JP5100411B2 - Zoom lens and imaging apparatus having the same - Google Patents

Zoom lens and imaging apparatus having the same Download PDF

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JP5100411B2
JP5100411B2 JP2008012497A JP2008012497A JP5100411B2 JP 5100411 B2 JP5100411 B2 JP 5100411B2 JP 2008012497 A JP2008012497 A JP 2008012497A JP 2008012497 A JP2008012497 A JP 2008012497A JP 5100411 B2 JP5100411 B2 JP 5100411B2
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誠 三坂
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Canon Inc
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Description

本発明は、一眼レフカメラ、デジタルカメラ、ビデオカメラ、フィルム用カメラなどの撮像装置に用いられる防振機能を備えたズームレンズに関するものである。   The present invention relates to a zoom lens having an anti-vibration function used in an imaging apparatus such as a single-lens reflex camera, a digital camera, a video camera, or a film camera.

撮影系に偶発的に振動が伝わると画像ブレが生じる。従来より、この偶発的な振動による画像のブレを補償する機構(防振機構)を具備したズームレンズが種々と提案されている。例えば光学系(ズームレンズ)を構成するレンズ群の一部を光軸と垂直な方向に移動させて振動による画像ブレを補償するズームレンズが知られている。   When vibration is accidentally transmitted to the photographing system, image blur occurs. Conventionally, various zoom lenses having a mechanism (anti-vibration mechanism) for compensating for an image blur due to this accidental vibration have been proposed. For example, a zoom lens that compensates for image blur due to vibration by moving a part of a lens group constituting an optical system (zoom lens) in a direction perpendicular to the optical axis is known.

ズームレンズとして物体側から像側へ順に、正の屈折力の第1レンズ群、負の屈折力の第2レンズ群、正の屈折力の第3レンズ群、正の屈折力の第4レンズ群、正の屈折力の第5レンズ群より構成される5群ズームレンズが知られている。   As a zoom lens, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, a third lens group having a positive refractive power, and a fourth lens group having a positive refractive power A 5-group zoom lens composed of a fifth lens group having a positive refractive power is known.

この5群ズームレンズにおいて、第5レンズ群を負の屈折力のレンズ群と、正の屈折力のレンズ群で構成し、負の屈折力のレンズ群を光軸と垂直な方向に移動させることによって画像ブレを補償するズームレンズが知られている(特許文献1)。   In this 5-group zoom lens, the fifth lens group is composed of a negative refractive power lens group and a positive refractive power lens group, and the negative refractive power lens group is moved in a direction perpendicular to the optical axis. A zoom lens that compensates for image blur is known (Patent Document 1).

又、ズームレンズとして物体側から像側へ順に、正の屈折力の第1レンズ群、負の屈折力の第2レンズ群、正の屈折力の第3レンズ群、正の屈折力の第4レンズ群より構成される4群ズームレンズが知られている。この4群ズームレンズにおいて第2レンズ群を光軸と垂直な方向に移動させることによって画像ブレを補償するズームレンズが知られている(特許文献2)。   Further, as a zoom lens, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, a third lens group having a positive refractive power, and a fourth lens having a positive refractive power. A four-group zoom lens composed of lens groups is known. A zoom lens that compensates for image blur by moving the second lens group in a direction perpendicular to the optical axis in this four-group zoom lens is known (Patent Document 2).

又、ズームレンズとして物体側から像側へ順に、正の屈折力の第1レンズ群、負の屈折力の第2レンズ群、正の屈折力の第3レンズ群と第4レンズ群、負の屈折力の第5レンズ群、正の屈折力の第6レンズ群より構成される6群ズームレンズが知られている。この6群ズームレンズにおいて第5レンズ群を光軸と略垂直な方向に移動させることによって画像ブレを補償するズームレンズが知られている(特許文献3、4)。   Further, as a zoom lens, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, a third lens group having a positive refractive power, a fourth lens group, and a negative lens group. There is known a 6-group zoom lens including a fifth lens group having a refractive power and a sixth lens group having a positive refractive power. In this 6-group zoom lens, a zoom lens is known that compensates for image blur by moving the fifth lens group in a direction substantially perpendicular to the optical axis (Patent Documents 3 and 4).

又、ズームレンズとして物体側から像側へ順に、正の屈折力の第1、第2レンズ群、負の屈折力の第3レンズ群、正の屈折力の第4、第5レンズ群より構成される5群ズームレンズが知られている。この5群ズームレンズにおいて第5レンズ群を正の屈折力のレンズ群、負の屈折力のレンズ群、正の屈折力のレンズ群で構成し、負の屈折力 のレンズ群を光軸と垂直な方向に移動させることによって画像ブレを補償するズームレンズが知られている(特許文献5)。   Further, the zoom lens includes, in order from the object side to the image side, first and second lens groups having positive refractive power, a third lens group having negative refractive power, and fourth and fifth lens groups having positive refractive power. A five-group zoom lens is known. In this 5-group zoom lens, the fifth lens group is composed of a positive refractive power lens group, a negative refractive power lens group, and a positive refractive power lens group, and the negative refractive power lens group is perpendicular to the optical axis. There is known a zoom lens that compensates for image blur by moving in a proper direction (Patent Document 5).

又、ズームレンズとして物体側から像側へ順に、変倍時固定の正の屈折力の第1レンズ群、負の屈折力の第2レンズ群、正又は負の屈折力の第3レンズ群、変倍時固定の正の屈折力の第4レンズ群で構成されている4群ズームレンズが知られている。   Further, as a zoom lens, in order from the object side to the image side, a first lens unit having a positive refractive power that is fixed at the time of zooming, a second lens unit having a negative refractive power, a third lens group having a positive or negative refractive power, There is known a four-unit zoom lens composed of a fourth lens unit having a positive refractive power fixed at the time of zooming.

この4群ズームレンズにおいて第4レンズ群中に配置された負の屈折力のレンズ群を光軸と垂直な方向に移動させることによって画像ブレを補償するズームレンズが知られている(特許文献6、7)。   In this four-group zoom lens, a zoom lens that compensates for image blur by moving a lens unit having a negative refractive power arranged in the fourth lens group in a direction perpendicular to the optical axis is known (Patent Document 6). 7).

又、ズームレンズとして物体側から像側へ順に、正の屈折力の第1レンズ群、負の屈折力の第2レンズ群、正の屈折力の第3レンズ群、負の屈折力の第4レンズ群、正の屈折力の第5レンズ群より構成される5群ズームレンズが知られている。この5群ズームレンズにおいて第4レンズ群を光軸と垂直な方向に移動させることによって画像ブレを補償する一眼レフカメラ用のズームレンズが知られている(特許文献8)。   Further, as a zoom lens, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, a third lens group having a positive refractive power, and a fourth lens having a negative refractive power. There is known a five-group zoom lens including a lens group and a fifth lens group having a positive refractive power. In this 5-group zoom lens, a zoom lens for a single-lens reflex camera is known that compensates for image blur by moving the fourth lens group in a direction perpendicular to the optical axis (Patent Document 8).

又、ズームレンズとして物体側から像側へ順に、正の屈折力の第1レンズ群、負の屈折力の第2レンズ群、正の屈折力の第3レンズ群、正の屈折力の第4レンズ群より構成される4群ズームレンズが知られている。この4群ズームレンズにおいて第3レンズ群を正の屈折力のレンズ群と負の屈折力のレンズ群で構成し、負の屈折力のレンズ群を光軸と垂直な方向に移動させることによって画像ブレを補償するズームレンズが知られている(特許文献9、10)。   Further, as a zoom lens, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, a third lens group having a positive refractive power, and a fourth lens having a positive refractive power. A four-group zoom lens composed of lens groups is known. In this four-group zoom lens, the third lens group is composed of a positive refractive power lens group and a negative refractive power lens group, and the negative refractive power lens group is moved in a direction perpendicular to the optical axis. Zoom lenses that compensate for blurring are known (Patent Documents 9 and 10).

又、ズームレンズとして物体側から像側へ順に、正の屈折力を有する第1レンズ群と、負の屈折力を有する第2レンズ群と、正の屈折力を有する第3レンズ群とを含み、各レンズ群の間隔を変化させることによって変倍を行うズームレンズが知られている。   Further, the zoom lens includes, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, and a third lens group having a positive refractive power. A zoom lens that performs zooming by changing the interval between the lens groups is known.

このズームレンズにおいて、第2レンズ群の全部又は一部を光軸と垂直方向に移動させて画像ブレを補正するズームレンズが知られている(特許文献11、12)。
特開平5−224160号公報 特開平8−136862号公報 特開平10−133113号公報 特開平10−282413号公報 特開2002−162564号公報 特開2001−100099号公報 特開2004−126631号公報 特開平10−90601号公報 特開2006−106191号公報 特開2006−284763号公報 特開2005−106925号公報 特開平07−325272号公報
Among these zoom lenses, zoom lenses that correct image blur by moving all or part of the second lens group in a direction perpendicular to the optical axis are known (Patent Documents 11 and 12).
JP-A-5-224160 JP-A-8-136862 JP-A-10-133113 JP-A-10-282413 JP 2002-162564 A JP 2001-100099 A JP 2004-126631 A JP-A-10-90601 JP 2006-106191 A JP 2006-284863 A JP 2005-106925 A JP 07-325272 A

一般にズームレンズの一部のレンズ群を光軸と垂直方向に振動させて撮影画像のブレをなくし、静止画像を得る機構には、種々のことが要望されている。   In general, various mechanisms are desired for obtaining a still image by vibrating a part of a lens group of a zoom lens in a direction perpendicular to the optical axis to eliminate blurring of a captured image.

防振機能を有したズームレンズにおいては、防振レンズ群を光紬と直交する方向に移動させて偏心状態にしたとき、偏心収差の発生量が少ないことが重要となっている。   In a zoom lens having an anti-vibration function, it is important that the amount of decentration aberration is small when the anti-vibration lens group is moved in a direction orthogonal to the light beam to be in an eccentric state.

