Zoom lens and imaging apparatus
09715125 ยท 2017-07-25
Assignee
Inventors
Cpc classification
G02B15/22
PHYSICS
G02B27/64
PHYSICS
International classification
G02B27/64
PHYSICS
G02B15/14
PHYSICS
G02B15/22
PHYSICS
Abstract
A zoom lens includes a first lens group having positive refracting power, a second lens group having negative refracting power, a third lens group having positive refracting power, a fourth lens group having negative refracting power and a fifth lens group having negative refracting power in order from an object side, in which the lens groups move in magnification change from a wide angle end to a telephoto end such that a gap between the first lens group and the second lens group increases and a gap between the second lens group and the third lens group decreases, a negative lens group disposed closer to an image focusing side than a diaphragm among all lens groups is set as a focusing lens group, and the focusing lens group moves toward the image focusing side at focusing from infinity to a close object, the zoom lens satisfies a conditional expression.
Claims
1. A zoom lens including a first lens group having positive refractive power, a second lens group having negative refractive power, a third lens group having positive refractive power, a fourth lens group having negative refractive power and a fifth lens group having negative refractive power in order from an object side, wherein a surface of the fifth lens group disposed closest to the object side is concave; wherein the lens groups move in magnification change from a wide angle end to a telephoto end such that a gap between the first lens group and the second lens group increases and a gap between the second lens group and the third lens group decreases; a negative lens group disposed closer to an image plane side than a diaphragm among all lens groups is set as a focusing lens group, and the focusing lens group moves toward the image plane side in focusing from infinity to a close object; the zoom lens satisfies conditional expression (1) and conditional expression (3); and the focus lens group is composed of a single lens block of a meniscus shape provided with a concave surface at an image plane side; and satisfies conditional expression (2) below: [Expression 1]
1.305T2.80(1) where 5T: Lateral magnification in telephoto end of fifth lens group [Expression 2]
3.10ra4/rb45.40(2) where ra4: Curvature radius of object side surface of focus lens group rb4: Curvature radius of image plane side surface of focus lens group [Expression 3]
1.10f1/(fwft).sup.1/23.00(3) where f1: Focal length of first lens group fw: Focal length of the zoom lens at the wide angle end ft: Focal length of the zoom lens at the telephoto end.
2. The zoom lens according to claim 1, wherein the zoom lens satisfies conditional expression (4) below: [Expression 4]
1.404W5W2.50(4) where 4W: Lateral magnification in wide angle end of fourth lens group 5W: Lateral magnification in wide angle end of fifth lens group.
3. The zoom lens according to claim 1, wherein the third lens group includes at least a vibration-compensation lens group composed of a single lens block; hand-shake compensation is performed by moving the vibration-compensation lens group in a direction perpendicular to an optical axis; and satisfies conditional expression (5) below: [Expression 5]
1.30ra3/rb30.10(5) Where ra3: Curvature radius of object side surface of vibration-compensation lens group rb3: Curvature radius of image focusing side surface of vibration-compensation lens group.
4. The zoom lens according to claim 1, wherein the fifth lens group includes at least a single lens block of a meniscus shape provided with a concave surface at an object side; and the single lens block of the meniscus shape has a negative focal length and satisfies conditional expression (6) below: [Expression 6]
0.15ra5/rb50.80(6) where ra5: Curvature radius of object side surface of the single lens block of meniscus shape rb5: Curvature radius of image plane side surface of the single lens block of meniscus shape.
5. An imaging apparatus including a zoom lens according to claim 1, and an imaging sensor that converts an optical image formed on an image plane side by the zoom lens into an electrical signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(21) Embodiments of a zoom lens and an imaging apparatus according to the present invention will be described.
(22) 1. Zoom Lens
(23) 1-1. Arrangement of Optical System
(24) First, the arrangement and motion of an optical system of a zoom lens according to the present invention will be described. The zoom lens according to the present invention includes a first lens group having positive refractive power, a second lens group having negative refractive power, a third lens group having positive refractive power, a fourth lens group having negative refractive power and a fifth lens group having negative refractive power in order from the object side. The lens groups move in magnification change from a wide angle end to a telephoto end such that a gap between the first lens group and the second lens group increases and a gap between the second lens group and the third lens group decreases, a negative lens group disposed closer to an image focusing side than a diaphragm among all lens groups is set as a focusing lens group, and the focusing lens group moves toward the image focusing side at focusing from infinity to a close object. In addition, in the zoom lens according to the present invention, the focus lens group is composed of a single lens block of a meniscus shape having a concave surface at image focusing side.
