Claims
- 1. A zoom lens system comprising, from the object side to the image side:
- a positive first lens unit;
- a negative second lens unit;
- a positive third lens unit; and
- a negative fourth lens unit;
- and wherein air spaces between each lens unit vary during a zoom operation, and the zoom lens system fulfills the following conditions:
- 0.1<BFW/Y'<1.0
- 0.4<M2/M3<0.9
- 0.01<D3/fT<0.08
- wherein:
- BFW: back focal distance at the shortest focal length condition;
- Y': one-half the length of the diagonal picture plane;
- M2: the shifting amount of the second lens unit in accordance with zoom from the shortest focal length condition to the longest focal length condition;
- M3: the shifting amount of the third lens unit in accordance with zoom from the shortest focal length condition to the longest focal length condition;
- D3: the thickness of the third lens unit in the direction of the optical axis; and
- fT: the total focal length at the longest focal length condition.
- 2. A zoom lens system comprising, from the object side to the image side:
- a positive first lens unit;
- a negative second lens unit having an aspherical surface;
- a diaphragm;
- a positive third lens unit having an aspherical surface; and
- a negative fourth lens unit,
- wherein airspace between each lens unit varies during zooming, and
- wherein the zoom lens fuls the following condition:
- -0.02<.phi.2.multidot.(N'-N).multidot.d/dy.multidot.{x(y)-x.sub.0 (y)}<0.01
- wherein:
- .phi.2: the refractive power of the second lens unit;
- N': the refractive index of the image side medium of the aspherical surface of the second lens unit;
- N: the refractive index of the object side medium of the aspherical sure of the second lens unit;
- x(y): the surface configuration of the aspherical surface of the second lens unit; and
- x.sub.0 (y): the reference spherical surface configuration of the aspherical surface of the second lens unit;
- the values x(y) and x.sub.0 (y) are expressed by the following equations: ##EQU6## wherein: y: the height of the aspherical surface in the direction perpendicular to the optical axis;
- r: the reference radius of curvature of the aspherical surface;
- .epsilon.: the conic constant;
- Ai: the aspherical surface coefficient; and
- r: the paraxial radius of curvature of the aspherical surface (1/r=1r+2A.sub.2).
- 3. A zoom lens system as claimed in claim 2, wherein the zoom lens system fulfills the following condition:
- 0.1<.vertline.f2/fT.vertline.<0.4
- wherein:
- f2: the focal length of the second lens unit; and
- fT: the total system focal length at the longest focal length condition.
- 4. A zoom lens system comprising, from the object side to the image side:
- a positive first lens unit;
- a negative second lens unit having an aspherical surface;
- a diaphragm;
- a positive third lens unit having an aspherical surface; and
- a negative fourth lens unit,
- wherein airspace between each lens unit varies during zooming; and
- wherein the zoom lens system fulfills the following condition: ##EQU7## wherein: .phi.3: the refractive power of the third lens unit;
- N': the refractive index of the image side medium of the aspherical surface of the third unit;
- N: the refractive index of the object side medium of the aspherical surface of the third unit;
- x(y): the surface configuration of the aspherical surface of the third unit; and
- x.sub.0 (y) the reference spherical surface configuration of the asphefical surface of the third unit;
- the values x(y) and x.sub.0 are expressed by the following equations: ##EQU8## wherein: y: the height of the aspherical surface in the direction perpendicular to the optical axis;
- r: the reference radius of curvature of the aspherical surface;
- .epsilon.: the conic constant;
- Ai: the aspherical surface coefficient; and
- r: the paraxial radius of curvature of the aspherical surface ##EQU9##
- 5. A zoom lens system as claimed in claim 4, wherein the zoom lens system fulfills the following condition:
- 0.1<f3/fT<0.17
- wherein:
- f3: the focal length of the third lens unit;
- fT: the total focal length at the longest focal lendt condition.
- 6. A zoom lens system comprising, from the object side to the image side:
- a positive first lens unit;
- a negative second lens unit having an aspherical surface;
- a positive third lens unit having an aspherical surface; and
- a negative fourth lens unit;
- and wherein air space between each lens unit varies during a zooming operation, and wherein the zoom lens system fulfills the following condition:
- 0.05<(T23w-T23t)/fw<0.40
- wherein:
- T23w: the distance between the second lens unit and the third lens unit at the shortest focal length condition;
- T23t: the distance between the second lens unit and the third lens unit at the longest focal length condition;
- fw: the total system focal length at the shortest focal length condition.
