IP Library › Granted Patent US 8,526,124
Granted Patent B2
US 8,526,124 · App. 13/272,331 · Granted Sep 3, 2013

Optical system with long focal length and optical apparatus having the same

Inventor: Satoshi Maetaki (Utsunomiya, JP)
Assignee: Canon Kabushiki Kaisha
G02B13/18
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Quick Facts
Patent No.
US 8,526,124
App. No.
13/272,331
Granted
Sep 3, 2013
Kind
B2
Abstract

An optical system, in order from an object side to an image side, includes a first lens unit having a positive refractive power, a second lens unit having a negative refractive power, and a third lens unit having a positive or negative refractive power. The first lens unit is configured by a first partial lens unit and a second partial lens unit each having a positive refractive power. The first partial lens unit is configured by a positive single lens, and has at least one aspherical surface. The second partial lens unit is configured by a positive lens and a negative lens, and has a diffraction optical surface of a diffraction optical element rotationally symmetric with reference to an optical axis direction. The second lens unit is a focus lens unit that is movable in the optical axis direction. And a paraxial lateral magnification βasph meets a predetermined condition.

Claims (39)

1. An optical system comprising:

a first lens unit having a positive refractive power;

a second lens unit having a negative refractive power; and

a third lens unit having a positive or negative refractive power, the first, second, and third lens units being disposed in order from an object side to an image side,

wherein the first lens unit is configured by a first partial lens unit and a second partial lens unit each having a positive refractive power,

wherein the first partial lens unit is configured by a positive single lens, the first partial lens unit having at least one aspherical surface,

wherein the second partial lens unit is configured by a positive lens and a negative lens, the second partial lens unit having a diffraction optical surface of a diffraction optical element that is rotationally symmetric with reference to an optical axis,

wherein the second lens unit is a focus lens unit that is movable in a direction of the optical axis, and

wherein the following condition is met:

0 <βasph< 2.0,

where βasph is a paraxial lateral magnification of a partial optical system between a final surface of the optical system and a lens surface that is on the image side, adjacent to an aspherical surface disposed closest to the object side when the optical system is focused at infinity.

2. The optical system according to claim 1 , wherein the following condition is met:

0 <{D/ 2 −Lab ×( D/ 2 /f 1 a )}/( D/ 2)<0.9,

where f is a focal length of a total system of the optical system, Fno is an aperture ratio of the optical system, f 1 a is a focal length of the first partial lens unit, Lab is an interval between the first partial lens unit and the second partial lens unit on an optical axis, and D is equal to f/Fno.

3. The optical system according to claim 2 , wherein the following condition is met:

0 <{D/ 2−( Lab+dsag )×( D/ 2 /f 1 a )}/( D/ 2)<0.8,

where dsag is a difference of positions of a center part and an effective diameter of a surface closest to the object side of the second partial lens unit in the direction of the optical axis, which indicates a positive value in a direction from the object side to the image side along the optical axis.

4. The optical system according to claim 1 , wherein following expression is met:

0.5 <f 1 a/f <2.0,

where f 1 a is a focal length of the first partial lens unit, and f is a focal length of a total system of the optical system.

5. The optical system according to claim 1 , wherein following expression is met:

0<Φ DOE ×f< 0.050,

where Φ DOE is a power of the diffraction optical element that is disposed in the second partial lens unit of the first lens unit, and f is a focal length of a total system of the optical system.

6. The optical system according to claim 1 , wherein the surface closest to the object side of the first partial lens unit is an aspherical surface, and a surface at the image side is a convex surface facing the image side.

7. The optical system according to claim 1 , wherein the optical system is configured to form an image on an photoelectric conversion element.

8. An optical apparatus comprising:

a photoelectric conversion element; and

an optical system comprising:

a first lens unit having a positive refractive power;

a second lens unit having a negative refractive power; and

a third lens unit having a positive or negative refractive power, the first, second, and third lens units being disposed in order from an object side to an image side,

wherein the first lens unit is configured by a first partial lens unit and a second partial lens unit each having a positive refractive power,

wherein the first partial lens unit is configured by a positive single lens, the first partial lens unit having at least one aspherical surface,

wherein the second partial lens unit is configured by a positive lens and a negative lens, the second partial lens unit having a diffraction optical surface of a diffraction optical element that is rotationally symmetric with reference to an optical axis,

wherein the second lens unit is a focus lens unit that is movable in a direction of the optical axis, and

wherein the following condition is met:

0 <βasph <2.0,

where βasph is a paraxial lateral magnification of a partial optical system between a final surface of the optical system and a lens surface that is on the image side, adjacent to an aspherical surface disposed closest to the object side when the optical system is focused at infinity, and

wherein the photoelectric conversion element configured to receive light of an image formed by the optical system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 30, 2012
From: MAETAKI, SATOSHI
To: CANON KABUSHIKI KAISHA
Reel/Frame 027613/0584 →
Priority Claims (1)
JP 2010-233470 · Oct 18, 2010 · national
Continuity (1)
Related Publication 20120092779A1 · Apr 19, 2012