripheral surfaces of the case bodies 16 and 46.
- the spring portion 85c is formed in a substantially L shape including a linear holding portion side spring portion 85g connected to the holding portion 85a and a linear fixed portion side spring portion 85h connected to the fixing portion 85b. That is, the spring portion 85c is formed in a substantially L shape that connects the holding portion 85a and the fixing portion 85b that are disposed on a substantially diagonal line of the leaf spring 87 (on a substantially diagonal line of the photographing optical devices 1, 31, 51). Yes.
- the spring portion 86c is formed in a substantially L shape including a broken line-shaped holding portion side spring portion 86g connected to the holding portion 86a and a broken line-shaped fixed portion side spring portion 86h connected to the fixing portion 86b.
- the spring portion 86c is formed in a substantially L shape that connects the holding portion 86a and the fixing portion 86b that are disposed on a substantially diagonal line of the leaf spring 87 (on a substantially diagonal line of the imaging optical device 1, 31, 51). Yes.
- the holding part side spring part 86g and the fixing part side spring part 86h are formed in a polygonal line shape so as to avoid the holding part 85a and the fixing part 85b.
- the holding part side spring part 86g is arranged so as to be inclined with respect to the front-rear direction and two straight parts 86j, 86k arranged to be substantially parallel to the front-rear direction. Are formed by a single hatched portion 86m.
- the straight portion 86j is arranged on the inner side in the left-right direction and is connected to the fixed portion-side spring portion 86h.
- the straight portion 86k is disposed on the outer side in the left-right direction and is connected to the holding portion 86a.
- the fixed portion-side spring portion 86h is connected to the two straight portions 86n and 86p arranged substantially parallel to the left-right direction and the two straight portions 86n and 86p arranged so as to be inclined with respect to the left-right direction. It is constituted by a hatched portion 86r of the book.
- the straight portion 86n is arranged on the inner side in the front-rear direction and is connected to the fixed portion 86b.
- the straight portion 86p is disposed outside in the front-rear direction and is connected to the holding portion side spring portion 86g.
- the two spring pieces 85 are arranged substantially point-symmetrically with respect to the center of the leaf spring 87 when viewed from the optical axis direction, and the two spring pieces 86 are arranged on the optical axis. When viewed from the direction, they are arranged substantially point-symmetrically with respect to the center of the leaf spring 87. Also, the holding portion side spring portion 85g of the spring portion 85c and the fixing portion side spring portion 86h of the spring portion 86c overlap in the front-rear direction, and the fixing portion side spring portion 85h of the spring portion 85c and the holding portion side spring portion of the spring portion 86c. Spring pieces 85 and 86 are arranged so that 86g overlaps in the left-right direction.
- the holding portion side spring portion 85g and the fixing portion side spring portion 86h that are substantially parallel to the left-right direction are first spring portions, and the fixing portion side spring portion 85h and the holding portion that are substantially parallel to the front-rear direction.
- the side spring portion 86g is a second spring portion.
- the spring portions 85c and 86c connect the holding portions 85a and 86a and the fixing portions 85b and 86b, which are disposed substantially diagonally to the photographing optical devices 1, 31, and 51, respectively. Since it is formed in a substantially L shape, the length of the spring portions 85c and 86c can be increased. Therefore, the spring constant of the leaf spring 87 can be reduced, and the movable modules 12, 42, 62 can be smoothly swung. Further, it is possible to disperse the stress applied to the spring portions 85c and 86c and to obtain a stable spring property.
- the holding portion side spring is compared with the case where the holding portion side spring portion 86g is formed in a straight line shape. It becomes possible to make the length of the part 86g longer.
- the length of the fixed-side spring portion 86h is smaller than that in the case where the fixed-side spring portion 86h is formed in a straight line. It becomes possible to make it longer.
- the stress concentration of the bending stress at the connecting portion between the straight portion 86j and the straight portion 86k can be reduced.
- the stress concentration of the bending stress at the connecting portion between the straight portion 86n and the straight portion 86p can be reduced. Therefore, it becomes possible to prevent plastic deformation of the holding part side spring part 86g and the fixed part side spring part 86h.
- a gap is formed between the straight portion 86j and the hatched portion 86m and the fixed portion side spring portion 85h in the left-right direction, and the straight portion 86p and the hatched line in the front-rear direction. Since a gap is formed between the portion 86r and the holding portion side spring portion 85g, it is possible to arrange other components of the photographing optical devices 1, 31, 51 in this gap.