(25) The zoom lens according to the present invention is a zoom lens of a so-called telephoto type, the first lens group to the third lens group constituting an object side group have positive refractive power as a whole and the fourth lens group and the fifth lens group constituting an image focusing side lens group have negative refractive power as a whole. In the present invention, the total optical length at the telephoto end of the zoom lens is made shorter than the focal distance at the telephoto end of the zoom lens since the zoom lens is a telephoto type. Therefore, increase in the total optical length at the telephoto end can be hindered even if the magnification change is increased to a focal distance of 300 mm or more in terms of 35 mm film, for example.
(26) In addition, the present invention provides the zoom lens of the telephoto type as described above and employs an arrangement in which an image focusing side lens group includes at least the fourth lens group and the fifth lens group that have negative refractive power. Therefore, the entire negative refractive power in the image focusing side lens group can be easily made stronger than that of the zoom lens of the five-group arrangement of a positive, negative, positive, negative and positive in the conventional technology. That is, the total optical length at the telephoto end can be made short against the focal distance at the telephoto end even if the magnification change is increased since it becomes easy to provide a zoom lens of a stronger telephoto tendency.
(27) Note that one or more inner cylinders are housed in a lens barrel (cylinder) in a telescoping manner in the zoom lens. The inner cylinders are drawn to the object side in the magnification change. If a difference in the total optical length between the telephoto end and the wide angle end is large, the cylinder should house a plurality of inner cylinders to make the total length of the lens barrel short. However, if the cylinder houses the plurality of inner cylinders, the diameter of the cylinder increases depending on the thickness of the inner cylinders. Therefore, as a zoom lens of a stronger telephoto tendency as described above is employed in the present invention, increase in the total optical length at the telephoto end is hindered even if the magnification change is increased, and results hindered increase in the number of inner cylinders housed in the cylinder. Therefore, the present invention achieves miniaturization in not only the total optical length at the telephoto end but also the outer diameter of the lens barrel.
(28) 1-2 Motion
(29) Next, focusing and zooming in the zoom lens of the arrangement will be described one by one.
(30) (1) Focusing
(31) First, the focusing will be described. In the zoom lens according to the present invention, a negative lens groups disposed closer to the image focusing side than a diaphragm among all lens groups is set as a focusing lens group, and focusing is performed by moving the focusing lens group toward the image focusing side in focusing from the infinity to the close object as described above. As the negative lens group disposed closer to the image focusing side than the diaphragm is set as the focusing lens group and moves toward the image focusing side, the magnification change motion caused due to wobbling is hindered in focusing.
(32) In addition, as the negative lens group disposed closer to the image focusing side than the diaphragm is set as the focusing lens group, i.e. a rear lens group with a relatively small diameter in the zoom lens is set as the focusing lens group, high-speed auto focusing is achieved since a lens system of the focusing lens group is light weight and the load on a focus drive system is reduced. In this sense, from the viewpoint that the focusing lens group should be light weight to achieve higher-speed auto focusing, the focusing lens group is composed of a single lens block in the present invention. Note that the single lens block may be a single lens or a cemented lens composed of a plurality of lenses (the same applies hereinafter).
(33) Note that, regarding the position of the diaphragm (aperture diaphragm), it is general to dispose it closer to the image focusing side than the second lens group, and is disposed closer to the image focusing side than the second lens group in the present invention also. However, a specific diaphragm position is not specifically limited and it can be arbitrarily disposed in an appropriate position according to a requested optical characteristics. In addition, as for the focusing lens group, any lens group is acceptable as long as it is a lens group which has negative refractive power and is disposed closer to the image focusing side than the diaphragm. For example, it is preferable to dispose the diaphragm closer to a side which is the image focusing side than the second lens group and closer to the object side than the fourth lens group, and set the fourth lens group or the fifth lens group as the focusing lens group. Selection of the focusing lens group from the negative lens groups can be suitable matter according to the specific lens arrangement in the zoom lens.
(34) To make telephoto tendency of a zoom lens stronger, the negative refractive power of the image focusing side lens group should be strong as described above. In the conventional technology, the fourth lens group has the negative refractive power and the fifth lens group has the positive refractive power in the zoom lens of the telephoto type. Such design was employed to ensure the telecentric characteristic. However, if the fourth lens group is set as the focusing lens group, an aberration fluctuation and a magnification change motion are caused according to wobbling since the fourth lens group having strong refractive power moves along the optical axis direction in focusing. Therefore, the aberration fluctuation and the magnification change motion are hindered even if the negative lens group constituting the image focusing side lens group is set as the focusing lens group in the present invention by disposing the zoom lens provided with strong telephoto tendency by distributing negative refractive power to each of the fourth lens group and the five lens group that constitute the image focusing side lens group. For example, in an imaging apparatus without an optical viewfinder such as a mirror-less single lens reflex camera, the user performs imaging while confirming a live view image on a liquid crystal display installed in the back of the device body. Note that, if the zoom lens according to the present invention is used, display of an image in high performance as a live view image with less magnification change in focusing is made possible. Therefore, the zoom lens according to the present invention can be suitably used for the imaging apparatus such as the mirror-less single lens reflex camera.
