Zoom lens and imaging apparatus
09880374 ยท 2018-01-30
Assignee
Inventors
Cpc classification
G02B15/163
PHYSICS
G02B27/646
PHYSICS
International classification
G02B15/16
PHYSICS
G02B13/00
PHYSICS
G02B15/20
PHYSICS
G02B27/64
PHYSICS
Abstract
The present invention provides a zoom lens that is compact in general and has an F-number to implement brightness even in the telephoto end side, and an imaging apparatus equipped with the zoom lens. The zoom lens includes, in order from an object side: a first lens group having positive refractive power; a second lens group having positive refractive power; a third lens group having negative refractive power; and a fourth lens group having positive refractive power. At the time of zooming from the wide-angle end state to the telephoto end state, the third lens group moves so that the distance between the second lens group and the third lens group increases, and the distance between the third lens group and the fourth lens group decreases.
Claims
1. A zoom lens comprising, in order from an object side: a first lens group having positive refractive power; a second lens group having positive refractive power; a third lens group having negative refractive power; and a fourth lens group having positive refractive power, wherein at a time of zooming from a wide-angle end state to a telephoto end state, the third lens group moves so that a distance between the second lens group and the third lens group increases and a distance between the third lens group and the fourth lens group decreases, and a moving distance of each of the lens groups based on an image plane from the wide-angle end state to the telephoto end state satisfies a following conditional formula (1) when movement to the object side is positive and an image side is negative:
4.500m1/m30.000(1) where m1: the moving distance of the first lens group, m3: the moving distance of the third lens group, and wherein the zoom lens also includes a focus lens group that performs focusing and a following conditional formula (5) is satisfied:
0.500ff/(fwft)0.100(5) where ff: focal length of the focus lens group, fw: focal length of the zoom lens in the wide-angle end state, ft: focal length of the zoom lens in the telephoto end state.
2. The zoom lens according to claim 1, wherein a following conditional formula (2) is satisfied:
0.700f12w/fw2.300(2) where f12w: composite focal length of the first lens group and the second lens group in the wide-angle end state, fw: focal length of the zoom lens in the wide-angle end state.
3. The zoom lens according to claim 1, wherein a following conditional formula (3) is satisfied:
0.800f1/(fwft)2.000(3) where f1: focal length of the first lens group, fw: focal length of the zoom lens in the wide-angle end state, ft: focal length of the zoom lens in the telephoto end state.
4. The zoom lens according to claim 1, wherein a following conditional formula (4) is satisfied:
0.500|(ft/fw)/(b3t/b3w)|2.000(4) where ft: focal length of the zoom lens in the telephoto end state, fw: focal length of the zoom lens in the wide-angle end state, b3t: lateral magnification of the third lens group in the telephoto end state, b3w: lateral magnification of the third lens group in the wide-angle end state.
5. The zoom lens according to claim 1, wherein a camera shake correction lens group which corrects camera shake by moving vertically to an optical axis is included, and a following conditional formula (6) is satisfied:
0.100|fv|/ft0.500(6) where fv: focal length of the camera shake correction lens group, ft: focal length of the zoom lens in the telephoto end state.
6. The zoom lens according to claim 5, wherein at a time of zooming, the camera shake correction lens group is fixed in an optical axis direction with respect to the image plane.
7. An imaging apparatus comprising: a zoom lens; and an image pickup element configured to convert a formed optical image into an electric signal, wherein the zoom lens comprises, in order from an object side, a first lens group having positive refractive power, a second lens group having positive refractive power, a third lens group having negative refractive power, and a fourth lens group having positive refractive power, and in the zoom lens, at a time of zooming from a wide-angle end state to a telephoto end state, the third lens group moves so that a distance between the second lens group and the third lens group increases, and a distance between the third lens group and the fourth lens group decreases, and a moving distance of each of the lens groups based on an image plane from the wide-angle end state to the telephoto end state satisfies a following conditional formula (1) when movement to the object side is positive and an image side is negative:
4.500m1/m30.000(1) where m1: the moving distance of the first lens group, m3: the moving distance of the third lens group, and wherein the zoom lens also includes a focus lens group that performs focusing and a following conditional formula (5) is satisfied:
0.500ff/(fwft)0.100(5) where ff: focal length of the focus lens group, fw: focal length of the zoom lens in the wide-angle end state, ft: focal length of the zoom lens in the telephoto end state.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(29) Embodiments of the zoom lens of the present invention will now be described.
(30) A zoom lens according to an aspect of the present invention is constituted by, in order from an object side: a first lens group having positive refractive power; a second lens group having positive refractive power; a third lens group having negative refractive power; and a fourth lens group having positive refractive power. At the time of zooming from a wide-angle end state to a telephoto end state, the third lens group moves so that the distance between the second lens group and the third lens group increases, and the distance between the third lens group and the fourth lens group decreases. The moving distance of each lens group based on the image plane from the wide-angle end state to the telephoto end state satisfies the following conditional formula (1) when movement to the object side is positive and the image side is negative:
4.500m1/m30.000(1)
where
m1: moving distance of the first lens group
m3: moving distance of the third lens group.
