The present invention relates to a camera. In particular, the present invention relates to a camera having a bending optical system.
Digital cameras which make use of image sensors such as a CCD (Charge Coupled Device) or CMOS (Complementary Metal Oxide Semiconductor) sensor to convert an optical image into an electrical signal, and to record by digitizing the electrical signal, have become very popular in recent years. In this kind of digital camera, there is a need not only for increasing the number of pixels of the CCD or CMOS sensor, but also for improving the performance of the lens barrel which forms the optical image on these image sensors. More specifically, there is a need for a lens barrel equipped with a higher power zoom lens system.
On the other hand, in the field of the digital camera, there is a need for a smaller size body in order to improve portability. To this end, there is a need for reduced size in an image pickup apparatus equipped with a lens barrel and image sensors, which is believed to contribute greatly to reducing the size of the housing. In these efforts to reduce the size of an image pickup apparatus, what is known as a bending optical system has been proposed, in which the apparatus is reduced in size by bending the zoom lens system at some point along the optical path, without changing the optical length.
For example, Patent Document 1 discloses a bending optical system in which the light path is bent using a reflecting mirror. More specifically, the lens barrel disclosed in Patent Document 1 includes, in order from the side of the object, a first lens group and a second lens group, on the side of the reflecting mirror facing the object, and in order from the side of the reflecting mirror, a third lens group and a fourth lens group, on the side of the reflecting mirror facing the image sensor. The first lens group is fixed. The second lens group and the third lens group are movable in the optical axis direction, and make up the zoom lens system in cooperation with each other. The fourth lens group is used for adjusting the focus.
In addition, Patent Document 2 discloses a bending optical system in which the light path is bent using a prism. More specifically, the lens barrel disclosed in Patent Document 2 includes a lens group on the side of the object with respect to the prism. The lens group is movable in the optical axis direction between the in-use position and the retracted position. Furthermore, the prism is movable so that the space in which the lens group is accommodated is secured when the lens group is located at the retracted position.
Furthermore, in Patent Document 3, the configuration of a lens group used in a bending optical system is disclosed.
Patent Document 1: Japan Patent Laid-Open Publication No. H11-258678
Patent Document 2: Japan Patent Laid-Open Publication No. 2003-169236
Patent Document 3: Japan Patent Laid-Open Publication No. 2004-102089
However, with a raising demand for simultaneously realizing, a high power zoom lens system and miniaturization of the device, further improvement is required.
More specifically, with the configuration disclosed in Patent Documents 1 and 2, it is difficult to configure a high magnification zoom lens system while realizing miniaturization of the device. Furthermore, even by the lens configuration disclosed in Patent Document 3 is adopted, there is a problem of the specific device configuration being unclear since a configuration to miniaturize the device.
It is an object of the present invention to provide an imaging device and a camera simultaneously realizing a high magnification zoom lens system and the miniaturization of the device.
A camera according to a first aspect of the present invention includes a first lens group, a bending unit, at least one lens frame, a second lens group, an imaging unit, a lens barrel, and a chassis. The first lens group takes in a light flux incident along a first optical axis. The bending unit bends the light flux incident along the first optical axis to a direction along a second optical axis intersecting with the first optical axis. The lens frame retains the first lens group, and relatively moves the first lens group and the bending unit in the direction along the first optical axis. The second lens group takes in the light flux bent by the bending unit. The imaging unit receives the light flux passing through the second lens group. The lens barrel supports the lens frame to be movable, in which the bending unit, the second lens group and the imaging unit are disposed. The chassis retains the lens barrel. When capturing an image with the up and down vertical direction of the object coinciding the up and down narrow side direction of the image to be captured of the object, direction along the second optical axis substantially coincides the horizontal direction.
Here, the phrase “along the first optical axis” means, for example, being parallel to the first optical axis. In addition, the phrase “along the second optical axis” means, for example, being parallel to the second optical axis. The bending unit, for example, includes a member having a reflecting surface, and more specifically, may include a prism, a mirror or the like. The imaging unit may be, for example, a CCD, CMOS or the like receiving light electrically, but it is not limited thereto, and it may be a film or the like.
With the camera of the present invention, the relative positions between the first lens group and the bending unit are changed by the lens frame. In other words, via the lens frame, the relative positions along the optical path between the first lens group and the imaging unit change. Like this, since it is possible to make the length of the optical path from the first lens group to the imaging unit longer via the lens frame, it is possible to configure a high magnification zoom lens system.
Furthermore, with the camera of the present invention, since a bending optical system is adopted, it is possible to configure an optical system with the same optical path length to be more compact compared to a camera not adopted the bending optical system.
Furthermore, with the camera of the present invention, when capturing an image with the up and down vertical direction of the object coinciding the up and down narrow side direction of the image of the object of which a picture is to be taken (below, it is referred to as normal imaging state in the case of capturing an image this way), direction along the second optical axis coincides the horizontal direction. Normally, in the lens barrel, it is possible to make the size in the direction perpendicular to the first optical axis and the second optical axis smaller than the size in the direction along the second optical axis. Therefore, even in a chassis retaining this kind of lens barrel, often times the direction along the second optical axis is the longitudinal direction of the chassis.
Therefore, with the camera of the present invention, in the normal imaging state, it is possible to take a picture with the longitudinal direction of the camera coinciding the horizontal direction. Compared to a camera in which in a normal imaging state, an image is captured with the narrow side direction of the camera coinciding the horizontal direction, it is possible to provide a camera with a small size in the vertical direction in the normal imaging state.
The camera according to a second aspect of the present invention includes a first lens group, a bending unit, at least one lens frame, a second lens group, an imaging unit, a lens barrel, and a chassis. The first lens group takes in a light flux incident along a first optical axis. The bending unit bends the light flux incident along the first optical axis to a direction along a second optical axis intersecting with the first optical axis. The lens frame retains the first lens group, and relatively moves the first lens group and the bending unit in the direction along the first optical axis. The second lens group takes in the light flux bended by the bending unit. The imaging unit receives the light flux passing through the second lens group. The lens barrel supports the lens frame to be movable, and in which the bending unit, the second lens group, and the imaging unit are disposed. The chassis retains the lens barrel, in which a visual unit to make an image to be captured by the imaging unit visible is disposed. The direction along the second optical axis is substantially parallel to the long side direction of the visual unit.
Here, the phrase “along the first optical axis” means, for example, being parallel to the first optical axis. In addition, the phrase “along the second optical axis” means, for example, being parallel to the second optical axis. The bending unit, for example, includes a member including a reflecting surface, and more specifically, may include a prism, a mirror or the like. The imaging unit may be, for example, a CCD, CMOS or the like receiving light electrically, but it is not limited thereto, and it may be a film or the like. The visual unit is, for example, optical or electronic finder or the like.
With the camera of the present invention, the relative positions between the first lens group and the bending unit are changed by the lens frame. In other words, via the lens frame, the relative positions along the optical path between the first lens group and the imaging unit change. Like this, since it is possible to make the length of the optical path from the first lens group to the imaging unit longer via the lens frame, it is possible to configure a high magnification zoom lens system.
Furthermore, with the camera of the present invention, since a bending optical system is adopted, it is possible to configure an optical system with the same optical path length to be more compact compared to a camera not adopted the bending optical system.
Furthermore, with the camera of the present invention, the long side direction of the visual unit is substantially parallel to the direction along the second optical axis. Normally, in the lens barrel, it is possible to make the size in the direction perpendicular to the first optical axis and the second optical axis smaller than the size in the direction along the second optical axis. Therefore, even in a chassis retaining this kind of lens barrel, often times the direction along the second optical axis is the longitudinal direction of the chassis.
For this reason, with the camera of the present invention, in the normal imaging state of capturing an image with the long side direction of the visual unit substantially coinciding the horizontal direction, it becomes possible to take a picture with the longitudinal direction of the chassis substantially coinciding the horizontal direction. In addition, with the camera of the present invention, compared to a camera in which the second optical axis is substantially parallel to the narrow side direction of the visual unit, it becomes possible to reduce the size of the camera in the narrow side direction of the visual unit.
The camera according to a third aspect of the present invention is the camera of the first or the second aspect, and a plurality of lens frames is disposed.
The camera of the present invention includes a plurality of lens frames, for example, disposed in multistage. Therefore, since it is possible to make the length of the optical path from the first lens group to the imaging unit longer via the lens frames, it becomes possible to configure a high magnification zoom lens system.
The camera according to a fourth aspect of the present invention is the camera of any one of the first to the third aspects, wherein a grip unit for being gripped is provided on the imaging unit side of the chassis in the direction along the second optical axis.
With the camera of the present invention, the grip unit is disposed on the side of the imaging unit in the direction along the second optical axis. Therefore, it becomes possible to secure a distance between the lens frame retaining the first lens group and the grip unit. Therefore, it becomes possible to prevent a finger from getting in the way in the first lens group when capturing an image.
The camera according to a fifth aspect of the present invention is the camera of any one of the first to the fourth aspects, wherein the lens frame protrudes toward the side of the object more than the surface on the side of the object of the chassis, when capturing an image of the object.
With the camera of the present invention, the lens frame protrudes toward the side of the object more than the surface on the side of the object of the chassis, when capturing an image of the object. Therefore, it is possible to prevent a finger from getting in the way in the first lens group when photographing.