(35) (2) Zooming (Magnification Change)
(36) Next, zooming will be described. In the zoom lens according to the present invention, as long as the lens groups move to make the gap between the first lens group and the second lens group increase and the gap between the second lens group and the third lens group decrease in the magnification change from the wide angle end to the telephoto end as described above, the specific motion of each lens group is not especially limited. However, from the viewpoint that the degree of freedom of aberration correction is improved and high imaging performance is acquired in the entire zoom area, it is preferable to relatively move each lens group to change the gaps between lens groups among the first to fifth lens groups in magnification change. It is because, if the gaps between the lens groups changes in magnification change, adjustment of the position of each lens group to a position preferable for aberration correction at each magnification is made easy. In the motion, the gaps between the lens groups may change by separately moving all lens groups in magnification change, or partial lens groups among all lens groups may integrally move and the remaining lens groups may separately move. Alternatively, instead of setting all lens groups as a movement group, partial lens groups may be a fixed lens group.
(37) (3) Vibration-Compensation
(38) In the zoom lens composed of the arrangement above, the third lens group is preferable to be hand-shake compensation lens group by providing a vibration-compensation lens group composed of a single lens block and moving the vibration-compensation lens group in the perpendicular direction against the optical axis in the present invention. As the miniaturization and weight reduction of the vibration-compensation lens group is achieved by disposing the vibration-compensation lens group in the third lens group and the vibration-compensation lens group is composed of the single lens block, load on a vibration-compensation drive system is reduced.
(39) The zoom lens according to the present invention described above is one aspect of the zoom lens according to the present invention, and the specific lens arrangement may be arbitrarily arranged without departing from the scope of the present invention.
(40) 1-3. Conditional Expressions
(41) Next, conditional expressions which the zoom lens according to the present invention should satisfy or is preferable to satisfy will be described. The zoom lens according to the present invention is characterized by satisfying the following conditional expression (1) and conditional expression (2), and it is preferable to satisfy conditional expression (3) to conditional expression (6) described below.
(42) [Expression 7]
1.255T3.10(1)
Where
(43) 5T: Lateral magnification in telephoto end of fifth lens group
(44) [Expression 8]
3.10ra4/rb45.40(2)
Where
(45) ra4: Curvature radius of object side surface of focus lens group
(46) rb4: Curvature radius of image focusing surface side surface of focus lens group
(47) 1-3-1. Conditional Expression (1)
(48) First, conditional expression (1) will be described. Conditional expression (1) defines the lateral magnification of the fifth lens group at the telephoto end. In conditional expression (1), if the numerical value is lower than the lower limit value, the synthetic focal distance from the first lens group to the fourth lens group is not made sufficiently short and miniaturization of the optical total length of the zoom lens is made difficult especially in the telephoto end since the negative refractive power of the fifth lens group is too weak. In contrast, if the numerical value exceeds the upper limit value, the exit pupil distance is made short and an angle of incident light into imaging sensors including CCD disposed on the image focusing surface may incline since the negative refractive power of the fifth lens group is too strong. That is, out of the range is not preferable since the light intensity is reduced by the disproportion of the pupil at the periphery.
(49) From these viewpoints, in conditional expression (1), the numerical value in the range of (1a) below is preferable and in the range of (1b) is more preferable.
1.305T2.80(1a)
1.355T2.50(1b)
1-3-2. Conditional Expression (2)
(50) Next, conditional expression (2) will be described. In the zoom lens according to the present invention, the above-mentioned focus group is composed of a single lens block to achieve high-speed auto focusing and miniaturization and weight reduction of the zoom lens. Further, the single lens block is preferable to be a meniscus-shaped single lens or cemented lens having concave surface at the image focusing side.
(51) The conditional expression (2) specifies the ratio between the curvature radius at the object side surface and the curvature radius of the image focusing side surface of the focusing lens group if the focusing lens group is composed of the meniscus-shaped single lens block. In conditional expression (2), if the numerical value is smaller than the lower limit value, as the total optical length may be long since the refracting power of the focusing lens group is weak and the focus stroke from the infinity object to the nearest object increases, it is not preferable since the miniaturization of the zoom lens is hardly achieved. In contrast, the numerical value of bigger than the upper limit value is not preferable since control of a focus drive system is made difficult because of too high focusing sensitivity to the movement in the optical axis of the focusing lens group, too high focusing sensitivity caused by too strong refracting power of the focusing lens group.