(31) In other words, the zoom lens according to this aspect of the present invention has a zoom lens configuration of at least positive, positive, negative and positive in order from the object side, whereby more positive lens groups are disposed on the object side. As a result, creating a telephoto lens becomes easier and the ratio of the total lens length with respect to the focal length can be decreased, that is, downsizing becomes possible. The zoom lens according to this aspect of the invention is especially suitable for a telephoto zoom lens, but there can also be provided a zoom lens, the total length of which is short for any focal length region.
(32) The conditional expression (1) specifies the ratio of the moving distance of the third lens group and the moving distance of the first lens group. If the value of this ratio is below the lower limit, the moving distance of the first lens group increases. Since the first lens group has a wider diameter and heavier weight than the other lens groups, a lens driving mechanism having a robust driving force is required to largely move this first lens group, which makes downsizing of the zoom lens difficult. If the value of this ratio exceeds the upper limit, on the other hand, the first lens group and the third lens group move in the same direction. If the first lens group and the third lens group move toward the object, the fourth lens group also moves toward the object. This makes it difficult to maintain an F-number to implement brightness in the telephoto end side. If the first lens group and the third lens group move toward the image, it becomes difficult to increase the zoom ratio.
(33) The moving distance of each lens group based on the image plane from the wide-angle end state to the telephoto end state means the moving distances of each of the first lens group to the fourth lens group from the wide-angle end position to the telephoto end position, at the time of zooming from a wide-angle end state to a telephoto end state.
(34) The conditional formula (1) is more preferably
4.400m1/m30.000
and is even more preferably
4.300m1/m30.000.
(35) In the zoom lens according to an aspect of the present invention, it is preferable that the conditional formula (2) is satisfied:
0.700f12w/fw2.300(2)
where
f12w: composite focal length of the first lens group and the second lens group in the wide-angle end state
fw: focal length in the wide-angle end state.
(36) The conditional formula (2) specifies the ratio of the composite focal length of the first lens group and the second lens group in the wide-angle end state with respect to the focal length in the wide-angle end state. If both the first lens group and the second lens group are positive lens groups, and if the power of both lens groups is increased, then the total length of the optical system can be decreased, however correction of aberrations becomes difficult, therefore the conditional formula (2) specifies an optimum condition.
(37) If this value is below the lower limit, power of the first lens group and the second lens group becomes strong in the wide-angle end state and correction of aberrations becomes difficult, and as a result it becomes difficult to correct various aberrations well, including longitudinal chromatic aberration, lateral chromatic aberration and coma aberration, in both the first lens group and the second lens group. If this value exceeds the upper limit, on the other hand, power of the first lens group and the second lens group becomes weak in the wide-angle end state, and creating a telephoto lens becomes difficult, therefore it becomes difficult to decrease the total length of the zoom lens, particularly in the wide-angle end state.
(38) The conditional formula (2) is more preferably
0.800f12w/fw2.100
and is even more preferably
0.900f12w/fw1.900.
(39) In the zoom lens according to an aspect of the present invention, it is preferable that the conditional formula (3) is satisfied:
0.800f1/(fwft)2.000(3)
where
f1: focal length of the first lens group
ft: focal length in the telephoto end state.
(40) The conditional formula (3) specifies the ratio of the focal length of the first lens group with respect to the effective focal length of the entire zoom lens. If the power of the first lens group, which is a positive lens group, is increased, the total length of the zoom lens can be decreased, however it becomes difficult to correct aberrations, therefore the conditional formula (3) specifies an optimum condition.
(41) If this value is below the lower limit, the power of the first lens group increases, and it becomes difficult to correct aberrations, leading to the difficulty of correcting such aberrations as longitudinal chromatic aberration, lateral chromatic aberration and coma aberration well in the first lens group. If this value exceeds the upper limit, the power of the first lens becomes weak, and creating a telephoto lens becomes difficult, and as a result, it becomes difficult to decrease the total length.
(42) The conditional formula (3) is more preferably
1.000f1/(fwft)1.800
and is even more preferably
1.200f1/(fwft)1.600.
(43) In the zoom lens according to an aspect of the invention, it is preferable that the following conditional formula (4) is satisfied:
0.500|(ft/fw)/(b3t/b3w)|2.000(4)
where
b3t: lateral magnification of the third lens group in the telephoto end state
b3w: lateral magnification of the third lens group in the wide-angle end state.
(44) The conditional formula (4) specifies the zoom ratio of the entire optical system with respect to the magnification change of the third lens group. In the zoom lens, according to this aspect of the present invention, the magnification change caused by the movement of the third lens group is used for changing the zoom ratio in order to utilize the magnification change effectively. As a result, more lens groups can be fixed with respect to the image plane at the time of zooming. In other words, compared with conventional zoom lenses where more lens groups move at the time of zooming, the zoom mechanism can be simplified and downsized, and deterioration of designed performance, which is generated after assembly due to the influence of relative decentering of each lens group, can be minimized. The conditional formula (4) specifies the optimum condition of the magnification change of the third lens group.