- the plate spring 77 shown in FIG. 10 is configured by the four spring pieces 76, but the plate spring 97 may be configured by the two spring pieces 96 as shown in FIG.
- Each of the two spring pieces 96 includes two holding portions 96a that hold the movable modules 12, 42, and 62, two fixing portions 96b that are fixed to the supports 5, 35, and 55, and a holding portion 96a. And two spring portions 96c that connect the fixing portion 96b.
- the holding part 96a is formed in a substantially square shape. Four corners or the vicinity of the four corners of the movable modules 12, 42, 62 when viewed from the optical axis direction are fixed to the holding portion 96a.
- the fixing portion 96b is formed in a substantially rectangular shape, and is disposed at a substantially center in the left-right direction and a substantially center in the front-rear direction of the leaf spring 97. In addition, the fixing portion 96b is disposed at substantially the center of the inner peripheral surface of the case body 16, 46 in the left-right direction and the front-rear direction.
- the spring part 96c is formed in a substantially L shape including a holding part side spring part 96g connected to the holding part 96a and a fixing part side spring part 96h connected to the fixing part 96b.
- the fixed portion side spring portion 96h is formed in a substantially straight shape from the fixed portion 96b toward the four corners of the leaf spring 97.
- the holding part side spring part 96g is formed from the four corners of the leaf spring 97 toward the holding part 96a, and is formed to be folded back in the left-right direction or the front-rear direction. That is, in the leaf spring 97, the fixing portion 96b and the holding portion 96a that are adjacent in the circumferential direction of the leaf spring 97 (specifically, adjacent in the clockwise direction in FIG. 12) are connected by the spring portion 96c.
- a fixing portion 96b disposed substantially at the center in the left-right direction of the rear end of the leaf spring 97 and a holding portion 96a disposed on the right rear end side are formed from the fixing portion 96b toward the right direction.
- the fixed portion side spring portion 96h and the holding portion side spring portion 96g formed so as to be folded back in the front-rear direction are connected to each other by a spring portion 96c.
- a fixed portion side spring formed by a fixed portion 96b disposed substantially at the center in the front-rear direction of the right end of the leaf spring 97 and a holding portion 96a disposed on the right front end side is formed from the fixed portion 96b toward the front.
- a spring part 96c composed of a part 96h and a holding part side spring part 96g formed to be folded back in the left-right direction.
- a fixed portion side spring formed by a fixed portion 96b disposed substantially at the center in the left-right direction of the front end of the leaf spring 97 and a holding portion 96a disposed on the left front end side is formed toward the left from the fixed portion 96b.
- a spring part 96c composed of a part 96h and a holding part side spring part 96g formed so as to be folded back and forth.
- a fixing portion 96b disposed at a substantially center in the front-rear direction of the left end of the leaf spring 97 and a holding portion 96a disposed on the left rear end side are formed from the fixing portion 96b toward the rear side. It is connected by a spring part 96c composed of a spring part 96h and a holding part side spring part 96g formed so as to be folded back in the left-right direction.
- the holding part 96a arranged on the right rear end side and the holding part 96a arranged on the right front end side are connected by a connecting part 96f formed in a straight line.
- the holding portion 96a disposed on the left rear end side and the holding portion 96a disposed on the left front end side are connected by a connecting portion 96f.
- the two spring pieces 96 are arranged substantially symmetrically with respect to the center of the leaf spring 97 when viewed from the optical axis direction.
- the holding portion side spring portion 96g and the fixing portion side spring portion 96h that are substantially parallel to the left-right direction are first spring portions, and the holding portion side spring portion 96g and the fixing portion that are substantially parallel to the front-rear direction.
- the side spring part 96h is a second spring part.
- the holding part side spring part 96g formed to be folded back in the left-right direction is a first folding spring part, and the holding part side spring part formed to be folded back in the front-rear direction. 96g becomes the 2nd folding
- the holding portion side spring portion 96g is formed so as to be folded back in the left-right direction or the front-rear direction, and therefore, the distance between the holding portion 96a and the fixing portion 96b is short.
