IP Library Granted Patent US 8,411,367
Granted Patent B2
US 8,411,367 · App. 13/065,048 · Granted Apr 2, 2013

Image forming optical system and electronic image pickup apparatus using the same

Inventors: Akitaka Nakagawa (Kokubunji, JP); Hisashi Goto (Tokyo, JP)
Assignee: Olympus Corporation
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Quick Facts
Patent No.
US 8,411,367
App. No.
13/065,048
Granted
Apr 2, 2013
Kind
B2
Abstract

A zoom lens including, in order from the object side to the image side, a first lens group including a positive refractive power, a second lens group having a negative refractive power, an image side lens group having a positive refractive power, wherein the distance between the first lens group and the second lens group changes during zooming, and a refractive optical element A, which has a positive refractive power when its object side surface and image side surface are exposed to air, is provided in the first lens group and located closest to the object side in the first lens group, and the refractive optical element A is cemented together with an optical element B. The Abbe constant νd and the relative partial dispersion θgF of the refractive optical element A satisfies certain conditions.

Claims (90)

1. An image forming optical system comprising, in order from the object side to the image side, a first lens group having a positive refracting power, a second lens group having a negative refracting power, and an image side lens group having a positive refracting power, wherein the distance between the first lens group and the second lens group changes during zooming, wherein

a cemented optical element C is provided in the first lens group,

the cemented optical element C comprises a refractive optical element A having a positive refracting power and an optical element B,

the refractive optical element A is located closest to the object side in the first lens group, and

the image forming optical system satisfies the following conditional expressions (4-1), (4-2), and (4-3):

ν d A <30  (4-1),

0.54 <θgF A <0.92  (4-2), and

| f B /f A |>0.08  (4-3),

where nd A , nC A , nF A , and ng A are the refractive indices of the refractive optical element A for the d-line, the C-line, the F-line, and the g-line respectively, νd A is the Abbe constant (nd A −1)/(nF A −nC A ) of the refractive optical element A, θgF A is the relative partial dispersion (ng A −nF A )/(nF A −nC A ) of the refractive optical element A, f A is the focal length of the refractive optical element A, and f B is the focal length of the optical element B.

2. The image forming optical system according to claim 1 , wherein the image forming optical system satisfies the following conditional expression (2):

| fG 1 /fG 2|>6.4  (2),

where fG 1 is the focal length of the first lens group, and fG 2 is the focal length of the second lens group.

3. The image forming optical system according to claim 1 , wherein

the refractive optical element A is located closest to the object side in the first lens group, and

the image forming optical system satisfies the following conditional expression (7):

0.8 <f A /fG 1<13.0  (7),

where f A is the focal length of the refractive optical element A, and fG 1 is the focal length of the first lens group.

4. The image forming optical system according to claim 1 , wherein the image forming optical system satisfies the following conditional expression (5):

0.4 <θhg A <1.2  (5),

where θhg A is the relative partial dispersion (nh A −ng A )/(nF A −nC A ) of the refractive optical element A with respect to the h-line, and nh A is the refractive index of the refractive optical element A for the h-line.

5. The image forming optical system according to claim 1 , wherein the image forming optical system comprises, in order from the object side to the image side, the first lens group having a positive refracting power, the second lens group having a negative refracting power, a stop, a third lens group having a positive refracting power, a fourth lens group having a positive refracting power, and a fifth lens group having a positive refracting power, wherein zooming is performed by changing the distances between adjacent lens groups in such a way that the distance between the first lens group and the second lens group is larger, the distance between the second lens group and the third lens group is smaller, and the distance between the third lens group and the fourth lens group is larger at the telephoto end than at the wide angle end.

6. The image forming optical system according to claim 1 , wherein the image forming optical system comprises, in order from the object side to the image side, the first lens group having a positive refracting power, the second lens group having a negative refracting power, a stop, a third lens group having a positive refracting power, a fourth lens group having a positive refracting power, and a fifth lens group having a positive refracting power, wherein zooming is performed by changing the distances between adjacent lens groups in such a way that the distance between the first lens group and the second lens group is larger, the distance between the second lens group and the third lens group is smaller, and the distance between the third lens group and the fourth lens group is larger at the telephoto end than at the wide angle end, and the distance between the fourth lens group and the fifth lens group satisfies the following conditional expression (20):

0 <TG 45 /WG 45 <5  (20),

where WG 45 is the distance between the fourth lens group and the fifth lens group at the wide angle end, and TG 45 is the distance between the fourth lens group and the fifth lens group at the telephoto end.