(45) If this value is below the lower limit, it means that there is a lens group, other than the third lens group, that decreases the magnification at the time of zooming from the wide-angle end state to the telephoto end state, hence decreasing the number of lens groups or number of lenses and downsizing become difficult. If this value exceeds the upper limit, on the other hand, a lens group, other than the third lens group, that increases the magnification, is required, hence more lens groups must be moved at the time of zooming, and the moving distance also increases, which makes it difficult to implement downsizing and lighter weight.
(46) The conditional formula (4) is more preferably
0.650|(ft/fw)/(b3t/b3w)|1.700
and is even more preferably
0.800|(ft/fw)/(b3t/b3w)|1.500.
(47) In the zoom lens according to an aspect of the present invention, it is preferable that a focus lens group, which performs focusing, is included, and the following conditional formula (5) is satisfied:
0.500ff/(fwft)0.100(5)
where
ff: focal length of the focus lens group.
(48) The conditional formula (5) specifies the ratio of the focal length of the focus lens group with respect to the effective focal length of the entire zoom lens.
(49) If this value is below the lower limit, the power of the focus lens group becomes strong, and more lens groups must be used for correcting aberrations, hence downsizing and lighter weight cannot be implemented for a focus lens group. If this value exceeds the upper limit, on the other hand, the power of the focus lens group becomes weak, and the moving distance of the lenses at the time of focusing increases, which makes it difficult to decrease the total length of the optical system.
(50) The focus lend group may consist of at least a lens included in one of the first to the fourth lens groups or at least a lens included in any other lens group than the first to the fourth lens groups, for example, the fifth lens group. Namely, the focus lens group is not limited herein.
(51) The conditional formula (5) is more preferably
0.400ff/(fwft)0.150
and is even more preferably
0.350ff/(fwft)0.180.
(52) In the zoom lens according to an aspect of the present invention, it is preferable that a camera shake correction lens group, which corrects camera shake by moving vertically to the optical axis, is included, and the following conditional formula (6) is satisfied;
0.100|fv|/ft0.500(6)
where
fv: focal length of the camera shake correction lens group.
(53) The conditional formula (6) specifies the ratio of the focal length of the camera shake correction lens group with respect to the focal length in the telephoto end state.
(54) If this value is below the lower limit, the power of the camera shake correction lens group becomes strong and more lenses must be used for correcting aberrations, hence downsizing and lighter weight cannot be implemented for the camera shake correction lens group. If this value exceeds the upper limit, on the other hand, the power of the camera shake correction lens group becomes weak, and the moving distance of the lenses at the time of correcting camera shake increases, which makes it difficult to decrease the outer diameter of the zoom lens.
(55) The camera shake correction lens group may consist of at least a lens included in one of the first to the fourth lens groups or at least a lens included in any other lens group than the first to the fourth lens groups, for example, the fifth lens group. Namely, the camera shake correction lens group is not limited herein.
(56) The conditional formula (6) is more preferably
0.130|fv|/ft0.400
and is even more preferably
0.160|fv|/ft0.300.
(57) In the zoom lens, according to an aspect of the present invention, it is preferable that the camera shake correction lens group is fixed with respect to the image plane at the time of zooming.
(58) The camera shake correction lens group, which is substantially integrated with a camera shake correction mechanism component, is large and heavy. Therefore it is preferable that the camera shake correction lens group is a lens group that is fixed with respect to the image plane at the time of zooming, or is a part of such a lens group. If this large and heavy camera shake correction mechanism component is moved at the time of zooming, the zoom mechanism becomes complicated and large. If the camera shake correction lens group is a lens group that is fixed with respect to the image plane in the optical axis direction at the time of zooming, or is a part of such a lens group, then the size of the camera shake correction mechanism component in the outer diameter direction in particular can be decreased.
(59) An imaging apparatus according to an aspect of the present invention is constituted by: a zoom lens; and an image pickup element configured to convert a formed optical image into electric signals. The zoom lens is constituted by, in order from an object side: a first lens group having positive refractive power; a second lens group having positive refractive power; a third lens group having negative refractive power; and a fourth lens group having positive refractive power. At the time of zooming from a wide-angle end state to a telephoto end state, the third lens group moves so that the distance between the second lens group and the third lens group increases, and the distance between the third lens group and the fourth lens group decreases. The moving distance of each lens group based on the image plane from the wide-angle end state to the telephoto end state satisfies the following conditional formula (1) when the object side is positive and the image side is negative:
4.500m1/m30.000(1)
where
m1: moving distance of the first lens group
m3: moving distance of the third lens group.