- the length of the spring portion 96c can be made relatively long. Accordingly, the spring constant of the leaf spring 97 can be made relatively small, and the movable modules 12, 42, 62 can be smoothly swung. Further, it is possible to disperse the stress applied to the spring portion 96c and to obtain a stable spring property.
- two holding portions 96a arranged on the right end side are connected by a connecting portion 96f
- two holding portions 96a arranged on the left end side are connected by a connecting portion 96f.
- the two holding portions 96a arranged on the right end side may not be connected by the connecting portion 96f
- the two holding portions 96a arranged on the left end side may not be connected by the connecting portion 96f. Also good.
- plate springs 17, 47, 67 are formed in the substantially rectangular shape as a whole.
- the leaf springs 17, 47, 67 may be formed in a circular shape, an elliptical shape, or a polygonal shape other than a rectangular shape.
- plate springs 17, 47, 67 are provided with the four spring parts 17c, 47c, 67c which can deform
- the leaf springs 17, 47, 67 may include three or five or more spring portions that can be deformed in the vertical direction, the horizontal direction, and the front-rear direction.
- the spring portions 17c, 47c, and 67c are formed in a substantially L shape including a first spring portion that is substantially parallel to the left-right direction and a second spring portion that is substantially parallel to the front-rear direction.
- the spring portions 17c, 47c, and 67c may be formed so that the two first spring portions and the one second spring portion are connected to each other.
- Spring portions 17c, 47c, and 67c may be formed so as to be connected to the second spring portion of the book.
- the spring portions 17c, 47c, and 67c may be formed so that the plurality of first spring portions and the plurality of second spring portions are connected.
- the spring portion 17c is formed from the four corners of the holding portion 17a toward the fixing portions 17b arranged at the four corners of the leaf spring 17.
- the spring portions 47c and 67c are arranged from the approximate center of the holding portions 47a and 67a in the left and right direction or the front and rear direction to the approximate center of the leaf springs 47 and 67 in the left and right direction or the front and rear direction. It is formed toward the fixed parts 47b and 67b.
- the spring portion 17c, toward the fixing portions 17b, 47b, 67b disposed at the four corners of the leaf springs 17, 47, 67 from the intermediate position in the left-right direction or the front-rear direction of the holding portions 17a, 47a, 67a, 47c and 67c may be formed.
- the fixing portions 17b adjacent to each other in the circumferential direction of the leaf spring 17 are connected to each other by the connecting portion 17f.
- the fixing portions 17b adjacent in the circumferential direction may not be connected to each other.
- the width w of the spring portion 17c is equal to or less than the thickness t of the spring portion 17c.
- the width w of the spring portion 17c may be wider than the thickness t of the spring portion 17c.
- the thickness of the spring portion 47c is equal to or less than the width of the spring portion 47c.
- the thickness of the spring portion 47c may be larger than the width of the spring portion 47c.
- the fulcrum protrusion 11 a is formed on the sensor cover member 11, and the engaging recess 15 b is formed on the base body 15.
- a fulcrum protrusion may be formed on the base body 15, and an engaging recess that engages with the fulcrum protrusion may be formed on the sensor cover member 11.
- the photographing optical device 31 includes the fulcrum portion 49 that is the center of swinging of the lens driving device 2, but the photographing optical device 31 does not include the fulcrum portion 49. May be.
- the drive magnets 21, 71, 72 are constituted by two magnet pieces, ie, the first magnet pieces 21a, 71a, 72a and the second magnet pieces 21b, 71b, 72b.
- the drive magnets 21, 71, 72 may be configured by a single magnet piece. In this case, one magnet piece is magnetized so that two magnetic poles that overlap in the optical axis direction are formed on both surfaces of the drive magnets 21, 71, and 72, respectively.
- the senor 4 is disposed on the lower side of the lens driving device 2.
- the sensor 4 may be disposed on the right side, the left side, the front side, or the rear side of the lens driving device 2.
- the movable modules 12, 42, and 62 are formed, for example, so that the shape when viewed from the optical axis direction is substantially rectangular.
- the driving magnet 21 is attached to the cover member 9 and the driving coil 23 is attached to the case body 16.
- the driving magnet 21 may be attached to the case body 16 and the driving coil 23 may be attached to the cover member 9.
- the drive magnet 21 is attached to the cover member 39 and the drive coil 23 is attached to the coil holding member 44, but the drive magnet 21 is attached to the case body 46.
- the driving coil 23 may be attached to the cover member 39.