7. The image forming optical system according to claim 1 , further comprising an optical element B and satisfying the following conditional expression (6):

0 <θgF B −θgF BA <0.25  (6),

where nd B , nC B , nF B , and ng B are the refractive indices of the optical element B for the d-line, the C-line, the F-line, and the g-line respectively, νd B is the Abbe constant (nd B −1)/(nF B −nC B ) of the optical element B, θgF B is the relative partial dispersion (ng B −nF B )/(nF B −nC B ) of the optical element B, θgF BA is the effective relative partial dispersion of the refractive optical element A and the optical element B regarded as a single optical element and expressed by the following equation:

θ gF BA =f BA ×ν BA ×(θ gF A ×φ A /νd A +θgF B ×φ B /νd B ),

where f BA is the composite focal length of the optical element B and the refractive optical element A and expressed by the following equation:

1 /f BA =1 /f A +1 /f B ,

ν BA is the Abbe constant of the refractive optical element A and the optical element B regarded as a single optical element and expressed by the following equation:

ν BA =1/( f BA ×(φ A /νd A +φ B /νd B )),

φ A is the refracting power (φ A =1/f A ) of the refractive optical element A, φ B is the refracting power (φ B =1/f B ) of the optical element B, and φ BA is the composite refracting power (φ BA =1/f BA ) of the optical element B and the refractive optical element A.

8. The image forming optical system according to claim 1 wherein the image forming optical system satisfies the following conditional expression (8):

−15<( Ra+Rb )/( Ra−Rb )<−0.5  (8),

where Ra is the radius of curvature of the object side surface of the refractive optical element A, and Rb is the radius of curvature of the image side surface of the refractive optical element A.

9. An electronic image pickup apparatus comprising an image forming optical system and an image pickup element, wherein the image forming optical system is an image forming optical system according to claim 1 , and the apparatus satisfies the following conditional expression (3-2):

0<( Zb (3.3 a )− Za (3.3 a ))/( Zb (2.5 a )− Za (2.5 a ))<0.990  (3-2),

where fw is the focal length of the image forming optical system at the wide angle end, ft is the focal length of the image forming optical system at the telephoto end, IH is the largest image height on the image pickup element, Za(h) is the distance along the optical axis between the object side surface vertex of the refractive optical element A on the optical axis and a point on the object side surface of the refractive optical element A at height h, Zb(h) is the distance along the optical axis between the object side surface vertex of the refractive optical element A on the optical axis and a point on the image plane side surface of the refractive optical element A at height h, and a is a value defined by the following equation (3-1):

a ={( IH ) 2 ×log 10 ( ft/fw )}/ fw   (3-1).

10. The image forming optical system according to claim 1 , wherein the image forming optical system satisfies the following conditional expression (2):

| fG 1 /fG 2|>7.95  (2),

where fG 1 is the focal length of the first lens group, and fG 2 is the focal length of the second lens group.

11. An image forming optical system comprising, in order from the object side to the image side, a first lens group having a positive refracting power, a second lens group having a negative refracting power, and an image side lens group having a positive refracting power, wherein the distance between the first lens group and the second lens group changes during zooming, wherein

a refractive optical element A comprising a positive refracting power is provided in the first lens group, and

the image forming optical system satisfies the following conditional expressions (4-1), (4-2), and (2):

ν d A <30  (4-1),

0.54 <θgF A <0.92  (4-2), and

| fG 1 /fG 2|>6.4  (2),

where nd A , nC A , nF A , and ng A are the refractive indices of the refractive optical element A for the d-line, the C-line, the F-line, and the g-line respectively, νd A is the Abbe constant (nd A −1)/(nF A −nC A ) of the refractive optical element A, θgF A is the relative partial dispersion (ng A −nF A )/(nF A −nC A ) of the refractive optical element A, fG 1 is the focal length of the first lens group, and fG 2 is the focal length of the second lens group.