(60) The imaging apparatus configured like this is an apparatus having excellent image performance and good usability, effectively utilizing the compactness of the zoom lens and the F-number to implement brightness even in the telephoto end side.
(61) In the zoom lens, according to an aspect of the present invention, at the time of zooming from the wide-angle end state to the telephoto end state, the distance between the first lens group and the second lens group increases. This change of the distance between the first lens group and the second lens group at the time of zooming is not a requirement of the zoom lens of the present invention.
(62) In the embodiment, the F-number in the wide-angle end state and the F-number in the telephoto end state are the same. However, the zoom lens can be downsized in the diameter direction if the F-numbers are set such that the telephoto end side become darker than the wide-angle end side. Instead, the F-numbers may be set such that the telephoto end side becomes brighter than the wide-angle end side. These are all included in the present invention.
(63) In terms of the effect of correcting chromatic aberrations, it is preferable that the second lens group includes at least one positive lens, and this positive lens satisfies:
2p55
where 2p denotes an Abbe number of at least one positive lens included in the second lens group based on the d-line.
(64) Embodiments of the present invention will now be described with reference to the drawings.
(65) In the table of each embodiment, r indicates a radius of curvature, d indicates a lens thickness or lens distance, nd indicates a refractive index at the d-line, and d indicates an Abbe number based on the d-line.
(66) An aspherical surface is defined by the following expression:
z=ch.sup.2/[1+{1(1+k)c.sup.2h.sup.2}.sup.1/2]+A4h.sup.4+A6h.sup.6+A8h.sup.8+A10h.sup.10 . . .
(where c denotes a curvature (1/r), h denotes a height from the optical axis, k denotes a conical coefficient, and A4, A6, A8, A10 . . . denotes an aspherical coefficient of each degree).
(67) In each graph of longitudinal aberration, spherical aberration (SA (mm)), astigmatism (AST (mm)) and distortion (DIS (%)) are shown in order from the left. In the graph of aspherical aberration, the ordinate indicates the F-number (FNO in the graph), the solid line indicates the characteristic at the d line (d-line), the dotted line indicates characteristic at the g line (g-line), and the broken line indicates the characteristic at the C line (C-line). In the graph of astigmatism, the ordinate indicates an angle of view (W in the graph), the solid line indicates the characteristic on the sagittal plane (S in the graph), and the broken line indicates the characteristic on the meridional plane (M in the graph). In the graph of distortion, the ordinate indicates an angle of view (W in the graph).
(68) In each graph of lateral aberration, the three graphs on the left show a basic state when camera shake correction is not performed in the telephoto end state, and the three graphs on the right show camera shake corrected state in the telephoto end state when the first camera shake correction lens VC1 of the fourth lens group 4 was moved by a predetermined distance in the vertical direction to the optical axis. In each graph of lateral aberration in the basic state, the top graph indicates the lateral aberration at an image point that is 70% of the maximum image height, the middle graph indicates the lateral aberration at an axial image point, and the bottom graph indicates the lateral aberration at an image point that is 70% of the maximum image height.
(69) In each graph of lateral aberration in the camera shake corrected state, the top graph indicates the lateral aberration at an image point that is 70% of the maximum image height, the middle graph indicates the lateral aberration at an axial image point, and the bottom graph indicates the lateral aberration at an image point that is 70% of the maximum image height. In each graph of lateral aberration, the abscissa indicates a distance from the principal ray on the pupil surface, and the solid line indicates the characteristic at the d line (d-line), the dotted line indicates the characteristic at the g line (g-line), and the broken line indicates the characteristic at the C line (C-line).
(70) According to the zoom lens system of each embodiment, the moving distance of the first camera shake correction lens VC1 of the fourth lens group 4 in the vertical direction to the optical axis in the telephoto end state, when the camera shake is corrected, is as follows.
(71) Embodiment 1 0.604 mm
(72) Embodiment 2 0.348 mm
(73) Embodiment 3 0.448 mm
(74) Embodiment 4 0.409 mm
(75) Embodiment 5 0.658 mm
(76) In the telephoto end state where the photographing distance is , the image decentration amount, when the zoom lens system is inclined 0.3, is the same as the image decentration amount when the camera shake correction lens group moves in parallel with the vertical direction to the optical axis by each value mentioned above.
(77) As clearly shown by each graph of lateral aberration related to camera shake correction using the first camera shake correction lens VC1, symmetry of lateral aberration at the axial image point is good. In comparison with the lateral aberration at the +70% image point with the 70% image point in the basic state, both of these cases have a small degree of curvature and almost the same inclination of the aberration curve, that is, the decentration coma aberration and decentration astigmatism are small. This means that sufficient image forming performance is implemented even in the camera shake corrected state.
(78) If the camera shake correction angle of the zoom lens system is the same, the parallel moving distance required for camera shake correction decreases as the focal length of the entire zoom lens system decreases. Therefore regardless of the zoom position, camera shake can be sufficiently corrected for a camera shake correction angle not exceeding 0.3 without dropping the image forming performance. Moreover, the camera shake correction angle can be larger than 0.3, if the parallel moving distance of the camera shake correction lens in the telephoto end state is applied to the wide-angle end state and the intermediate focal length state.