- the driving magnets 71 and 72 are attached to the cover member 39 and the driving coils 73 and 74 are attached to the coil holding members 64 and 65. May be attached to the case body 46, and the driving coils 73 and 74 may be attached to the cover member 39.
- the photographing optical devices 1, 31, 51 are mounted on a portable device such as a cellular phone.
- the photographing optical devices 1, 31, and 51 may be mounted on a drive recorder that records the driving situation of an automobile.
- a change in the tilt of the lens driving device 2 is detected by the sensor 4 due to vibrations of the automobile during traveling or the like (that is, when a shake (vibration) of the lens driving device 2 is detected).
- Current is supplied to the driving coil 23 based on the detection result of the sensor 4, and the movable modules 12 and 42 are swung around the fulcrum portions 19 and 49 to correct the shake.
- the photographing optical devices 1, 31, and 51 may be mounted on other devices such as a surveillance camera.
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Abstract
Description
2 レンズ駆動装置
4 センサ
5、35、55 支持体
6、56 揺動駆動機構(振れ補正機構の一部)
12、42、62 可動モジュール
17、47、67、77、87、97 板バネ(バネ部材、振れ補正機構の一部)
17a、47a、67a、76a、85a、86a、96a 保持部
17b、47b、67b、76b、85b、86b、96b 固定部
17c、47c、67c、76c、85c、86c、96c バネ部
19、49 支点部(振れ補正機構の一部、揺動中心)
17g 内側バネ部(第1バネ部または第2バネ部)
17h 外側バネ部(第1バネ部または第2バネ部)
21、71、72 駆動用磁石
23、73、74 駆動用コイル
47g、67g、76g 保持部側バネ部(第1バネ部または第2バネ部)
47h、67h、76h、96h 固定部側バネ部(第1バネ部または第2バネ部)
47j、67j 保持部側端
47k、67k 固定部側端
69 揺動中心
76、85、86、96 バネ片
85g 保持部側バネ部(第1バネ部)
85h 固定部側バネ部(第2バネ部)
86g 保持部側バネ部(第2バネ部)
86h 固定部側バネ部(第1バネ部)
96g 保持部側バネ部(第1バネ部または第2バネ部、第1折返しバネ部または第2折返しバネ部)
L 光軸
X 第1方向
Y 第2方向
(撮影用光学装置の全体構成)
図1は、本発明の実施の形態1にかかる撮影用光学装置1の平面図である。図2は、図1のE-E断面の断面図である。図3は、図1のE-E断面の一部の構成を示す斜視図である。
図4は、図3に示す板バネ17の平面図である。図5は、図4のF部の縦断面図である。
F>α×M・・・式(1)
なお、振動加速度αは、たとえば、4G以上である。
以上説明したように、本形態では、可動モジュール12を揺動可能に支持する板バネ17のバネ部17cは、左右方向、前後方向および上下方向に変形可能となっている。そのため、左右方向、前後方向および上下方向の全方向における板バネ17のバネ定数を比較的小さくすることが可能になる。したがって、本形態では、可動モジュール12の揺動角度が大きくなっても、可動モジュール12を円滑に揺動させて(すなわち、レンズ駆動装置2を円滑に揺動させて)振れを適切に補正することが可能になる。また、本形態では、左右方向および前後方向にバネ部17cが変形可能となっているため、左右方向や前後方向で撮影用光学装置1に衝撃が加わった際のバネ部17cの塑性変形を防止することが可能になる。