本発明は、防振を効果的に行い、かつ防振時に偏心収差の発生が少なく、良好なる画像を維持することができる防振機能を有したズームレンズの提供を目的とする。   SUMMARY OF THE INVENTION An object of the present invention is to provide a zoom lens having an anti-vibration function capable of effectively preventing vibrations and generating less decentration aberrations during vibration prevention and maintaining a good image.

本発明のズームレンズは、物体側から像側へ順に、正の屈折力の第1レンズ群と、負の屈折力の第2レンズ群と、正の屈折力の第3レンズ群、光軸に対して垂直方向の成分を持つ方向に移動して結像位置を変化させる負の屈折力のレンズ群Gisを含む第4レンズ群、正の屈折力の第5レンズ群より構成され、広角端から望遠端へのズーミングに際して、前記第1レンズ群と前記第2レンズ群の間隔が増大し、前記第2レンズ群と前記第3レンズ群の間隔が減少し、前記第3レンズ群と前記第4レンズ群の間隔が増大し、前記第4レンズ群と前記第5レンズ群の間隔が減少するズームレンズであって、前記レンズ群Gisは、物体側から像側へ順に、負レンズと正レンズを有し、前記第1レンズ群と前記第5レンズ群の焦点距離を各々f1、f5、望遠端における全系の焦点距離をftとするとき、
0.27<f1/ft<0.69
0.11<f5/ft<0.45
なる条件式を満足することを特徴としている。
The zoom lens of the present invention includes, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, a third lens group having a positive refractive power, and an optical axis. On the other hand, it is composed of a fourth lens group including a negative refractive power lens group Gis that moves in a direction having a component in the vertical direction and changes the image forming position, and a fifth lens group having a positive refractive power. During zooming to the telephoto end, the distance between the first lens group and the second lens group is increased, the distance between the second lens group and the third lens group is decreased , and the third lens group and the fourth lens group are reduced . A zoom lens in which the distance between the lens groups is increased and the distance between the fourth lens group and the fifth lens group is decreased , and the lens group Gis includes a negative lens and a positive lens in order from the object side to the image side. Yes, and the focal length of said fifth lens group and the first lens group, respectively f1, 5, when the focal length of the entire system at the telephoto end and ft,
0.27 <f1 / ft <0.69
0.11 <f5 / ft <0.45
It satisfies the following conditional expression .

本発明によれば、防振を効果的に行い、かつ防振時に偏心収差の発生が少なく、良好なる画像を維持することができる防振機能を有したズームレンズが得られる。   According to the present invention, it is possible to obtain a zoom lens having an anti-vibration function capable of effectively performing anti-vibration and generating less decentration aberration during anti-vibration and maintaining a good image.

以下、本発明のズームレンズ及びそれを有する撮像装置の実施例について説明する。   Embodiments of the zoom lens of the present invention and an image pickup apparatus having the same will be described below.

一般にズームレンズの一部のレンズ群を光軸と垂直方向に振動させて撮影画像のブレをなくし、静止画像を得る機構には、以下のようなことが要望されている。   In general, a mechanism for obtaining a still image by vibrating a part of a lens group of a zoom lens in a direction perpendicular to the optical axis to obtain a still image is desired as follows.

例えば画像ブレの補正量が大きいことや、画像ブレの補正の為に振動させるレンズ群(防振レンズ群)の移動量や回転量が少ないこと、そして装置全体が小型であること等が要望されている。   For example, there is a demand for a large amount of image blur correction, a small amount of movement and rotation of the lens group (anti-vibration lens group) that vibrates for image blur correction, and a small overall device. ing.

また、防振レンズ群を偏心させたときに偏心収差、例えば偏心色収差が多く発生すると、画像ブレを補正したときに偏心収差の発生によって色にじみが多くなり、画像がボケて画質が低下してくる。したがって防振機能を有したズームレンズにおいては、防振レンズ群を光紬と直交する方向に移動させて偏心状態にしたとき、偏心収差の発生量が少ないことが重要となっている。   Also, if a large amount of decentration aberration, for example, decentration chromatic aberration, occurs when the anti-vibration lens group is decentered, color blurring increases due to the occurrence of decentration aberration when image blur is corrected, and the image is blurred and the image quality deteriorates. come. Therefore, in a zoom lens having an anti-vibration function, it is important that the amount of decentration aberration is small when the anti-vibration lens group is moved in a direction orthogonal to the light beam to be in an eccentric state.

また、防振敏感度(防振レンズ群の単位移動量ΔHに対する画像のブレの補正量ΔXとの比ΔX/ΔH)の設定が適切でないと、防振レンズ群を移動させたときに画像ブレを効果的に補正するのが難しくなる。このため、防振敏感度を適切に設定することも重要である。   Further, if the image stabilization sensitivity (ratio ΔX / ΔH of the image blur correction amount ΔX with respect to the unit movement amount ΔH of the image stabilization lens group) is not set appropriately, the image blur is not detected when the image stabilization lens group is moved. It becomes difficult to correct effectively. For this reason, it is also important to set the anti-vibration sensitivity appropriately.

さらには、防振時の画像のブレ補正の応答性を良好とするために、防振レンズ群が軽量でレンズ外径が小型であることも重要となっている。   Furthermore, it is also important that the vibration-proof lens group is lightweight and the lens outer diameter is small in order to improve the image blur correction responsiveness during image stabilization.

そこで、以下に記載する本実施例においては、これらの課題を解決することが可能なズームレンズについて記載する。   Therefore, in this embodiment described below, a zoom lens capable of solving these problems will be described.

上記の課題を解決するための本発明のズームレンズは、物体側から像側へ順に、正の屈折力の第1レンズ群と、負の屈折力の第2レンズ群と、複数のレンズ群を含み全体として正の屈折力の後続レンズ群とを有している。   In order to solve the above problems, a zoom lens of the present invention includes, in order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, and a plurality of lens groups. And a subsequent lens group having a positive refractive power as a whole.

広角端から望遠端へのズーミングの際に、第1レンズ群と第2レンズ群との間隔が増大し、第2レンズ群と後続レンズ群との間隔が減少する。 During zooming from the wide-angle end to the telephoto end, the distance between the first lens group and the second lens group increases, and the distance between the second lens group and the subsequent lens group decreases .

尚、後続レンズ群は光軸に対して垂直方向の成分を持つように移動して像を変位させる負の屈折力のレンズ群Gisを含む第4レンズ群L4第4レンズ群L4の物体側に正の屈折力の第3レンズ群L3第4レンズ群L4の像側に正の屈折力の第5レンズ群L5より成っている。 The succeeding lens group moves so as to have a component perpendicular to the optical axis, and includes a fourth lens group L4 including a lens group Gis having a negative refractive power that displaces the image, and the object side of the fourth lens group L4 . The third lens unit L3 has a positive refractive power and the fifth lens unit L5 has a positive refractive power on the image side of the fourth lens unit L4 .

図1は本発明の、実施例1のレンズ断面図である。図2(A)、(B)、(C)は本発明の、実施例1の広角端(短焦点距離端)、中間のズーム位置、望遠端(長焦点距離端)における縦収差図である。図3(A)、(B)、(C)は本発明の、実施例1の広角端、中間のズーム位置、望遠端における像高10mmの横収差図である。図4(A)、(B)、(C)は本発明の実施例1の広角端、中間のズーム位置、望遠端における0.3°の傾きを補正した防振時の横収差図である。   FIG. 1 is a lens cross-sectional view of Example 1 of the present invention. 2A, 2B, and 2C are longitudinal aberration diagrams of the first embodiment of the present invention at the wide-angle end (short focal length end), the intermediate zoom position, and the telephoto end (long focal length end). . FIGS. 3A, 3B, and 3C are lateral aberration diagrams of the first embodiment of the present invention at an image height of 10 mm at the wide-angle end, the intermediate zoom position, and the telephoto end. 4A, 4B, and 4C are lateral aberration diagrams at the time of image stabilization in which the tilt of 0.3 ° is corrected at the wide-angle end, the intermediate zoom position, and the telephoto end according to the first embodiment of the present invention. .

図5は本発明の、実施例2のレンズ断面図である。図6(A)、(B)、(C)は本発明の、実施例2の広角端、中間のズーム位置、望遠端における縦収差図である。図7(A)、(B)、(C)は本発明の実施例2の広角端、中間のズーム位置、望遠端における像高10mmの横収差図である。図8(A)、(B)、(C)は本発明の、実施例2の広角端、中間のズーム位置、望遠端における0.3°の傾きを補正した防振時の横収差図である。   FIG. 5 is a lens cross-sectional view of Example 2 of the present invention. 6A, 6B, and 6C are longitudinal aberration diagrams of the second embodiment of the present invention at the wide-angle end, the intermediate zoom position, and the telephoto end, respectively. FIGS. 7A, 7B, and 7C are lateral aberration diagrams of the image height of 10 mm at the wide-angle end, the intermediate zoom position, and the telephoto end of Example 2 of the present invention. FIGS. 8A, 8B, and 8C are lateral aberration diagrams at the time of image stabilization in which the tilt of 0.3 ° is corrected at the wide-angle end, the intermediate zoom position, and the telephoto end according to the second embodiment of the present invention. is there.

図9は本発明の、実施例3のレンズ断面図である。図10(A)、(B)、(C)は本発明の、実施例3の広角端、中間のズーム位置、望遠端における縦収差図である。図11(A)、(B)、(C)は本発明の実施例3の広角端、中間のズーム位置、望遠端における像高10mmの横収差図である。図12(A)、(B)、(C)は本発明の、実施例3の広角端、中間のズーム位置、望遠端における0.3°の傾きを補正した防振時の横収差図である。   FIG. 9 is a lens sectional view of Example 3 of the present invention. FIGS. 10A, 10B, and 10C are longitudinal aberration diagrams of the third embodiment of the present invention at the wide-angle end, the intermediate zoom position, and the telephoto end. 11A, 11B, and 11C are lateral aberration diagrams of the image height of 10 mm at the wide-angle end, the intermediate zoom position, and the telephoto end according to the third embodiment of the present invention. 12A, 12B, and 12C are lateral aberration diagrams at the time of image stabilization in which the tilt of 0.3 ° is corrected at the wide-angle end, the intermediate zoom position, and the telephoto end according to the third embodiment of the present invention. is there.