(79) The camera shake correction lens according to Embodiments 1 to 4 is disposed in the fourth lens group, but the position of the camera shake correction lens is not limited to the fourth lens group. The effect of the camera shake correction can be demonstrated well even if the camera shake correction lens is disposed in a lens group other than the fourth lens group. In Embodiment 1 and 2, a second camera shake correction lens VC2, which is used instead of the first camera shake correction lens VC1, is shown in
(80) Embodiment 1 0.270 mm
(81) Embodiment 2 0.193 mm
(82) In the telephoto end state where the photographing distance is , the image decentration amount, when the zoom lens system is inclined by 0.05, is the same as the image decentration amount when the camera shake correction lens moves in parallel with the vertical direction to the optical axis by each value mentioned above.
(83) As clearly shown by each graph of lateral aberration related to camera shake correction using the second camera shake correction lens VC2, symmetry of lateral aberration at the axial image point is good. In comparison with the lateral aberration at the +70% image point with the 70% image point in the basic state, both of these cases have a small degree of curvature and almost the same inclination of the aberration curve, that is, decentration coma aberration and decentration astigmatism are minimal. This means that a sufficient image forming performance is implemented even in the camera shake correction state.
(84) As described above, according to the embodiment of the present invention, camera shake correction can be performed without dropping the image forming characteristic, no matter which lens group or which part of a lens group the camera shake correction is disposed.
Embodiment 1
(85) A zoom lens according to Embodiment 1 will be described with reference to the drawings.
(86) As depicted in
(87) TABLE-US-00001 TABLE 1 Surface data Surface number r d nd vd 1 120.000 2.000 1.8340 37.35 2 57.239 9.276 1.4970 81.61 3 320.539 0.200 4 73.168 8.392 1.4370 95.10 5 3965.989 d5 6 1541.496 2.390 1.8467 23.78 7 170.858 d7 8 492.161 1.200 1.8348 42.72 9 27.046 2.455 10 36.916 1.200 1.5168 64.20 11 21.061 3.879 1.7618 26.61 12 68.978 2.509 13 44.669 1.200 1.9004 37.37 14 332.526 d14 15 56.572 3.085 1.9108 35.25 16 211.213 2.000 17 12.559 (Aperture stop) 18 34.445 5.018 1.4970 81.61 19 32.165 1.500 1.9212 23.96 20 41.507 2.918 21* 44.633 3.964 1.5831 59.46 22* 63.990 4.011 23 140.427 3.065 2.0006 25.46 24 71.525 d24 25 54.961 2.899 1.8467 23.78 26 211.629 1.000 1.9108 35.25 27 21.897 3.828 28 45.718 1.200 1.4970 81.61 29 96.685 d29 30 186.962 4.049 1.8467 23.78 31 69.978 0.200 32 65.001 1.500 1.8348 42.72 33 35.194 6.473 34 24.851 1.500 1.8467 23.78 35 30.996 24.383 36 2.500 1.5168 64.20 37 1.000 *indicates aspherical surface
(88) TABLE-US-00002 TABLE 2 Aspherical data (aspherical coefficient is 0.00 if not indicated) Surface number k A4 A6 A8 A10 21 0.0000E+00 6.1788E06 3.7337E08 3.3864E10 1.2294E12 22 0.0000E+00 1.5086E06 4.6567E08 3.3627E10 1.2105E12
(89) TABLE-US-00003 TABLE 3 Various data Zoom ratio: 2.713, image height: 21.633 Wide angle Intermediate Telephoto Focal length 71.847 119.965 194.907 F-number 4.120 4.120 4.120 Half angle of view 15.900 9.349 5.764 Total lens length 160.000 189.533 207.221 Back focus 27.030 27.030 27.030 d5 2.000 31.533 49.221 d7 2.000 11.136 19.417 d14 19.417 10.281 2.000 d24 6.818 6.598 3.000 d29 6.412 6.632 10.230
(90) TABLE-US-00004 TABLE 4 Zoom lens group data Lens First configuration Lens moving Group surface Focal length length distance 1 1 179.508 19.868 47.221 2 6 181.782 2.390 0.000 3 8 30.288 12.443 17.417 4 15 34.012 38.119 0.000 5 25 32.155 8.927 3.818 6 30 1493.890 13.722 0.000
(91) TABLE-US-00005 TABLE 5 Magnification of zoom lens group (from front to rear) Wide Group First surface angle Intermediate Telephoto 1 1 0.000 0.000 0.000 2 6 0.520 0.568 0.601 3 8 0.599 0.925 1.643 4 15 0.532 0.526 0.435 5 25 2.618 2.620 2.736 6 30 0.924 0.924 0.924
Embodiment 2
(92) A zoom lens according to Embodiment 2 will be described with reference to the drawings.