(撮影用光学装置の全体構成)
図6は、本発明の実施の形態2にかかる撮影用光学装置31の断面図である。なお、以下の説明では、実施の形態1と同一の構成については、同一の符号を付して、その説明を省略または簡略化する。また、以下の説明では、実施の形態1と同様に、互いに直交する3方向のそれぞれをX方向、Y方向およびZ方向とするとともに、X1方向側を「右」側、X2方向側を「左」側、Y1方向側を「前」側、Y2方向側を「後(後ろ)」側、Z1方向側を「上」側、Z2方向側を「下」側とする。
図7は、図6に示す板バネ47の平面図である。
以上のように構成された撮影光学装置31では、実施の形態1とほぼ同様の効果を得ることができる。また、本形態では、保持部側バネ部47gと固定部側バネ部47hとが左右方向または前後方向で重なっていないため、左右方向および前後方向において、板バネ47を小型化しつつ、バネ部47cの長さを比較的長くすることが可能になる。特に本形態では、板バネ47の周方向で互いに隣り合う一方のバネ部47cの保持部側端47jと他方のバネ部47cの固定部側端47kとが左右方向または前後方向で隣接しており、この保持部側端47jと固定部側端47kとが左右方向または前後方向で重なっていないため、左右方向および前後方向において、板バネ47をより小型化しつつ、バネ部47cの長さを比較的長くすることが可能になる。
図8は、本発明の実施の形態3にかかる撮影用光学装置51の断面図である。図9は、図8に示す板バネ67の平面図である。なお、以下の説明では、実施の形態1、2と同一の構成については、同一の符号を付して、その説明を省略または簡略化する。また、以下の説明では、実施の形態1、2と同様に、互いに直交する3方向のそれぞれをX方向、Y方向およびZ方向とするとともに、X1方向側を「右」側、X2方向側を「左」側、Y1方向側を「前」側、Y2方向側を「後(後ろ)」側、Z1方向側を「上」側、Z2方向側を「下」側とする。
上述した形態では、板バネ17、47、67は、一体で形成されている。この他にもたとえば、図10~図12に示すように、複数のバネ片76、85、86、96によって、板バネ77、87、97が構成されても良い。以下、板バネ77を「板バネの変形例1」、板バネ87を「板バネの変形例2」、板バネ97を「板バネの変形例3」として、板バネ77、87、97の構成を順番に説明する。また、その他の板バネの変形例を併せて説明する。
図10に示すように、板バネ77は、全体として略矩形状に形成されている。具体的には、板バネ77は、全体として略長方形状に形成されている。また、板バネ77は、略L形状に形成された4個のバネ片76によって構成されている。4個のバネ片76のそれぞれは、可動モジュール12、42、62を保持する1個の保持部76aと、支持体5、35、55に固定される1個の固定部76bと、保持部76aと固定部76bとを繋ぐ1本のバネ部76cとを備えている。
図10に示す板バネ77は、同形状に形成された4個のバネ片76によって構成されているが、図11に示すように、2個のバネ片85と、バネ片85と形状の異なる2個のバネ片86との形状の異なる2種類のバネ片85、86によって、板バネ87が構成されても良い。
図10に示す板バネ77は、4個のバネ片76によって構成されているが、図12に示すように、2個のバネ片96によって、板バネ97が構成されても良い。
上述した形態では、板バネ17、47、67は、全体として略矩形状に形成されている。この他にもたとえば、板バネ17、47、67は、円形状、楕円形状あるいは四角形状以外の多角形状に形成されても良い。また、上述した形態では、板バネ17、47、67は、上下方向、左右方向および前後方向に変形可能な4本のバネ部17c、47c、67cを備えている。この他にもたとえば、板バネ17、47、67は、上下方向、左右方向および前後方向に変形可能な3本あるいは5本以上のバネ部を備えていても良い。
上述した形態は、本発明の好適な形態の一例ではあるが、これに限定されるものではなく本発明の要旨を変更しない範囲において種々変形実施が可能である。以下、本発明の他の実施の形態について説明する。
Claims (16)
- レンズと撮像素子と前記レンズを駆動するレンズ駆動機構とを搭載したレンズ駆動装置を有する可動モジュールと、前記可動モジュールを支持する支持体と、前記支持体に対して前記レンズ駆動装置の光軸が傾くように前記可動モジュールを揺動させて振れを補正する振れ補正機構とを備え、
前記振れ補正機構は、前記可動モジュールを揺動させる揺動駆動機構と、前記可動モジュールを揺動可能に支持するバネ部材とを備え、
前記バネ部材は、前記可動モジュールを保持する保持部と、前記支持体に固定される固定部と、前記保持部と前記固定部とを繋ぐとともに前記可動モジュールの揺動動作を可能とするバネ部とを備え、