図13は本発明のズームレンズを備える一眼レフカメラ(撮像装置)の要部概略図である。レンズ断面図において、(a)は広角端、(b)は中間焦点距離、(c)は望遠端を示している。   FIG. 13 is a schematic diagram of a main part of a single-lens reflex camera (imaging device) including the zoom lens of the present invention. In the lens cross-sectional view, (a) shows the wide-angle end, (b) shows the intermediate focal length, and (c) shows the telephoto end.

又、レンズ断面図において、左方が物体側(前方)で、右方が像側(後方)である。各実施例は撮像装置に用いられる撮影レンズである。レンズ断面図において、Liは第iレンズ群である。L1は正の屈折力の第1レンズ群、L2は負の屈折力の第2レンズ群、LRは複数のレンズ群を含み、全体として正の屈折力の後続レンズ群である。 In the lens cross-sectional view, the left side is the object side (front), and the right side is the image side (rear). Each embodiment is a photographic lens used in an imaging apparatus. In the lens cross-sectional view, Li is the i-th lens group. L1 is a first lens group having a positive refractive power, L2 is a second lens group having a negative refractive power, and LR includes a plurality of lens groups, and is a subsequent lens group having a positive refractive power as a whole.

後続レンズ群LRは光軸に対して垂直方向の成分を持つように移動して像(結像位置)を変位させる負の屈折力のレンズ群Gisを含む第4レンズ群L4第4レンズ群L4の物体側に正の屈折力の第3レンズ群L3第4レンズ群L4の像側に正の屈折力の第5レンズ群L5より構成されている。 Rear lens group LR includes a fourth lens unit L4 including a lens unit Gis a negative refractive power that moves so as to have a component in a direction perpendicular to the optical axis to displace the image (imaging position), the fourth lens group the third lens unit L3 on the object side of the positive refractive power of L4, and is composed of a fifth lens unit L5 having a positive refractive power on the image side of the fourth lens unit L4.

IPは像面であり、ビデオカメラやデジタルスチルカメラの撮影光学系として使用する際にはCCDセンサーやCMOSセンサー等の撮像光学系によって形成された像を受光するための固体撮像素子(光電変換素子)の撮像面に相当する。又は銀塩フィルム用のカメラのときはフィルム面等の感光面に相当する。SPは開口絞りである。尚、広角端と望遠端は変倍用レンズ群が、機構上光軸上移動可能な範囲の両端に位置したときのズーム位置をいう。   IP is an image plane, and when used as an imaging optical system for a video camera or a digital still camera, a solid-state imaging element (photoelectric conversion element) for receiving an image formed by an imaging optical system such as a CCD sensor or a CMOS sensor. ). Or in the case of a camera for a silver salt film, it corresponds to a photosensitive surface such as a film surface. SP is an aperture stop. The wide-angle end and the telephoto end are zoom positions when the zoom lens unit is positioned at both ends of a range in which the zoom lens group can move on the optical axis in the mechanism.

矢印は、広角端から望遠端へのズーミングに際しての各レンズ群の移動軌跡である。広角端から望遠端へのズーミングの際、第1レンズ群L1と第2レンズ群L2の間隔は増大し、第2レンズ群L2と後続レンズ群LRの間隔は減少するように各レンズ群が移動している。 The arrow indicates the movement locus of each lens unit during zooming from the wide-angle end to the telephoto end. When zooming from the wide-angle end to the telephoto end, the distance between the first lens unit L1 and the second lens unit L2 increases, and the distance between the second lens unit L2 and the subsequent lens unit LR decreases. is doing.

更に詳述すると、広角端から望遠端へのズーミングに際しての第2レンズ群L2と後続レンズ群LRを構成する各レンズ群との関係は次のとおりである。   More specifically, the relationship between the second lens unit L2 and each lens unit constituting the subsequent lens unit LR during zooming from the wide-angle end to the telephoto end is as follows.

第2レンズ群L2と第3レンズ群L3との間隔が減少し、第3レンズ群L3と第4レンズ群L4との間隔が増大し、第4レンズ群L4と第5レンズ群L5との間隔が減少するように各レンズ群が移動している。 The distance between the second lens group L2 and the third lens group L3 decreases , the distance between the third lens group L3 and the fourth lens group L4 increases, and the distance between the fourth lens group L4 and the fifth lens group L5. Each lens group is moved so as to decrease .

ズーミングに際して第3レンズ群L3第5レンズ群L5は一体的に移動しているが、独立に移動しても良い。 The third lens unit L3 and the fifth lens unit L5 are moved together during zooming, but may be moved independently.

尚、明細書においてレンズ群とは複数のレンズより成る場合及び単一のレンズより成る場合を含む。   In the specification, the lens group includes a case where the lens group is composed of a plurality of lenses and a case where the lens group is composed of a single lens.

又レンズ群とは、ズーミング、フォーカス、防振時等において一体不可分の関係で変位するレンズの集合体をいう。   The lens group is a group of lenses that are displaced in an inseparable relationship during zooming, focusing, vibration isolation, and the like.

収差図において、d,gは各々d線及びg線、ΔM,ΔSはメリディオナル像面、サジタル像面、倍率色収差はg線によって表している。S.Cは正弦条件である。Yは像高である。FnoはFナンバーである。ωは半画角である。   In the aberration diagrams, d and g are d-line and g-line, ΔM and ΔS are meridional image surface, sagittal image surface, and lateral chromatic aberration are represented by g-line. S. C is a sine condition. Y is the image height. Fno is an F number. ω is a half angle of view.

各実施例のズームレンズは、正の屈折力のレンズ群が先行する(物体側に位置する)所謂ポジティブリードタイプの屈折力配置となっている。これによって望遠端の焦点距離を長くすることが容易なレンズ構成としている。   The zoom lens of each embodiment has a so-called positive lead type refractive power arrangement preceded by a lens unit having a positive refractive power (located on the object side). This makes it easy to increase the focal length at the telephoto end.

そして後続レンズ群LRを物体側から像側へ順に、正の屈折力の第3レンズ群L3、負の屈折力の第4レンズ群L4、正の屈折力の第5レンズ群L5より構成している。第4レンズ群L4は光軸に対して略垂直の成分を持つ方向に移動して(光軸と垂直方向の)像位置の変位を行う、即ち防振をおこなう負の屈折力のレンズ群Gisを有している。 The subsequent lens group LR is composed of a third lens group L3 having a positive refractive power, a fourth lens group L4 having a negative refractive power, and a fifth lens group L5 having a positive refractive power in order from the object side to the image side. Yes. The fourth lens unit L4 moves in a direction having a component substantially perpendicular to the optical axis to displace the image position (perpendicular to the optical axis), that is, a lens unit Gis having a negative refractive power that performs image stabilization. have.

レンズ群Gisは、物体側から像側へ順に配置された、負レンズと正レンズにより構成されており、これらのレンズは接合されている。但し、この負レンズと正レンズとは、接合せずに単レンズとして設けても構わないし、このレンズ群Gisは、他のレンズを含んでいても構わない。 Lens unit Gis is disposed in order from the object side to the image side, which is more configured negative lens and a positive lens, these lenses are cemented. However, the negative lens and the positive lens, to without bonding may be provided as a single lens, this lens unit Gis is may also include other lenses.

レンズ群Gisへ入射光束を第3レンズ群L3にて収斂させることで、レンズ群Gisの有効径の小型化を容易としている。また、レンズ群Gisの屈折力を後続レンズ群LRの屈折力と異符号とすることで、レンズ群Gisの負の屈折力の十分なる確保を容易とし、レンズ群Gisの防振敏感度が高くなるようにしている。 By converging the incident light beam to the lens group Gis by the third lens group L3 , the effective diameter of the lens group Gis can be easily reduced. In addition, by making the refractive power of the lens group Gis different from the refractive power of the subsequent lens group LR, it is easy to ensure sufficient negative refractive power of the lens group Gis, and the vibration proof sensitivity of the lens group Gis is high. It is trying to become.

さらに、後続レンズ群LRの最も像側に正の屈折力の第5レンズ群L5を配置することで、広角端におけるバックフォーカスが長くなるようにし、その結果、広角端の焦点距離が短くなりやすい構成としている。 Further, by arranging the fifth lens unit L5 having a positive refractive power closest to the image side of the subsequent lens unit LR, the back focus at the wide-angle end becomes long, and as a result, the focal length at the wide-angle end tends to be short. It is configured.

一般的に防振時の結像性能の劣化を少なくするためには、防振レンズ群より物体側の各レンズ群の諸収差を小さくしておくのが良い。   In general, in order to reduce deterioration in image forming performance during image stabilization, it is preferable to reduce various aberrations of each lens unit closer to the object side than the image stabilization lens unit.

各実施例では、防振レンズ群であるレンズ群Gisの物体側の第3レンズ群L3にレンズ中心からレンズ周辺にむかって正の屈折力が弱くなる形状の非球面を配置している。 In each embodiment, an aspherical surface having a positive refractive power that decreases from the center of the lens toward the periphery of the lens is disposed in the third lens unit L3 on the object side of the lens unit Gis that is the anti-vibration lens unit.

これによって、望遠端において球面収差を良好に補正し、防振時の結像性能の劣化を抑制している。さらに各実施例では防振時での望遠端におけるコマ収差を良好に補正するためにレンズ群Gisを物体側から像側へ順に負レンズ、正レンズより構成している。 As a result, spherical aberration is corrected well at the telephoto end, and deterioration of imaging performance during image stabilization is suppressed. More negative lens in this order toward the image side lens unit Gis to satisfactorily correct the coma aberration at the telephoto end at the time of image stabilization in each embodiment from the object side, constituting Ri by positive lens.

第5レンズ群L5を物体側から像側へ順に、正レンズより成る第51レンズ群、正レンズと負レンズの接合レンズより成る第52レンズ群より構成している。 The fifth lens unit L5 includes, in order from the object side to the image side, a 51st lens unit including a positive lens and a 52nd lens unit including a cemented lens of a positive lens and a negative lens.

