Claims
- 1. An eccentricity-prevention mechanism for preventing eccentricity in relatively rotating lens-supporting rings, said eccentricity-prevention mechanism comprising:
a pair of lens-supporting rings for supporting a pair of lens groups, respectively, said pair of lens-supporting rings being relatively moved in a direction of the optical axis, of said pair of lens groups, in accordance with relative rotation thereof; and a pair of positioning recesses and a follower projection formed on one and the other of opposed surfaces of said pair of lens-supporting rings, such that said follower projection engages with one of said pair of positioning recesses to define a relative position of said pair of lens-supporting rings, with respect to said optical axis, at a mutually close position and at a mutually distant position; wherein at least three said pair of positioning recesses and at least three said follower projections are provided on said pair of lens-supporting rings at different positions in a circumferential direction respectively, so that eccentricity between said pair of lens-supporting rings is eliminated when all of said follower projections are concurrently brought into engagement with corresponding said positioning recesses.
- 2. The eccentricity-prevention mechanism according to claim 1, wherein said at least three follower projections are provided at equi-angular intervals on one of said pair of lens-supporting rings, and wherein said at least three said pair of positioning recesses which define said mutually close position and said mutually distant position, respectively, are provided at equi-angular intervals on the other of said pair of lens-supporting rings, respectively.
- 3. The eccentricity-prevention mechanism according to claim 1, wherein four said pairs of positioning recesses are provided on one of said pair of lens-supporting rings, and four said follower projections are provided on the other of said pair of lens-supporting rings.
- 4. The eccentricity-prevention mechanism according to claim 1, further comprising a cam surface which is brought into contact with said follower projections to cause said pair of lens-supporting rings to move to said mutually close position and to said mutually distant position during the relative rotation of said pair of lens-supporting rings;
wherein said pair of positioning recesses which correspond to said mutually close position and said mutually distant position, respectively, of said pair of lens-supporting rings are respectively formed at one and the other ends of said cam surface.
- 5. The eccentricity-prevention mechanism according to claim 1, wherein a contact surface of each of said follower projections which contacts said positioning recesses comprises a smooth semi-cylindrical surface.
- 6. The eccentricity-prevention mechanism according to claim 5, wherein each of said positioning recesses is formed as a V-shaped recess so as to be engaged by said contact surface of said follower projections.
- 7. The eccentricity-prevention mechanism according to claim 1, further comprising a support barrel for supporting said pair of lens-supporting rings in a manner that allows relative rotation and linear displacement of said pair of lens-supporting rings.
- 8. A eccentricity-prevention mechanism for preventing eccentricity in relatively rotating lens-supporting rings, said eccentricity-prevention mechanism comprising:
a pair of lens-supporting rings for supporting a pair of lens groups, respectively, said pair of lens groups functioning optically in a mutually close position and in a mutually distant position; a support barrel for supporting said pair of lens-supporting rings in a manner that allows relative rotation and linear displacement of said pair of lens-supporting rings; a positioning recess formed on one of opposed surfaces of said pair of lens-supporting rings; and a follower projection formed on the other of said opposed surfaces, wherein said follower projection engages with said positioning recess both in said mutually close position and in said mutually distant position, to define a relative position of said pair of lens-supporting rings with respect to the optical axis of said pair of lens groups; and wherein at least three sets of said positioning recesses and said follower projections are provided on said pair of lens-supporting rings at different positions in a circumferential direction respectively, so that eccentricity between said pair of lens-supporting rings is eliminated when all of said projections are concurrently brought into engagement with corresponding said positioning recesses.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2000-288548 |
Sep 2000 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application relates to the following U.S. Patent Applications, all filed concurrently herewith on Sep. 24, 2001, and all of which are expressly incorporated herein by reference in their entireties: “ZOOM LENS MECHANISM” having attorney docket No. P21180, “ZOOM LENS MECHANISM” having attorney docket No. P21181, “REDUCTION GEAR MECHANISM” attorney docket No. P21183, “RING MEMBER SHIFT MECHANISM AND LENS GROUP SHIFT MECHANISM” having attorney docket No. P21184, “LENS BARREL” having attorney docket No. P21185, “LENS BARREL” having attorney docket No. P21186, “LENS BARREL” having attorney docket No. P21187, “LENS BARREL” having attorney docket No. P21188, “ZOOM LENS BARREL” having attorney docket No. P21190, and “LENS BARREL” having attorney docket No. P21192, each naming as inventors Hiroshi NOMURA et al.; and “LENS DRIVE CONTROL APPARATUS FOR ZOOM LENS SYSTEM HAVING A SWITCHING LENS GROUP” having attorney docket No. P21189 and naming as inventor Norio NUMAKO.