(52) From these viewpoints, regarding conditional expression (2), the numerical value in the range of (2a) below is preferable and in the range of (2b) is more preferable.
3.30ra4/rb45.20(2a)
3.50ra4/rb45.00(2b)
1-3-3. Conditional Expression (3)
(53) Next, conditional expression (3) will be described. The zoom lens according to the present invention is preferable to satisfy conditional expression (3) below.
(54) [Expression 9]
1.10f1/(fwft).sup.1/23.00(3)
where
(55) f1: Focal length of first lens group
(56) fw: Focal length of the zoom lens at the wide angle end
(57) ft: Focal length of the zoom lens at the telephoto end
(58) Conditional expression (3) specifies the focal distance of the first lens group against the effective focal length of the entire optical system of the zoom lens. In conditional expression (3), if the numerical value is smaller than the lower limit value, performance degradation against the design performance after assembly may be made large due to an influence of relative eccentricity since the refracting power of the first lens group is strong. In contrast, if the value is larger than the upper limit value, total optical length hardly be short especially in a telephoto end since the refracting power of the first lens group is weak.
(59) From these viewpoints, in conditional expression (3), the numerical value in the range of (3a) below is preferable and in the range of (3b) is more preferable.
1.10f1/(fwft).sup.1/22.60(3a)
1.20f1/(fwft).sup.1/22.20(3b)
1-3-4. Conditional Expression (4)
(60) Next, conditional expression (4) will be described. The zoom lens according to the present invention is preferable to satisfy conditional expression (4) below.
(61) [Expression 10]
1.404W5W2.50(4)
Where
(62) 4W: Lateral magnification in wide angle end of fourth lens group
(63) 5W: Lateral magnification in wide angle end of fifth lens group
(64) The conditional expression (4) specifies the product of the lateral magnification at the wide angle end of the fourth lens group and the lateral magnification at the wide angle end of the fifth lens group. In conditional expression (4), if the numerical value is smaller than the lower limit value, the focal length from the first lens group to the third lens group are hard to be short and hardly make total optical length at the wide angle end short. In contrast, if the numerical value is bigger than the upper limit value, the lateral magnifications of the fourth lens group and fifth lens group are made large and the refracting power becomes strong, and therefore, the performance degradation against the design performance after assembly is made large due to an influence of relative eccentricity.
(65) From these viewpoints, in conditional expression (4), the numerical value in the range of (4a) below is preferable and in the range of (4b) is more preferable.
1.604W5W2.30(4a)
1.804W5W2.10(4b)
1-3-5. Conditional Expression (5)
(66) Next, conditional expression (5) will be described. In the zoom lens according to the present invention, if the third lens group includes the vibration-compensation lens group, it is preferable to satisfy conditional expression (5) below. Note that in this case, the vibration-compensation lens group is composed of a single lens block as described above and performs hand-shake compensation by moving in the direction perpendicular to the optical axis, and is preferable to constitute a part of the third lens group.
(67) [Expression 11]
1.30ra3/rb30.10(5)
Where
(68) ra3: Curvature radius of object side surface of vibration-compensation lens group
(69) rb3: Curvature radius of image surface side surface of vibration-compensation lens group
(70) Conditional expression (5) specifies the ratio between the curvature radius at the object side surface of the vibration-compensation lens group and the curvature radius at the image focusing side surface of the vibration-compensation lens group. In conditional expression (5), the numerical value of smaller than the lower limit value is not preferable because the eccentric coma aberration and the eccentric astigmatism increase if the vibration-compensation lens group is made eccentric since the refracting power of the vibration-compensation lens group is too strong. In contrast, if the value is bigger than the upper limit value, as the stroke of the vibration-compensation lens group increases since the refracting power of the vibration-compensation lens group is weak, the outer diameter of the lens-barrel increases and fast driving of the vibration-compensation lens group is made difficult.
(71) From these viewpoints, in conditional expression (5), the numerical value in the range of (5a) below is preferable and in the range of (5b) is more preferable.
1.20ra3/rb30.25(5a)
1.10ra3/rb30.30(5b)
1-3-6. Conditional Expression (6)
(72) Next, conditional expression (6) will be described. Conditional expression (6) is an expression relating to the fifth lens group. In the zoom lens according to the present invention, the fifth lens group includes at least a single lens block of a meniscus shape provided with a concave surface at an object side as described above, and the single lens block of the meniscus shape has a negative focal distance and satisfies conditional expression (6).
