GB2309521A - Lens shutter type of camera - Google Patents

Lens shutter type of camera Download PDF

Info

Publication number
GB2309521A
GB2309521A GB9701508A GB9701508A GB2309521A GB 2309521 A GB2309521 A GB 2309521A GB 9701508 A GB9701508 A GB 9701508A GB 9701508 A GB9701508 A GB 9701508A GB 2309521 A GB2309521 A GB 2309521A
Authority
GB
United Kingdom
Prior art keywords
lens
shutter
lens group
barrel
optical axis
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB9701508A
Other versions
GB9701508D0 (en
GB2309521B (en
Inventor
Hiroshi Nomura
Kazuyoshi Azegami
Takamitsu Sasaki
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Pentax Corp
Original Assignee
Asahi Kogaku Kogyo Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from JP03236496A external-priority patent/JP3569375B2/en
Priority claimed from GB9614331A external-priority patent/GB2303222B/en
Application filed by Asahi Kogaku Kogyo Co Ltd filed Critical Asahi Kogaku Kogyo Co Ltd
Publication of GB9701508D0 publication Critical patent/GB9701508D0/en
Publication of GB2309521A publication Critical patent/GB2309521A/en
Application granted granted Critical
Publication of GB2309521B publication Critical patent/GB2309521B/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B7/00Mountings, adjusting means, or light-tight connections, for optical elements
    • G02B7/02Mountings, adjusting means, or light-tight connections, for optical elements for lenses
    • G02B7/04Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification
    • G02B7/10Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification by relative axial movement of several lenses, e.g. of varifocal objective lens
    • G02B7/102Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification by relative axial movement of several lenses, e.g. of varifocal objective lens controlled by a microcomputer
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B7/00Mountings, adjusting means, or light-tight connections, for optical elements
    • G02B7/02Mountings, adjusting means, or light-tight connections, for optical elements for lenses
    • G02B7/04Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification
    • G02B7/08Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification adapted to co-operate with a remote control mechanism
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B17/00Details of cameras or camera bodies; Accessories therefor
    • G03B17/02Bodies
    • G03B17/04Bodies collapsible, foldable or extensible, e.g. book type
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B7/00Control of exposure by setting shutters, diaphragms or filters, separately or conjointly
    • G03B7/08Control effected solely on the basis of the response, to the intensity of the light received by the camera, of a built-in light-sensitive device
    • G03B7/091Digital circuits
    • G03B7/097Digital circuits for control of both exposure time and aperture
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B7/00Control of exposure by setting shutters, diaphragms or filters, separately or conjointly
    • G03B7/08Control effected solely on the basis of the response, to the intensity of the light received by the camera, of a built-in light-sensitive device
    • G03B7/10Control effected solely on the basis of the response, to the intensity of the light received by the camera, of a built-in light-sensitive device a servo-motor providing energy to move the setting member
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B7/00Control of exposure by setting shutters, diaphragms or filters, separately or conjointly
    • G03B7/16Control of exposure by setting shutters, diaphragms or filters, separately or conjointly in accordance with both the intensity of the flash source and the distance of the flash source from the object, e.g. in accordance with the "guide number" of the flash bulb and the focusing of the camera
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B9/00Exposure-making shutters; Diaphragms
    • G03B9/08Shutters
    • G03B9/10Blade or disc rotating or pivoting about axis normal to its plane
    • G03B9/24Adjusting size of aperture formed by members when fully open so as to constitute a virtual diaphragm that is adjustable
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05KPRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
    • H05K3/00Apparatus or processes for manufacturing printed circuits
    • H05K3/22Secondary treatment of printed circuits
    • H05K3/28Applying non-metallic protective coatings
    • H05K3/281Applying non-metallic protective coatings by means of a preformed insulating foil

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Lens Barrels (AREA)

Abstract

A shutter arrangement for a camera includes a lens shutter 40; a lens group movable along an optical axis thereof relative to the lens shutter; a first motor for opening or closing the lens shutter; a second motor for moving the lens group along the optical axis; a first encoder 121 for detecting a size of a diaphragm formed by the lens shutter, the first encoder comprising a first photosensor 56 and a first rotating disk 58 associated with the first photosensor; and a second encoder 122 for detecting an axial position of the lens group relative to the lens shutter, the second encoder comprising a second photosensor 57 and a second rotating disk 59 associated with the second photosensor. The first and second encoders 121, 122 are positioned to overlap as viewed in a direction of the optical axis.