第5レンズ群L5のなかでも、軸外光束が光軸から離れた位置を通過する第52レンズ群は、レンズ中心からレンズ周辺にむかって正の屈折力が弱まる形状の非球面を配置している。これにより、広角端における歪曲収差を良好に補正している。 Among the fifth lens unit L5 , the 52nd lens unit in which the off-axis light beam passes through a position away from the optical axis has an aspherical surface with a positive refractive power that decreases from the lens center toward the lens periphery. Yes. Thereby, the distortion aberration at the wide-angle end is corrected well.

以上のように各実施例によれば、標準ズーム域を含み高いズーム比を持ちながらも全ズーム域にわたって良好な光学性能を維持することができる。   As described above, according to each embodiment, it is possible to maintain good optical performance over the entire zoom range while having a high zoom ratio including the standard zoom range.

そして、振動補償(防振)のための機構を具備した際にも装置全体の小型化が容易となる。さらには、振動補償時にも良好な画像を得ることができる防振機能を有したズームレンズが得られる。   Even when a mechanism for vibration compensation (anti-vibration) is provided, the entire apparatus can be easily downsized. Furthermore, a zoom lens having an anti-vibration function capable of obtaining a good image even during vibration compensation can be obtained.

各実施例において好ましくは、以下の諸条件のうち1以上を満足するように構成することが望ましい。   In each embodiment, it is preferable to configure so as to satisfy one or more of the following conditions.

第51レンズ群は正レンズを有し、正レンズの材料のアッベ数をν51pとする。このとき
72<ν51p<97 ・・・・・(1)
なる条件を満足するのが良い。
51 lens unit has a positive lens, and ν51p the Abbe number of the material of the positive lens. At this time, 72 < ν51p <97 (1)
It is good to satisfy the condition.

条件式(1)は光束径が大きくなる第51レンズ群中の正レンズの材料のアッベ数を適切に設定することにより、望遠端において軸上色収差を良好に補正するためのものである。 Condition (1) by appropriately setting the Abbe number of the positive lens of the material in the first 51 lens group light flux diameter increases is for effectively correct axial chromatic aberration at the telephoto end.

条件式(1)を外れると望遠端での軸上色収差の補正が困難となる。さらに望ましくは、条件式(1)の数値範囲を以下の範囲とするとよい。   If the conditional expression (1) is not satisfied, it will be difficult to correct longitudinal chromatic aberration at the telephoto end. More preferably, the numerical range of conditional expression (1) is set to the following range.

80<ν51p<97 ・・・・・(1a)
レンズ群Gisの負レンズと正レンズは接合されており、その接合面は物体側に凸形状であることが良い。
80 < ν51p <97 (1a)
Negative lens and the positive lens of the lens unit Gis is joined, its bonding face, it is good is convex toward the object side.

レンズ群Gisの負レンズと正レンズを接合レンズとすることで、レンズ群Gisを保持する鏡筒構造が簡潔になる。又、鏡筒の重量を軽減しやすくなり、防振時にレンズ群Gisを駆動させるためのアクチュエータが小型化となる。さらに、接合レンズの接合レンズ面を物体側に凸形状とすることで、負レンズと正レンズとによる負の屈折力が得やすくなる。 A negative lens and a positive lens of the lens unit Gis by a cemented lens, a lens barrel structure that holds the lens unit Gis becomes concise. In addition, the weight of the lens barrel can be easily reduced, and the actuator for driving the lens group Gis during vibration isolation can be downsized. Further, the cemented lens surface of the cemented lens by a convex shape on the object side, the negative refractive power by the negative lens and the positive lens is easily obtained.

第3レンズ群L3は物体側から像側へ順に、物体側の面が凸でメニスカス形状の負レンズ、物体側の面が凸形状の正レンズを連続して配置したレンズ構成が含まれるようにするのが良い。 In order to the image side from the third lens unit L3 on the object side includes a lens arrangement which negative lens of meniscus surface on the object side is arranged in succession a positive lens having a convex shape surface on the object side is a convex It is good to do so.

これによれば防振レンズ群Gisより物体側で、特に望遠端における球面収差をさらに良好に補正するのが容易となる。   This makes it easier to correct spherical aberration more satisfactorily on the object side than the anti-vibration lens group Gis, particularly at the telephoto end.

そして第3レンズ群L3の負レンズ、正レンズの材料の屈折率を各々N3n、N3pとする。このとき
0.1<N3nN3p・・・・・(2)
なる条件を満足するのが良い。
The negative lens of the third lens unit L3, respectively the refractive index of the positive lens material N3n, and N3P. At this time, 0.1 < N3n - N3p (2)
It is good to satisfy the condition.

条件式(2)を外れると望遠端において球面収差を良好に補正するのが難しくなる。更に好ましくは条件式(2)の数値範囲を次の如く設定するのが良い。   If the conditional expression (2) is not satisfied, it will be difficult to satisfactorily correct spherical aberration at the telephoto end. More preferably, the numerical range of conditional expression (2) is set as follows.

0.2<N3nN3p・・・・・(2a)
第3レンズ群L3を構成する負レンズと正レンズは接合されているのが良い。
0.2 < N3nN3p (2a)
Negative lens and a positive lens constituting the third lens unit L3 good to being joined.

これによれば組み立て時の偏芯誤差を小さくすることができるため、光学性能の製造ばらつきを抑制しやすくなる。   According to this, since the eccentric error at the time of assembly can be reduced, it becomes easy to suppress the manufacturing variation in optical performance.

広角端から望遠端へのズーミングに際して、第4レンズ群L4と第5レンズ群L5の間隔が減少するように移動させるのが良い。 During zooming from the wide-angle end to the telephoto end, it is preferable to move the fourth lens unit L4 and the fifth lens unit L5 so that the distance between them decreases .

これによれば大きな変倍比(ズーム比)と防振敏感度の確保が容易になる。   According to this, it becomes easy to ensure a large zoom ratio and anti-vibration sensitivity.

第4レンズ群L4はレンズ群Gisの像側にズーミングの際、レンズ群Gisとの間隔が不変の負の屈折力のレンズ群Gisrを有するのが良い。レンズ群Gisを防振レンズ群、レンズ群Gisとレンズ群Gisrが一体で変倍用の第4レンズ群L4となる。 The fourth lens unit L4 may include a lens unit Gisr having a negative refractive power whose distance from the lens unit Gis is unchanged during zooming on the image side of the lens unit Gis. The lens group Gis is an anti-vibration lens group, and the lens group Gis and the lens group Gisr are integrated into a fourth lens unit L4 for zooming.

その結果、レンズ群Gisを防振に最適な屈折力としても、レンズ群Gisrによって変倍レンズ群として最適な屈折力に補正することができる。このため、高変倍(高ズーム比)と防振を良好に行うことが容易となる。   As a result, even if the lens group Gis has an optimum refractive power for image stabilization, the lens group Gisr can correct the lens group Gis to an optimum refractive power as a variable power lens group. For this reason, it becomes easy to perform high zoom ratio (high zoom ratio) and good image stabilization.

また、レンズ群Gisとレンズ群Gisrとの間隔を不変としているので、鏡筒構造が複雑になることがない。   Further, since the distance between the lens group Gis and the lens group Gisr is not changed, the lens barrel structure does not become complicated.

広角端から望遠端へのズーミングの際、第3レンズ群L3第4レンズ群L4の間隔が増大するように移動させるのが良い。これによれば軸上光束径が大きくなる望遠端において、第3レンズ群L3を射出した軸上光束をよく収斂させて第4レンズ群L4に入射させることができるため、第4レンズ群L4の小型化が容易になる。 During zooming from the wide-angle end to the telephoto end, it is preferable to move the third lens unit L3 and the fourth lens unit L4 so that the distance between them increases. According to this, since the axial light beam emitted from the third lens unit L3 can be well converged and incident on the fourth lens unit L4 at the telephoto end where the axial light beam diameter becomes large, the fourth lens unit L4 Miniaturization becomes easy.

第1、第2レンズ群L1、L2の焦点距離を各々f1、f2とする。第3レンズ群L3、レンズ群Gis、第5レンズ群L5、レンズ群Gisrの焦点距離を順にf3、fis、f5、fisrとする。望遠端における全系の焦点距離をftとする。 The focal lengths of the first and second lens units L1 and L2 are f1 and f2, respectively. The focal lengths of the third lens unit L3 , the lens unit Gis, the fifth lens unit L5 , and the lens unit Gisr are sequentially set as f3, fis, f5, and fisr . Let ft be the focal length of the entire system at the telephoto end.

このとき以下の条件のうちいずれか1つを満足するのが良い。 At this time, it is preferable to satisfy any one of the following conditions.

0.27<f1/ft<0.69・・・・・(3)
0.04<|f2|/ft<0.11・・・・・(4)
0.06<f3/ft<0.19・・・・・(5)
0.05<|fis|/ft<0.48・・・・・(6)
0.11<f5/ft<0.45・・・・・(7)
0.69<fis/fisr<1.14・・・・・(8)
条件式(3)は第1レンズ群L1の焦点距離を規定するものである。条件式(3)の上限値以内にあれば、望遠端において、明るいFナンバーの確保が容易となる。又、下限値以内にあれば、望遠端において球面収差の補正が容易となる。
0.27 <f1 / ft < 0.69 (3)
0.04 <| f2 | / ft <0.11 (4)
0.06 <f3 / ft <0.19 (5)
0.05 <| fis | / ft <0.48 (6)
0.11 <f5 / ft <0.45 (7)
0.69 <fis / fisr <1.14 (8)
Conditional expression (3) defines the focal length of the first lens unit L1. If it is within the upper limit value of conditional expression (3), it becomes easy to secure a bright F number at the telephoto end. Further, if it is within the lower limit, it becomes easy to correct spherical aberration at the telephoto end.

望ましくは条件式(3)の数値範囲を以下の範囲とするのがよい。   Desirably, the numerical range of conditional expression (3) should be set to the following range.