(73) [Expression 12]
0.15ra5/rb50.80(6)
Where
(74) ra5: Curvature radius of object side surface of lens of meniscus shape
(75) rb5: Curvature radius of image surface side surface of lens of meniscus shape
(76) The conditional expression (6) specifies the ratio between the curvature radius at the object side surface and the curvature radius at the image focusing side surface if the fifth lens group includes a negative lens composed of the meniscus-shaped single lens block in which the surface at the object side is concave against the object side. In conditional expression (6), if the numerical value is equal to or smaller than the lower limit value, the lens may be a negative lens in which both surfaces are concave. Therefore, it is not preferable because the image focusing side surface should be concave against the image focusing side to make the intensity of ghost high by multipath reflection with the focusing image. In contrast, if the numerical value is bigger than the upper limit value, various aberrations such as astigmatism and the curvature of field increase since the refracting power of the negative lens is strong. That is, achievement of short total optical length is made difficult since the number of lenses constituting fifth lens group should increase for compensation.
(77) From these viewpoints, in conditional expression (6), the numerical value in the range of (6a) below is preferable and in the range of (6b) is more preferable.
0.25ra5/rb50.70(6a)
0.35ra5/rb50.60(6b)
2. Imaging Apparatus
(78) Next, an imaging apparatus according to the present invention will be described. The imaging apparatus according to the present invention is characterized by including the zoom lens described above and an imaging sensor that converts an optical image formed on the image focusing side by the zoom lens into an electrical signal. Note that, the imaging sensor is not specifically limited. However, the zoom lens is suitable for an imaging apparatus including a type without an optical viewfinder and a reflex mirror since the flange focal length of the zoom lens according to the present invention is short, as described above. Especially, it is preferable to apply the zoom lens according to the present invention in a small imaging apparatus mounting a small solid imaging sensor such as a so-called mirror-less single lens reflex camera since the zoom lens achieves miniaturization and high magnification change. In addition, an imaging apparatus is preferable to be able to take a moving image in the present invention since the zoom lens achieves high-speed auto focusing even in video imaging.
(79) Next, the present invention will be specifically described with showing Examples and the Comparative Examples. However, the present invention is not limited to Examples, the lens arrangement described in the following Examples merely exemplifies the present invention, and the lens arrangement of the zoom lens according to the present invention may be arbitrarily arranged without departing from the scope of the present invention.
(80) Next, Examples and Comparative Examples will be shown to specifically describe the present invention. However, the present invention is not limited to the Examples.
EXAMPLE 1
(81) Examples of a zoom lens according to the present invention will be described referring to the drawing.
(82) As shown in
(83) In the zoom lens in Example 1, in magnification change from the wide angle end to the telephoto end, the lens groups move such that the gap between first lens group G1 and second lens group G2 increases and the gap between second lens group G2 and third lens group G3 decreases. In addition, in the magnification change, third lens group G3 and the fifth lens group move on the same trajectory. In addition, in focusing from the infinity to the close object, the fourth lens group G4 moves toward the image focusing side. In an embodiment, an imaging sensor 100 may be operatively connected to the imaging apparatus. The imaging sensor 100 may convert an optical image formed on an image plane side by the zoom lens into an electrical signal.
(84) The movement in the direction perpendicular to the optical axis of vibration-compensation lens group VC in a hand-shake compensation at the telephoto end is 0.308 mm. If the imaging distance is and the zoom lens system inclines by 0.3 at the telephoto end, the image eccentricity is equal to the image eccentricity if the vibration-compensation lens group moves in parallel in the direction perpendicular to the optical axis. Note that, even for the zoom lens of each of Examples 2 to 9, the movement in the direction perpendicular to the optical axis of each vibration-compensation lens group is equal to the image eccentricity if the zoom lens system inclines by 0.3.
(85)
(86) In addition,
(87) In each lateral aberration diagram of the basic state, the top part corresponds to the lateral aberration at an image point of 70% of the maximum image height, the middle part corresponds to the lateral aberration at an image point on the axis, and the bottom part corresponds to the lateral aberration at an image point of 70% of the maximum image height. In each lateral aberration diagram of the hand-shake compensation, the top part corresponds to the lateral aberration at an image point of 70% of the maximum image height, the middle part corresponds to the lateral aberration at an image point on the axis, and the bottom part corresponds to the lateral aberration at an image point of 70% of the maximum image height. In addition, in each lateral aberration diagram, the horizontal axis shows the distance from the main light on the pupil surface, the solid line shows the d line (d-line), the short broken line shows the characteristic of the F line (F-line) and the long broken line shows the characteristic of the C line (C-line).