Description

LENS SHUTTER TYPE OF CAMERA The present invention relates to a lens shutter type of camera in which a lens shutter is driven by a motor and a lens group is driven by another motor to move relative to the lens shutter along an optical axis thereof.
2. Description of the Related Art In a conventional lens shutter type of camera having autoexposure (AE) and autofocusing (AF) mechanisms, an encoder is generally provided for each of the AE and AF mechanisms for detecting a movement thereof. Each encoder consists of a photointerrupter and a rotating disk associated with the photointerrupter. One of the two encoders is positioned apart from the other encoder.
An object of the present invention is to provide a lens shutter type of camera which is provided with AE and AF mechanisms which are space-efficiently arranged in the camera.
According to an aspect of the present invention, there is provided a shutter arrangement for a camera. The shutter arrangement includes: a lens shutter; a lens group movable along an optical axis thereof relative to the lens shutter; a first motor for opening or closing the lens shutter; a second motor for moving the lens group along the optical axis; a first encoder for detecting a size of a diaphragm formed by the lens shutter, the first encoder including a first photosensor and a first rotating disk associated with the first photosensor; and a second encoder for detecting an axial position of the lens group, the second encoder including a second photosensor and a second rotating disk associated with the second photosensor, wherein the first and second encoders are positioned to overlap as viewed in a direction of the optical axis.
Preferably, each of the first and second photosensors is a photointerrupter and each of the first and second rotating disks is provided with a plurality of slits.
Preferably, the first and second photointerrupters are positioned adjacent to each other in a manner such that the first and second rotating disks are located on opposite sides relative to the first and second photointerrupters.
Preferably, the first and second photointerrupters are positioned between rotational shafts of the first and second rotating disks.
Preferably, the rotational shafts extend in the direction of the optical axis.
Preferably, the shutter arrangement further includes a partition formed in a substantially S shape which forms two divided spaces in the moving barrel, wherein the first and second photointerrupters are respectively accommodated in the two divided spaces.
Preferably, the first and second rotating disks are positioned at different positions in the direction of the optical axis.
Preferably, a zoom lens including a moving barrel advanced from or retracted into a stationary block of the zoom lens includes the shutter arrangement. The lens group, the first and second motors and the first and second encoders are all positioned in the moving barrel with the lens group being movable along the optical axis relative to the moving barrel.
Preferably, the zoom lens includes a plurality of moving barrels concentrically arranged, the moving barrel being an innermost barrel of the plurality of moving barrels.
Preferably, the zoom lens further includes another lens group fixed to the moving barrel and aligned with the lens group along the optical axis so that the lens group is movable along the optical axis relative to the another lens group.
According to another aspect of the present invention, there is provided a photographic zoom lens having: a moving barrel advanced from or retracted into a stationary block of the photographic zoom lens; front and rear lens groups positioned in the moving barrel; and a unit fixed to the moving barrel therein that is assembled separately from the moving barrel. Te unit includes: a lens shutter; a rear lens group supporting member which supports the rear lens group to be guided along an optical axis thereof relative to the front lens group; a first motor for opening or closing the lens shutter; a second motor for moving the rear lens group supporting member along the optical axis; a first encoder for detecting a size of a diaphragm formed by the lens shutter, the first encoder including a first photosensor and a first rotating disk associated with the first photosensor; and a second encoder for detecting an axial position of the rear lens group, the second encoder including a second photosensor and a second rotating disk associated with the second photosensor, wherein the first and second encoders are positioned adjacent to each other with the first photosensor overlapping the second photosensor as viewed in a direction of the optical axis.
An example of the present invention will now be described below in detail with reference to the accompanying drawings in which similar elements are indicated by similar reference numerals, and wherein: Figure 1 is an exploded perspective view of main parts of an AF/AE shutter unit provided in a zoom lens barrel of the present embodiment; Figure 2 is a perspective view of a part of the AF/AE shutter unit, showing an arrangement of gears supported on the AF/AE shutter unit; Figure 3 is a sectional view of a part of the AF/AE shutter unit, showing an arrangement of an AE motor encoder and a rear lens group driving motor encoder; Figure 4 is a front elevational view of a part of the AF/AE shutter unit, showing an arrangement of the AE motor encoder and the rear lens group driving motor encoder; Figure 5 is a front elevational view of a part of the AF/AE shutter unit, showing an arrangement of a rear lens group driving motor and the rear lens group driving motor encoder; Figure 6 is a front elevational view of the part of the AF/AE shutter unit shown in Figure 5 in a different state; Figure 7 is a front elevational view of a part of the AF/AE shutter unit, showing an arrangement of an AE motor and the AE motor encoder; Figure 8 is a perspective view of a part of the AF/AE shutter unit, showing a lens shutter and peripheral members thereof; Figure 9 is a front elevational view of the lens shutter being fully closed; Figure 10 is a front elevational view of the lens shutter being fully opened; Figure 11 is an enlarged schematic perspective view showing a part of the zoom lens barrel; Figure 12 is a schematic perspective view showing the part of the zoom lens barrel shown in Figure 11 in an engaged state; Figure 13 is an enlarged exploded perspective view of a part of the zoom lens barrel; Figure 14 is a schematic perspective view illustrating a state where an AF/AE shutter unit of the zoom lens barrel is mounted to a first moving barrel; Figure 15 is an enlarged schematic perspective view of a third moving barrel of the zoom lens barrel; Figure 16 is a front elevational view of a fixed lens barrel block of the zoom lens barrel; Figure 17 is a sectional view of an upper part of the zoom lens barrel in a maximum extended state; Figure 18 is a sectional view of an upper part of the zoom lens barrel, illustrating main elements in a housed state; Figure 19 is a sectional view of the upper part of the zoom lens barrel shown in Figure 18 in the maximum extended state; Figure 20 is a sectional view of an upper part of the zoom lens barrel in the housed state; Figure 21 is an exploded perspective view of the overall structure of the zoom lens barrel; Figure 22 is a block diagram of a controlling system for controlling an operation of the zoom lens barrel; Figure 23 is an enlarged perspective view of a linear guide barrel shown in Figure 21; Figure 24 is a front elevational view of a part of the AF/AE shutter unit, showing a lens shutter being fully closed; Figure 25 is a developed view of a part of the AF/AE shutter unit, showing the AE motor and the rear lens group driving motor, gear trains driven by those motors, a shutter mounting stage by which the motors and the gear trains are supported, and some other peripheral members thereof; Figure 26 is a developed view of the part of the AF/AE shutter unit shown in Figure 25, showing only the motors and the gear trains therein; Figure 27 is a sectional view of a part of the AF/AE shutter unit; Figure 28 is a sectional view of an upper part of a lens supporting barrel which supports a front lens group therein, and a lens fixing ring which is to be screw-engaged with the lens supporting barrel; Figure 29 is an enlarged perspective view of the lens supporting barrel shown in Figure 28; and Figure 30 is an enlarged sectional view of a part of the lens fixing ring shown in Figure 28.
Figure 22 is a schematic representation of various elements which comprise a preferred embodiment of a zoom lens camera to which the present invention is applied. A concept of the present zoom lens camera will now be described with reference to Figure 22.
The zoom lens camera is provided with a zoom lens barrel (zoom lens) 10 of a three-stage delivery type (telescoping type) having three moving barrels, namely a first moving barrel 20, a second moving barrel 19 and a third moving barrel 16, which are concentrically arranged in this order from an optical axis 0. In the zoom lens barrel 10 two lens groups are provided as a photographic optical system, namely a front lens group L1 having positive power and a rear lens group L2 having negative power.
In the camera body, a whole optical unit driving motor controller 60, a rear lens group driving motor controller 61, a zoom operating device 62, a focus operating device 63, an object distance measuring apparatus 64, a photometering apparatus 65, and an AE (i.e., automatic exposure) motor controller 66, are provided. Although the specific focusing system of the object distance measuring apparatus 64, which is used to provide information regarding the object-tocamera distance, does not form part of the present invention, one such suitable system is disclosed in commonly assigned U.K. Patent Application No. 2298331, filed on February 22, 1996, and published on 28 August 1996.
Although the focusing systems disclosed in U.K. Patent Application No.2298331 are of the so-called "passives type, other known autofocus systems (e.g., active range finding systems such as those based on infrared light and triangulation) may be used. Similarly, a photometering system as disclosed in the above-noted U.K. Patent Application No. 2298331 could be implemented as photometering apparatus 65.
The zoom operating device 62 can be provided in the form of, for example, a manually-operable zoom operating lever (not shown) provided on the camera body or a pair of zoom buttons, e.g., a "wide" zoom button and a "tele" zoom button, (not shown) provided on the camera body. When the zoom operating device 62 is operated, the whole optical unit driving motor controller 60 drives a whole optical unit driving motor 25 to move the front lens group L1 and the rear lens group L2, rearwardly or forwardly without regard to a focal length and a focal point thereof. In the following explanation, forward and rearward movements of the lens groups L1 and L2 by the whole optical unit driving motor controller 60 (the motor 25) are referred to as the movement toward "tele" and the movement toward "wide" respectively, since forward and rearward movements of the lens groups L1 and L2 occur when the zoom operating device 62 is operated to "tele" and "wide" positions.
The image magnification of the visual field of a zoom finder 67 provided in the camera body varies in sequence with the variation of the focal length through the operation of the zoom operating device 62. Therefore, the photographer can perceive the variation of the focal length by observing the variation of image magnification of the visual field of the finder. In addition, the focal length, set by the operation of the zoom operating device 62, may be perceived by a value indicated on an LCD (liquid crystal display) panel (not shown) or the like.
When the focus operating device 63 is operated, the whole optical unit driving motor controller 60 drives the whole optical unit driving motor 25. At the same time the rear lens group driving motor controller 61 drives a rear lens group driving motor (DC motor) 30. Due to the driving of the whole optical unit driving motor controller 60 and the rear lens group driving motor controller 61, the front and rear lens groups L1 and L2 are moved to respective positions corresponding to a set focal length and a detected object distance and thereby the zoom lens is focused on the subject.
Specifically, the focus operating device 63 is provided with a release button (not shown) provided on an upper wall of the camera body. A photometering switch and a release switch (both not shown) are synchronized with the release button. When the release button is half-depressed (half step), the focus operating device 63 causes the photometering switch to be turned ON, and the object distance measuring and photometering commands are respectively input to the object distance measuring apparatus 64 and the photometering apparatus 65.
When the release button is fully depressed (full step), the focus operating device 63 causes the release switch to be turned ON, and according to the result of object distance measuring demand and a set focal length, the whole optical unit driving motor 25 and the rear lens group driving motor 30 are driven, and the focusing operation, in which the front lens group L1 and the rear lens group L2 move to the focusing position, is executed. Further, an AE motor (DC motor) 29 of an AF/AE (i.e., autofocus/autoexposure) shutter unit (electrical unit) 21 (Figure 18) is driven via the AE motor controller 66 to actuate a shutter (lens shutter) 27.