前記バネ部は、前記光軸に直交する方向および前記光軸方向に変形可能となっていることを特徴とする撮影用光学装置。 - 前記揺動駆動機構は、前記光軸に略直交するとともに互いに略直交する第1方向および第2方向を揺動の軸方向として前記可動モジュールを揺動させるための複数の駆動用磁石と駆動用コイルとを備え、
前記バネ部は、前記第1方向に略平行な第1バネ部と、前記第2方向に略平行な第2バネ部とを備えることを特徴とする請求項1記載の撮影用光学装置。 - 前記バネ部は、前記第1バネ部と前記第2バネ部とから構成される略L形状に形成されていることを特徴とする請求項2記載の撮影用光学装置。
- 前記バネ部材は、複数の前記バネ部を備え、
1つの前記バネ部の前記第1バネ部と他の前記バネ部の前記第1バネ部とが前記第2方向で重なり、1つの前記バネ部の前記第2バネ部と他の前記バネ部の前記第2バネ部とが前記第1方向で重なっていることを特徴とする請求項2または3記載の撮影用光学装置。 - 前記可動モジュールは、前記光軸方向から見たときに略矩形状となるように形成されるとともに、その外周面が前記第1方向または前記第2方向と略平行になるように配置され、
前記バネ部材は、前記光軸方向から見たときに全体として略矩形状に形成されるとともに、その外周端が前記第1方向または前記第2方向と略平行になるように配置されていることを特徴とする請求項2から4のいずれかに記載の撮影用光学装置。 - 前記第1バネ部および前記第2バネ部は、前記可動モジュールの外周面と前記バネ部材の外周端との間に配置されていることを特徴とする請求項5記載の撮影用光学装置。
- 前記バネ部材は、全体として略矩形状に形成されるとともに、その外周端が前記第1方向または前記第2方向と略平行になるように配置され、
前記固定部は、前記バネ部材の前記第1方向の略中心および前記第2方向の略中心に配置され、
前記保持部は、その外形が略矩形状になるように形成され、
前記バネ部材は、前記第1方向における前記保持部の略中心から前記第2方向の略中心に配置される前記固定部に向かって形成される前記バネ部と、前記第2方向における前記保持部の略中心から前記第1方向の略中心に配置される前記固定部に向かって形成される前記バネ部とを備えることを特徴とする請求項3記載の撮影用光学装置。 - 前記第1方向における前記保持部の略中心から前記第2方向の略中心に配置される前記固定部に向かって形成される前記バネ部の保持部側端と、前記第2方向における前記保持部の略中心から前記第1方向の略中心に配置される前記固定部に向かって形成される前記バネ部の固定部側端とが前記第1方向で隣接し、
前記第2方向における前記保持部の略中心から前記第1方向の略中心に配置される前記固定部に向かって形成される前記バネ部の保持部側端と、前記第1方向における前記保持部の略中心から前記第2方向の略中心に配置される前記固定部に向かって形成される前記バネ部の固定部側端とが前記第2方向で隣接していることを特徴とする請求項7記載の撮影用光学装置。 - 前記可動モジュールは、前記光軸方向から見たときに略矩形状となるように形成され、
前記バネ部材は、全体として略矩形状に形成され、
前記固定部は、前記バネ部材の四隅に配置され、
前記保持部は、前記光軸方向から見たときに前記可動モジュールの四隅または四隅の近傍に配置され、
前記バネ部は、前記バネ部材の略対角線上に配置される前記保持部と前記固定部とを繋ぐように形成され、
1つの前記バネ部の前記第1バネ部と他の前記バネ部の前記第1バネ部とが前記第2方向で重なり、1つの前記バネ部の前記第2バネ部と他の前記バネ部の前記第2バネ部とが前記第1方向で重なっていることを特徴とする請求項3記載の撮影用光学装置。 - 前記バネ部材は、1個の前記保持部と1個の前記固定部と1本の前記バネ部とをそれぞれ備える略L形状の4個のバネ片によって構成されていることを特徴とする請求項9記載の撮影用光学装置。
- 前記可動モジュールは、前記光軸方向から見たときに略矩形状となるように形成されるとともに、その外周面が前記第1方向または前記第2方向と略平行になるように配置され、
前記バネ部材は、全体として略矩形状に形成されるとともに、その外周端が前記第1方向または前記第2方向と略平行になるように配置され、
前記固定部は、前記バネ部材の前記第1方向の略中心および前記第2方向の略中心に配置され、
前記保持部は、前記光軸方向から見たときに前記可動モジュールの四隅または四隅の近傍に配置され、
前記バネ部材は、前記第1バネ部として前記第1方向で折り返されるように形成される第1折返しバネ部を有する前記バネ部と、前記第2バネ部として前記第2方向で折り返されるように形成される第2折返しバネ部を有する前記バネ部とを備えることを特徴とする請求項3記載のレンズ駆動装置。 - 前記バネ部材は、2個の前記保持部と、2個の前記固定部と、前記第1折返しバネ部を有する1本の前記バネ部と、前記第2折返しバネ部を有する1本の前記バネ部とをそれぞれ備える2個のバネ片によって構成されていることを特徴とする請求項11記載の撮影用光学装置。
- 前記バネ部材は、前記光軸方向において、前記可動モジュールの揺動中心の近傍に配置されていることを特徴とする請求項1から12のいずれかに記載の撮影用光学装置。