12. The image forming optical system according to claim 11 , wherein the image forming optical system satisfies the following conditional expression (2):

| fG 1 /fG 2|>7.95  (2),

where fG 1 is the focal length of the first lens group, and fG 2 is the focal length of the second lens group.

13. An image forming optical system comprising, in order from the object side to the image side, a first lens group having a positive refracting power, a second lens group having a negative refracting power, and an image side lens group having a positive refracting power, wherein the distance between the first lens group and the second lens group changes during zooming, wherein

a refractive optical element A comprising a positive refracting power is provided in the first lens group,

the refractive optical element A is located closest to the object side in the first lens group, and

the image forming optical system satisfies the following conditional expressions (4-1), (4-2), and (7):

ν d A <30  (4-1),

0.54 <θgF A <0.92  (4-2), and

0.8 <f A /fG 1<13.0  (7),

where nd A , nC A , nF A , and ng A are the refractive indices of the refractive optical element A for the d-line, the C-line, the F-line, and the g-line respectively, νd A is the Abbe constant (nd A −1)/(nF A −nC A ) of the refractive optical element A, θgF A is the relative partial dispersion (ng A −nF A )/(nF A −nC A ) of the refractive optical element A, f A is the focal length of the refractive optical element A, and fG 1 is the focal length of the first lens group.

14. The image forming optical system according to claim 13 , wherein the image forming optical system satisfies the following conditional expression (2):

| fG 1 /fG 2|>7.95  (2),

where fG 1 is the focal length of the first lens group, and fG 2 is the focal length of the second lens group.

15. An electronic image pickup apparatus comprising an image forming optical system and an image pickup element, wherein the image forming optical system comprises, in order from the object side to the image side, a first lens group having a positive refracting power, a second lens group having a negative refracting power, and an image side lens group having a positive refracting power, the distance between the first lens group and the second lens group changes during zooming, a refractive optical element A having a positive refracting power is provided in the first lens group, and the refractive optical element A satisfies the following conditional expression (3-2):

0<( Zb (3.3 a )− Za (3.3 a ))/( Zb (2.5 a )− Za (2.5 a ))<0.990  (3-2),

where fw is the focal length of the image forming optical system at the wide angle end, ft is the focal length of the image forming optical system at the telephoto end, IH is the largest image height on the image pickup element, Za(h) is the distance along the optical axis between the object side surface vertex of the refractive optical element A on the optical axis and a point on the object side surface of the refractive optical element A at height h, Zb(h) is the distance along the optical axis between the object side surface vertex of the refractive optical element A on the optical axis and a point on the image plane side surface of the refractive optical element A at height h, and a is a value defined by the following equation (3-1):

a ={( IH ) 2 ×log 10 ( ft/fw )}/ fw   (3-1).

16. The electronic image pickup apparatus according to claim 15 , wherein the electronic image pickup apparatus satisfies any one of the following conditional expressions (9-1a), (9-1b), (9-1c), (9-2a), and (9-2b):

1.0 <Tngl (0)/ Tbas (0)<12  (9-1a),

0.4 <Tnglw (0.7)/ Tbasw (0.7)<3  (9-1b),

0.2 <Tnglw (0.9)/ Tbasw (0.9)<1.5  (9-1c),

0<( Tnglw (0.7)/ Tbasw (0.7))/( Tngl (0)/ Tbas (0))<0.7  (9-2a), and

0<( Tnglw (0.9)/ Tbasw (0.9))/( Tngl (0)/ Tbas (0))<0.5  (9-2b),

where Tngl(0) is the thickness of the refractive optical element A on the optical axis, Tnglw(0.7) is the distance over which a ray having a ray height of 70% of the largest image height on the image pickup element at the wide angle end travels inside the refractive optical element A, Tnglw(0.9) is the distance over which a ray having a ray height of 90% of the largest image height on the image pickup element at the wide angle end travels inside the refractive optical element A, Tbas(0) is the thickness of the optical element B on the optical axis, Tbasw(0.7) is the distance over which a ray having a ray height of 70% of the largest image height on the image pickup element at the wide angle end travels inside the optical element B, and Tbasw(0.9) is the distance over which a ray having a ray height of 90% of the largest image height on the image pickup element at the wide angle end travels inside the optical element B.