During the shutter action, the AE motor controller 66 drives the AE motor 29 to open shutter blades 27a of the shutter 27 for a specified period of time according to the photometering information output from the photometering apparatus 65.
When the zoom operating device 62 is operated, the zoom operating device 62 drives the whole optical unit driving motor 25 to move the front and rear lens groups L1 and L2 together as a whole in the direction of the optical axis 0 (optical axis direction). Simultaneous with such a movement, the rear lens group driving motor 30 may also be driven via the rear lens group driving motor controller 61 to move the rear lens group L2 relative to the front lens group L1. However, this is not performed under the conventional concept of zooming in which the focal length is varied sequentially without moving the position of the focal point. When the zoom operating device 62 is operated, the following two modes are available, namely: 1. a mode to move the front lens group L1 and the rear lens group L2 in the optical axis direction without varying the distance therebetween by driving only the whole optical unit driving motor 25; and, 2. a mode to move the front lens group L1 and the rear lens group L2 in the optical axis direction while varying the distance therebetween by driving both the whole optical unit driving motor 25 and the rear lens group driving motor 30.
In mode 1, during a zooming operation an in-focus condition cannot be obtained at all times with respect to a subject located at a specific distance. However, this is not a problem in a lens-shutter type camera, since the image of the subject is not observed through the photographing optical system, but through the finder optical system that is provided separate from the photographing optical system, and it is sufficient to only be focused when the shutter is released. In mode 2, during a zooming operation, the front lens group L1 and the rear lens group L2 are moved without regard to whether the focal point moves, and when the shutter is released, the focusing operation (focus adjusting operation) is carried out by moving both the whole optical unit driving motor 25 and the rear lens group driving motor 30.
When the focus operating device 63 is operated in at least one part of the focal length range set by the zoom operating device 62, the whole optical unit driving motor 25 and the rear lens group driving motor 30 are driven to bring the subject into focus. The amount of movement of each lens group L1 or L2 by the whole optical unit driving motor 25 and the rear lens group driving motor 30 is determined not only using subject distance information provided from the object distance measuring apparatus 64, but also by using focal length information set by the zoom operating device 62. In such a manner, when the focus operating device 63 is operated, by moving both the whole optical unit driving motor 25 and the rear lens group driving motor 30, the position of the lens groups L1, L2 can be flexibly controlled, as compared with lens movements controlled by cam.
The zoom lens camera of this embodiment can also be controlled in a different manner such that, during an operation of the zoom operating device 62, only the magnification of the zoom finder 67 and the focal length information are varied without driving either the whole optical unit driving motor 25 or the rear lens group driving motor 30. When the focus operating device 63 is operated, both the whole optical unit driving motor 25 and the rear lens group driving motor 30 are moved simultaneously according to the focal length information and the subject distance information obtained by the object distance measuring apparatus 64 to move the front lens group L1 and the rear lens group L2 to respective positions determined according to the focal length and the subject distance information.
An embodiment of the zoom lens barrel according to the above concept will now be described with reference to mainly Figures 20 and 21.
The overall structure of the zoom lens barrel 10 will firstly be described.
The zoom lens barrel 10 is provided with the first moving barrel 20, the second moving barrel 19, the third moving barrel 16, and a fixed lens barrel block 12. The third moving barrel 16 is engaged with a cylindrical portion 12p of the fixed lens barrel block 12, and moves in the optical axis direction upon being rotated. The third moving barrel 16 is provided on an inner periphery thereof with a linear guide barrel 17, which is restricted in rotation.
The linear guide barrel 17 and the third moving barrel 16 move together as a whole in the optical axis direction, with the third moving barrel 16 rotating relative to the linear guide barrel 17. The first moving barrel 20 moves in the optical axis direction with rotation thereof being restricted. The second moving barrel 19 moves in the optical axis direction, while rotating relative to the linear guide barrel 17 and the first moving barrel 20. The whole optical unit driving motor 25 is secured to the fixed lens barrel block 12. A shutter mounting stage 40 is secured to the first moving barrel 20. The AE motor 29 and the rear lens group driving motor 30 are mounted on the shutter mounting stage 40. The front lens group L1 and the rear lens group L2 are respectively supported by a lens supporting barrel (lens supporting annular member) 34 and a lens supporting barrel 50.
An O-ring 70, made of a rubber or the like, is positioned between an outer peripheral circumferential surface of the lens supporting barrel 34, in the vicinity of the front end thereof, and an inner peripheral circumferential surface of an inner flange portion 20b formed integral with the first moving barrel 20 in the vicinity of the front end thereof, as shown in Figure 20.
The O-ring 70 prevents water from penetrating the zoom lens barrel 10 at the front end thereof between the first moving barrel 20 and the lens supporting barrel 34.
As shown in Figure 28 the front lens group L1 consists of five lenses, namely, a first lens (frontmost lens) Lla, a second lens Llb, a third lens Llc, a fourth lens Lld and a fifth lens Lle in this order from an object side to an image side, i.e., from the left hand side to the right hand side as viewed in Figure 28.
A front positioning ring 36 for determining a distance between the second lens Llb and the third lens Llc is positioned and held between the second lens Llb and the third lens Llc. An outer peripheral surface of the positioning ring 36 is fitted on an inner peripheral surface of the lens supporting barrel 34. Likewise, a rear positioning ring 37 for determining a distance between the third lens Llc and the fourth lens Lld is positioned and held between the third lens Llc and the fourth lens Lld. An outer peripheral surface of the positioning ring 37 is fitted on an inner peripheral surface of the lens supporting barrel 34. The rear surface of the fourth lens Lld and the front surface of the fifth lens Lle are cemented to each other, so that the fourth and fifth lenses Lld, Lle are formed as a cemented or composite lens. A front circumferential edge Llf of the second lens Llb along the circumferential edge thereof contacts the rear surface of the first lens Lla. A rear circumferential edge Llg of the fifth lens Lle along the circumferential edge thereof contacts an inwardly-projecting flange 34b formed integral with the rear end of the lens supporting barrel 34.
A female thread 34a is formed on an inner periphery of a front part of the lens supporting barrel 34, as shown in Figure 28 or 29. A lens fixing ring 72, for fixing the first lens Lla to the lens supporting barrel 34, engages with the lens supporting barrel 34. With this arrangement, a male thread 72a formed on the outer peripheral surface of the lens fixing ring 72 meshes with the female thread 34a.
A circular abutting surface 72b is formed on the lens fixing ring 72 on an inner peripheral surface thereof. The circular abutting surface 72b comes into contact with a circumferential portion fp of the front surface of the first lens Lla in a state when the lens fixing ring 72 is properly screw-engaged with the lens supporting barrel 34. The circular abutting surface 72b is formed to be substantially parallel to the circumferential portion fp so that the circular abutting surface 72b and the circumferential portion fp may be brought tightly into contact with each other when the lens fixing ring 72 is properly screw-engaged with the lens supporting barrel 34.
A supporting ring portion 34c is formed integral with the lens supporting barrel 34. The supporting ring portion 34c is located inwardly from the female thread 34a in a radial direction of the lens supporting barrel 34. The inner peripheral surface of the supporting ring portion 34c, which extends in the optical axis direction, comes into contact with an outer circumferential edge or surface op of the first lens Lla. An annular positioning surface 34d, extending substantially normal to the optical axis 0, is formed on the lens supporting barrel 34 immediately behind the supporting ring portion 34c. The circumferential edge of the rear surface of the first lens Lla comes into contact with the positioning surface 34d. With this structure, the first lens Lla is immovably held between the circular abutting surface 72b and the positioning surface 34d in the optical axis direction, and the first lens Lla is immovably held by the supporting ring portion 34c in a radial direction normal to the optical axis 0.
As shown in Figure 30, a coating 72e is coated on the circular abutting surface 72b. The coating 72e is a waterproof coating made of a synthetic resin. In the present embodiment, "Fantas Coat SF-6 (trademark of a coating produced by the Japanese Company "Origin Denki Kabushiki Kaisha")" is used as the coating 72e. The front surface of the first lens Lla is formed very smooth, whereas the circular abutting surface 72b of the lens fixing ring 72 is not formed as smoothly (i.e., has a rough finish) as the front surface of the first lens Lla. This is because the first lens Lla is more minutely and accurately formed than the lens fixing ring 72 since the first lens Lla is a precision optical element. Due to this fact, were it not for the coating 72e on the circular abutting surface 72b, a substantial gap would be formed between the circular abutting surface 72b and the circumferential portion fp even if the circular abutting surface 72b properly and tightly in contact with the circumferential portion fp by properly screw- engaging the lens fixing ring 72 with the female thread 34a. As a result, water or moisture would be able to penetrate into the lens supporting barrel 34 through the substantial gap. However, in the present embodiment, the coating 72e is applied to the circular abutting surface 72b so as to make the surface thereof a smooth surface which does not cause to form such a substantial gap between the circular abutting surface 72b and the circumferential portion fp when the circular abutting surface 72b properly contacts the circumferential portion fp. Accordingly, the coating 72e, positioned and held between the circular abutting surface 72b and the circumferential portion fp, effectively prevents water or moisture from penetrating the lens supporting barrel 34 between the circular abutting surface 72b and the circumferential portion fp under the condition that the circular abutting surface 72b is properly and tightly in contact with-the circumferential portion fp by properly screw-engaging the lens fixing ring 72 with the female thread 34a.
A circular surface 72c is formed on the lens fixing ring 72. The circular surface 72c is connected to the circular abutting surface 72b and is located immediately outward in a radial direction from the circular abutting surface 72b. A front part of the outer circumferential surface op of the first lens Lla (i.e., a circumferential edge of the first lens Lla) comes into contact with the circular surface 72c when the lens fixing ring 72 properly engages with the female thread 34a. Due to the circular surface 72c contacting the outer circumferential surface op, the watertight structure between the circular abutting surface 72b and the circumferential portion fp, that is realized by the coating 72e, is enhanced. That is, a highly efficient watertight connection between the first lens Lla and the lens fixing ring 72 is realized by providing both the coating 72e and the circular surface 72c with the lens fixing ring 72.
An annular recessed portion 34e is formed on the lens supporting barrel 34 between the female thread 34a and the supporting ring portion 34c. As shown in Figure 20, in a state where the lens fixing ring 72 is properly screwengaged with the female thread 34a, a rear end 72d of the lens fixing ring 72 is positioned in the annular recessed portion 34e with the rear end 72d not contacting the bottom (i.e., rearmost end) of the recessed portion 34e, namely, an annular space is formed in the annular recessed portion 34e between the rear end 72d and the bottom of the recessed portion 34e.