(93) As depicted in
(94) TABLE-US-00006 TABLE 6 Surface data Surface number r d nd vd 1 137.195 2.000 1.8042 46.50 2 53.836 8.857 1.4970 81.61 3 1361.666 0.200 4 80.735 7.575 1.4370 95.10 5 245.237 d5 6 187.353 1.500 1.8000 29.84 7 32.151 4.633 1.9537 32.32 8 156.561 d8 9 1002.391 1.200 1.8348 42.72 10 24.352 3.225 11 26.610 4.074 1.9212 23.96 12 101.611 1.200 1.8061 40.73 13 35.117 2.923 14 35.554 1.233 1.9004 37.37 15 570.719 d15 16 59.462 3.163 1.9108 35.25 17 90.336 2.000 18 8.042 (Aperture stop) 19 32.198 5.422 1.4970 81.61 20 31.031 1.500 1.9212 23.96 21 41.197 2.953 22* 42.146 4.358 1.5831 59.46 23* 44.940 7.002 24 134.487 2.649 2.0006 25.46 25 86.916 3.524 26 49.222 4.127 1.8467 23.78 27 93.877 1.000 1.9108 35.25 28 25.000 1.805 29 132.747 1.000 1.9108 35.25 30 46.194 9.428 31 99.159 4.553 1.6477 33.84 32 61.910 0.388 33 221.563 5.513 1.4970 81.61 34 26.088 1.200 1.6385 55.45 35 56.870 31.770 36 2.500 1.5168 64.20 37 1.000 *indicates aspherical surface
(95) TABLE-US-00007 TABLE 7 Aspherical data (aspherical coefficient is 0.00 if not indicated) Surface number k A4 A6 A8 A10 22 0.0000E+00 8.4644E06 1.3698E08 1.9828E10 9.3027E13 23 0.0000E+00 2.1489E06 2.6950E08 2.2427E10 1.0171E12
(96) TABLE-US-00008 TABLE 8 Various data Zoom ratio: 2.037, image height: 21.633 Wide angle Intermediate Telephoto Focal length 71.778 100.010 146.226 F-number 4.120 4.120 4.120 Half angle of view 16.052 11.265 7.662 Total lens length 160.000 181.642 193.644 Back focus 34.416 34.416 34.416 d5 4.477 26.116 38.094 d8 2.000 4.884 10.004 d15 10.004 7.121 2.000
(97) TABLE-US-00009 TABLE 9 Zoom lens group data Lens configuration Lens moving Group First surface Focal length length distance 1 1 144.478 18.632 33.617 2 6 150.719 6.133 0.000 3 9 20.731 13.856 8.004 4 16 26.949 69.629 0.000
(98) TABLE-US-00010 TABLE 10 Magnification of zoom lens group (from front to rear) Group First Surface Wide angle Intermediate Telephoto 1 1 0.000 0.000 0.000 2 6 0.533 0.577 0.605 3 9 0.486 0.627 0.873 4 16 1.916 1.912 1.916
Embodiment 3
(99) A zoom lens according to Embodiment 3 will be described with reference to the drawings.
(100) As depicted in
(101) TABLE-US-00011 TABLE 11 Surface data Surface number r d nd vd 1 125.386 2.000 1.9537 32.32 2 79.149 7.818 1.4970 81.61 3 601.791 0.200 4 86.028 7.780 1.4370 95.10 5 2138.421 d5 6 76.177 3.000 1.6727 32.17 7 92.988 d7 8 45.912 1.200 1.9108 35.25 9 24.718 7.954 10 164.311 1.200 1.4970 81.61 11 26.383 3.464 1.9212 23.96 12 80.965 3.234 13 43.872 1.200 1.8830 40.81 14 216.986 d14 15 38.298 3.829 2.0010 29.13 16 2392.431 2.846 17 2.309 (Aperture stop) 18 28.810 5.826 1.5928 68.62 19 50.541 1.500 2.0006 25.46 20 26.515 3.289 21* 30.151 4.824 1.4971 81.56 22* 42.585 0.200 23 109.437 1.500 1.9229 20.88 24 256.491 d24 25 125.044 3.812 1.8467 23.78 26 23.647 1.000 2.0010 29.13 27 37.585 6.121 28 35.133 9.058 1.6230 58.12 29 33.587 3.958 30 74.529 3.773 1.8467 23.78 31 53.237 1.388 32 29.275 1.500 1.7725 49.62 33 29.381 d33 34 2.500 1.5168 64.20 35 1.000 *indicates aspherical surface
(102) TABLE-US-00012 TABLE 12 Aspherical data (aspherical coefficient is 0.00 if not indicated) Surface number k A4 A6 A8 A10 21 0.0000E+00 8.9608E06 4.3602E10 1.3596E10 6.2852E13 22 0.0000E+00 4.3555E06 1.2195E09 1.8571E10 8.6257E13
(103) TABLE-US-00013 TABLE 13 Various data Zoom ratio: 2.735, image height: 21.633 Wide angle Intermediate Telephoto Focal length 71.760 119.981 196.292 F-number 4.120 4.120 4.120 Half angle of view 15.982 9.449 5.772 Total lens length 175.000 195.876 204.449 Back focus 43.804 41.060 40.292 d5 2.000 22.876 31.450 d7 5.140 16.148 28.154 d14 24.808 13.800 1.794 d24 2.613 5.356 6.125 d33 41.158 38.414 37.646
(104) TABLE-US-00014 TABLE 14 Zoom lens group data Lens Lens First Focal configuration moving Group surface length length distance 1 1 159.934 17.797 29.450 2 6 584.434 3.000 0.000 3 8 29.788 18.252 23.014 4 15 31.009 26.124 0.000 5 25 46.184 30.609 3.512
(105) TABLE-US-00015 TABLE 15 Magnification of zoom lens group (from front to rear) Wide Group First surface angle Intermediate Telephoto 1 1 0.000 0.000 0.000 2 6 0.788 0.811 0.820 3 8 0.412 0.621 0.984 4 15 0.635 0.704 0.724 5 25 2.176 2.115 2.099
Embodiment 4
(106) A zoom lens according to Embodiment 4 will be described with reference to the drawings.