(88) As is apparent in
(89) Next, in Example 1, lens data of numerical values in Example 1 to which specific numerical values are applied is shown in Table 1. The lens data shown in Table 1 is as follows. Surface No. denotes the lens surface number and denotes the lens surface order counted from the object side. In addition, r denotes the curvature radius of the lens surface, d denotes the thickness of the lens or the gap between mutually adjacent lens surfaces on the optical axis, Nd denotes the refractive index against the d line (wavelength =587.6 nm) and d denotes the Abbe number against the d line (wavelength =587.6 nm). In addition, if the lens surface is an aspheric surface, * (asterisk) is attached after the surface number, and the paraxial curvature radius is shown in the column of curvature radius r.
(90) In addition, in the zoom lens system in Example 1, the F number (F-No.), the focal distance (f) of the entire system and the half angle of view (W (deg.)) at the wide angle end, the intermediate focal distance and the telephoto end are as follows. Note that, in the following expressions, the numerical values at the wide angle end, the intermediate focal distance and the telephoto end are shown with hyphen (-) in order from the right side.
F-No.=4.08-5.35-5.77
f=18.38-43.53-102.92
W=39.04-17.51-7.5
(91) TABLE-US-00001 TABLE 1 Face No. r d Nd vd 1 73.624 1.500 1.9229 20.88 2 47.533 4.392 1.6968 55.46 3 762.099 0.200 4 39.569 3.581 1.4970 81.61 5 189.703 d5 6* 75.508 0.200 1.5146 49.96 7 75.209 0.700 1.8830 40.81 8 12.22 4.142 9 31.855 0.700 1.8348 42.72 10 23.848 0.200 11 18.883 3.929 1.8467 23.78 12 25.087 1.112 13 16.264 0.700 1.8830 40.81 14 52.982 d14 15 INF 1.000 Aperture Diaphram 16 12.902 5.706 1.4875 70.44 17 13.048 0.700 1.9108 35.25 18 254.391 0.500 19* 31.252 2.135 1.5533 71.68 20* 63.334 0.815 21* 42.506 4.737 1.5920 67.02 22* 15.482 d22 23 54.729 2.173 1.8061 33.27 24 29.764 0.700 1.6968 55.46 25 14.91 d25 26 13.675 0.700 1.9108 35.25 27 26.3 0.358 28 45.202 1.950 1.4875 70.44 29 INF d29 30 INF 2.000 1.5168 64.2 31 INF 1.000 *denotes aspheric surface
(92) In addition, regarding the aspheric surface shown in Table 1, an aspheric surface coefficient if the shape is defined by the following expression z is shown in Table 2. In Table 2, E-a denotes 10.sup.a.
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 . . .
(93) Note that, in the above expression, c denotes the curvature (1/r), h denotes the height from the optical axis, k denotes the conical coefficient, and each of A4, A6, A8 and A10, and so on, denotes the aspheric coefficient of each degree.
(94) TABLE-US-00002 TABLE 2 Face No. k A4 A6 A8 A10 6 0.0000E+00 9.9255E06 5.5707E08 1.1972E09 4.1409E12 19 0.0000E+00 7.1459E06 4.0032E07 2.1295E08 1.6610E10 20 0.0000E+00 3.1391E05 8.3685E07 3.2005E08 2.5109E10 21 0.0000E+00 9.4262E05 9.4180E08 5.8470E10 1.5646E10 22 0.0000E+00 4.0097E05 3.7533E07 1.1299E08 2.5018E10
(95) Table 3 shows the surface intervals in close object focusing in the wide angle end state, the intermediate focal distance state and the telephoto end state of numerical value example 1, together with focal distance (f) in infinite object focusing.
(96) TABLE-US-00003 TABLE 3 f 18.38 43.53 102.92 d5 1.000 13.345 26.894 d14 14.933 5.901 1.500 d22 2.762 3.967 1.995 d25 7.959 6.754 8.726 d29 12.514 22.932 33.258
EXAMPLE 2
(97) Next, the optical system of a zoom lens in Example 2 will be described with reference to the drawings.
(98)
(99) In addition, in the zoom lens system in Example 2, the F number (F-No.), the focal distance (f) of the entire system and the half angle of view (W (deg.)) at the wide angle end, the intermediate focal distance and the telephoto end are as follows. Note that, in the following expressions, the numerical values at the wide angle end, the intermediate focal distance and the telephoto end are shown with hyphen (-) in order from the right side.