The fixed lens barrel block 12 is fixed in front of an aperture plate 14 fixed to the camera body. The aperture plate 14 is provided on a center thereof with a rectangularshaped aperture 14a which forms the limits of each frame exposed. The fixed lens barrel block 12 is provided, on an inner periphery of the cylindrical portion 12p, with a female helicoid 12a, and also a plurality of linear guide grooves 12b each extending parallel to the optical axis 0, i.e., extending in the optical axis direction. At the bottom of one of the linear guide grooves 12b, namely 12b', a code plate 13a, having a predetermined code pattern, is fixed. The code plate 13a extends in the optical axis direction and extends along substantially the whole of the length of the fixed lens barrel block 12. The code plate 13a is part of a flexible printed circuit board 13 positioned outside the fixed lens barrel block 12.
In the fixed lens barrel block 12, a gear housing 12c, which is recessed outwardly from an inner periphery of the cylindrical portion 12p of the fixed lens barrel block 12 in a radial direction while extending in the optical axis direction, is provided as shown in Figure 16 or 21. In the gear housing 12c, a driving pinion 15, extending in the optical axis direction, is rotatably held. Both ends of an axial shaft 7 of the driving pinion 15 are rotatively supported by a supporting hollow 4, provided in the fixed lens barrel block 12, and a supporting hollow 31a, provided on a gear supporting plate 31 fixed on the fixed lens barrel block 12 by set screws (not shown), respectively. Part of the teeth of the driving pinion 15 project inwardly from the inner periphery of the cylindrical portion 12p of the fixed lens barrel block 12 so that the driving pinion 15 meshes with an outer peripheral gear 16b of the third moving barrel 16, as shown in Figure 16.
On an inner periphery of the third moving barrel 16, a plurality of linear guide grooves 16c, each extending parallel to the optical axis O, are formed. At an outer periphery of the rear end of the third moving barrel 16, a male helicoid 16a and the aforementioned outer peripheral gear 16b are provided as shown in Figure 15. The male helicoid 16a engages with the female helicoid 12a of the fixed lens barrel block 12. The outer peripheral gear 16b engages with the driving pinion 15. The driving pinion 15 has an axial length sufficient to be capable of engaging with the outer peripheral gear 16b throughout the entire range of movement of the third moving barrel 16 in the optical axis direction.
As shown in Figure 23, the linear guide barrel 17 is provided, on a rear part of an outer periphery thereof, with a rear end flange 17d. The rear end flange 17d has a plurality of engaging projections 17c each projecting away from the optical axis 0 in a radial direction. The linear guide barrel 17 is further provided, in front of the rear end flange 17d, with a retaining flange 17e. A circumferential groove 17g is formed between the rear end flange 17d and the retaining flange 17e. The retaining flange 17e has a radius smaller than the rear end flange 17d. The retaining flange 17e is provided with a plurality of cutout portions 17f. Each of the cutout portions 17f allows a corresponding engaging projection 16d to be inserted into the circumferential groove 17g, as shown in Figure 20.
The third moving barrel 16 is provided, on an inner periphery of the rear end thereof, with a plurality of engaging projections 16d. Each of the engaging projections 16d projects towards the optical axis 0 in a radial direction. By inserting the engaging projections 16d into the circumferential groove 17g, through the corresponding cutout portions 17f, the engaging projections 16d are positioned in the circumferential groove 17g between the flanges 17d and 17e (see Figure 20). By rotating the third moving barrel 16 relative to the linear guide barrel 17, the engaging projections 16d are engaged with the linear guide barrel 17.
On the rear end of the linear guide barrel 17, an aperture plate 23 having a rectangular-shaped aperture 23a approximately the same shape as the aperture 14a, is fixed.
The relative rotation of the linear guide barrel 17, with respect to the fixed lens barrel block 12, is restricted by the slidable engagement of the plurality of engaging projections 17c with the corresponding linear guide grooves 12b, formed parallel to the optical axis 0.
A contacting terminal 9 is fixed to one of the engaging projections 17c, namely 17c'. The contacting terminal 9 is in slidable contact with the code plate 13a, fixed to the bottom of the linear guide groove 12b', to generate signals corresponding to focal length information during zooming.
On the inner periphery of the linear guide barrel 17 a plurality of linear guide grooves 17a are formed, each extending parallel to the optical axis 0. A plurality of lead slots 17b are also formed on the linear guide barrel 17 as shown in Figure 21 or 23. The lead slots 17b are each formed oblique (inclined) to the optical axis 0.
The second moving barrel 19 engages with the inner periphery of the linear guide barrel 17. On the inner periphery of the second moving barrel 19, a plurality of lead grooves 19c are provided in a direction inclined oppositely to the lead slots 17b. On the outer periphery of the rear end of the second moving barrel 19 a plurality of follower projections 19a are provided. Each of the follower projections 19a has a trapezoidal cross-sectional shape projecting away from the optical axis 0 in a radial direction. Follower pins 18 are positioned in the follower projections 19a. Each follower pin 18 consists of a ring member 18a, and a center fixing screw 18b which supports the ring member 18a on the corresponding follower projection 19a. The follower projections 19a are in slidable engagement with the lead slots 17b of the linear guide barrel 17, and the follower pins 18 are in slidable engagement with the linear guide grooves 16c of the third moving barrel 16. With such an arrangement, when the third moving barrel 16 rotates, the second moving barrel 19 moves linearly in the optical axis direction, while rotating.
On the inner periphery of the second moving barrel 19, the first moving barrel 20 is engaged. The first moving barrel 20 is provided on an outer periphery of the rear thereof with a plurality of follower pins 24 each engaging with the corresponding inner lead groove 19c, and at the same time the first moving barrel 20 is guided linearly by a linear guide member 22. The first moving barrel 20 is provided at the front end thereof with a decorative plate 41 secured thereto.
As shown in Figures 11 and 12, the linear guide member 22 is provided with an annular member 22a, a pair of guide legs 22b and a plurality of engaging projections 28. The pair of guide legs 22b project from the annular member 22a in the optical axis direction. The plurality of engaging projections 28 each project from the annular member 22a away from the optical axis 0 in a radial direction. The engaging projections 28 slidably engage with the linear guide grooves 17a. The guide legs 22b are respectively inserted into linear guides 40c between the inner peripheral surface of the first moving barrel 20 and the AF/AE shutter unit 21.
The annular member 22a of the linear guide member 22 is connected to the rear of the second moving barrel 19, such that the linear guide member 22 and the second moving barrel 19 are capable of moving along the optical axis 0 as a whole, and in addition are capable of relatively rotating around the optical axis 0. The linear guide member 22 is further provided on the outer periphery of the rear end thereof with a rear end flange 22d. The linear guide member 22 is further provided, in front of the rear end flange 22d, with a retaining flange 22c. A circumferential groove 22f is formed between the rear end flange 22d and the retaining flange 22c. The retaining flange 22c has a radius smaller than the rear end flange 22d. The retaining flange 22c is provided with a plurality of cutout portions 22e, as shown in Figure 11 or 12, each allowing a corresponding engaging projection l9b to be inserted into the circumferential groove 22f, as shown in Figure 20.
The second moving barrel 19 is provided on an inner periphery of the rear end thereof with a plurality of engaging projections 19b, each projecting towards the optical axis 0 in a radial direction. By inserting the engaging projections 19b into the circumferential groove 22f through the corresponding cutout portions 22e, the engaging projections 19b are positioned in the circumferential groove 22f between the flanges 22c and 22d. By rotating the second moving barrel 19 relative to the linear guide member 22, the engaging projections 19b are engaged with the linear guide member 22. With the above structure, when the second moving barrel 19 rotates in the forward or reverse rotational direction, the first moving barrel 20 moves linearly, forwardly or rearwardly along the optical axis 0, but is restricted from rotating.
At the front of the first moving barrel 20, a barrier apparatus 35 having barrier blades 48a and 48b is mounted.
On an inner peripheral face of the first moving barrel 20 the AF/AE shutter unit 21 having the shutter 27, consisting of three shutter blades 27a, is engaged and fixed, as shown in Figure 23. The AF/AE shutter unit 21 is provided with a plurality of fixing holes 40a formed at even angular intervals on the outer periphery of the shutter mounting stage 40. Only one of the fixing holes 40a appears in each of Figures 1, 11, 12, 13 and 14.
The aforementioned plurality of follower pins 24, which engage with the inner lead grooves l9c, also serve as a device for fixing the AF/AE shutter unit 21 to the first moving barrel 20. The follower pins 24 are inserted in holes 20a, formed on the first moving barrel 20, and fixed in the fixing holes 40a. With this arrangement the AF/AE shutter unit 21 is secured to the first moving barrel 20 as shown in Figure 14. In Figure 14 the first moving barrel 20 is indicated by phantom lines. The follower pins 24 may be fixed by an adhesive, or the pins 24 may be formed as screws to be screwed into the fixing holes 40a.
As illustrated in Figures 1 and 21, the AF/AE shutter unit 21 is provided with the shutter mounting stage 40, a shutter blade supporting ring 46 fixed on the rear of the shutter mounting stage 40 so as to be located inside the shutter mounting stage 40, and the lens supporting barrel 50 supported in a state of being capable of movement relative to the shutter mounting stage 40. On the shutter mounting stage 40, the lens supporting barrel 34, the AE motor 29, and the rear lens group driving motor 30, are supported.
The shutter mounting stage 40 is provided with an annular member 40f having an circular aperture 40d. The shutter mounting stage 40 is also provided with three legs 40b which project rearward from the annular member 40f. Three slits are defined between the three legs 40b. Two of the slits comprise the aforementioned linear guides 40c, which slidably engage with the respective pair of guide legs 22b of the linear guide member 22 so as to guide the movement of the linear guide member 22.
An encoder 122 (rear lens group driving motor encoder) for detecting whether the rear lens group driving motor 30 is rotating and for detecting an amount of rotation of the rear lens group driving motor 30 consists of a photointerrupter 57 and a rotating disk 59. An AE motor encoder 121 for detecting whether the AE motor 29 is rotating and for detecting an amount of rotation of the AE motor 29 consists of a photointerrupter 56 and a rotating disk 58.
The shutter 27, a supporting member 47 which pivotally supports the three shutter blades 27a of the shutter 27, and a circular driving member 49, which gives rotative power to the shutter blades 27a, are positioned between the shutter mounting stage 40 and the shutter blade supporting ring 46, secured to the shutter mounting stage 40. The circular driving member 49 is provided with three operating projections 49a at even angular intervals, which respectively engage with each of the three shutter blades 27a. As shown in Figure 1, the shutter blade supporting ring 46 is provided at a front end thereof with a circular aperture 46a and with three arc grooves 46e and three supporting holes 46b positioned at even angular intervals around the circular aperture 46a. The arc grooves 46e are each located along a common circle having a center coincident with the optical axis 0. Two deflection restricting surfaces 46c are formed on the outer periphery of the shutter blade supporting ring 46. Each deflection restricting surface 46c is exposed outwardly from the corresponding linear guide 40c and slidably supports the inner peripheral face of the corresponding guide leg 22b.
The supporting member 47, positioned in front of the shutter blade supporting ring 46, is provided with a circular aperture 47a, aligned with the circular aperture 46a of the shutter blade supporting ring 46, and with three pivotal shafts 47b (only one of which is illustrated in Figure 1) at respective positions opposite the three supporting holes 46b. Each shutter blade 27a is provided at one end thereof with a hole 27b into which the corresponding pivotal shaft 47b is inserted, so that each shutter blade 27a is rotatable about the corresponding pivotal shaft 47b.