The camera according to a sixth aspect of the present invention is the camera of any one of the first to the fifth aspects, further including an image blur correction unit retaining the second lens group to be movable in the direction perpendicular to the second optical axis.
With the camera of the present invention, while it is possible to reduce the size of the camera in the direction perpendicular to the first optical axis and the second optical axis (for example, narrow side direction of the visual unit), since the image blur correction unit is included, it is possible for a picture taken to have a higher quality.
The camera according to a seventh aspect of the present invention is the camera of any one of the first to the sixth aspects, wherein the bending unit includes a reflecting surface for reflecting the light flux incident along the first optical axis to the direction along the second optical axis, and the relative position of the bending unit with respect to the imaging unit is fixed.
With the camera of the present invention, the relative positions of the bending unit and the imaging unit are fixed, and it becomes possible to obtain higher precision optical performance.
The camera according to a eighth aspect of the present invention is the camera of any one of the first to the seventh aspects, wherein size of the lens barrel in the direction along the first optical axis is formed to be smaller than size of the lens barrel in the direction perpendicular to the first optical axis and second optical axis.
With the camera of the present invention, it becomes possible to provide a camera formed with the thickness thereof in the direction along the first optical axis thin.
An embodiment of the present invention will be described with reference to
The digital camera of the present invention includes the bending optical system in the optical system, and is configured so that lens barrel can be extended in multistage to the side of the object. This allows the high magnification zoom lens system and the miniaturization of the device to be simultaneously realized.
The digital camera in a first embodiment of the present invention will be described with reference to
2.1: Configuration of the Digital Camera
The digital camera 1 includes an imaging device 2 and a main body 3. The imaging device 2 has a bending optical system bending the light flux incident along the first optical axis A1 to a direction along a second optical axis A2 perpendicular to the first optical axis A1 and leading the light flux to an image sensor. The main body 3 accommodates the imaging device 2, and performs control or the like on the imaging device 2.
First, before describing detailed configuration of the imaging device 2, the configuration of the main body 3 will be described.
In addition, in the following description, the six faces of the digital camera 1 will be defined as follows.
The side facing the subject during image capture with the digital camera 1 is termed the front side, while the opposite side is termed the rear side. When image capture is performed so that the vertical top and bottom of the subject coincide with the top and bottom in the short side direction of the rectangular image captured with the digital camera 1 (the aspect ratio (ratio of long side to short side) is generally, 3:2, 4:3, 16:9, etc.), the side facing upward in the vertical direction is termed the top side. The side opposite to the top side is termed the bottom side. Furthermore, when image capture is performed so that the vertical top and bottom of the subject coincide with the top and bottom in the short side direction of the rectangular image captured with the digital camera 1, the side on the left when viewed from the subject side is termed the left side, and the opposite side is termed the right side. The above definitions do not limit the orientation in which the digital camera 1 is used.
According to the above definitions,
In addition, to the six sides of the digital camera 1, the six sides of the various constituent components disposed in the digital camera 1 are also defined likewise. In other words, the above definitions are applied to the six sides of the various constituent components in a state of being disposed in digital camera 1.
Furthermore, as shown in
A description will be made below based on this XYZ coordinate system in each figure. In other words, the X axis positive direction, Y axis positive direction, and Z axis positive direction in each figure are each showing the same direction.
2.2: Configuration of the Main Body
The configuration of the main body 3 will be described with reference to
As shown in
As shown in
Furthermore, as shown in
Note that,
Next, the interior configuration of the main body 3 will be described with reference to
As shown in
Furthermore, on the Z axis direction positive side of the imaging device 2, the flash lamp 15, the main condenser 20, and the sub-substrate 21 are disposed. The main condenser 20 provides flash light energy to the flash lamp 15, through the electric charge from a battery 22 which will be described later. The sub-substrate 21 transforms voltage when necessary of the electric power from the battery 22 which will be described later, and controls the flash lamp 15. In addition, on the Y axis direction positive side inside the grip portion 12, the battery 22 is disposed as the electric power supply for operating the digital camera 1.
Furthermore, as shown in
In addition, as shown in
3.1: Configuration of the Imaging Device
The configuration of the imaging device 2 attached in the digital camera 1 will be described with reference to
The imaging device 2 includes a lens barrel 31 having an optical system 35, a motor unit 32 having a zoom motor 36 which drives the lens barrel 31, and a CCD unit 33 having a CCD 37 as an imaging unit receiving the light flux passing through the lens barrel 31.
The lens barrel 31 is mechanistically characterized in that it includes a multistage retractable lens frame which is retractable and extendable in multistage in the first optical axis A1 direction, and is optically characterized in which it includes an optical system 35 which includes the bending optical system. The optical system 35 includes 5 groups including 12 pieces of optical elements (lens and prisms) which realize a high magnification zoom which is beyond 3 times optical zoom (for example, in the range of 6 times to 12 times optical zoom). With this configuration, the lens barrel 31 takes in the light flux incident along the first optical axis A1, and bends the light flux incident along the first optical axis A1 in a direction along the second optical axis A2 intersecting with the first optical axis A1, and furthermore, leads the light flux bent in the direction along the second optical axis A2 to CCD 37.
The motor unit 32 mainly includes, for example, a zoom motor 36 such as a DC motor, a flexible printed circuit board (FPC) (not shown in the figure) electrically connecting the zoom motor 36 to the main substrate 23 (refer to
The CCD unit 33 is mainly made up of the CCD 37 which converts the received light flux passing through the lens barrel 31 into an electrical signal, a CCD plate 38 for fixing CCD 37 to the lens barrel 31, and an FPC (not shown in the figure) electrically connecting CCD 37 to the main substrate 23 (refer to
3.2: Optical System
3.2.1: Configuration of Optical System
Before describing in detail the configuration of the imaging device 2, the configuration of the optical system 35 included in the lens barrel 31 will be described with reference to
As shown in
The first lens group G1 has positive optical power as a whole, and includes a first lens L1, a second lens L2 and a third lens L3 disposed in order from the side of the object on the first optical axis A1.
The first lens L1 is a concave meniscus lens having the convex surface facing to the side of the object. The second lens L2 is a plane-convex lens having the convex surface facing to the side of the object. The third lens L3 is a convex meniscus lens having the convex surface facing to the side of the object.
The second lens group G2 has negative optical power as a whole, and includes a fourth lens L4 disposed on the first optical axis A1, a prism L5 bending the light flux incident along the first optical axis A1 to a direction along the second optical axis A2 which is substantially perpendicular to the first optical axis A1, a sixth lens L6 disposed on the second optical axis A2, and a seventh lens L7.
The fourth lens L4 is a concave meniscus lens with the convex surface facing the side of the object. The prism L5 includes a reflecting surface L5a (refer to
The exposure-adjustment member St (refer to
The third lens group G3 has positive optical power as a whole, and includes an eighth lens L8, a ninth lens L9 and a tenth lens L10.
The eighth lens L8 is a plane-convex lens having the convex surface facing to the side of the prism L5. The ninth lens L9 is a biconvex lens. The tenth lens L10 is a biconcave lens.
The fourth lens group G4 is used for focusing, and includes an eleventh lens L11 disposed on the second optical axis A2. The eleventh lens L11 is a convex meniscus lens having the convex surface facing to the side of the prism L5.
The fifth lens group G5 includes a twelfth lens L12 disposed on the second optical axis A2. The twelfth lens L12 is a biconvex lens.
The IR filter F1 (refer to
In addition, the configurations of the lenses including each of the lens groups G1 to G5 are not limited to those described above. It is possible to adopt another lens configuration, as long as the configuration has the same optical effects.
3.2.2: Operation of the Optical System
With Reference to
As described above,
The first lens group G1 is movable in the first optical axis A1 direction. When the optical system 35 is located at the wide angle end, it is located at a place nearest to the second lens group G2 (refer to
The second lens group G2, as shown in
The third lens group G3 is movable with the exposure-adjustment member St in the second optical axis A2 direction. When the optical system 35 is located at the wide angle end, the third lens group G3 is located at a place farthest away from the second lens group G2 (refer to
The fourth lens group G4 is movable in the second optical axis A2 direction. The fourth lens group G4 performs the focusing operation, and corrects the out-of-focus state caused by the changes in imaging magnification due to the movement of first lens group G1 and the third lens group G3.
As shown in
Each of the lens groups G1 to G5 operates as described above. In particular, the first lens group G1 and the third lens group G3 moves in cooperation with each other, and changes the imaging magnification in the CCD 37.
In addition, in the lens barrel 31, the location of each of the lens groups G1 to G5 when the multistage retractable lens frame is retracted corresponds to the location of each of the lens groups G1 to G5 when the optical system 35 is located at the wide angle end.
4.1: Configuration of the Lens Barrel
The configuration of the imaging device 2, mainly the configuration of the lens barrel 31 will be described with reference to
The lens barrel 31 is made up of a first group frame unit 41 retaining the first lens group G1, a base unit 43 to which a second group frame unit 42 retaining the second lens group G2 is fixed, a third group frame unit 44 retaining the exposure-adjustment member St and the third lens group G3, a fourth group frame unit 45 retaining the fourth lens group G4, and a master flange unit 46 retaining the fifth lens group G5.