17. The electronic image pickup apparatus according to claim 15 , wherein the electronic image pickup apparatus satisfies any one of the following conditional expressions (10-1a), (10-1b), (10-1c), (10-2a), and (10-2b):

1.0 <Tngl (0)/ Tbas (0)<12  (10-1a),

0.6 <Tnglt (0.7)/ Tbast (0.7)<4  (10-1b),

0.45 <Tnglt (0.9)/ Tbast (0.9)<3.0  (10-1c),

0<( Tnglt (0.7)/ Tbast (0.7))/( Tngl (0)/ Tbas (0))<0.9  (10-2a), and

0<( Tnglt (0.9)/ Tbast (0.9))/( Tngl (0)/ Tbas (0))<0.8  (10-2b),

where Tngl(0) is the thickness of the refractive optical element A on the optical axis, Tnglt(0.7) is the distance over which a ray having a ray height of 70% of the largest image height on the image pickup element at the telephoto end travels inside the refractive optical element A, Tnglt(0.9) is the distance over which a ray having a ray height of 90% of the largest image height on the image pickup element at the telephoto end travels inside the refractive optical element A, Tbas(0) is the thickness of the optical element B on the optical axis, Tbast(0.7) is the distance over which a ray having a ray height of 70% of the largest image height on the image pickup element at the telephoto end travels inside the optical element B, and Tbast(0.9) is the distance over which a ray having a ray height of 90% of the largest image height on the image pickup element at the telephoto end travels inside the optical element B.

18. The electronic image pickup apparatus according to claim 15 , wherein the electronic image pickup apparatus satisfies the following conditional expression (11a) or (11b):

0.5<( Tnglt (0.7)/ Tngl (0))<0.98  (11a), or

0.5<( Tnglt (0.9)/ Tngl (0))<0.97  (11b),

where Tngl(0) is the thickness of the refractive optical element A on the optical axis, Tnglt(0.7) is the distance over which a ray having a ray height of 70% of the largest image height on the image pickup element at the telephoto end travels inside the refractive optical element A, and Tnglt(0.9) is the distance over which a ray having a ray height of 90% of the largest image height on the image pickup element at the telephoto end travels inside the refractive optical element A.

19. The electronic image pickup apparatus according to claim 15 , wherein the electronic image pickup apparatus satisfies the following conditional expression (12a) or (12b):

0.5<( Tnglw (0.7)/ Tngl (0))<0.98  (12a), or

0.3<( Tnglw (0.9)/ Tngl (0))<0.95  (12b),

where Tngl(0) is the thickness of the refractive optical element A on the optical axis, Tnglw(0.7) is the distance over which a ray having a ray height of 70% of the largest image height on the image pickup element at the wide angle end travels inside the refractive optical element A, and Tnglw(0.9) is the distance over which a ray having a ray height of 90% of the largest image height on the image pickup element at the wide angle end travels inside the refractive optical element A.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2021
From: OLYMPUS CORPORATION
To: OM DIGITAL SOLUTIONS CORPORATION
Reel/Frame 058329/0766 →
CHANGE OF ADDRESS Recorded Jun 27, 2016
From: OLYMPUS CORPORATION
To: OLYMPUS CORPORATION
Reel/Frame 039344/0502 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2012
From: OLYMPUS IMAGING CORP.
To: OLYMPUS CORPORATION
Reel/Frame 028829/0168 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2011
From: NAKAGAWA, AKITAKA; GOTO, HISASHI
To: OLYMPUS IMAGING CORP.
Reel/Frame 026680/0595 →
Priority Claims (2)
JP 2009-115392 · May 12, 2009 · national
JP 2010-085715 · Apr 2, 2010 · national
Continuity (1)
Related Publication 20110286104A1 · Nov 24, 2011