0.33<f1/ft<0.69 ・・・・・(3a)
条件式(4)は第2レンズ群L2の焦点距離を規定するものである。条件式(4)の上限値以内にあれば、高いズーム比の確保が容易となる。又、下限値以内にあれば、ズーミングにともなう像面湾曲の変動を抑制しやすくなる。望ましくは条件式(4)の数値範囲を以下の範囲とするのがよい。
0.33 <f1 / ft <0.69 (3a)
Conditional expression (4) defines the focal length of the second lens unit L2. If it is within the upper limit value of conditional expression (4), it is easy to ensure a high zoom ratio. Also, if it is within the lower limit value, it becomes easy to suppress the variation in field curvature due to zooming. Desirably, the numerical range of conditional expression (4) should be set to the following range.

0.05<|f2|/ft<0.10 ・・・・・(4a)
条件式(5)はレンズ群Gpfの焦点距離を規定するものである。条件式(5)の上限値以内にあれば、レンズ群Gisの小型化が容易となる。又、下限値以内にあれば、ズーミングにともなう球面収差の変動を抑制しやすくなる。望ましくは条件式(5)の数値範囲を以下の範囲とするのがよい。
0.05 <| f2 | / ft <0.10 (4a)
Conditional expression (5) defines the focal length of the lens group Gpf. If it is within the upper limit value of the conditional expression (5), the lens group Gis can be easily downsized. Also, if it is within the lower limit, it becomes easy to suppress the variation of spherical aberration due to zooming. Desirably, the numerical range of conditional expression (5) should be set to the following range.

0.08<f3/ft<0.17 ・・・・・(5a)
条件式(6)はレンズ群Gisの焦点距離を規定するものである。条件式(6)の上限値以内にあれば、高い防振敏感度の確保が容易となる。又、下限値以内にあれば、防振時に発生するコマ収差の補正が容易となる。望ましくは条件式(6)の数値範囲を以下の範囲とするのがよい。
0.08 < f3 / ft <0.17 (5a)
Conditional expression (6) defines the focal length of the lens group Gis. As long as it is within the upper limit value of conditional expression (6), it is easy to ensure high vibration-proof sensitivity. Further, if it is within the lower limit value, it becomes easy to correct coma generated during image stabilization. Desirably, the numerical range of conditional expression (6) is set to the following range.

0.10<|fis|/ft<0.43 ・・・・・(6a)
条件式(7)は第5レンズ群L5の焦点距離を規定するものである。条件式(7)の上限値以内にあれば、高いズーム比の確保が容易となる。又、下限値以内にあれば、ズーミングにともなう像面湾曲の変動を抑制しやすくなる。望ましくは条件式(7)の数値範囲を以下の範囲とするのがよい。
0.10 <| fis | / ft <0.43 (6a)
Conditional expression (7) defines the focal length of the fifth lens unit L5 . If it is within the upper limit value of conditional expression (7), it is easy to ensure a high zoom ratio. Also, if it is within the lower limit value, it becomes easy to suppress the variation in field curvature due to zooming. Desirably, the numerical range of conditional expression (7) is set to the following range.

0.12<f5/ft<0.40 ・・・・・(7a)
更に好ましくは、
0.134<f5/ft<0.250 ・・・・・(7b)
条件式(8)はレンズ群Gisrの焦点距離を規定するものである。条件式(8)の上限値以内にあれば、高いズーム比の確保が容易となる。又、下限値以内にあれば,望遠端におけるコマ収差の補正が容易となる。望ましくは条件式(8)の数値範囲を以下の範囲とするのがよい。
0.12 < f5 / ft <0.40 (7a)
More preferably,
0.134 < f5 / ft <0.250 (7b)
Conditional expression (8) defines the focal length of the lens group Gisr. If it is within the upper limit value of conditional expression (8), it is easy to ensure a high zoom ratio. Further, if it is within the lower limit value, it becomes easy to correct coma at the telephoto end. Desirably, the numerical range of conditional expression (8) is set to the following range.

0.75<fisfisr<1.09 ・・・・・(8a)
各実施例において、無限遠物体から近距離物体へのフォーカシングは、光学系全体もしくは一部のレンズ群を移動させて行なってもよい。好ましくは第2レンズ群L2を物体側に移動させて行うのが良い。
0.75 < fis / fisr <1.09 (8a)
In each embodiment, focusing from an infinitely distant object to a close object may be performed by moving the entire optical system or a part of a lens group. Preferably, the second lens unit L2 is moved to the object side.

尚、各実施例のズームレンズにおいて、後続レンズ群LRはズーミングに際して第3レンズ群L3第4レンズ群L4との間隔、第4レンズ群L4第5レンズ群L5との間隔がいずれも変化する。 In the zoom lens of each embodiment, the distance between the third lens group L3 and the fourth lens group L4 and the distance between the fourth lens group L4 and the fifth lens group L5 change in the subsequent lens group LR during zooming . To do.

実施例のズームレンズ全体として5つのレンズ群より成る5群ズームレンズである。 The zoom lens of each embodiment is a five-group zoom lens composed of five lens groups as a whole .

以上説明したように各実施例によれば、高いズーム比を持ちながらも全ズーム領域にわたって良好な光学性能を維持でき、しかも振動補償(防振)にも良好な画像を得ることができる。   As described above, according to each embodiment, it is possible to maintain good optical performance over the entire zoom range while having a high zoom ratio, and to obtain a good image for vibration compensation (anti-vibration).

特に撮影画像の安定化を図った写真用カメラや、ビデオカメラ、電子スチルカメラ、デジタルカメラそして3-CCD対応の電子カメラ等に好適なズームレンズが得られる。   In particular, it is possible to obtain a zoom lens suitable for a photographic camera, a video camera, an electronic still camera, a digital camera, a 3-CCD compatible electronic camera, and the like that stabilize a captured image.

次に、本発明のズームレンズを用いた一眼レフカメラシステム(撮像装置)の実施例を、図13を用いて説明する。   Next, an embodiment of a single-lens reflex camera system (imaging device) using the zoom lens of the present invention will be described with reference to FIG.

図13において、10は一眼レフカメラ本体、11は本発明によるズームレンズを搭載した交換レンズである。12は交換レンズ11を通して得られる被写体像を記録するフィルムや撮像素子などの記録手段である。13は交換レンズ11からの被写体像を観察するファインダー光学系、14は交換レンズ11からの被写体像を記録手段12とファインダー光学系13に切り替えて伝送するための回動するクイックリターンミラーである。ファインダーで被写体像を観察する場合は、クイックリターンミラー14を介してピント板15に結像した被写体像をペンタプリズム16で正立像としたのち、接眼光学系17で拡大して観察する。   In FIG. 13, 10 is a single-lens reflex camera body, and 11 is an interchangeable lens equipped with a zoom lens according to the present invention. Reference numeral 12 denotes a recording unit such as a film or an image sensor for recording a subject image obtained through the interchangeable lens 11. Reference numeral 13 denotes a finder optical system for observing a subject image from the interchangeable lens 11, and reference numeral 14 denotes a rotating quick return mirror for switching and transmitting the subject image from the interchangeable lens 11 to the recording means 12 and the finder optical system 13. When observing the subject image with the finder, the subject image formed on the focusing plate 15 via the quick return mirror 14 is made into an erect image with the pentaprism 16 and then magnified and observed with the eyepiece optical system 17.

撮影時にはクイックリターンミラー14が矢印方向に回動して被写体像は記録手段12に結像して記録される。18はサブミラー、19は焦点検出装置である。   At the time of shooting, the quick return mirror 14 rotates in the direction of the arrow, and the subject image is formed and recorded on the recording means 12. Reference numeral 18 denotes a submirror, and 19 denotes a focus detection device.

このように本発明のズームレンズを一眼レフカメラ等の交換レンズ等の撮像装置に適用することにより、高い光学性能を有した撮像装置が実現できる。   Thus, by applying the zoom lens of the present invention to an imaging device such as an interchangeable lens such as a single-lens reflex camera, an imaging device having high optical performance can be realized.

尚、本発明はクイックリターンミラーのない一眼レフカメラにも同様に適用することができる。又、プロジェクター用の投射レンズにも同様に適用することができる。   It should be noted that the present invention can be similarly applied to a single-lens reflex camera without a quick return mirror. Further, the present invention can be similarly applied to a projection lens for a projector.

次に、本発明の実施例1〜3に各々対応する数値実施例1〜3を示す。各数値実施例においてiは物体側から光学面の順序を示し、Riは第i番目の光学面(第i面)の曲率半径、Diは第i面と第i+1面との間の間隔、Niとνiはそれぞれd線に対する第i番目の光学部材の材料の屈折率、アッベ数を示す。   Next, numerical examples 1 to 3 corresponding to the first to third embodiments of the present invention will be described. In each numerical example, i indicates the order of the optical surfaces from the object side, Ri is the radius of curvature of the i-th optical surface (i-th surface), Di is the distance between the i-th surface and the i + 1-th surface, Ni And νi represent the refractive index and Abbe number of the material of the i-th optical member with respect to the d-line, respectively.

またA、B、C、D、Eを非球面係数、光軸からの高さHの位置での光軸方向の変位を面頂点を基準にしてXとするとき、非球面形状は   When A, B, C, D, and E are aspheric coefficients, and X is the displacement in the optical axis direction at the position of the height H from the optical axis, the aspheric shape is

で表示される。但しRは近軸曲率半径である。 Is displayed. Where R is the paraxial radius of curvature.

また例えば「e−Z」の表示は「10-Z」を意味する。また、各数値実施例における上述した条件式との対応を表1に示す。fは焦点距離、FnoはFナンバー、ωは半画角を示す。 For example, “e-Z” means “10 −Z ”. Table 1 shows the correspondence with the above-described conditional expressions in each numerical example. f represents a focal length, Fno represents an F number, and ω represents a half angle of view.