The first group frame unit 41 is mainly made up of the first lens group G1 disposed on the first optical axis A1, a first group frame 50 retaining the first lens group G1, a driving frame 51 supporting the first group frame 50 to be movable in the first optical axis A1 direction (Y axis direction), a stationary frame 52 supporting the driving frame 51 to be movable in the first optical axis A1 direction (Y axis direction), and a driving gear 53 disposed to be rotatable along the Y axis direction between the stationary frame 52 and the base unit 43 and transmitting the driving force of the motor unit 32 to the driving frame 51.
The stationary frame 52 is fixed to the second group frame unit 42 retaining the second lens group G2. When the stationary frame 52 is fixed, the positions in the Z axis direction and X axis direction are determined so that the optical axis of the first lens group G1 and the optical axis of the fourth lens L4 of the second lens group G2 coincide with each other.
The base unit 43 is mainly made up of a base 55 making up the chassis of the lens barrel 31, a cover 56 making up the chassis with the base 55 and covering the front side of the base 55, the second group frame unit 42 fixed to the base 55, a third group movement mechanism 57 moving the third group frame unit 44 accommodated inside the chassis made up of the base 55 and the cover 56 along the second optical axis A2 direction (X axis direction), and a photo sensor 58 detecting the X axis direction position of the third group frame unit 44.
A motor unit 32 driving the driving gear 53 to rotate is attached on the X axis direction negative side of the base unit 43. The driving force of the motor unit 32 is transmitted to the third group movement mechanism 57 via the driving gear 53. The master flange unit 46 covering the X axis direction positive side of the base unit 43 is fixed on the X axis direction positive side of the base unit 43.
The third group frame unit 44 is mainly made up of a shutter unit 60 provided on the second optical axis A2 and including the exposure-adjustment member St performing the shutter operation and the aperture operation, the third lens group G3, an image blur correction mechanism 61 retaining the third lens group G3 to be movable in the Y axis direction and the Z axis direction, and a third group frame 62 supporting the shutter unit 60 and the image blur correction mechanism 61.
The third group frame 62 is fixed to the third group movement mechanism 57 of the base unit 43, and is driven to the X axis direction. When the third group frame 62 is fixed, the positions in the Y axis direction and the Z axis direction are determined so that the optical axis when the third lens group G3 is located at the center in the movable range coincides with the optical axes of the sixth lens L6 and the seventh lens L7 of the second lens group G2. Furthermore, the third group frame 62 is slidably fitted to third group guide poles 70, 71 extending on the X axis direction negative side from the master flange unit 46 which will be described later. This allows the third group frame unit 44 to move only in the X axis direction, that is, the second optical axis A2 direction.
The fourth group frame unit 45 is mainly made up of the fourth lens group G4, the fourth group frame 66 retaining the fourth lens group G4, a sensor magnet 67 and a coil 68 fixed to the fourth group frame 66.
The fourth group frame 66 is slidably fitted to the fourth group guide poles 72, 73 extending on the X axis direction negative side from the master flange unit 46 which will be described later. As a result, the fourth group frame 66 is positioned in the Y axis direction and the Z axis direction so that the optical axis of the fourth lens group G4 coincides with the optical axes of the sixth lens L6 and the seventh lens L7 of the second lens group G2, and is movable only in the X axis direction, that is, the second optical axis A2 direction.
The master flange unit 46 is mainly made up of the fifth lens group G5, a master flange 75 retaining the fifth lens group G5, the third group guide poles 70, 71 and the fourth group guide poles 72, 73 extending on the X axis direction negative side and fixed to the master flange 75, the IR filter F1 attached from the X axis direction positive side via a cushion rubber 80, a magnetic member 76 driving the fourth group frame unit 45 in cooperation with the coil 68, and an MR sensor 77 detecting the magnetism of the sensor magnet 67 and senses the X direction position of the fourth group frame unit 45.
The master flange 75 is fixed on the X axis direction positive side of the base 55. When the master flange 75 is fixed, the positions in the Y axis direction and the Z axis direction are determined so that the optical axis of the fifth lens group G5 coincides with the optical axes of the sixth lens L6 and the seventh lens L7 of the second lens group G2. Furthermore, a CCD unit 33 is fixed on the X axis direction positive side of the master flange unit 46.
The components included in the lens barrel 31 will be described in detail below.
4.2: First Group Frame Unit
4.2.1: Configuration of the First Group Frame Unit
The configuration of the first group frame unit 41 will be described in detail with reference to
As shown in
The first lens group G1 is fixed to the inner peripheral surface 101 of the first group frame 50 by adhesive bonding or thermal calking. Furthermore, on the inner peripheral surface 101 of the first group frame 50, the first group DR 54 is attached on the Y axis direction positive side of the first lens group G1. As a result, unwanted light is prevented from entering in the first lens group G1. In addition, by mounting the first group DR 54, the fixation mark (adhesion mark) of the first lens group G1 on the first group frame 50 is covered, and the quality of the exterior outside is ensured.
The first group frame 50 includes a cylindrical portion 102, a flange portion 103, cam pins 104a to 104c, extension portions 105a, 105b, and engagement portions 106a, 106b.
The cylindrical portion 102 has the circular inner peripheral surface 101 on which the first lens group G1 is attached. The flange portion 103 has an outer peripheral surface formed on the edge of the cylindrical portion 102 on the Y axis direction negative side and having a diameter greater than that of the cylindrical portion 102. The cam pins 104a to 104c are provided to be spaced at a predetermined angle (for example, 120 degrees) away in the circumferential direction at a plurality of circumferential positions on the outer peripheral surface of the flange portion 103 (for example, three locations: for example, three o'clock, seven o'clock and eleven o'clock positions when viewed from the Y axis direction positive side), and protrude out in the radiation direction of the first optical axis A1. The extension portions 105a and 105b are arc-shaped members extending toward the Y axis direction negative side and formed with a predetermined circumferential width (for example, 30 degrees) with two circumferential points (for example, one o'clock and five o'clock positions when viewed from the Y axis direction positive side) at the edge of the flange portion 103 on the Y axis direction negative side as the centers. The engagement portions 106a and 106b are formed to extend in the radiation direction of the first optical axis A1 on the tips of each of the extension portions 105a and 105b, and end portions 107a and 107b are formed with a circumferential width narrower than the other portions at the ends of the engagement portions 106a and 106b in the radiation direction and at the ends thereof on the X axis direction positive side.
The driving frame 51 has a cylindrical portion 110, cam pins 111a to 111c, and a ring gear 112.
The cam pins 111a to 111c are provided to be spaced at a predetermined circumferential angle (for example, 120 degrees) at a plurality of circumferential positions on the outer surface 115 of the cylindrical portion 110 (for example, three positions, one o'clock, five o'clock and nine o'clock positions when viewed from the Y axis direction positive side), and protrude out in the radiation direction of the first optical axis A1. The ring gear 112 is formed integrally with the cylindrical portion 110 at a circumferential portion of the edge of the cylindrical portion 110 on the Y axis direction negative side (for example, from one o'clock position to five o'clock position when viewed from the Y axis direction positive side) so that the tooth tips protrude in the radiation direction of the first optical axis A1 compared to the outer surface 115. The radius of an imaginary circle which connects the tips of the cam pins 111a to 111c is formed larger than the radius of an imaginary circle which connects the tooth tips of the ring gear 112.
The circular inner surface 116 of the cylindrical portion 110 and the ring gear 112 has a radius larger than the radius of the flange portion 103 of the first group frame 50, and has a radius smaller than the radius of the imaginary circle which connects the tips of the cam pins 104a to 104c of the first group frame 50. Therefore, by engaging cam pins 104a to 104c with cam grooves 118a to 118c formed on the inner surface 116, it becomes possible to arrange the first group frame 50 inside the driving frame 51.
In addition, a circular flange portion 122 extending inward in the radiation direction of the first optical axis A1 is formed at the edge portion of the cylindrical portion 110 on the Y axis direction positive side. The radius of the inner surface of the flange portion 122 is formed to be substantially the same size as the radius of the outer peripheral surface of the cylindrical portion 102 of the first group frame 50. As a result, unwanted light is prevented from entering into the interior of the lens barrel 31 through the gap formed between the first group frame 50 and the driving frame 51 in the radiation direction of the first optical axis A1.
Cam grooves 118a to 118c are formed in the inner surface 116 to be spaced at a predetermined circumferential angle (for example, 120 degrees). The cam grooves 118a to 118c have conducting ends opening at three positions (for example, three o'clock, seven o'clock and eleven o'clock positions) on the end portion of the inner surface 116 on the Y axis direction negative side for conducting cam pins 104a to 104c to the cam grooves 118a to 118c. In addition, the cam grooves 118a to 118c have conducting grooves 119a to 119c extending to the Y axis direction positive side from the conducting ends, and sloped grooves 120a to 120c respectively continuing from the conducting grooves 119a to 119c and extending toward the Y axis direction positive side and clockwise when viewed from the Y axis direction positive side. In addition, the conducting groove 119a of the cam groove 118a with the conducting end formed on the side of the ring gear 112 on the inner surface 116 has the length in the Y axis direction longer by the width size in the Y axis direction of the ring gear 112 compared to the other conducting grooves 119b and 119c.