The major part of each shutter blade 27a, that extends normal to the optical axis 0 from the pivoted end, is formed as a light interceptive portion. All three light interceptive portions of the shutter blades 27a together prevent ambient light, which enters the front lens group L1, from entering the circular apertures 46a and 47a when the shutter blades 27a are closed. Each shutter blade 27a is further provided, between the hole 27b and the light interceptive portion thereof, with a slot 27c, through which the corresponding operating projection 49a is inserted. The supporting member 47 is fixed to the shutter blade supporting ring 46 in such a manner that each shaft 47b, which supports the corresponding shutter blade 27a, is engaged with the corresponding supporting hole 46b of the shutter blade supporting ring 46.
A gear portion 49b is formed on a part of the outer periphery of the circular driving member 49. The supporting member 47 is provided, at respective positions close to the three pivotal shafts 47b, with three arc grooves 47c each arched along a circumferential direction. The three operating projections 49a of the circular driving ring 49 engage with the slots 27c of the respective shutter blades 27a through the respective arc grooves 47c. The shutter blade supporting ring 46 is inserted from the rear of the shutter mounting stage 40, to support the circular driving ring 49, the supporting member 47 and the shutter 27, and is fixed on the shutter mounting stage 40 by set screws 90 respectively inserted through holes 46x provided on the shutter blade supporting ring 46.
Behind the shutter blade supporting ring 46, the lens supporting barrel 50, supported to be able to move relative to the shutter mounting stage 40 via guide shafts 51 and 52, is positioned. The shutter mounting stage 40 and the lens supporting barrel 50 are biased in opposite directions away from each other by a coil spring 3 fitted on the guide shaft 51, and therefore play between the shutter mounting stage 40 and the lens supporting barrel 50 is reduced. In addition, a driving gear 42a, is provided with a female thread hole (not shown) at the axial center thereof and is restricted to move in the axial direction. A screw shaft 43, one end of which is fixed to the lens supporting barrel 50, engages with the female thread hole. Accordingly, the driving gear 42a and the screw shaft 43 together constitute a feed screw mechanism. In such a manner, when the driving gear 42a rotates clockwise or anti-clockwise due to driving by the rear lens group driving motor 30, the screw shaft 43 respectively moves forwardly or rearwardly with respect to the driving gear 42a, and therefore the lens supporting barrel 50, which supports the rear lens group L2, moves relative to the front lens group L1.
A holding member 53 is fixed at the front of the shutter mounting stage 40. The holding member 53 holds the motors 29 and 30 between the holding member 53 and the shutter mounting stage 40. The holding member 53 has a metal holding plate 55 fixed at the front thereof by set screws 99. The motors 29, 30 and the photointerrupters 56, 57 are connected to the flexible printed circuit board 6.
One end of the flexible printed circuit board 6 is fixed to the shutter mounting stage 40.
After the first, second and third moving barrels 20, 19 and 16, and the AF/AE shutter unit 21 and the like are assembled, the aperture plate 23 is fixed to the rear of the linear guide barrel 17, and an annular retaining member 33 is fixed at the front of the fixed lens barrel block 12.
As shown in Figure 21, the aforementioned barrier apparatus 35 includes a pair of trailing barrier blades 48a and a pair of leading barrier blades 48b for opening or closing a photographic aperture in front of the front lens group L1. An annular plate 96 is fixed on a rear surface of the decorative plate 41 with the pairs of trailing and leading barrier blades 48a, 48b being rotatably held therebetween about the optical axis 0.
A barrier driving ring 97 is rotatably held between the inner flange 20b of the first moving barrel 20 and the annular plate 96 about the optical axis 0. The barrier driving ring 97 is provided with a pair of barrier levers 98a and 98b. The barrier driving ring 97 is rotated in a forward or a rearward rotational direction upon receiving a rotation of the rear lens group driving motor 30 through a relay gear 92 to thereby open or close the pair of leading and trailing barrier blades 48b, 48a through the pair of barrier levers 98a and 98b.
The AE motor 29 and the rear lens group driving motor 30 are each mounted on the shutter mounting stage 40 with a rotating shaft thereof extending in the optical axis direction. Driving pinions 29a and 30a are respectively fixed on.the rotating shafts of the AE motor 29 and the rear lens group driving motor 30.
An AE gear train 45A and a first encoder gear train 45B are supported on the shutter mounting stage 40 (see Figures 2 and 7). The AE gear train 45A includes a spur gear 137, which meshes with the driving pinion 29a, and composite gears 86, 138. The first encoder gear train 45B includes a spur gear 136, which meshes with the driving pinion 29a, and a composite gear 89. The driving pinion 29a is located between the AE gear train 45A and the first encoder gear train 45B. The driving pinion 29a, the AE gear train 45A and the first encoder gear train 45B are positioned along a circumferential direction of the AF/AE shutter unit 21.
A rear lens group driving gear train 42A, a second encoder gear train 42B and a barrier driving gear train 42C are supported on the shutter mounting stage 40 (see Figures 5 and 6). The rear lens group driving gear train 42A includes a spur gear 142, which meshes with the driving pinion 30a, composite gears 139, 140, 141, and a planetary gear 93 consisting of a sun gear 93b and a planet gear 93a.
The second encoder gear train 42B includes a spur gear 135, which meshes with the driving pinion 30a, and a composite gear 134. The driving pinion 30a is located between the rear lens group driving gear train 42A and the second encoder gear train 42B. The driving pinion 30a, the rear lens group driving gear train 42A and the second encoder gear train 42B are positioned along a circumferential direction of the AF/AE shutter unit 21. The barrier driving gear train 42C includes a spur gear (input gear) 130, which is able to mesh with the planet gear 93a, and composite gears 131, 132, 133.
It will be appreciated from the foregoing that the rotation of the AE motor 29 is transmitted to both the shutter 27 and the AE motor encoder 121 through the AE gear train 45A and the first encoder gear train 45B, respectively, and that the rotation of the rear lens group driving motor 30 is transmitted to both the aforementioned feed screw mechanism for moving the rear lens group L2 along the optical axis 0 and the rear lens group driving motor encoder 122 through the rear lens group driving gear train 42A and the second encoder gear train 42B, respectively.
The AE motor encoder 121 is provided to control the exposure of the shutter 27 driven by a rotation of the AE motor 29. The AE motor encoder 121 detects whether the AE motor 29 is rotating and also detects an amount of rotation of the AE motor 29 by counting the number of pulses of light generated by the rotating disk 58 and the photo interrupter 56. The rotating disk 58 is provided with a plurality of radially formed slits 58s formed at even angular intervals.
Each of the radially formed slits 58s extends in a radial direction of the rotating disk 58. A light-intercepting portion 58t is formed between two adjacent slits 58s on the rotating disk 58. Accordingly, the slits 58s and the lightintercepting portions 58t are alternately formed at even angular intervals on the rotating disk 58. In the AE motor encoder 121, the rotating disk 58, which rotates in accordance with the movement of the shutter 27, rotates by less than one revolution thereof between a state shown in Figure 9 where the shutter 27 is fully closed, and a state shown in Figure 10 where the shutter 27 is fully opened.
The rear lens group driving motor encoder 122 is provided to control the movement of the rear lens group L2 driven by a rotation of the rear lens group driving motor 30. The rear lens group driving motor encoder 122 detects whether the rear lens group driving motor 30 is rotating and also detects an amount of rotation of the rear lens group driving motor 30 by counting the number of pulses of light generated by the rotating disk 59 and the photointerrupter 57. The rotating disk 59 is provided with a plurality of slits 59s formed at even angular intervals. Each of the slits 59s extends in a radial direction of the rotating disk 59. A light-intercepting portion 59t is formed between two adjacent slits 59s on the rotating disk 59. Accordingly, the slits 59s and the light-intercepting portions 59t are alternately formed at even angular intervals on the rotating disk 59.
As clearly shown in Figure 3, the AE motor encoder 121 and the rear lens group driving motor encoder 122 are positioned on the AF/AE shutter unit 21 adjacent to each other, with the photo interrupter 56 overlapping the photointerrupter 57 as viewed in the optical axis direction.
The rotating disks 58, 59 are also positioned close to each other. The rotating disks 58, 59 are positioned adjacent to each other between the AE motor 29 and the rear lens group driving motor 30, as clearly shown in Figure 25 or 26.
As shown in Figures 25 and 26, the AE gear train 45A, the first encoder gear train 45B, the rear lens group driving gear train 42A and the second encoder gear train 42B are not located in a common plane perpendicular to the optical axis 0. The rotation of the rear lens group driving motor 30 is transmitted through two different gear trains, i.e., the rear lens group driving gear train 42A and the second encoder gear train 42B. Several gears (i.e., gears 141, 142) of the rear lens group driving gear train 42A are located behind the annular member 40f and the remaining gears (i.e., gears 93a, 93b, 139, 140) of the rear lens group driving gear train 42A are located in front of the annular member 40f. The second encoder gear train 42B is located behind the annular member 40f. The final gear (i.e., planet gear 93a) of the rear lens group driving gear train 42A meshes with either the driving gear 42a or a spur gear (input gear) 130 of the barrier driving gear train 42C including the spur gear 130, which is able to mesh with the planet gear 93a, and composite gears 131, 132, 133. The composite gear 133 meshes with the relay gear 92 which is rotated for opening or closing the pair of leading and trailing barrier blades 48b, 48a through the pair of barrier levers 98a and 98b.
As shown in Figures 1 and 25 or 26 the barrier driving gear train 42C is arranged in steps away from the shutter 27 in a forward direction. Composite gears 86, 138 of the AE gear train 45A are located behind the composite gears 132, 133, with the annular member 40f being positioned therebetween. Accordingly, the barrier driving gear train 42C (composite gears 132, 133) and the AE gear train 45A (composite gears 86, 138) are positioned to overlap each other as viewed from an object side or a film side in the optical axis direction.
As can be understood from the foregoing, the aforementioned drive mechanism transmits the rotation of the rear lens group driving motor 30 to either the driving gear 42a, which engages with the screw shaft 43 for moving the rear lens group L2 along the optical axis 0, or the spur gear 130 of the barrier driving gear train 42C for opening or closing the barrier blades 48a, 48b, through the planetary gear 93. The planet gear 93a maintains connection with the driving gear 42a as shown in Figure 6, when the zoom lens barrel 10 is in a zooming range thereof ranging from the telephoto extremity to the wide extremity thereof.
The planet gear 93a is disconnected from the driving gear 42a to be connected with the spur gear 130 as shown in Figure 5 by a switching member 120 (See Figure 1), when the zoom lens barrel 10 is in a moving range out of the zooming range between the wide extremity and the most retracted position thereof. In the state shown in Figure 5, rotations of the rear lens group driving motor 30 in forward and reverse directions cause the barrier driving ring 97 to rotate in forward and reverse rotational directions to thereby open and close the barrier blades 48a, 48b of the barrier apparatus 35, respectively. Conversely, in the state shown in Figure 6, rotations of the rear lens group driving motor 30 in forward and reverse directions cause the driving gear 42a to rotate in forward and reverse rotational directions to thereby move the rear lens group L2 to move forward and rearward along the optical axis 0 relative to the front lens group L1 through the screw shaft 43, respectively.