F-No.=4.08-5.35-5.77
f=18.37-43.54-102.85
W=39.29-17.73-7.60
(100) TABLE-US-00004 TABLE 4 Face No. r d Nd vd 1 117.627 1.000 1.9229 20.88 2 58.712 3.142 1.6968 55.46 3 313.996 0.200 4 46.877 3.112 1.7433 49.22 5 199.423 d5 6* 42.203 0.200 1.5146 49.96 7 47.968 0.700 1.9108 35.25 8 13.443 4.328 9 38.568 0.700 1.9108 35.25 10 24.347 0.200 11 19.803 4.134 1.9229 20.88 12 29.52 0.952 13 18.035 0.699 1.9108 35.25 14 74.883 d14 15 INF 1.000 Aperture Diaphram 16 13.269 6.558 1.4970 81.61 17 13.088 0.700 1.9108 35.25 18 510.94 0.500 19* 25.182 2.270 1.4971 81.56 20* 74.197 0.819 21* 88.167 5.523 1.6226 58.16 22* 15.692 d22 23 98.558 1.813 1.9537 32.32 24 39.364 0.700 1.6968 55.46 25 21.526 d25 26 12.098 0.700 1.8810 40.14 27 30.336 0.197 28 197.89 1.329 1.6180 63.4 29 INF d29 30 INF 2.000 1.5168 64.2 31 INF 1.000 *denotes aspheric surface
(101) TABLE-US-00005 TABLE 5 Face No. k A4 A6 A8 A10 6 0.0000E+00 1.4602E05 4.6684E09 2.5158E10 4.1103E12 19 0.0000E+00 9.4353E06 4.3725E07 1.9649E08 1.5835E10 20 0.0000E+00 3.5643E05 8.9345E07 3.0472E08 2.4468E10 21 0.0000E+00 9.3916E05 1.6034E07 3.5640E09 1.2227E10 22 0.0000E+00 2.1261E05 2.7680E07 1.0559E08 1.6059E10
(102) TABLE-US-00006 TABLE 6 f 18.37 43.54 102.85 d5 0.995 14.956 31.514 d14 16.800 6.661 1.500 d22 1.996 3.728 1.993 d25 7.189 5.457 7.193 d29 12.148 22.737 33.319
EXAMPLE 3
(103) Next, the optical system of a zoom lens in Example 3 will be described with reference to the drawings.
(104)
(105) In addition, in the zoom lens system in Example 3, the F number (F-No.), the focal distance (f) of the entire system and the half angle of view (W (deg.)) at the wide angle end, the intermediate focal distance and the telephoto end are as follows. Note that, in the following expressions, the numerical values at the wide angle end, the intermediate focal distance and the telephoto end are shown with hyphen (-) in order from the right side.
F-No.=3.60-5.11-5.80
f=24.75-54.97-116.31
W=42.09-20.87-10.18
(106) TABLE-US-00007 TABLE 7 Face No. r d Nd vd 1 193.949 2.000 1.9229 20.88 2 107.656 6.185 1.5688 56.04 3 440.2 0.200 4 56.866 4.853 1.4970 81.61 5 189.595 d5 6* 135.25 0.300 1.5146 49.96 7 162.567 1.000 1.7015 41.15 8 13.353 7.753 9 585.833 0.800 2.0010 29.13 10 33.15 0.300 11 27.443 7.817 1.8467 23.78 12 32.407 1.253 13* 23.989 1.000 1.7725 49.47 14* 532.737 d14 15 INF 1.500 Aperture Diaphram 16 19.377 8.000 1.5168 64.2 17 24.881 1.000 2.0010 29.13 18 INF 1.341 19* 27.508 4.274 1.4971 81.56 20* 43.427 2.000 21* 129.13 3.531 1.6226 58.16 22* 26.674 d22 23 100.167 2.307 1.8061 33.27 24 47.435 0.600 1.6968 55.46 25 25.245 d25 26 25.982 1.000 2.0010 29.13 27 48.742 0.200 28 86.614 2.553 1.4875 70.44 29 INF d29 30 INF 2.000 1.5168 64.2 31 INF 1.000 *denotes aspheric surface
(107) TABLE-US-00008 TABLE 8 Face No. k A4 A6 A8 A10 6 0.0000E+00 3.2247E06 2.1147E08 1.1952E11 1.6518E14 13 0.0000E+00 2.1973E05 1.4771E07 7.7234E10 5.3562E12 14 0.0000E+00 5.6578E06 1.0991E07 8.5808E10 5.7825E12 19 0.0000E+00 2.0719E05 1.1320E07 9.7803E10 4.7819E12 20 0.0000E+00 4.1454E06 1.4106E07 1.2865E09 5.8775E12 21 0.0000E+00 4.1702E05 9.8845E08 1.1763E09 1.5485E12 22 0.0000E+00 8.9068E07 1.5348E07 1.8485E10 6.7653E12
(108) TABLE-US-00009 TABLE 9 f 24.75 54.97 116.31 d5 1.041 16.211 41.385 d14 18.776 6.017 1.632 d22 2.078 3.946 2.003 d25 20.800 18.932 20.875 d29 12.100 30.290 49.336
EXAMPLE 4
(109) Next, the optical system of a zoom lens in Example 4 will be described with reference to the drawings.