The stationary frame 52 includes a cylindrical portion 125, and extension portions 126a, 126b. On the inner surface 127 of the cylindrical portion 125 and the extension portions 126a and 126b, cam grooves 128a to 128c and straight-movement grooves 129a and 129b are formed.
On a predetermined position in the circumferential direction of the outer surface 130 of the cylindrical portion 125 (for example, two o'clock position when viewed from the Y axis direction positive side), a protrusion portion 140 protruding in the radiation direction of the first optical axis A1, and a penetration groove 141 extending from the Y axis direction negative side of the protrusion portion 140 and passing through the cylindrical portion 125 in the radiation direction of the first optical axis A1 are formed. The protrusion portion 140 rotatably supports the end portion of the driving shaft of the driving gear 53 on the Y axis direction positive side. In the penetration groove 141, the driving gear 53 is disposed along the Y axis direction. The tooth tips of the driving gear 53 enter into the inner side of the cylindrical portion 125 and mesh with the ring gear 112 of the driving frame 51 disposed inside the stationary frame 52.
In addition, on the edge portion of the cylindrical portion 125 on the Y axis direction positive side, a circular flange portion 142 extending inward in the radiation direction of the first optical axis A1 is formed. The radius of the inner surface of the flange portion 142 is formed to be substantially the same size as the radius of the outer surface 115 of the cylindrical portion 110 of the driving frame 51. As a result, unwanted light is prevented from entering into the interior of the lens barrel 31 through the gap in the radiation direction of the first optical axis A1 between the driving frame 51 and the stationary frame 52.
On the edge portion of the cylindrical portion 125 on the Y axis direction negative side, a flange 145 extending outward in the radiation direction of the first optical axis A1 is formed on a portion in the circumferential direction. Fixing portions 145a and 145b are formed on the flange 145. The fixing portion 145a is positioned on a fixing portion 164c of the second group frame unit 42 which will be described later, and is fixed to the fixing portion 164c by screws or the like. The fixing portion 145b is positioned on an arm portion formed integrally with the motor unit 32, and is fixed thereto by screws or the like.
Extension portions 126a, 126b are arc-shaped members extending toward the Y axis direction negative side and formed with a predetermined circumferential width with two circumferential positions at the edge portion of the cylindrical portion 125 on the Y axis direction negative side. More specifically, the extension portions 126a and 126b each has an end portion on the X axis direction positive side at twelve o'clock position and six o'clock position when viewed from the Y axis direction positive side, and are formed with a predetermined circumferential width. Here, the predetermined width is a width which is sufficient to form each of the conducting grooves 131a and 131b and straight-movement grooves 129a and 129b of the cam grooves 128a and 128b which will be described later, on the inner surface 127 of the extension portions 126a and 126b.
On the end portion of the extension portion 126a on the Y axis direction negative side, a fixing portion 145c extending outward in the radiation direction of the first optical axis A1 is formed. The fixing portion 145c rotatably supports the end portion of the driving shaft of the driving gear 53 on the Y axis direction negative side, and is accommodated in a driving shaft accommodating portion 175 of the base 55 which will be described later. A fixing portion 145d extending outward in the radiation direction of the first optical axis A1 is formed between the extension portion 126a and extension portion 126b in the circumferential direction to be adjacent to the extension portion 126a. The fixing portion 145d is positioned with respect to the front side of the motor unit 32 and fixed thereto by a screw or the like. Furthermore, a fixing portion 145e extending outward in the radiation direction of the first optical axis A1 is formed to be adjacent to the extension portion 126b in the circumferential direction. The fixing portion 145e is positioned with respect to a fixing portion 165d of the second group frame unit 42 which will be described later, and fixed by a screw or the like.
The circular inner surface 127 of the cylindrical portion 125 and the extension portions 126a and 126b has a radius larger than the radius of the imaginary circle which connects the ends of the ring gear 112 of the driving frame 51, and has a radius smaller than the radius of the imaginary circle which connects the ends of the cam pins 111a to 111c of the driving frame 51. For this reason, it becomes possible to arrange the driving frame 51 inside the driving frame 51, by engaging the cam pins 111a to 111c with the cam grooves 128a to 128c which are formed on the inner surface 127.
The cam grooves 128a to 128c are formed in the inner surface 127 to be spaced at a predetermined circumferential angle (for example, 120 degrees). The cam grooves 128a to 128c have conducting ends opening at three positions (for example, one o'clock, five o'clock and nine o'clock positions) on the end portion of the inner surface 127 on the Y axis direction negative side for conducting the cam pins 111a to 111c to the cam grooves 128a to 128c. In addition, the cam grooves 128a to 128c have conducting grooves 131a to 131c extending to the Y axis direction positive side from the conducting ends, and has sloped groove 132a to 132c respectively continuing from the conducting grooves 131a to 131c and extending toward the Y axis direction positive side in the and counterclockwise when viewed from the Y axis direction positive side. In addition, the conducting grooves 131a and 131b of the cam grooves 128a and 128b with the conducting ends formed on the end of the extension portions 126a and 126b on the Y axis direction negative side have the length in the Y axis direction longer by the length of the extension portions 126a and 126b in the Y axis direction compared to the other conducting groove 131c.
The straight-movement grooves 129a and 129b engage with the end portions 107a and 107b of the first group frame 50, guide the first group frame 50 to move in the first optical axis A1 direction, and prevent the first group frame 50 from relatively rotating with respect to the stationary frame 52.
4.2.2: Operation of the First Group Frame Unit
The operation of the first group frame unit 41 having the above described configuration will be described.
First, when the optical system 35 is located at the wide angle end (refer to
At this time, the Y axis direction position of the end portions of each of the cylindrical portion 102 of the first group frame 50 on the Y axis direction positive side, the cylindrical portion 110 of the driving frame 51, and the cylindrical portion 125 of the stationary frame 52 substantially coincides with each other, and the arrangement of each configuration of the first group frame unit 41 is the same as the arrangement (retracting state) of the first group frame unit 41 when not using the imaging device 2.
Next, when the driving gear 53 is driven to rotate in the clockwise direction when viewed from the Y axis direction positive side in the by the motor unit 32 (refer to
Finally, when the optical system 35 is located at the telephoto end, most part of the cylindrical portion 102 of the first group frame 50 extends to the Y axis direction positive side compared to the cylindrical portion 110 of the driving frame 51, under the state where the cam pins 104a to 104c engage with the end portions of the sloped grooves 120a to 120c of the driving frame 51 on the Y axis direction positive side. Furthermore, most part of the cylindrical portion 110 of the driving frame 51 extends to the Y axis direction positive side compared to the cylindrical portion 125 of the stationary frame 52, under the state where the cam pins 111a to 111c engages with the end portion of the sloped grooves 132a to 132c of the stationary frame 52 on the Y axis direction positive side. In other words, compared to the case which the optical system 35 is located at the wide angle end, when the optical system 35 is located at the telephoto end, the first lens group G1 moves to the Y axis direction positive side by the sum of the moving distance of the cylinder cam mechanism provided between the first group frame 50 and the driving frame 51 and the moving distance of the cylinder cam mechanism provided between the driving frame 51 and the stationary frame 52. Furthermore, in this state, the end portions 107a and 107b of the first group frame 50 are located in proximity to the end portion of the straight-movement grooves 129a and 129b on the Y axis direction positive side. In other words, the first lens group G1 moves in the first optical axis A1 direction substantially by the length of the straight-movement grooves 129a and 129b in the Y axis direction, compared to the case which the optical system 35 is located at the wide angle end.
In addition, while the above described first group frame unit 41 moves from the wide angle end to the telephoto end, a space is secured on the Y axis direction negative side of the cylindrical portion 125 of the stationary frame 52 and on the X axis direction positive side of the extension portions 126a and 126b, because each member of the first group frame unit 41 does not enter. For this reason, the third group frame unit 44 which will be described later can enter into this space.
4.3: Base Unit
4.3.1: Configuration of the Base Unit
The configuration of the base unit 43 will be described with reference to
Detailed configurations of the second group frame unit 42, the base 55, and the third group movement mechanism 57 will be described below.
4.3.2: Configuration of the Second Group Frame Unit
The configuration of the second group frame unit 42 will be described with reference to
As shown in
Since details on the second lens group G2 have been described with reference to
The second group frame 150 is mainly made up of a fourth lens retaining frame 155 retaining the fourth lens L4, a prism retaining frame 156 retaining the prism L5, a sixth lens retaining frame 157 retaining the sixth lens L6, and a seventh lens retaining frame 158 retaining the seventh lens L7.