The composite gear 89, which is the final gear of the first encoder gear train 45B, includes a large gear 89a and a small gear 89b which are integrally formed to have a common rotational center. The small gear 89b meshes with a spur gear 58d integrally formed on a rotational shaft 58f of the rotating disk 58 at a rear end thereof. The composite gear 86, which is the final gear of the AE gear train 45A, includes a large gear 86a and a small gear 86b which are integrally formed to have a common rotational center. The small gear 86b meshes with the gear portion 49b of the circular driving member 49 rotatably held between annular member 40f and the supporting member 47 about the optical axis 0 (See Figures 24 and 27). The circular driving member 49 continues to be biased in a counterclockwise direction as viewed in Figure 24 by a torsion spring 87 supported on a pin 40j formed on the rear surface of the annular member 40f. The composite gear 134, which is the final gear of the second encoder gear train 42B, includes a large gear 134a and a small gear 134b which are integrally formed to have a common rotational center. The small gear 134b meshes with a spur gear 59d integrally formed on a rotational shaft 59f of the rotating disk 59 at a rear end thereof.
As shown in Figure 3, the AE motor encoder 121 and the rear lens group driving motor encoder 122 are arranged next to each other between the rotational shafts 58f, 59f with a Partition 88 positioned between the encoders 121, 122.
partition 88 consists of four plates 88a, 88b, 88c and 88d integrally formed. The plates 88b and 88d are parallel to each other and each extend in the optical axis direction.
The plates 88a and 88c are parallel to each other, perpendicular to the plates 88b and 88d. The plate 88b connects the plate 88a with the plate 88c, and the rear end of the plate 88d contacts the annular member 40f.
The partition 88 together with a corresponding part of the annular member 40f is formed to have a substantially "S" shape as viewed in Figure 3. The partition 88 together with a front wall 40f' of the annular member 40f forms two divided spaces 99a, 99b in which the photointerrupters 56, 57 are respectively accommodated. The photointerrupters 56, 57 are positioned oppositely and fixed in the spaces 99a, 99b, with slits 56d, 57d of the photointerrupters 56, 57 facing in opposite directions toward the corresponding rotating disk 58 or 59 and with pairs of electrical terminals 56a, 57a facing in opposite directions toward the corresponding rotating disk 58 or 59. Due to this arrangement, the rotating disks 58, 59 and the photointerrupters 56, 57 are space-efficiently disposed without consuming much space in the AF/AE shutter unit 21.
Each photointerrupter 56 or 57 is provided with a light emitter on one side of the slit and a light receiver on the other side of the slit.
The rotational shaft 58f of the rotating disk 58, which extends in the optical axis direction, is provided at front and rear end thereof with a protrusion 58a and a round hole which are aligned, respectively. The protrusion 58a is rotatably supported by the holding member 53, and a protrusion 40i formed on the shutter mounting stage 40 is inserted in the round hole, so that the rotating disk 58 is rotatably supported about a center axis thereof parallel to the optical axis 0. The rotating disk 58 is located in the slit 56d, so that the rotating disk 58 intermittently interrupts the light emitted from the light emitter of the photointerrupter 56 to the light receiver of the same when the rotating disk 58 rotates. Due to this intermittent interruption the light receiver of the photointerrupter 56 receives pulses of light to thereby generate pulse signals.
The pulse signals are electrically transmitted to the AE motor controller 66 through the flexible printed circuit board 6. The AE motor controller 66 is provided in a controller 75 (see Figure 17) provided in the camera body.
A CPU (not shown) serves as the controller 75 and also serves as the whole optical unit driving motor controller 60, the rear lens group driving motor controller 61, the object distance measuring apparatus 64, the photometering apparatus 65 and the AE motor controller 66. The zoom operating device 62 and the focusing operating device are each connected to the CPU.
The rotational shaft 59f of the rotating disk 59, which extends in the optical axis direction, is provided at front and rear ends thereof with a protrusion 59a and a round hole which are aligned, respectively. The protrusion 59a is rotatably supported by the holding member 53, and a protrusion 40j formed on the shutter mounting stage 40 is inserted in the round hole, so that the rotating disk 59 is rotatably supported about a center axis thereof parallel to the optical axis 0. The rotating disk 59 is located in the slit 57d, so that the rotating disk 59 intermittently interrupts the light emitted from the light emitter of the photointerrupter 57 to the light receiver of the same when the rotating disk 59 rotates. Due to this intermittent interruption the light receiver of the photointerrupter 57 receives pulses of light to thereby generate pulse signals.
The pulse signals are electrically transmitted to the rear lens group driving motor controller 61 through the flexible printed circuit board 6, The rear lens group driving motor controller 61 is provided in the controller 75.
In the above-described embodiment of the zoom lens barrel 10, although the zoom lens optical system consists of two movable lens groups, namely the front lens group L1 and the rear lens group L2, it should be understood that the present invention is not limited to the present embodiment disclosed above, but the present invention may also be applied to another type of zoom lens optical system including one or more fixed lens group.
In addition, in the above embodiment, the rear lens group L1 is provided as a component of the AF/AE shutter unit 21, and the AE motor 29 and the rear lens group driving motor 30 are mounted to the AF/AE shutter unit 21. With such a structure, the structure for supporting the front and rear lens groups L1 and L2 and the structure for driving the rear lens group L2 are both simplified. Instead of adopting such a structure, the zoom lens barrel 10 may also be realized in such a manner by making the rear lens group L2 a member separate from the AF/AE shutter unit 21, which is provided with the shutter mounting stage 40, the circular driving member 49, the supporting member 47, the shutter blades 27, the shutter blade supporting ring 46 and the like, and that the rear lens group L2 is supported by any supporting member other than the AF/AE shutter unit 21.
In the zoom lens camera of the present embodiment, the operation by rotation of the whole optical unit driving motor 25 and the rear lens group driving motor 30 will now be described with reference to Figures 17, 18, 19 and 20.
As shown in Figure 18 or 20, when the zoom lens barrel 10 is at the most retracted (withdrawn) position, i.e., the lens-housed condition, when the power switch is turned ON, the whole optical unit driving motor 25 is driven to rotate its drive shaft in the forward rotational direction by a small amount. This rotation of the motor 25 is transmitted to the driving pinion 15 through a gear train 26, which is supported by a supporting member 32 formed integral with the fixed lens barrel block 12, to thereby rotate the third moving barrel 16 in one predetermined rotational direction to advance forwardly along the optical axis 0. Therefore, the second moving barrel 19 and the first moving barrel 20 are each advanced by a small amount in the optical axis direction, along with the third moving barrel 16.
Consequently, the camera is in a state capable of photographing, with the zoom lens positioned at the widest position, i.e., the wide end. At this stage, due to the fact that the amount of movement of the linear guide barrel 17, with respect to the fixed lens barrel block 12, is detected through the relative slide between the code plate 13a and the contacting terminal 9, the focal length of the zoom lens barrel 10, i.e., the front and rear lens groups L1 and L2, is detected.
In the photographable state as above described, when the aforementioned zoom operating lever is manually moved towards a "tele" side, or the "tele" zoom button is manually depressed to be turned ON, the whole optical unit driving motor 25 is driven to rotate its drive shaft in the forward rotational direction through the whole optical unit driving motor controller 60 so that the third moving barrel 16 rotates in the rotational direction to advance along the optical axis 0 via the driving pinion 15 and the outer peripheral gear 16b. Therefore, the third moving barrel 16 is advanced from the fixed lens barrel block 12 according to the relationship between the female helicoid 12a and the male helicoid 16a. At the same time, the linear guide barrel 17 moves forwardly in the optical axis direction together with the third moving barrel 16, without relative rotation to the fixed lens barrel block 12, according to the relationship between the engaging projections 17c and the linear guide grooves 12b. At this time, the simultaneous engagement of the follower pins 18 with the respective lead slots 17b and linear guide grooves 16c causes the second moving barrel 19 to move forwardly relative to the third moving barrel 16 in the optical axis direction, while rotating together with the third moving barrel 16 in the same rotational direction relative to the fixed lens barrel block 12. The first moving barrel 20 moves forwardly from the second moving barrel 19 in the optical axis direction, together with the AF/AE shutter unit 21, without relative rotation to the fixed lens barrel block 12, due to the above-noted structures in which the first moving barrel 20 is guided linearly by the linear guide member 22 and in which the follower pins 24 are guided by the lead grooves l9c. During such movements, according to the fact that the moving position of the linear guide barrel 17 with respect to the fixed lens barrel block 12 is detected through the relative slide between the code plate 13a and the contacting terminal 9, the focal length set by the zoom operation device 62 is detected.
Conversely, when the zoom operating lever is manually moved towards a "wide" side, or the "wide" zoom button is manually depressed to be turned ON, the whole optical unit driving motor 25 is driven to rotate its drive shaft in the reverse rotational direction through the whole optical unit driving motor controller 60 so that the third moving barrel 16 rotates in the rotational direction to retract into the fixed lens barrel block 12 together with the linear guide barrel 17. At the same time, the second moving barrel 19 is retracted into the third moving barrel 16, while rotating in the same direction as that of the third moving barrel 16, and the first moving barrel 20 is retracted into the rotating second moving barrel 19 together with the AF/AE shutter unit 21. During the above retraction driving, like the case of advancing driving as above described, the rear lens group driving motor 30 is not driven.
While the zoom lens barrel 10 is driven during the zooming operation, since the rear lens group driving motor 30 is not driven, the front lens group L1 and the rear lens group L2 move as a whole, maintaining a constant distance between each other, as shown in Figure 17 or 19. The focal length input via the zoom code plate 13a and the contacting terminal 9 is indicated on an LCD panel (not shown) provided on the camera body.
At any focal length set by the zoom operating device 62, when the release button is depressed by a half-step, the object distance measuring apparatus 64 is actuated to measure a current subject distance. At the same time the photometering apparatus 65 is actuated to measure a current subject brightness. Thereafter, when the release button is fully depressed, the whole optical unit driving motor 25 and the rear lens group driving motor 30 are each driven by respective amounts dictated according to the focal length information set in advance and the subject distance information obtained from the object distance measuring apparatus 64 so that the front and rear lens groups L1 and L2 are respectively moved to specified positions to obtain a specified focal length to thereby bring the subject into focus. Immediately after the subject is brought into focus, via the AE motor controller 66, the AE motor 29 is driven to rotate the circular driving member 49 by an amount corresponding to the subject brightness information obtained from the photometering apparatus 65 so that the shutter 27 is driven to open the shutter blades 27a by a specified amount which satisfies the required exposure. Immediately after such a shutter release operation, in which the three shutter blades 27a are opened and subsequently closed, is completed, the whole optical unit driving motor 25 and the rear lens group driving motor 30 are both driven to move the front lens group L1 and the rear lens group L2 to the respective initial positions at which they were at prior to a shutter release.
In the present embodiment of the zoom lens barrel 10, "Fantas Coat SF-6" is used as the coating 72e. However, a different type of coating may be used as the coating 72e as long as it is waterproof and makes the circular abutting surface 72b a smooth surface to form substantially no gap between the circular abutting surface 72b and the circumferential portion fp.
Obvious changes may be made in the specific embodiments of the present invention described herein, such modifications being within the scope of the invention claimed. It is indicated that all matter contained herein is illustrative and does not limit the scope of the present invention.