(110)
(111) In addition, in the zoom lens system in Example 4, the F number (F-No.), the focal distance (f) of the entire system and the half angle of view (W (deg.)) at the wide angle end, the intermediate focal distance and the telephoto end are as follows. Note that, in the following expressions, the numerical values at the wide angle end, the intermediate focal distance and the telephoto end are shown with hyphen (-) in order from the right side.
F-No.=3.60-5.27-6.46
f=28.88-90.03-290.84
W=38.16-13.09-4.17
(112) TABLE-US-00010 TABLE 10 Face No. r d Nd vd 1 137.911 2.000 1.9037 31.31 2 92.09 7.189 1.4970 81.61 3 384.7 0.200 4 104.384 4.918 1.4370 95.1 5 317.161 d5 6* 79.259 1.000 1.7725 49.47 7* 21.8 5.826 8 137.33 0.800 1.7725 49.62 9 35.147 0.300 10* 29.572 3.921 1.8211 24.06 11* 391.74 2.577 12 22.537 1.699 1.8061 33.27 13 19.595 0.700 1.7725 49.62 14 56.14 d14 15 INF 1.500 Aperture Diaphram 16 27.787 6.785 1.5673 42.84 17 26.054 1.000 1.9037 31.31 18 157.64 2.000 19* 37.96 5.736 1.4971 81.56 20 31.301 1.000 1.9229 20.88 21 37.63 2.000 22 74.927 1.000 1.6584 50.85 23 15.44 6.410 1.5533 71.68 24* 105.33 d24 25 152.784 2.714 1.8467 23.78 26 39.519 0.600 1.7495 35.04 27 31.284 d27 28 28.376 1.000 1.9037 31.31 29 64.047 0.200 30 121.84 3.156 1.8467 23.78 31 176.07 d31 32 INF 2.000 1.5168 64.2 33 INF 1.000 *denotes aspheric surface
(113) TABLE-US-00011 TABLE 11 Face No. k A4 A6 A8 A10 A12 6 8.4076E+00 1.7250E05 4.3452E08 1.4222E10 6.5049E13 2.1130E15 7 5.5997E01 1.0490E05 1.0659E07 3.8357E10 7.8231E13 3.8906E15 10 1.2378E+00 1.2308E05 9.3912E09 1.0081E09 1.3103E12 2.8781E14 11 5.2958E+00 1.6399E05 4.8014E08 6.4311E10 1.6519E12 2.5999E14 19 2.4091E01 1.3287E05 5.8038E09 1.2122E10 8.0358E13 1.6692E15 24 4.5723E+00 1.2527E05 2.8115E09 2.0636E11 3.9484E13 1.0798E15
(114) TABLE-US-00012 TABLE 12 f 28.88 90.03 290.84 d5 1.000 38.036 90.871 d14 28.943 6.151 1.500 d24 1.989 12.893 1.987 d27 26.738 23.633 36.915 d31 12.101 27.493 59.499
(115) Table 13 shows the numerical values corresponding to the expressions described in conditional expressions (1) to (6) of the Examples 1 to 4.
(116) TABLE-US-00013 TABLE 13 Example 1 Example 2 Example 3 Example 4 Conditional 1.771 2.483 1.654 1.373 Expression 1 Conditional 3.671 4.579 3.968 4.884 Expression 2 Conditional 1.378 1.653 2.092 1.751 Expression 3 Conditional 2.073 2.054 1.906 1.835 Expression 4 Conditional 0.493 0.339 0.633 1.009 Expression 5 Conditional 0.520 0.399 0.533 0.443 Expression 6 5T 1.771 2.483 1.654 1.373 fw 18.376 18.373 24.753 28.876 ft 102.918 102.850 116.313 290.841 f1 59.929 71.844 112.233 160.506 4W 1.524 1.248 1.569 1.643 5W 1.360 1.646 1.215 1.117 ra3 31.252 25.182 27.508 37.960 rb3 63.334 74.197 43.427 37.630 ra4 54.729 98.558 100.167 152.784 rb4 14.910 21.526 25.245 31.284 ra5 13.675 12.098 25.982 28.376 rb5 26.300 30.336 48.742 64.047
(117) According to the present invention, it is possible to provide a zoom lens which is small as a whole and in which it is possible to keep a change in the imaging magnification due to wobbling small, especially perform weight saving of a lens system of the focus group, reduce the load of the focus drive system, miniaturize and lighten the vibration-proof lens system and reduce the load of the vibration-proof drive system.
SYMBOL LIST
(118) G1 First lens group G2 Second lens group G3 Third lens group G4 Fourth lens group G5 Fifth lens group F Focus group VC Vibration-compensation lens group S Aperture diaphragm