The fourth lens retaining frame 155 has a radius substantially coincides with the radius of the fourth lens L4, and has a circular inner peripheral surface 155a extending in the Y axis direction. The fourth lens L4 is disposed to fit in the inner peripheral surface 155a, and fixed by an adhesive or the like. In addition, on the inner peripheral side of the end portion of the inner peripheral surface 155a on the Y axis direction negative side, a support surface 155b (refer to
The prism retaining frame 156 is a frame body interiorly accommodating the prism L5 and opening in the first optical axis A1 direction and the second optical axis A2 direction, and is formed integrally with the fourth lens retaining frame 155 on the Y axis direction negative side thereof. Inside the prism retaining frame 156, a sloped surface 156a (refer to
The sixth lens retaining frame 157 is formed integrally with the prism retaining frame 156 on the X axis direction positive side of the prism retaining frame 156. The sixth lens retaining frame 157 has a radius substantially coincides with the radius of the sixth lens L6, and has a circular inner peripheral surface 157a extending in the X axis direction. The sixth lens L6 is disposed to fit in the inner peripheral surface 157a and fixed by an adhesive or the like. In addition, an output surface L5d of the prism L5 is disposed on the X axis direction negative side of the inner peripheral surface 157a (refer to
The seventh lens retaining frame 158 is formed integrally with the sixth lens retaining frame 157 on the X axis direction positive side of the sixth lens retaining frame 157. The seventh lens retaining frame 158 includes sloped surfaces 158a having a portion of each of the side surfaces of an imaginary equilateral-triangular prism having the seventh lens L7 as the inscribed circle, and arc-shaped surfaces 158b connecting smoothly with each of the sloped surfaces around the second optical axis A2. The seventh lens L7 is disposed so that the outer peripheral surface thereof contacts with each of the sloped surfaces 158a, and fixed by an adhesive. In addition, the surface of the sixth lens L6 on the X axis direction positive side is disposed on the X axis direction negative side of the seventh lens L7 (refer to
On the end surface of the seventh lens retaining frame 158 on the X axis direction positive side, an opening member 159 which is a plate member having an opening at the center portion is fixed by a screw or the like. The opening member 159 is a member for blocking off unwanted light going toward unwanted directions, out of the light outputted from the second group frame unit 42 along the second optical axis A2. The opening member 159 has a circular opening disposed substantially at the center, and is attached to the seventh lens retaining frame 158 so that the center of the opening coincides with the second optical axis A2 (refer to
The support portion 151 is mainly formed by a first member 163 formed toward the Z axis direction positive side from the center position of the second group frame 150 in the X axis direction and having a surface facing the X axis direction positive side, a second member 164 extending to the X axis direction positive side at the end portion of the first member 163, a third member 165 having a surface facing the X axis direction positive side and formed on the Z axis direction negative side of the second group frame 150, and fixing portions 168a and 168b formed at the end portion on the X axis direction negative side.
The first member 163 includes an hole portion 163a for fitting and fixing the fourth group guide pole 73 (refer to
The second member 164 includes an hole portion 164a at substantially the same position in the Y axis direction as the hole portion 163a on the surface facing the X axis direction positive side, for fitting and fixing the third group guide pole 71 (refer to
As described above, the first member 163 is formed toward the Z axis direction positive side from the center position of the second group frame 150 in the X axis direction. The second member is formed toward the X axis direction positive side at the end portion of the first member 163. For this reason, between the surface of the second group frame 150 on the Z axis direction positive side and the surface of the second member on the Z axis direction negative side, a concaved space 166 is secured on the X axis direction negative side with respect to the end surface of the second group frame 150 on the X axis direction positive side. A aperture actuator 202 protruding to the X axis direction negative side of a shutter unit 60 (which will be described later) can enter into this concaved space 166. This will be described later with reference to
The third member 165 is formed toward the Z axis direction negative side from near the end portion of the second group frame 150 on the Y axis direction negative side, and includes an opening portion 165a (refer to
As described above, the third member 165 is formed toward the Z axis direction negative side from near the end portion of the second group frame 150 on the Y axis direction negative side. For this reason, a concaved space 167 adjacent to the second group frame 150 on the Z axis direction negative side is secured on the Y axis direction positive side of the third member 165. A shutter actuator 203 protruding on the X axis direction negative side of a shutter unit 60 (described later) can enter into this concaved space 167. This will be described later with reference to
The fixing portion 168a is positioned and fixed with respect to a fixing portion provided on the rear side of the motor unit 32.
The fixing portion 168b is positioned with respect to the fixing portion 171c formed on the base 55, and fastened by a screw or the like.
4.3.3: Configuration of the Base
The configuration of the base 55 will be described with reference to
The base 55 mainly includes a rear side 170 including the rear side of the lens barrel 31, and a side surface 171 extending to the Y axis direction positive side from the rear side 170.
On the rear side 170, a bearing portion 172 for rotatably supporting a center opening 180a of the ring gear 180 of the third group movement mechanism 57 (described later), guide pins 173a and 173b for guiding the translational movement of the rod unit 182 of the third group movement mechanism 57 (described later) to the X axis direction, a restricting portion 174 restricting the movement of the rod unit 182 to the X axis direction, and a driving shaft accommodating portion 175 accommodating the driving gear 53 are formed.
The bearing portion 172 is a cylindrical convex portion protruding to the Y axis direction positive side and is inserted into the center opening 180a provided in the rotation center of the ring gear 180, and supports the ring gear 180 to be rotatable.
The guide pins 173a and 173b are members protruding to the Y axis direction positive side and formed to have a predetermined space in both the X axis direction and the Z axis direction, and are inserted into guide grooves 183a and 183b respectively formed along the longitudinal direction of the rod unit 182, and guide the movement of the rod unit 182 to the X axis direction.
The restricting portion 174 is a longitudinal groove with a base and extends in the X axis direction. End portions 174a and 174b rising up to the Y axis direction positive side from the bottom of the groove of the restricting portion 174 are formed on the two ends thereof in the X axis direction.
The driving shaft accommodating portion 175 accommodates the driving gear 53 of the first group frame unit 41 and the fixing portion 145c rotatably supporting the driving gear 53.
Fixing portions 171a to 171c for fixing the second group frame unit 42 to the base 55 are formed on the side surface 171. The fixing portions 171a, 171b, and 171c are positioned with respect to the fixing portions 164b, 165c, and 168b of the second group frame unit 42 respectively, and are fixed by screws or the like.
4.3.4: Configuration of the Third Group Movement Mechanism
The configuration of the third group movement mechanism 57 will be described with reference to
The third group movement mechanism 57 is mainly made up of the ring gear 180 for converting the rotational drive transmitted from the motor unit 32 via the driving gear 53 into a drive to the direction along the second optical axis A2, the rod unit 182 in which the translational movement thereof in the direction along the second optical axis A2 is possible integrally with the third group frame unit 44, and a ring gear pin 181 functionally coupling the ring gear 180 and the rod unit 182.
The ring gear 180 is a plate member in which teeth are formed in an arc on the outer periphery thereof to mesh with the driving gear 53, and rotates within a predetermined rotational angle range. The ring gear 180 includes a center opening 180a in the rotational center thereof, and is attached to the base 55 by fitting the center opening 180a to the bearing portion 172 of the base 55.
The ring gear pin 181 is a cylindrical member having a predetermined length in the Y axis direction, and the end portion thereof on the Y axis direction negative side is fixed to the ring gear 180 by caulking or the like.
The rod unit 182 is functionally coupled to the ring gear 180 by engaging with the ring gear pin 181, and includes the slider crank mechanism together with the ring gear 180.
The configuration of the rod unit 182 will be described with reference to
As shown in
The rod 183 is a plate member which is long in the X axis direction. Two guide grooves 183a and 183b extending in the longitudinal direction, a through-hole 183c formed on the X axis direction positive side of the guide groove 183b, and an engagement opening 183d formed on the X axis direction negative side of the guide grooves 183a and 183b are formed in the rod 183.
As described with reference to
A protrusion portion 65 of the third group frame unit 44 which will be described later is inserted from the Y axis direction positive side into the through-hole 183c. The protrusion portion 65 is inserted so that the end thereof protrudes out to the Y axis direction negative side of the rod 183.
The ring gear pin 181 is inserted from the Y axis direction negative side into the engagement opening 183d. The engagement opening 183d includes first engagement opening 183e extending in the Z axis direction and having a larger width in the X axis direction than the diameter of the ring gear pin 181, and a second engagement opening 183f formed to be continuous with the first engagement opening 183e on the Z axis direction positive side thereof and having a larger width in the X axis direction than the first engagement opening 183e.
The crimp spring 186 is a torsion coil spring or the like made up of a coil 186a and two arm portions 186b and 186c which extend from the coil 186a. Each of the arm portions 186b and 186c is formed to be able to support the load in the direction toward each other when the crimp spring 186 elastically deformed to involve the coil 186a.
The spring pin 187 is a member inserted into the coil 186a of the crimp spring 186 and having one end thereof fitted and fixed to an opening formed on the rod 183, and fixes the crimp spring 186 to the rod 183. The spring pin 187 is disposed on the Z axis direction negative side of the first engagement opening 183e.
The crimp spring restricting pin 185 is a member for maintaining the crimp spring 186 in a predetermined elastically deformed state, is disposed between the arm portions 186b and 186c, and receives the crimping forces in directions toward the other arm portion 186c, 186b respectively from each of the arm portions 186b and 186c. The crimp spring restricting pin 185 is disposed on the Z axis direction negative side of the first engagement opening 183e. In addition, the X axis direction width of the contact surface with the crimp spring 186 on the crimp spring restricting pin 185 is wider than the X axis direction width of the first engagement opening 183e.