(107) The zoom lens 400 has a first lens group G1, a second lens group G2, a third lens group G3, a fourth lens group G4, a fifth lens group G5, and a sixth lens group G6. The third lens group G3 is a focus lens group F. The fourth lens group G4 includes an aperture stop S and the first camera shake correction lens VC1. A light receiving element 104 is disposed at an image forming position, and an optical filter CG is disposed in the vicinity of the light receiving element on the object side thereof.
(108) TABLE-US-00016 TABLE 16 Surface data Surface number r d nd vd 1 138.280 2.000 1.9229 20.88 2 84.483 7.265 1.4970 81.61 3 318.936 0.200 4 79.568 4.528 1.4370 95.10 5 208.640 d5 6 191.967 3.000 1.9229 20.88 7 606.119 d7 8 2036.537 1.200 1.8042 46.50 9 40.219 2.619 10 115.663 1.200 1.8810 40.14 11 25.723 5.038 1.9212 23.96 12 200.398 1.523 13 42.347 1.200 1.8810 40.14 14 151.512 d14 15 46.916 3.821 2.0010 29.13 16 762.265 3.658 17 2.495 (Aperture stop) 18 38.658 5.601 1.5688 56.04 19 46.050 1.500 1.9212 23.96 20 36.713 2.934 21* 34.325 5.651 1.4971 81.56 22* 44.217 0.200 23 61.603 1.635 2.0006 25.46 24 126.458 d24 25 204.037 2.564 1.9212 23.96 26 27.306 1.000 2.0010 29.13 27 33.790 d27 28 84.173 7.128 1.5688 56.04 29 34.167 0.386 30 103.740 3.198 1.8467 23.78 31 110.128 5.662 32 48.081 1.500 1.8348 42.72 33 55.096 d33 34 2.500 1.5168 64.20 35 1.000 *indicates aspherical surface
(109) TABLE-US-00017 TABLE 17 Aspherical data (aspherical coefficient is 0.00 if not indicated) Surface number k A4 A6 A8 A10 21 0.0000E+00 6.8057E06 2.8145E09 3.4424E12 1.4222E14 22 0.0000E+00 3.6351E06 4.9846E09 7.9971E12 5.7322E14
(110) TABLE-US-00018 TABLE 18 Various data Zoom ratio: 2.721, image height: 21.633 Wide angle Intermediate Telephoto Focal length 71.806 119.996 195.372 F-number 4.120 4.120 4.120 Half angle of view 16.401 9.690 5.914 Total lens length 200.000 200.000 200.000 Back focus 48.495 43.945 40.572 d5 7.218 17.697 24.184 d7 13.623 20.629 28.383 d14 33.673 16.188 1.947 d24 2.579 7.812 11.844 d27 14.852 14.169 13.510 d33 45.849 41.299 37.926
(111) TABLE-US-00019 TABLE 19 Zoom lens group data Lens Lens First configuration moving Group surface Focal length length distance 1 1 151.421 13.993 0.000 2 6 303.377 3.000 16.966 3 8 26.281 12.780 31.726 4 15 30.560 27.494 0.000 5 25 26.761 3.564 9.266 6 28 64.638 17.874 7.923
(112) TABLE-US-00020 TABLE 20 Magnification of zoom lens group (from front to rear) First Telephoto Group surface Wide-angle Intermediate end 1 1 0.000 0.000 0.000 2 6 0.687 0.703 0.714 3 8 0.529 0.698 0.987 4 15 0.518 0.665 0.778 5 25 32.583 323.581 53.437 6 28 0.077 0.007 0.044
Embodiment 5
(113) A zoom lens according to Embodiment 5 will be described with reference to the drawings.