Claims (13)

CLAIMS:
1. A shutter arrangement for a camera, comprising: a lens shutter; a lens group movable along an optical axis thereof relative to said lens shutter; a first motor for opening or closing said lens shutter; a second motor for moving said lens group relative to said lens shutter along said optical axis; a first encoder for detecting a size of a diaphragm formed by said lens shutter, said first encoder comprising a first photosensor and a first rotating disk associated with said first photosensor; and a second encoder for detecting an axial position of said lens group relative to the lens shutter, said second encoder comprising a second photosensor and a second rotating disk associated with said second photosensor, wherein said first and second encoders are positioned to overlap in a direction of said optical axis.
2. A shutter arrangement according to claim l, wherein each of said first and second rotating disks is provided with a plurality of slits.
3. A shutter arrangement according to claim 1 or 2, wherein each of said first and second photosensors is a photo interrupter.
4. A shutter arrangement according to claim 3, wherein said first and second photointerrupters are positioned adjacent each other and face in generally opposite directions along a circumferential direction about the optical axis, said first and second rotating disks being located on opposite sides of said adjacent first and second photointerrupters.
5. A shutter arrangement according to claim 3 or 4, wherein said first and second photo interrupters are positioned between rotational shafts of said first and second rotating disks.
6. A shutter arrangement according to claim 5, wherein said rotational shafts extend in said direction of said optical axis.
7. A shutter arrangement according to any one of claims 3 to 6, further comprising a lens shutter support wherein a partition is formed in a substantially " S" shape which forms two divided spaces in said lens shutter support and wherein said first and second photo interrupters are respectively accompanying in said two divided spaces.
8. A shutter arrangement according to any preceding claim , wherein said first and second rotating disks are provided at different positions in said direction of said optical axis.
9. 9. A zoom lens including a movable barrel advancable from or retractable into a stationary block of said zoom lens, said zoom lens comprising said shutter arrangement according to any preceding claim, wherein said lens group, said first and second motors, and said first and second encoders are all positioned in said movable barrel with said lens group being movable along said optical axis relative to said movable barrel.
10. A zoom lens according to claim 9, comprising a plurality of movable barrels concentrically arranged, said movable barrel being an innermost barrel of said plurality of movable barrels.
11. A zoom lens according to claim 9 or 10, further comprising a second lens group fixed to said movable barrel and aligned with said lens group along said optical axis so that said lens group is movable along said optical axis relative to said second lens group.
12. A shutter arrangement substantially as hereinbefore described with reference to Figure 3 of the drawings.
13. A zoom lens substantially as hereinbefore described with reference to Figure 3 of the drawings.
GB9701508A 1996-01-26 1997-01-24 Lens shutter type of camera Expired - Fee Related GB2309521B (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
JP1231796 1996-01-26
JP03236496A JP3569375B2 (en) 1996-02-20 1996-02-20 Lens shutter device
GB9614331A GB2303222B (en) 1995-07-07 1996-07-08 A lens shutter type of zoom lens camera and a method of controlling such a camera