The assembling state of the third group movement mechanism 57 will be described with reference to
As shown in
The ring gear pin 181 fixed to the ring gear 180 (refer to
Each of the guide pins 173a and 173b formed on the base 55 (refer to
The through-hole 183c of the rod 183 is located to be opposed to the Y axis direction positive side of the restricting portion 174 formed on the base 55. The protrusion portion 65 of the third group frame unit 44 which will be described later is inserted from the Y axis direction positive side into the through-hole 183c. The end of the protrusion portion 65 protrudes out to the Y axis direction negative side of the rod 183, and furthermore, is inserted into the restricting portion 174.
As a result, the rod 183 is movable all the way to the position at which the protrusion portion 65 contacts with the end portion 174a on the X axis direction positive side, and is movable all the way to the position at which the protrusion portion 65 contacts with the end portion 174b on the X axis direction negative side (refer to
4.3.5: Operation of the Base Unit
The operation of the base unit 43, in particular, the operation of the third group movement mechanism 57 will be described with reference to
Out of the operations of the third group movement mechanism 57, the operation of the elastic coupling mechanism elastically coupling the ring gear 180 (refer to
The X axis direction width W1 of the first engagement opening 183e of the engagement opening 183d is larger than the diameter d of the ring gear pin 181. Furthermore, the X axis direction width W2 of the contacting surfaces with the crimp spring 186 of the crimp spring restricting pin 185 is larger than the X axis direction width W1 of the first engagement opening 183e. Therefore, in the state where the ring gear pin 181 is inserted into the first engagement opening 183e, the arm portions 186b and 186c of the crimp spring 186 contact with the contacting surfaces on both ends in the X axis direction of the crimp spring restricting pin 185. Consequently, when the ring gear pin 181 is located in the first engagement opening 183e, the crimping force of the crimp spring 186 does not act on the ring gear pin 181.
On the other hand, when the ring gear pin 181 moves along the edge portion of the engagement opening 183d to the second engagement opening 183f having a width wider than the first engagement opening 183e in the X axis direction, the ring gear pin 181 contacts the edge portion of the second engagement opening 183f, and contacts the arm portion 186b or the arm portion 186c of the crimp spring 186. Consequently, when the ring gear pin 181 is located in the second engagement opening 183f, the crimping force of the crimp spring 186 acts on the ring gear pin 181.
More specifically, when the ring gear pin 181 is located on the X axis direction positive side of the second engagement opening 183f, the arm portion 186b on the X axis direction positive side is elastically deformed to the X axis direction positive side by the ring gear pin 181, and the arm portion 186b separates from the contacting surface of the crimp spring restricting pin 185 on the X axis direction positive side. For this reason, the crimping force of the crimp spring 186 acts on the contacting surface of the crimp spring restricting pin 185 on the X axis direction negative side from the arm portion 186c on the X axis direction negative side. As a result, the rod 183 receives a pressing force in the direction toward the X axis direction positive side, via the crimp spring restricting pin 185.
On the other hand, when the ring gear pin 181 is located on the X axis direction negative side of the second engagement opening 183f, the arm portion 186c on the X axis direction negative side is elastically deformed to the X axis direction negative side by the ring gear pin 181, and the arm portion 186c separates from the contacting surface of the crimp spring restricting pin 185 on the X axis direction negative side. For this reason, the crimping force of the crimp spring 186 acts on the contacting surface of the crimp spring restricting pin 185 on the X axis direction positive side from the arm portion 186b on the X axis direction positive side. As a result, the rod 183 receives a pressing force in the direction toward the X axis direction negative side, via the crimp spring restricting pin 185.
The operation of the ring gear 180 and the rod 183 coupled by the above described elastic coupling mechanism will be described with reference to
In
Furthermore, in this embodiment, the state where the optical system 35 is located at the wide angle end is the same as the arrangement state (retracting state) of the optical system 35 when not using the imaging device 2. For this reason, when not using the imaging device 2, it is possible to reliably fix the rod 183.
In
In this case, the ring gear pin 181 fixed to the ring gear 180 engages with the first engagement opening 183e of the rod 183 and moves to the X axis direction negative side. As described with reference to
In
4.4: Third Group Frame Unit
The detailed configuration of the third group frame unit 44 will be described with reference to
Since details of the third lens group G3 has been described with reference to
The shutter unit 60 is mainly made up of a main body 201 provided on the second optical axis A2 and having the exposure-adjustment member St such as a throttle or shutter for controlling the exposure amount and the exposure time of the CCD 37 (refer to
The image blur correction mechanism 61 is mainly made up of a pitching movement frame 205 retaining the third lens group G3 and is movable in the Z axis direction (pitching direction) and the Y axis direction (yawing direction) with respect to the third group frame 62, an electric substrate 206 attached on the X axis direction positive side of the pitching movement frame 205, a cap 207 attached to the pitching movement frame 205 from the X axis direction positive side of the electric substrate 206, and a yawing movement frame 208 movable in the Y axis direction with respect to the third group frame 62 and retaining the pitching movement frame 205 to be movable in the Z axis direction.
The pitching movement frame 205 has a cylindrical portion 205c formed on the middle and retaining the third lens group G3, and includes a bearing portion 205a on the Y axis direction positive side, and a rotation stopper 205b on the Y axis direction negative side. The pitching shaft 205c parallel to the Z axis direction is inserted into the bearing portion 205a. The both ends of the pitching shaft 205c are supported by a fixing portion 208a of the yawing movement frame 208 which will be described later. The rotation stopper 205b engages with an engagement portion 208b of the yawing movement frame 208 which will be described later, to be movable in the Z axis direction. By doing so, the pitching movement frame 205 is slidable with respect to the yawing movement frame 208 in the direction along the pitching shaft 205c.
On the electric substrate 206, a coil 206a for driving the third lens group G3 in the Z axis direction, a coil 206b for driving it in the Y axis direction, a hall element 206c for detecting the Z axis direction position of the third lens group G3, and a hall element 206d detecting the Y axis direction position are provided. Furthermore, coils 206a and 206b are, for example, configured integrally with the electric substrate 206 as a laminated coil. The FPC 206e transfers the signals between the coils 206a, 206b and hall elements 206c, 206d attached on the electric substrate 206 and the main substrate 23 (refer to
The cap 207 is attached on the X axis direction positive side of the third lens group G3, and reduces flare or ghost or the like. The cap 207 is attached to cover the cylindrical portion 205c of the pitching movement frame 205 across the electric substrate 206.
The yawing movement frame 208 is a member having the cylindrical portion 205c retaining the third lens group G3 and an opening at the middle into which the cap 207 is inserted. On the Y axis direction positive side, the fixing portion 208a supporting the both ends of the pitching shaft 205c is formed. On the Y axis direction negative side, the engagement portion 208b engaging with the rotation stopper 205b of the pitching movement frame 205 is formed. As a result, the yawing movement frame 208 supports the pitching movement frame 205 to be slidable in the Z axis direction. In addition, on the surface of the yawing movement frame 208 on the X axis direction positive side, the bearing portion 208c is formed on the Z axis direction positive side, and the rotation stopper 208d is formed on the Z axis direction negative side. The yawing shaft 208e parallel to the Y axis direction is inserted into the bearing portion 208c. The two ends of the yawing shaft 208e are supported by the fixing portion 62a of the third group frame 62 which will be described later. The rotation stopper 208d engages with the engagement portion 62b of the third group frame 62 which will be described later, to be movable in the Y axis direction. As a result, the yawing movement frame 208 is slidable in the direction along the yawing shaft 208e, with respect to the third group frame 62.
The third group frame 62 is disposed on the X axis direction positive side with respect to the yawing movement frame 208. On the surface thereof on the X axis direction negative side, the fixing portion 62a supporting the two ends of the yawing shaft 208e is formed on the Z axis direction positive side, and the engagement portion 62b engaging with the rotation stopper 208d of the yawing movement frame 208 is formed on the Z axis direction negative side. As a result, the third group frame 62 supports the yawing movement frame 208 to be movable in the Y axis direction.
On a fitting portion 62g of the third group frame 62 on the Z axis direction negative side, a yoke 62d is press fitted and fixed thereon. The yoke 62d has a section taken perpendicular to the Y axis in a square U-shape, and on the inner side thereof, a magnet 62c which has undergone dipolar magnetization in the Z axis direction is fixed. The yoke 62d is fixed such that the coil 206a of the electric substrate 206 faces the magnet 62c in the X axis direction. By doing so, an electromagnetic actuator for the pitching direction is configured. In addition, on a fitting portion 62h of the third group frame 62 on the Y axis direction negative side, a yoke 62f is press fitted and fixed. The yoke 62f has a section taken perpendicular to the Z axis in a square U-shape, and on the inner side thereof, a magnet 62e which has undergone tripolar magnetization in the Y axis direction is fixed. The yoke 62f is fixed so that the coil 206b of the electric substrate 206 faces the magnet 62e in the X axis direction. By doing so, an electromagnetic actuator in the yawing direction is configured.
According to the above configuration, when electric current flows in the coil 206a of the electric substrate 206, electromagnetic power is generated along the pitching direction (Z axis direction) by the magnet 62c and the yoke 62d. Similarly, when electric current flows in the coil 206b of the electric substrate 206, electromagnetic power is generated along the yawing direction (Y axis direction) by the magnet 62e and the yoke 62f.