数値実施例1
f= 18.60〜 193.23 Fno= 3.60 〜 5.88 2ω=72.6 〜 8.1
R 1 = 137.336 D 1 = 2.00 N 1 = 1.806100 ν 1 = 33.3
R 2 = 54.813 D 2 = 9.35 N 2 = 1.496999 ν 2 = 81.5
R 3 = -433.462 D 3 = 0.15
R 4 = 54.024 D 4 = 6.20 N 3 = 1.603112 ν 3 = 60.6
R 5 = 383.450 D 5 = 可変
R 6 = 80.126 D 6 = 1.20 N 4 = 1.834807 ν 4 = 42.7
R 7 = 13.369 D 7 = 5.98
R 8 = -31.496 D 8 = 0.90 N 5 = 1.772499 ν 5 = 49.6
R 9 = 72.963 D 9 = 0.15
R10 = 26.229 D10 = 5.60 N 6 = 1.805181 ν 6 = 25.4
R11 = -26.229 D11 = 0.38
R12 = -22.000 D12 = 0.85 N 7 = 1.772499 ν 7 = 49.6
R13 = 91.549 D13 = 可変
R14 = 絞り D14 = 0.57
R15 = 32.210 D15 = 3.10 N 8 = 1.583126 ν 8 = 59.4
* R16 = -83.830 D16 = 0.15
R17 = 25.667 D17 = 0.90 N 9 = 1.805181 ν 9 = 25.4
R18 = 14.762 D18 = 4.90 N10 = 1.487490 ν10 = 70.2
R19 = -40.116 D19 = 可変
R20 = -81.012 D20 = 0.70 N11 = 1.712995 ν11 = 53.9
R21 = 13.552 D21 = 2.20 N12 = 1.806100 ν12 = 33.3
R22 = 34.802 D22 = 3.05
R23 = -20.347 D23 = 1.10 N13 = 1.834807 ν13 = 42.7
R24 = -49.082 D24 = 可変
R25 = 38.032 D25 = 6.25 N14 = 1.496999 ν14 = 81.5
R26 = -23.501 D26 = 3.41
* R27 = 160.167 D27 = 8.70 N15 = 1.583126 ν15 = 59.4
R28 = -14.217 D28 = 2.01 N16 = 1.834807 ν16 = 42.7
R29 = -51.096

焦点距離 18.60 49.94 193.23
可変間隔
D 5 2.16 27.19 54.51
D13 24.99 13.41 2.85
D19 2.63 5.84 7.99
D24 6.00 2.79 0.64

非球面係数
16面 : A=0.00000e+00 B=9.19247e-06 C=5.07959e-09 D=0.00000e+00
E=0.00000e+00 F=0.00000e+00
27面 : A=0.00000e+00 B=-1.00175e-05 C=-6.53404e-09 D=-1.88855e-12
E=4.62133e-13 F=0.00000e+00

各レンズ群の焦点距離
第1レンズ群 : 90.986
第2レンズ群 :−13.133
第3レンズ群 : 22.315
レンズ群Gis :−39.673
レンズ群Gisr:−42.371
第5レンズ群 : 28.750

Numerical example 1
f = 18.60-193.23 Fno = 3.60-5.88 2ω = 72.6-8.1
R 1 = 137.336 D 1 = 2.00 N 1 = 1.806100 ν 1 = 33.3
R 2 = 54.813 D 2 = 9.35 N 2 = 1.496999 ν 2 = 81.5
R 3 = -433.462 D 3 = 0.15
R 4 = 54.024 D 4 = 6.20 N 3 = 1.603112 ν 3 = 60.6
R 5 = 383.450 D 5 = Variable
R 6 = 80.126 D 6 = 1.20 N 4 = 1.834807 ν 4 = 42.7
R 7 = 13.369 D 7 = 5.98
R 8 = -31.496 D 8 = 0.90 N 5 = 1.772499 ν 5 = 49.6
R 9 = 72.963 D 9 = 0.15
R10 = 26.229 D10 = 5.60 N 6 = 1.805181 ν 6 = 25.4
R11 = -26.229 D11 = 0.38
R12 = -22.000 D12 = 0.85 N 7 = 1.772499 ν 7 = 49.6
R13 = 91.549 D13 = variable
R14 = Aperture D14 = 0.57
R15 = 32.210 D15 = 3.10 N 8 = 1.583126 ν 8 = 59.4
* R16 = -83.830 D16 = 0.15
R17 = 25.667 D17 = 0.90 N 9 = 1.805181 ν 9 = 25.4
R18 = 14.762 D18 = 4.90 N10 = 1.487490 ν10 = 70.2
R19 = -40.116 D19 = variable
R20 = -81.012 D20 = 0.70 N11 = 1.712995 ν11 = 53.9
R21 = 13.552 D21 = 2.20 N12 = 1.806100 ν12 = 33.3
R22 = 34.802 D22 = 3.05
R23 = -20.347 D23 = 1.10 N13 = 1.834807 ν13 = 42.7
R24 = -49.082 D24 = variable
R25 = 38.032 D25 = 6.25 N14 = 1.496999 ν14 = 81.5
R26 = -23.501 D26 = 3.41
* R27 = 160.167 D27 = 8.70 N15 = 1.583126 ν15 = 59.4
R28 = -14.217 D28 = 2.01 N16 = 1.834807 ν16 = 42.7
R29 = -51.096

Focal length 18.60 49.94 193.23
Variable interval
D 5 2.16 27.19 54.51
D13 24.99 13.41 2.85
D19 2.63 5.84 7.99
D24 6.00 2.79 0.64

Aspheric coefficient
16th: A = 0.00000e + 00 B = 9.19247e-06 C = 5.07959e-09 D = 0.00000e + 00
E = 0.00000e + 00 F = 0.00000e + 00
27th: A = 0.00000e + 00 B = -1.00175e-05 C = -6.53404e-09 D = -1.88855e-12
E = 4.62133e-13 F = 0.00000e + 00

Focal length of each lens group
First lens group : 90.986
Second lens group : −13.133
Third lens group : 22.315
Lens group Gis: −39.673
Lens group Gisr: −42.371
Fifth lens group : 28.750

数値実施例2
f= 17.60〜 120.97 Fno= 3.60 〜 5.88 2ω=75.6 〜 12.9
R 1 = 113.052 D 1 = 2.00 N 1 = 1.806100 ν 1 = 33.3
R 2 = 45.538 D 2 = 9.60 N 2 = 1.496999 ν 2 = 81.5
R 3 = -469.111 D 3 = 0.15
R 4 = 43.257 D 4 = 6.20 N 3 = 1.603112 ν 3 = 60.6
R 5 = 260.146 D 5 = 可変
R 6 = 58.188 D 6 = 1.20 N 4 = 1.834807 ν 4 = 42.7
R 7 = 11.683 D 7 = 5.40
R 8 = -26.237 D 8 = 0.90 N 5 = 1.772499 ν 5 = 49.6
R 9 = 44.092 D 9 = 0.15
R10 = 22.602 D10 = 5.30 N 6 = 1.805181 ν 6 = 25.4
R11 = -22.602 D11 = 0.55
R12 = -17.931 D12 = 0.85 N 7 = 1.772499 ν 7 = 49.6
R13 = 119.093 D13 = 可変
R14 = 絞り D14 = 0.75
R15 = 26.731 D15 = 2.80 N 8 = 1.583126 ν 8 = 59.4
* R16 = -66.210 D16 = 0.15
R17 = 23.977 D17 = 0.90 N 9 = 1.805181 ν 9 = 25.4
R18 = 13.309 D18 = 4.00 N10 = 1.487490 ν10 = 70.2
R19 = -33.670 D19 = 可変
R20 = -116.501 D20 = 0.70 N11 = 1.712995 ν11 = 53.9
R21 = 13.751 D21 = 2.15 N12 = 1.806100 ν12 = 33.3
R22 = 35.332 D22 = 2.74
R23 = -19.371 D23 = 1.10 N13 = 1.834807 ν13 = 42.7
R24 = -42.284 D24 = 可変
R25 = 43.323 D25 = 5.70 N14 = 1.496999 ν14 = 81.5
R26 = -18.948 D26 = 0.14
* R27 = 158.542 D27 = 8.00 N15 = 1.583126 ν15 = 59.4
R28 = -13.343 D28 = 1.33 N16 = 1.834807 ν16 = 42.7
R29 = -62.959

焦点距離 17.60 35.00 120.97
可変間隔
D 5 1.86 15.35 39.44
D13 16.64 9.81 2.67
D19 1.07 3.74 6.30
D24 5.89 3.22 0.65

非球面係数
16面 : A=0.00000e+00 B=1.70018e-05 C=3.78059e-08 D=0.00000e+00
E=0.00000e+00 F=0.00000e+00
27面 : A=0.00000e+00 B=-1.45576e-05 C=1.23575e-08 D=-1.64913e-10
E=5.18922e-13 F=0.00000e+00

各レンズ群の焦点距離
第1レンズ群 : 76.443
第2レンズ群 : −10.859
第3レンズ群 : 19.175
レンズ群Gis : −45.074
レンズ群Gisr: −43.776
第5レンズ群 : 28.082
Numerical example 2
f = 17.60 to 120.97 Fno = 3.60 to 5.88 2ω = 75.6 to 12.9
R 1 = 113.052 D 1 = 2.00 N 1 = 1.806100 ν 1 = 33.3
R 2 = 45.538 D 2 = 9.60 N 2 = 1.496999 ν 2 = 81.5
R 3 = -469.111 D 3 = 0.15
R 4 = 43.257 D 4 = 6.20 N 3 = 1.603112 ν 3 = 60.6
R 5 = 260.146 D 5 = variable
R 6 = 58.188 D 6 = 1.20 N 4 = 1.834807 ν 4 = 42.7
R 7 = 11.683 D 7 = 5.40
R 8 = -26.237 D 8 = 0.90 N 5 = 1.772499 ν 5 = 49.6
R 9 = 44.092 D 9 = 0.15
R10 = 22.602 D10 = 5.30 N 6 = 1.805181 ν 6 = 25.4
R11 = -22.602 D11 = 0.55
R12 = -17.931 D12 = 0.85 N 7 = 1.772499 ν 7 = 49.6
R13 = 119.093 D13 = Variable
R14 = Aperture D14 = 0.75
R15 = 26.731 D15 = 2.80 N 8 = 1.583126 ν 8 = 59.4
* R16 = -66.210 D16 = 0.15
R17 = 23.977 D17 = 0.90 N 9 = 1.805181 ν 9 = 25.4
R18 = 13.309 D18 = 4.00 N10 = 1.487490 ν10 = 70.2
R19 = -33.670 D19 = variable
R20 = -116.501 D20 = 0.70 N11 = 1.712995 ν11 = 53.9
R21 = 13.751 D21 = 2.15 N12 = 1.806100 ν12 = 33.3
R22 = 35.332 D22 = 2.74
R23 = -19.371 D23 = 1.10 N13 = 1.834807 ν13 = 42.7
R24 = -42.284 D24 = variable
R25 = 43.323 D25 = 5.70 N14 = 1.496999 ν14 = 81.5
R26 = -18.948 D26 = 0.14
* R27 = 158.542 D27 = 8.00 N15 = 1.583126 ν15 = 59.4
R28 = -13.343 D28 = 1.33 N16 = 1.834807 ν16 = 42.7
R29 = -62.959