- 前記バネ部材は、前記光軸方向において、前記揺動駆動機構よりも前記可動モジュールの揺動中心側に配置されていることを特徴とする請求項1から13のいずれかに記載の撮影用光学装置。
- 前記光軸方向における前記バネ部のバネ定数は、前記光軸に直交する方向における前記バネ部のバネ定数以下となっていることを特徴とする請求項13または14記載の撮影用光学装置。
- 前記可動モジュールは、前記レンズ駆動装置の傾きの変化を検出するためのセンサを備えることを特徴とする請求項1から15のいずれかに記載の撮影用光学装置。
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WO2011155318A1 (ja) * | 2010-06-08 | 2011-12-15 | 日本電産サンキョー株式会社 | 振れ補正装置、撮影用光学装置およびレンズ駆動装置 |
JP2011257507A (ja) * | 2010-06-08 | 2011-12-22 | Nidec Sankyo Corp | 振れ補正装置、撮影用光学装置およびレンズ駆動装置 |
WO2012032989A1 (ja) * | 2010-09-07 | 2012-03-15 | 日本電産サンキョー株式会社 | 振れ補正機能付き光学ユニット |
JP2012058361A (ja) * | 2010-09-07 | 2012-03-22 | Nidec Sankyo Corp | 振れ補正機能付き光学ユニット |
JP2012078785A (ja) * | 2010-09-07 | 2012-04-19 | Nidec Sankyo Corp | 振れ補正機能付き光学ユニット |
CN103238110A (zh) * | 2010-09-07 | 2013-08-07 | 日本电产三协株式会社 | 带抖动修正功能的光学单元 |
US9151964B2 (en) | 2010-09-07 | 2015-10-06 | Nidec Sankyo Corporation | Optical unit with shake correcting function |
JP2014006522A (ja) * | 2012-05-31 | 2014-01-16 | Nidec Sankyo Corp | 振れ補正機能付き光学ユニット |
JP2014235188A (ja) * | 2013-05-30 | 2014-12-15 | 日本電産サンキョー株式会社 | 振れ補正機能付き光学ユニット |
WO2014192539A1 (ja) * | 2013-05-30 | 2014-12-04 | 日本電産サンキョー株式会社 | 振れ補正機能付き光学ユニット |
US9933629B2 (en) | 2013-05-30 | 2018-04-03 | Nidec Sankyo Corporation | Optical unit with shake correction function |
JP2015034856A (ja) * | 2013-08-08 | 2015-02-19 | 日本電産サンキョー株式会社 | 撮影用光学装置 |
JP2017010012A (ja) * | 2015-06-16 | 2017-01-12 | 台湾東電化股▲ふん▼有限公司 | バネ式二軸回転モジュール |
US10126563B2 (en) | 2015-06-16 | 2018-11-13 | TDK Taiwan, Corp. | Thin-plate-typed rotating module |
WO2021152929A1 (ja) * | 2020-01-30 | 2021-08-05 | 日本電産株式会社 | 振れ補正機能付き光学ユニット |
JP7485961B2 (ja) | 2021-06-08 | 2024-05-17 | ミツミ電機株式会社 | 光学アクチュエータ、カメラモジュール、及びカメラ搭載装置 |
Also Published As
Publication number | Publication date |
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CN102177465A (zh) | 2011-09-07 |
US8571399B2 (en) | 2013-10-29 |
WO2010044222A1 (ja) | 2010-04-22 |
US20110262122A1 (en) | 2011-10-27 |
CN102177465B (zh) | 2014-06-18 |
JPWO2010044223A1 (ja) | 2012-03-15 |
JP5535079B2 (ja) | 2014-07-02 |
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