As described above, with the image blur correction mechanism 61, it is possible to correct the image blur by driving the third lens group G3 in two directions (Y axis direction and Z axis direction) perpendicular to the second optical axis A2.
On the Y axis direction negative side of the third group frame 62, the protrusion portion 65 protruding out on the Y axis direction negative side is formed. The protrusion portion 65 engages with the through-hole 183c of the rod 183 (refer to
In addition, on the third group frame 62, a bearing portion 62i and a bearing portion 62j are formed on the corner disposed on the Y axis direction positive side and Z axis direction positive side, and on the corner disposed on the Y axis direction negative side and Z axis direction negative side respectively. The third group guide pole 71 extending along the X axis direction from the master flange unit 46 (refer to
Furthermore, on the third group frame 62, as described above, the image blur correction mechanism 61 is fixed, and the shutter unit 60 is attached from the X axis direction negative side thereof.
According to the above, the third group frame unit 44 integrally receives the drive to the X axis direction from the rod unit 182, and is integrally guided to the X axis direction by the third group guide poles 70 and 71 to move in the direction along the X axis direction, that is, the second optical axis A2.
4.5: Fourth Group Frame Unit
The detailed configuration of the fourth group frame unit 45 will be described with reference to
The fourth group frame unit 45 is mainly made up of the fourth lens group G4, the fourth group frame 66 retaining the fourth lens group G4, and sensor magnet 67 and coil 68 fixed to the fourth group frame 66.
Since the details on the fourth lens group G4 has been described with reference to
The fourth group frame 66 includes an opening 66a retaining the fourth lens group G4. The fourth lens group G4 is fixed to this opening 66a by an adhesion or caulking.
On the fourth group frame 66, a bearing portion 66b and a bearing portion 66c are formed on the corner disposed on the Y axis direction positive side and Z axis direction positive side, and on the corner disposed on the Y axis direction negative side and Z axis direction negative side respectively. The bearing portion 66b is a cylindrical bearing which is long in the X axis direction, and the fourth group guide pole 73 extending along the X axis direction from the master flange unit 46 (refer to
On the fourth group frame 66, the sensor magnet 67 is fixed so that the longitudinal direction thereof is along the cylindrical bearing portion 66b. The sensor magnet 67 has undergone multipolar magnetization in the X axis direction. The sensor magnet 67 is disposed to face the MR sensor 77 (refer to
In addition, on the X axis direction positive side of the fourth group frame 66, the coil 68 is fixed by adhesive. An FPC 68a is connected to the coil 68. The FPC 68a is electrically connected to the coil 68 and the main substrate 23 (refer to
A portion of a main yoke 76a having a square U-shape section perpendicular to the Z axis and fixed to the master flange unit 46 which will be described later passes through the coil 68. A magnet 76b is fixed on the other portion of the main yoke 76a. In addition, the open end of the main yoke 76a on the X axis direction negative side is closed by a side yoke 76c in the state where the coil 68 is passed through. A magnetic member 76 including the above main yoke 76a, magnet 76b, and the side yoke 76c, and the coil 68 make up a voice coil-type linear motor. Therefore, when electric current flows in the coil 68, driving force is generated in the coil 68 in the X axis direction, and the fourth group frame unit 45 fixing the coil 68 and the coil 68 is driven in the X axis direction.
According to the above, the fourth group frame unit 45 receives the drive to the X axis direction from the voice coil-type linear motor, and is guided to the X axis direction by the fourth group guide poles 73 and 72, and thereby moves in the direction along the X axis direction, that is, the second optical axis A2.
In addition, although the case of driving the fourth group frame unit 45 using the linear motor is here shown, the fourth group frame unit 45 may be driven by another motor such as a stepping motor.
4.6: Master Flange Unit
The detailed configuration of the master flange unit 46 will be described with reference to
On the master flange unit 46, the magnetic member 76 including the magnetic circuit together with the coil 68 of the fourth group frame unit 45 is fixed. More specifically, the magnetic member 76 is fixed by press fitting and fixing the press fit protrusion 76d of the main yoke 76a including the magnetic member 76 to a fitting portion (not shown in the figure) of the master flange unit 46. On the inner surface of the main yoke 76a on the Y axis direction negative side, the magnet 76b is fixed by an adhesive or the like. Furthermore, the coil 68 of the fourth group frame unit 45 passes through the main yoke 76a, and in the state where the coil 68 is passed through, the side yoke 76c is fixed on the open end of the main yoke 76a on the X axis direction negative side.
On the surface of the master flange unit 46 on the Y axis direction positive side, a fitting portion 75f for attaching the MR sensor 77 (refer to
On the corner of the master flange unit 46 on the Y axis direction positive side and the Z axis direction positive side, cylindrical guide pole support portions 75b and 75c which are adjacent in the Z axis direction are formed. The guide pole support portion 75b disposed on the Z axis direction positive side supports the end portion of the third group guide pole 71 on the X axis direction positive side. The guide pole support portion 75c disposed on the X axis direction negative side supports the end portion of the fourth group guide pole 73 on the X axis direction positive side. In addition, on the corner disposed on the Y axis direction negative side and on the Z axis direction negative side of the master flange unit 46, cylindrical guide pole support portions 75d and 75e which are adjacent in the Z axis direction are formed. The guide pole support portion 75d disposed on the Z axis direction positive side supports the end portion of the fourth group guide pole 72 on the X axis direction positive side. The guide pole support portion 75e disposed on the Z axis direction negative side supports the end portion of the third group guide pole 70 on the X axis direction positive side. In addition, end portions of the guide poles 70 to 73 on the X axis direction negative side are fixed to the second group frame unit 42.
4.7: Operation of the Lens Barrel
The operation of each portion of the lens barrel 31 will be described with reference to
Below, the operation of each portion when the optical system 35 is zoomed from the wide angle side to the telephoto side will be described.
First, when the motor unit 32 operates, the driving gear 53 is driven. The driving gear 53 meshes with the ring gear 180 of the base unit 43 and the driving frame 51 of the first group frame unit 41, and the rotation driving of the driving gear 53 drives the driving frame 51 and the ring gear 180 to rotate.
When the driving frame 51 is driven to rotate, the first group frame unit 41 configured as described above operates, and the first lens group G1 retained therein moves to the Y axis direction positive side.
When the ring gear 180 is driven to rotate, the drive is converted into the translational movement of the rod unit 182 to the X axis direction negative side. The protrusion portion 65 of the third group frame unit 44 engages with the rod unit 182. Therefore, the third group frame unit 44 is in translational movement to the X axis direction negative side together with the rod unit 182.
As shown in
In addition, as shown in
Furthermore, as shown in
Here, the positional relationship between the second group frame unit 42 and the third group frame unit 44 will be described with reference to
As shown in
In addition, as shown in
Since the second group frame unit 42 and the third group frame unit 44 are configured as described above, it becomes possible to enlarge the movable range of the third lens group G3 in the X axis direction. In other words, while forming the lens barrel 31 to be compact in the X axis direction, it is possible to make the maximum distance in the X axis direction between third lens group G3 and the CCD 37 larger.
By the cooperation between the first group frame unit 41 and the third group frame unit 44 described above, the optical system 35 changes the imaging magnification to the CCD 37 (refer to
Furthermore, as shown in
5.1
The imaging device 2 includes multistage retractable first group frame unit 41 extendable and retractable in multistage in the first optical axis A1 direction. Furthermore, the bending optical system is adopted as the optical system 35. Therefore, while configuring the imaging device 2 to be compact, the optical path length from the first lens group G1 to the CCD 37 can be longer, and it becomes possible to configure a high magnification zoom lens system.
5.2
With the imaging device 2, the relative positions of the first lens group G1 and the third lens group G3 on the optical path with respect to the CCD 37 change. Therefore, it becomes possible to configure an even more optically high performance zoom lens system.
5.3
The driving frame 51 moves in the direction along the first optical axis A1 with respect to the second group frame unit including the prism L5 by being driven to rotate around the first optical axis A1 via the zoom motor 36. Furthermore, the first group frame 50 moves in the direction along the first optical axis A1 with respect to the driving frame 51, via the drive of the driving frame 51. With the imaging device 2, the driving force from the zoom motor 36 is transmitted to the first group frame 50 via the driving frame 51. Therefore, it is not necessary to have a special motor for driving the first group frame 50, and it becomes possible to configure the imaging device 2 more simply.
5.4
The stationary frame 52 of the first group frame unit 41 is directly fixed to the second group frame unit 42 which fixes the prism L5. The stationary frame 52 supports the first group frame 50 and the driving frame 51 to be movable in the first optical axis A1 direction. Therefore, it becomes possible to position the first lens group G1 with respect to the prism L5, in particular, to position in the direction perpendicular to the first optical axis A1, with high precision.