- 7. A zoom lens system comprising, from the object side to the image side:
- a positive first lens unit, the positive first lens unit being moved during a zooming operation;
- a negative second lens unit having an aspherical surface;
- a positive third lens unit having an aspherical surface; and
- a negative fourth lens unit;
- and wherein air space between each lens unit varies during the zooming operation, and wherein the zoom lens system fulfills the following condition:
- 1.4<.beta.3w/.beta.3t<4.0
- wherein:
- .beta.3w: the lateral magnification of the third lens unit at the shortest focal length condition; and
- .beta.3t: the lateral magnification of the third lens unit at the longest focal length condition.
- 8. A zoom lens system comprising, from the object side to the image side:
- a positive first lens unit;
- a negative second lens unit having an aspherical surface;
- a positive third lens unit having an aspherical surface; and
- a negative fourth lens unit,
- and wherein air spaces between each lens unit vary during a zoom operation, and the zoom lens system films the following conditions: ##EQU10## wherein: BFW: back focal distance at the shortest focal length condition;
- Y': one-half the length of the diagonal picture plane;
- .phi.2: the refractive power of the second lens unit;
- N': the refractive index of the image side medium of the aspherical surface of the second lens unit;
- N: the refractive index of the object side medium of the aspherical surface of the second lens unit;
- x(y): the surface configuration of the aspherical surface of the second lens unit; and
- x.sub.0 (y): the reference spherical surface configuration of the asphefical surface of the second lens unit;
- the values x(y) and x.sub.0 (y) are expressed by the following equations: ##EQU11## wherein: y: the height of the aspherical source in the direction perpendicular to the optical axis;
- r: the reference radius of curvature of the aspherical surface;
- .epsilon.: the conic constant;
- Ai: the aspherical surface coefficient; and
- r: the paraxial radius of curvature of the aspherical surface ##EQU12##
- 9. A zoom lens system as claimed in claim 8, wherein the zoom lens system fulfills the following condition:
- 0.1<f2/fT<0.4
- wherein:
- f2: the focal length of the second lens unit;
- fT: the total focal length at the longest focal length condition.
- 10. A zoom lens system comprising, from the object side to the image side:
- a positive first lens unit;
- a negative second lens unit having an aspherical surface;
- a positive third lens unit having an aspherical surface; and
- a negative fourth lens unit;
- and wherein air spaces between each lens unit vary during a zoom operation, and the zoom lens system fulfills the following conditions: ##EQU13## wherein: BFW: back focal distance at the shortest focal length condition;
- Y.sup.1 : one-half the length of the diagonal picture plane;
- .phi.3: the refractive power of the third lens unit;
- N': the refractive index of the image side medium of the aspherical surface of the third lens unit;
- N: the refractive index of the object side medium of the aspherical surface of the third lens unit;
- x(y): the surface configuration of the aspherical surface of the third lens unit; and
- x.sub.0 (y): the reference spherical surface configuration of the aspherical surface of the third lens unit;
- the values x(y) and x.sub.0 (y) are expressed by the following equations: ##EQU14## wherein: y: the height of the aspherical surface in the direction perpendicular to the optical axis;
- r: the reference radius of curvature of the aspherical surface;
- .epsilon.: the conic constant;
- Ai: the aspherical surface coefficient; and
- r: the paraxial radius of curvature of the aspherical surface. ##EQU15##
- 11. A zoom lens system as claimed in claim 10, wherein the zoom lens system fulfills the following condition:
- 0.1<f3/fT<0.17
- wherein:
- f3: the focal length of the third lens unit;
- fT: the total focal length at the longest focal length condition.
Priority Claims (1)
Number |
Date |
Country |
Kind |
5-56053 |
Mar 1993 |
JPX |
|
RELATED APPLICATIONS
This is a continuation-in-part application of U.S. patent application Ser. No. 08/209,825 filed on Mar. 11, 1994 now abandoned.
US Referenced Citations (9)
Foreign Referenced Citations (6)
Number |
Date |
Country |
1179116 |
Jul 1989 |
JPX |
1179903 |
Jul 1989 |
JPX |
339920 |
Feb 1991 |
JPX |
3208004 |
Sep 1991 |
JPX |
3249614 |
Nov 1991 |
JPX |
4338910 |
Nov 1992 |
JPX |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
209825 |
Mar 1994 |
|