Focal length 17.60 35.00 120.97
Variable interval
D 5 1.86 15.35 39.44
D13 16.64 9.81 2.67
D19 1.07 3.74 6.30
D24 5.89 3.22 0.65

Aspheric coefficient
16 sides: A = 0.00000e + 00 B = 1.70018e-05 C = 3.78059e-08 D = 0.00000e + 00
E = 0.00000e + 00 F = 0.00000e + 00
27th surface: A = 0.00000e + 00 B = -1.45576e-05 C = 1.23575e-08 D = -1.64913e-10
E = 5.18922e-13 F = 0.00000e + 00

Focal length of each lens group
First lens group : 76.443
Second lens group : -10.858
Third lens group : 19.175
Lens group Gis: -45.074
Lens group Gisr: −43.776
Fifth lens group : 28.082

数値実施例3
f= 18.60〜 241.39 Fno= 3.52 〜 5.88 2ω=72.6 〜 6.5
R 1 = 121.934 D 1 = 2.00 N 1 = 1.806100 ν 1 = 33.3
R 2 = 55.596 D 2 = 9.80 N 2 = 1.438750 ν 2 = 95.0
R 3 = -453.298 D 3 = 0.15
R 4 = 56.576 D 4 = 6.20 N 3 = 1.603112 ν 3 = 60.6
R 5 = 573.295 D 5 = 可変
* R 6 = 83.423 D 6 = 1.20 N 4 = 1.834807 ν 4 = 42.7
R 7 = 14.382 D 7 = 6.49
R 8 = -28.585 D 8 = 0.90 N 5 = 1.772499 ν 5 = 49.6
R 9 = 91.593 D 9 = 0.15
R10 = 31.426 D10 = 5.80 N 6 = 1.805181 ν 6 = 25.4
R11 = -25.522 D11 = 0.31
R12 = -22.104 D12 = 0.85 N 7 = 1.772499 ν 7 = 49.6
R13 = 147.713 D13 = 可変
R14 = 絞り D14 = 0.36
R15 = 37.621 D15 = 3.65 N 8 = 1.583126 ν 8 = 59.4
* R16 = -56.395 D16 = 0.15
R17 = 25.674 D17 = 0.90 N 9 = 1.805181 ν 9 = 25.4
R18 = 15.075 D18 = 6.10 N10 = 1.487490 ν10 = 70.2
R19 = -45.412 D19 = 可変
* R20 = -61.946 D20 = 0.70 N11 = 1.712995 ν11 = 53.9
R21 = 13.489 D21 = 2.60 N12 = 1.806100 ν12 = 33.3
R22 = 36.833 D22 = 2.69
R23 = -31.753 D23 = 1.10 N13 = 1.834807 ν13 = 42.7
R24 = -177.760 D24 = 可変
R25 = 30.165 D25 = 6.28 N14 = 1.438750 ν14 = 95.0
R26 = -30.077 D26 = 7.12
* R27 = 129.268 D27 = 8.70 N15 = 1.583126 ν15 = 59.4
R28 = -16.209 D28 = 2.51 N16 = 1.834807 ν16 = 42.7
R29 = -58.384

焦点距離 18.60 50.00 241.39
可変間隔
D 6 2.26 27.08 57.98
D14 30.73 16.47 2.77
D20 1.25 5.12 8.74
D25 8.14 4.28 0.66

非球面係数
7面 : A=0.00000e+00 B=1.30501e-06 C=6.31272e-09 D=-1.09764e-10
E=3.91740e-13 F=0.00000e+00
17面 : A=0.00000e+00 B=8.49584e-06 C=-2.73738e-09 D=0.00000e+00
E=0.00000e+00 F=0.00000e+00
21面 : A=0.00000e+00 B=1.30444e-06 C=-3.13146e-09 D=0.00000e+00
E=0.00000e+00 F=0.00000e+00
28面 : A=0.00000e+00 B=-1.00183e-05 C=-3.55293e-08 D=1.46024e-10
E=-5.97622e-13 F=0.00000e+00

各レンズ群の焦点距離
第1レンズ群 : 94.406
第2レンズ群 : −13.688
第3レンズ群 : 22.540
レンズ群Gis : −37.443
レンズ群Gisr: −46.468
第5レンズ群 : 32.908
Numerical Example 3
f = 18.60 ~ 241.39 Fno = 3.52 ~ 5.88 2ω = 72.6 ~ 6.5
R 1 = 121.934 D 1 = 2.00 N 1 = 1.806100 ν 1 = 33.3
R 2 = 55.596 D 2 = 9.80 N 2 = 1.438750 ν 2 = 95.0
R 3 = -453.298 D 3 = 0.15
R 4 = 56.576 D 4 = 6.20 N 3 = 1.603112 ν 3 = 60.6
R 5 = 573.295 D 5 = variable
* R 6 = 83.423 D 6 = 1.20 N 4 = 1.834807 ν 4 = 42.7
R 7 = 14.382 D 7 = 6.49
R 8 = -28.585 D 8 = 0.90 N 5 = 1.772499 ν 5 = 49.6
R 9 = 91.593 D 9 = 0.15
R10 = 31.426 D10 = 5.80 N 6 = 1.805181 ν 6 = 25.4
R11 = -25.522 D11 = 0.31
R12 = -22.104 D12 = 0.85 N 7 = 1.772499 ν 7 = 49.6
R13 = 147.713 D13 = variable
R14 = Aperture D14 = 0.36
R15 = 37.621 D15 = 3.65 N 8 = 1.583126 ν 8 = 59.4
* R16 = -56.395 D16 = 0.15
R17 = 25.674 D17 = 0.90 N 9 = 1.805181 ν 9 = 25.4
R18 = 15.075 D18 = 6.10 N10 = 1.487490 ν10 = 70.2
R19 = -45.412 D19 = variable
* R20 = -61.946 D20 = 0.70 N11 = 1.712995 ν11 = 53.9
R21 = 13.489 D21 = 2.60 N12 = 1.806100 ν12 = 33.3
R22 = 36.833 D22 = 2.69
R23 = -31.753 D23 = 1.10 N13 = 1.834807 ν13 = 42.7
R24 = -177.760 D24 = variable
R25 = 30.165 D25 = 6.28 N14 = 1.438750 ν14 = 95.0
R26 = -30.077 D26 = 7.12
* R27 = 129.268 D27 = 8.70 N15 = 1.583126 ν15 = 59.4
R28 = -16.209 D28 = 2.51 N16 = 1.834807 ν16 = 42.7
R29 = -58.384

Focal length 18.60 50.00 241.39
Variable interval
D 6 2.26 27.08 57.98
D14 30.73 16.47 2.77
D20 1.25 5.12 8.74
D25 8.14 4.28 0.66

Aspheric coefficient
7th: A = 0.00000e + 00 B = 1.30501e-06 C = 6.31272e-09 D = -1.09764e-10
E = 3.91740e-13 F = 0.00000e + 00
17th: A = 0.00000e + 00 B = 8.49584e-06 C = -2.73738e-09 D = 0.00000e + 00
E = 0.00000e + 00 F = 0.00000e + 00
21 side: A = 0.00000e + 00 B = 1.30444e-06 C = -3.13146e-09 D = 0.00000e + 00
E = 0.00000e + 00 F = 0.00000e + 00
28th surface: A = 0.00000e + 00 B = -1.00183e-05 C = -3.55293e-08 D = 1.46024e-10
E = -5.97622e-13 F = 0.00000e + 00

Focal length of each lens group
First lens group : 94.406
Second lens group : −13.688
Third lens group : 22.540
Lens group Gis: −37.443
Lens group Gisr: −46.468
Fifth lens group : 32.908

本発明の実施例1の断面図である。It is sectional drawing of Example 1 of this invention. 本発明の実施例1の縦収差図である。It is a longitudinal aberration diagram of Example 1 of the present invention. 本発明の実施例1の縦収差図である。It is a longitudinal aberration diagram of Example 1 of the present invention. 本発明の実施例1の縦収差図である。It is a longitudinal aberration diagram of Example 1 of the present invention. 本発明の実施例1の像高10mmの横収差図である。FIG. 5 is a lateral aberration diagram of an image height of 10 mm according to Example 1 of the present invention. 本発明の実施例1の0.3°防振時の横収差図である。It is a lateral aberration figure at the time of 0.3 degree anti-vibration of Example 1 of this invention. 本発明の実施例1の0.3°防振時の横収差図である。It is a lateral aberration figure at the time of 0.3 degree anti-vibration of Example 1 of this invention. 本発明の実施例1の0.3°防振時の横収差図である。It is a lateral aberration figure at the time of 0.3 degree anti-vibration of Example 1 of this invention. 本発明の実施例2の断面図である。It is sectional drawing of Example 2 of this invention. 本発明の実施例2の縦収差図である。It is a longitudinal aberration figure of Example 2 of the present invention. 本発明の実施例2の縦収差図である。It is a longitudinal aberration figure of Example 2 of the present invention. 本発明の実施例2の縦収差図である。It is a longitudinal aberration figure of Example 2 of the present invention. 本発明の実施例2の像高10mmの横収差図である。FIG. 6 is a lateral aberration diagram of an image height of 10 mm according to Example 2 of the present invention. 本発明の実施例2の0.3°防振時の横収差図であるIt is a lateral aberration figure at the time of 0.3 degree vibration isolation of Example 2 of this invention. 本発明の実施例2の0.3°防振時の横収差図であるIt is a lateral aberration figure at the time of 0.3 degree vibration isolation of Example 2 of this invention. 本発明の実施例2の0.3°防振時の横収差図であるIt is a lateral aberration figure at the time of 0.3 degree vibration isolation of Example 2 of this invention. 本発明の実施例3の断面図である。It is sectional drawing of Example 3 of this invention. 本発明の実施例3の縦収差図である。It is a longitudinal aberration diagram of Example 3 of the present invention. 本発明の実施例3の縦収差図である。It is a longitudinal aberration diagram of Example 3 of the present invention. 本発明の実施例3の縦収差図である。It is a longitudinal aberration diagram of Example 3 of the present invention. 本発明の実施例3の像高10mmの横収差図である。FIG. 6 is a lateral aberration diagram of an image height of 10 mm according to Example 3 of the present invention. 本発明の実施例3の0.3°防振時の横収差図であるIt is a lateral aberration figure at the time of 0.3 degree anti-vibration of Example 3 of this invention. 本発明の実施例3の0.3°防振時の横収差図であるIt is a lateral aberration figure at the time of 0.3 degree anti-vibration of Example 3 of this invention. 本発明の実施例3の0.3°防振時の横収差図であるIt is a lateral aberration figure at the time of 0.3 degree anti-vibration of Example 3 of this invention. 本発明の撮像装置の要部概略図Schematic diagram of main parts of an imaging apparatus of the present invention