(114) The zoom lens 500 has a first lens group G1, a second lens group G2, a third lens group G3, a fourth lens group G4, a fifth lens group G5, and a sixth lens group G6. The third lens group G3 is a focus lens group F. The fourth lens group G4 includes an aperture stop S. The fifth lens group G5 is the first camera shake correction lens VC1. A light receiving element 104 is disposed at an image forming position, and an optical filter CG is disposed in the vicinity of the light receiving element on the object side thereof.
(115) TABLE-US-00021 TABLE 21 Surface data Surface number r d nd vd 1 130.424 1.500 1.9537 32.32 2 60.949 8.822 1.4970 81.61 3 279.102 0.200 4 52.559 5.308 1.4370 95.10 5 122.198 d5 6 2137.781 1.853 2.1041 17.02 7 247.560 d7 8 286.615 1.200 1.9037 31.31 9 33.131 6.265 10 73.402 1.200 1.4970 81.61 11 33.970 3.027 2.0006 25.46 12 444.106 1.963 13 31.331 1.200 1.4970 81.61 14 148.768 d14 15 28.377 4.620 1.8348 42.72 16 876.956 2.087 17 2.000 (Aperture stop) 18 23.078 5.924 1.4970 81.61 19 76.430 1.500 2.0006 25.46 20 21.954 1.000 21* 23.017 4.478 1.5831 59.46 22* 58.792 d22 23 2.563 1.9229 20.88 24 29.313 1.000 1.9108 35.25 25 43.604 d25 26 45.753 3.430 1.6200 36.30 27 4481.565 25.186 28 36.067 1.500 1.8810 40.14 29 57.955 d29 30 2.500 1.5168 64.20 31 1.000 *indicates aspherical surface
(116) TABLE-US-00022 TABLE 22 Aspherical data (aspherical coefficient is 0.00 if not indicated) Surface number k A4 A6 A8 A10 21 0.0000E+00 1.5413E05 3.4557E08 3.6316E10 4.1222E12 22 0.0000E+00 1.2322E05 3.1817E08 4.4017E10 4.1424E12
(117) TABLE-US-00023 TABLE 23 Various data Zoom ratio: 2.713, image height: 21.633 Wide angle Intermediate Telephoto Focal length 71.791 119.933 194.787 F-number 4.120 4.548 5.417 Half angle of view 16.978 10.055 6.152 Total lens length 160.461 179.986 190.000 Back focus 23.028 32.013 37.812 d5 3.343 22.868 32.882 d7 7.591 13.916 21.771 d14 17.783 10.268 2.021 d22 3.056 4.246 4.638 d25 16.981 7.997 2.198 d29 20.382 29.367 35.165
(118) TABLE-US-00024 TABLE 24 Zoom lens group data Lens Lens First configuration moving Group surface Focal length length distance 1 1 154.375 15.830 29.539 2 6 253.431 1.853 0.000 3 8 24.484 14.855 14.180 4 15 29.127 21.609 1.582 5 23 49.036 3.563 0.000 6 26 131.592 30.115 14.783
(119) TABLE-US-00025 TABLE 25 Magnification of zoom lens group (from front to rear) Group First surface Wide angle Intermediate Telephoto 1 1 0.000 0.000 0.000 2 6 0.638 0.671 0.660 3 8 0.444 0.606 0.876 4 15 0.920 1.037 1.100 5 23 3.877 4.698 5.458 6 26 0.460 0.392 0.348
[Conditional Formula Correspondence Values]
(120) Table 26 shows the conditional expression correspondence values of respective embodiments which correspond to the conditional formulae disclosed in the Claims.
(121) TABLE-US-00026 TABLE 26 Conditional formula correspondence values Embodiment 1 Embodiment 2 Embodiment 3 Embodiment 4 Embodiment 5 Conditional 2.711 4.200 1.280 0.000 2.083 formula (1) Conditional 1.998 1.075 1.756 1.448 1.373 formula (2) Conditional 1.517 1.410 1.348 1.278 1.305 formula (3) Conditional 0.989 1.134 1.145 1.458 1.375 formula (4) Conditional 0.272 0.315 0.251 0.222 0.207 formula (5) Conditional 0.234 0.260 0.185 0.204 0.252 formula (6) m1 47.221 33.617 29.450 0.000 29.539 m3 17.417 8.004 23.014 31.726 14.180 f12w 93.281 77.184 125.996 103.974 98.540 fw 71.847 71.778 71.760 71.806 71.791 f1 179.508 144.478 159.934 151.421 154.375 ft 194.907 146.226 196.292 195.372 194.787 b3t 1.643 0.873 0.984 0.987 0.876 b3w 0.599 0.486 0.412 0.529 0.444 ff 32.155 32.297 29.788 26.281 24.484 fv 45.704 37.998 36.310 39.825 49.036
(122) As depicted in