5.5
With the imaging device 2, the driving frame 51 is disposed on the inner peripheral side of the stationary frame 52, and the first group frame 50 is disposed on the inner peripheral side of the driving frame 51. The driving frame 51 is movable in the first optical axis A1 direction, while engaging cam pins 111a to 111c with cam grooves 128a to 128c of the stationary frame 52. The first group frame 50 is movable in the first optical axis A1 direction, while engaging cam pins 104a to 104c with cam grooves 128a to 128c of the driving frame 51, and furthermore, engaging end portions 107a and 107b with straight-movement grooves 129a and 129b. In particular, in order to engage the end portions 107a and 107b straight through the straight-movement grooves 129a and 129b, the first group frame 50 is prevented from rotating around the first optical axis A1. Therefore, with the imaging device 2, it is not necessary to provide a straight-movement frame to make the first group frame 50 move straight, and it becomes possible to configure the imaging device 2 more simply.
5.6
In the stationary frame 52, the extension portions 126a and 126b are provided only on the X axis direction negative side of the cylindrical portion 125. Therefore, as described with reference to
5.7
The imaging device 2 includes the third group movement mechanism 57 moving the third group frame unit 44 which retains the third lens group G3 in the direction along the second optical axis A2. The first group frame unit 41 and the third group movement mechanism 57 are functionally coupled via the driving gear 53 driven by the zoom motor 36. Therefore, it is not necessary to have mechanisms to drive each of the first group frame unit 41 and the third group movement mechanism 57, and it becomes possible to configure the imaging device 2 even more simply. In addition, this also makes the imaging device 2 more silent. Furthermore, since each of the ring gear 112 of the driving frame 51 of the first group frame unit 41 and the ring gear 180 of the third group movement mechanism 57 is driven to mesh with the driving gear 53, it becomes possible to easily cooperate the first group frame unit 41 with the third group movement mechanism 57.
5.8
The third group movement mechanism 57 includes the ring gear 180 and the ring gear pin 181 which convert the rotational drive from the zoom motor 36 into the drive in the direction along the second optical axis A2, and the rod unit 182 engaging with the ring gear pin 181 and moving in the direction along the second optical axis A2. Therefore, it becomes possible to drive the first group frame unit 41 moving the first lens group G1 in the direction along the first optical axis A1, and the third group movement mechanism 57 moving the third lens group G3 in the direction along the second optical axis A2 with the same driving component.
5.9
In the imaging device 2, the crimp spring 186, the spring pin 187, and the crimp spring restricting pin 185 include the elastic coupling mechanism elastically coupling the ring gear 180 and the rod 183. The elastic coupling mechanism presses the rod 183 towards the X axis direction positive side, when the rod 183 is located at the end portion on the X axis direction positive side. In addition, it presses the rod 183 towards the X axis direction negative side, when the rod 183 is located on the end portion to the X axis direction negative side. By doing so, it is possible to prevent the third group frame unit 44 which moves integrally with the rod 183 and the rod 183 from shaking. In particularly, it is possible to prevent the third group frame unit 44 from shaking, when the optical system is located at the wide angle end or the telephoto end, or in a state where the imaging device is not used (retracting state).
5.10
One end of the third group guide poles 70 and 71 guiding the movement of the third group frame unit 44 in the X axis direction is fixed to the second group frame unit 42 including the second lens group G2. Therefore, it becomes possible to position the third group frame unit 44 with respect to the second group frame unit 42, in particular to position in the direction perpendicular to the second optical axis A2, with high precision.
5.11
As shown in
5.12
On the shutter unit 60, the aperture actuator 202 and the shutter actuator 203 are formed to protrude out to the side of the second group frame unit 42. The second group frame 150 of the second group frame unit 42 fits in the middle portion in the Z axis direction between the aperture actuator 202 and the shutter actuator 203, when the shutter unit 60 moves near the second group frame unit 42. Therefore, it becomes possible to make the sizes of the imaging device 2 in the direction along the second optical axis smaller.
5.13
In the second group frame unit 42, the sixth lens L6 and the seventh lens L7 are supported on the X axis direction negative side, by fixing the opening member 159 to the second group frame 150. The opening member 159 blocks off unwanted lights going toward unwanted directions, out of the light outputted from the seventh lens L7, and supports the sixth lens L6 and the seventh lens L7 on the X axis direction negative side. Therefore, members having the imaging device 2 can be reduced, and it becomes possible to reduce the cost.
5.14
The digital camera 1 provides the same effects as the above described imaging device 2, since the digital camera 1 includes the imaging device 2.
5.15
With the digital camera 1, the direction along the second optical axis A2 is substantially the same as the horizontal direction, when an image is captured so that the vertical top and bottom of the object coincides the top and bottom in the short side direction of the object image to be captured. Therefore, with the digital camera 1, it becomes possible to capture an image with coinciding the longitudinal direction of the digital camera 1 with the horizontal direction, under the normal imaging state where capturing an image so that the top and bottom vertical direction of the object coincide with the top and bottom in the short side direction of the object image to be captured. In addition, compared to a digital camera in which image is captured with coinciding the short side direction of the digital camera with the horizontal direction under the normal imaging state, it is possible to make the sizes in the vertical direction under normal imaging state smaller.
5.16
In the digital camera 1, the direction along the second optical axis A2 is substantially parallel to the long side direction of the image display portion 18. The long side direction of the image display portion 18 is substantially parallel to the longitudinal direction of the outer case 11. Therefore, under the normal imaging state in which image is captured with substantially coinciding the long side direction of the image display portion 18 with the horizontal direction, it becomes possible to capture an image with substantially coinciding the longitudinal direction of the outer case 11 with the horizontal direction. In addition, compared to a digital camera in which the direction along the second optical axis A2 is substantially parallel to the short side direction of the image display portion 18, it becomes possible to make the sizes in the short side direction of the image display portion 18 smaller.
5.17
In the digital camera 1, a grip portion 12 is formed on the X axis direction positive side. Therefore, it becomes possible to secure the X axis direction distance between the grip portion 12 and the first group frame unit 41 disposed on the X axis direction negative side of the digital camera 1. Therefore, it is possible to prevent a finger from getting in the way in the first lens group G1 when capturing an image.
5.18
In the digital camera 1, the first group frame unit 41 protrudes out on the object side (Y axis direction positive side) from the outer case 11, when capturing an image. It becomes possible to prevent a finger from getting in the way in the first lens group G1 when capturing an image.
5.19
The image blur correction mechanism 61 is included in the digital camera 1. Therefore, it becomes possible to capture the image with a higher quality.
5.20
The Z axis direction width (Wz) of the imaging device 2 is formed larger than the Y axis direction width (Wy). Therefore, it is possible to form the thickness of the digital camera 1 in the direction along the first optical axis A1 thin.
Although the embodiment of the present invention is described above, the present invention is not limited to the above described embodiment, and various modifications are possible without exceeding the gist of the invention.
6.1
The digital camera 1 and the outside and the configuration of the main body 3 described with reference to
For example, members having the digital camera 1 and the arrangements thereof are not limited to those described above.
Furthermore, for example, the outside and the configuration of the digital camera may be those shown in
The image display portion 228 is attached to be rotatable around an axis extending in the X axis direction, via the coupling mechanism 212, and can be folded to the Y axis direction positive side and the Y axis direction negative side of the outer case 214. In addition, in the state where folded to the Y axis direction negative side of the outer case 214, on the surface of the image display portion 228 facing the Y axis direction negative side, a liquid crystal portion 228a is disposed for displaying an image. In other words, in the state where folded to the Y axis direction positive side, the liquid crystal portion 228a is disposed on the surface of the image display portion 228 facing the Y axis direction positive side. Therefore, when not using the digital camera 211, it is possible to fold the image display portion 228 to the Y axis direction negative side of the outer case 214, and it is possible to protect the liquid crystal portion 228a when not using the digital camera 211. In addition, when using the digital camera 211, it is possible to fold the image display portion 228 to the Y axis direction positive side of the outer case 214, and in this state, it is possible to view the image to be captured via the liquid crystal portion 228a facing the Y axis direction positive side.
The Z axis direction size Wz1 of the image display portion 228 is substantially the same as the Z axis direction size Wz2 of the outer case 214, and the X axis direction size Wx1 is substantially the same as the X axis direction size Wx2, which is from the end portion of the imaging device 2 on the X axis direction positive side protruding out to the Y axis direction positive side from the outer case 214 to the end portion of the outer case 214 on the X axis direction positive side. Therefore, if the image display portion 228 is folded to the Y axis direction positive side of the outer case 214, the image display portion 228 does not protrude out in the X axis direction and the Z axis direction of the outer case 214.
As shown in
6.2
The configuration of the optical system 35 is not limited to the configuration described. For example, each of the lens groups G1 to G5 may be formed by combining other lenses.
6.3
The configuration of the first group frame unit 41 is not limited to the configuration described. For example, cam pins and cam grooves formed on each of the first group frame 50, driving frame 51, and stationary frame 52 may be formed with other configurations, as long as the same function is achieved.
6.4
The configuration of the second group frame unit 42 is not limited to the configuration described. For example, the second group frame 150 may have another configuration, as long as the second lens group G2 can be retained.
With the present invention, it is possible to provide a camera simultaneously realizing a high magnification zoom lens system and the miniaturization of the device. Therefore, the camera of the present invention is useful in fields which require the simultaneous realization of both a high magnification zoom lens system and the miniaturization of the device.
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2006/321655 | 10/30/2006 | WO | 00 | 4/30/2008 |