Publications (3)

Publication Number Publication Date
GB9701508D0 GB9701508D0 (en) 1997-03-12
GB2309521A true GB2309521A (en) 1997-07-30
GB2309521B GB2309521B (en) 1999-12-15

Family

ID=27268373

Family Applications (1)

Application Number Title Priority Date Filing Date
GB9701508A Expired - Fee Related GB2309521B (en) 1996-01-26 1997-01-24 Lens shutter type of camera

Country Status (1)

Country Link
GB (1) GB2309521B (en)

Also Published As

Publication number Publication date
GB9701508D0 (en) 1997-03-12
GB2309521B (en) 1999-12-15

Similar Documents

Publication Publication Date Title
US5812889A (en) Lens guide mechanism of a lens shutter type of camera
US5991097A (en) Lens barrel having a linear guide mechanism
US6023376A (en) Lens barrel having a linear guide mechanism
US5765048A (en) Telescoping type of zoom lens and cam mechanism therefor
US5737644A (en) Lens drive mechanism
US5812887A (en) Lens supporting structure
US5742850A (en) Lens shutter type of camera
US5748388A (en) Lens barrel having a rotating barrel and linear moving barrel
US5809361A (en) Flexible printed circuit board
GB2344661A (en) Lens barrel having a linear guide mechanism
US5812325A (en) Telescoping-type of zoom lens
GB2309551A (en) Lens barrel having a linear guide groove
US5886836A (en) Lens barrel having a cam mechanism
GB2344662A (en) Lens cam mechanism with tapered slot and follower and stopper
US5784206A (en) Moving lens position detecting device
US5809348A (en) Zoom compact camera
US5708885A (en) Light intercepting device of a lens shutter type of camera
US5754893A (en) Lens barrel having waterproof coating
US5734936A (en) Lens shutter type of camera
US5892999A (en) Zoom lens barrel with shutter mounting unit
GB2309521A (en) Lens shutter type of camera
GB2309520A (en) Lens shutter type of camera
JP3260290B2 (en) Waterproof structure of lens barrel
GB2309545A (en) Guide means on multi-barrelled zoom lens
GB2309542A (en) Lens barrel having a watertight structure

Legal Events

Date Code Title Description
PCNP Patent ceased through non-payment of renewal fee

Effective date: 20060124