L1 :第1レンズ群
L2 :第2レンズ群
LR :後続レンズ群
Gn :レンズ群
Gis :防振レンズ群
Gpf :レンズ群
Gpr :レンズ群
Gisr :レンズ群
Gpr1 :レンズ群
Gpr2 :レンズ群
SP :開口絞り
IP :像面
d:d線
g:g線
ΔM:メリディオナル像面
ΔS:サジタル像面
S.C:正弦条件
Y:像高
Fno:Fナンバー
L1: First lens group L2: Second lens group LR: Subsequent lens group Gn: Lens group Gis: Anti-vibration lens group Gpf: Lens group Gpr: Lens group Gisr: Lens group Gpr1: Lens group Gpr2: Lens group SP: Aperture Aperture IP: image plane d: d line g: g line ΔM: meridional image plane ΔS: sagittal image plane C: Sine condition Y: Image height Fno: F number

Claims (12)

物体側から像側へ順に、正の屈折力の第1レンズ群と、負の屈折力の第2レンズ群と、正の屈折力の第3レンズ群、光軸に対して垂直方向の成分を持つ方向に移動して結像位置を変化させる負の屈折力のレンズ群Gisを含む第4レンズ群、正の屈折力の第5レンズ群より構成され、広角端から望遠端へのズーミングに際して、前記第1レンズ群と前記第2レンズ群の間隔が増大し、前記第2レンズ群と前記第3レンズ群の間隔が減少し、前記第3レンズ群と前記第4レンズ群の間隔が増大し、前記第4レンズ群と前記第5レンズ群の間隔が減少するズームレンズであって、前記レンズ群Gisは、物体側から像側へ順に、負レンズと正レンズを有し、前記第1レンズ群と前記第5レンズ群の焦点距離を各々f1、f5、望遠端における全系の焦点距離をftとするとき、
0.27<f1/ft<0.69
0.11<f5/ft<0.45
なる条件式を満足することを特徴とするズームレンズ。
In order from the object side to the image side, a first lens group having a positive refractive power, a second lens group having a negative refractive power, a third lens group having a positive refractive power, and a component perpendicular to the optical axis. A fourth lens group including a lens unit Gis having a negative refractive power that moves in a direction to change the imaging position, and a fifth lens group having a positive refractive power. During zooming from the wide-angle end to the telephoto end, The distance between the first lens group and the second lens group increases, the distance between the second lens group and the third lens group decreases, and the distance between the third lens group and the fourth lens group increases. the distance between the fourth lens group and the fifth lens group a zoom lens which decreases the lens unit Gis, in order from the object side to the image side, have a negative lens and a positive lens, said first lens The focal lengths of the first lens unit and the fifth lens unit are f1 and f5, respectively. When the focal length ft,
0.27 <f1 / ft <0.69
0.11 <f5 / ft <0.45
A zoom lens satisfying the following conditional expression:
前記第5レンズ群は、物体側から像側へ順に、正レンズより構成される第51レンズ群と、正レンズと負レンズが接合された接合レンズより構成される第52レンズ群を有し、該第52レンズ群はレンズ中心からレンズ周辺にかけて正の屈折力が弱くなる形状の非球面を有し、前記第51レンズ群の正レンズの材料のアッベ数をν51pとするとき、
72<ν51p<97
なる条件を満足することを特徴とする請求項1に記載のズームレンズ。
The fifth lens group includes, in order from the object side to the image side, a 51st lens group including a positive lens, and a 52nd lens group including a cemented lens in which a positive lens and a negative lens are cemented. The 52nd lens group has an aspherical surface in which the positive refractive power decreases from the lens center to the lens periphery, and when the Abbe number of the positive lens material of the 51st lens group is ν51p,
72 <ν51p <97
The zoom lens according to claim 1, wherein the following condition is satisfied.
前記レンズ群Gisの前記負レンズと前記正レンズは接合されており、前記レンズ群Gisの前記負レンズと前記正レンズの接合面は物体側に凸形状であることを特徴とする請求項1又は2に記載のズームレンズ。   The negative lens of the lens group Gis and the positive lens are cemented, and the cemented surface of the negative lens and the positive lens of the lens group Gis is convex on the object side. The zoom lens according to 2. 前記第3レンズ群は、物体側から像側へ順に、物体側の面が凸でメニスカス形状の負レンズと、物体側の面が凸形状の正レンズが連続して配置されており、前記第3レンズ群の物体側から像側へ順に連続して配置されている前記負レンズと前記正レンズの材料の屈折率を各々N3n、N3pとするとき、
0.1<N3n−N3p
なる条件を満足することを特徴とする請求項1乃至3のいずれか1項に記載のズームレンズ。
The third lens group includes, in order from the object side to the image side, a negative meniscus lens having a convex object side surface and a positive lens having a convex object side surface. When the refractive indexes of materials of the negative lens and the positive lens that are sequentially arranged from the object side to the image side of the three lens groups are N3n and N3p, respectively.
0.1 <N3n-N3p
The zoom lens according to claim 1, wherein the following condition is satisfied.
物体側から像側へ順に連続して配置されている前記第3レンズ群の負レンズと正レンズは接合されていることを特徴とする請求項4に記載のズームレンズ。   5. The zoom lens according to claim 4, wherein a negative lens and a positive lens of the third lens group that are continuously arranged in order from the object side to the image side are cemented. 前記第4レンズ群は、前記レンズ群Gisの像側に、ズーミングに際して前記レンズ群Gisとの間隔が変化しない負の屈折力のレンズ群Gisrを有することを特徴とする請求項1乃至5のいずれか1項に記載のズームレンズ。   6. The lens group Gisr according to claim 1, wherein the fourth lens group includes a lens unit Gisr having a negative refractive power on the image side of the lens group Gis so that the distance from the lens group Gis does not change during zooming. The zoom lens according to claim 1. 前記第2レンズ群の焦点距離をf2、望遠端における全系の焦点距離をftとするとき、
0.04<|f2|/ft<0.11
なる条件を満足することを特徴とする請求項1乃至のいずれか1項に記載のズームレンズ。
When the focal length of the second lens group is f2, and the focal length of the entire system at the telephoto end is ft,
0.04 <| f2 | / ft <0.11
The zoom lens according to any one of claims 1 to 6, characterized by satisfying the following condition.
前記第3レンズ群の焦点距離をf3、望遠端における全系の焦点距離をftとするとき、
0.06<f3/ft<0.19
なる条件を満足することを特徴とする請求項1乃至のいずれか1項に記載のズームレンズ。
When the focal length of the third lens group is f3 and the focal length of the entire system at the telephoto end is ft,
0.06 <f3 / ft <0.19
The zoom lens according to any one of claims 1 to 7, characterized by satisfying the following condition.
前記レンズ群Gisの焦点距離をfis、望遠端における全系の焦点距離をftとするとき、
0.05<|fis|/ft<0.48
なる条件を満足することを特徴とする請求項1乃至のいずれか1項のズームレンズ。
When the focal length of the lens group Gis is fi and the focal length of the entire system at the telephoto end is ft,
0.05 <| fis | / ft <0.48
Any one of the zoom lens according to claim 1 to 8, characterized by satisfying the following condition.
前記第4レンズ群は、前記レンズ群Gisの像側に、ズーミングに際して前記レンズ群Gisとの間隔が変化しない負の屈折力のレンズ群Gisrを有し、前記レンズ群Gisと前記レンズ群Gisrの焦点距離を各々fis、fisrとするとき、
0.69<fis/fisr<1.14
なる条件を満足することを特徴とする請求項1乃至のいずれか1項に記載のズームレンズ。
The fourth lens group includes, on the image side of the lens group Gis, a lens unit Gisr having a negative refractive power that does not change the distance from the lens group Gis during zooming, and the lens group Gis and the lens group Gisr When the focal lengths are fis and fisr, respectively.
0.69 <fis / fisr <1.14
The zoom lens according to any one of claims 1 to 9, characterized by satisfying the following condition.
前記第3レンズ群はレンズ中心からレンズ周辺にかけて正の屈折力が弱くなる形状の非球面を有することを特徴とする請求項1乃至10のいずれか1項に記載のズームレンズ。 The third lens group zoom lens according to any one of claims 1 to 10, characterized in that it has a non-spherical shape positive refractive power toward the lens periphery from the center of the lens is weakened. 請求項1から11のいずれか1項に記載のズームレンズと、該ズームレンズによって形成された像を受光する固体撮像素子とを有することを特徴とする撮像装置。 A zoom lens according to any one of claims 1 to 11, the image pickup apparatus characterized by having a solid-state imaging device for receiving an image formed by the zoom lens.
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