JPH01219710A - Zoom lens - Google Patents
Zoom lensInfo
- Publication number
- JPH01219710A JPH01219710A JP4510688A JP4510688A JPH01219710A JP H01219710 A JPH01219710 A JP H01219710A JP 4510688 A JP4510688 A JP 4510688A JP 4510688 A JP4510688 A JP 4510688A JP H01219710 A JPH01219710 A JP H01219710A
- Authority
- JP
- Japan
- Prior art keywords
- lens
- lens group
- positive
- aberration
- axis
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
- 230000004075 alteration Effects 0.000 claims abstract description 24
- 230000003287 optical effect Effects 0.000 abstract description 20
- 239000011521 glass Substances 0.000 description 3
- 238000004519 manufacturing process Methods 0.000 description 3
- 239000000470 constituent Substances 0.000 description 1
- 238000010586 diagram Methods 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 230000011514 reflex Effects 0.000 description 1
- 102220228145 rs1064794513 Human genes 0.000 description 1
- 102220208315 rs141965142 Human genes 0.000 description 1
- 102220067506 rs150937126 Human genes 0.000 description 1
- 102220053946 rs199631710 Human genes 0.000 description 1
- 102220076495 rs200649587 Human genes 0.000 description 1
- 102220033625 rs281865531 Human genes 0.000 description 1
- 102220212642 rs747431847 Human genes 0.000 description 1
- 102220201386 rs752794296 Human genes 0.000 description 1
- 102220079670 rs759826252 Human genes 0.000 description 1
- 102220249016 rs767770776 Human genes 0.000 description 1
- 102220139156 rs774350715 Human genes 0.000 description 1
- 102220059961 rs786201335 Human genes 0.000 description 1
- 102220060027 rs786203926 Human genes 0.000 description 1
- 102220101725 rs878853980 Human genes 0.000 description 1
- 102220173090 rs886048658 Human genes 0.000 description 1
- 102220151991 rs886061744 Human genes 0.000 description 1
Landscapes
- Lenses (AREA)
Abstract
Description
【発明の詳細な説明】
〔産業上の利用分野〕
本発明は、写真用カメラ、ビデオカメラ等に好適な撮影
レンズに関し、特に組み立て時のレンズ面の傾きや、平
行移動等の誤差により発生する偏心収差を簡便に調整で
きる様にしたズームレンズに関する。[Detailed Description of the Invention] [Industrial Application Field] The present invention relates to a photographic lens suitable for photographic cameras, video cameras, etc., and particularly relates to a photographic lens suitable for photographic cameras, video cameras, etc. The present invention relates to a zoom lens whose decentering aberration can be easily adjusted.
近年、−眼レフレックスカメラやビデオカメラ等の小型
化に伴い、撮影レンズにも小型化が要求されている。特
にレンズ全長が比較的長くなりがちなズームレンズに於
いては、特にその要求が高い。In recent years, with the downsizing of -eye reflex cameras, video cameras, etc., there has been a demand for downsizing of photographic lenses as well. There is a particularly high demand for this in zoom lenses, which tend to have a relatively long overall lens length.
ところで、一般にレンズ組み立て時の偏心誤差を軽減さ
せるには、レンズ形状やレンズ鏡筒を高精度に製作すれ
ばよいが、それにも限度があり、多くの場合偏心誤差を
いかに軽減させるかが大きな問題となっている。By the way, in general, to reduce eccentricity errors during lens assembly, it is enough to manufacture the lens shape and lens barrel with high precision, but there are limits to this, and in many cases, the big problem is how to reduce eccentricity errors. It becomes.
そして従来の一般的なレンズ組み立て作業は、熟練した
作業者が、−枚一枚のレンズ配置を、微妙に調整しなが
ら、レンズ設計値に近い光学的性能がでる様に行ってい
たので、その作業に手間どっていた。特に前述した通り
の小型化たされたズームレンズでは、各レンズ群の屈折
力が比較的強(なるので偏心精度が非常に厳しくなって
おり、所望の光学性能を得ることに手間どると共に困難
になっている。Conventional general lens assembly work was carried out by skilled workers, making subtle adjustments to the lens arrangement of each lens to achieve optical performance close to the lens design value. I was having a hard time working. In particular, with miniaturized zoom lenses as mentioned above, the refractive power of each lens group is relatively strong (as a result, eccentricity accuracy is extremely strict, making it time-consuming and difficult to obtain the desired optical performance. It has become.
本発明は、特にズームレンズに於いて、所定のレンズ群
を光軸に対して偏心させることにより、それ程手間をか
けずに組み立て時に生じる偏心収差を調整し、高い光学
性能を得ることができるズームレンズを提供することに
ある。Particularly in a zoom lens, the present invention provides a zoom lens that can achieve high optical performance by decentering a predetermined lens group with respect to the optical axis, adjusting decentering aberrations that occur during assembly without much effort. Our goal is to provide lenses.
そして本発明は、物体側より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、そして正の屈折力の
第3レンズ群を配置したズームレンズに於いて、前記第
1レンズ群の1部又は全部と第3レンズ群のうち少なく
とも一枚の正レンズを他のレンズに対して偏心させて偏
心収差を調整したことにある。The present invention provides a zoom lens in which 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 are arranged in order from the object side. This is because a part or all of the first lens group and at least one positive lens of the third lens group are decentered with respect to other lenses to adjust decentering aberrations.
以下図面に基づいて、本発明の詳細な説明する。第1図
は本発明に関するズームレンズのレンズ断面図であって
、物体側より順に正の屈折力を有する第1レンズ群、負
の屈折力を有する第2レンズ群、絞りS1正の屈折力を
有する第3レンズ群、そして負の屈折力を有する第4レ
ンズ群から成っている。尚、第3レンズ群と、第4レン
ズ群は、全体として正の屈折力を有する。The present invention will be described in detail below based on the drawings. FIG. 1 is a cross-sectional view of a zoom lens according to the present invention, in which the first lens group having a positive refractive power, the second lens group having a negative refractive power, and the aperture stop S1 have a positive refractive power in order from the object side. and a fourth lens group having negative refractive power. Note that the third lens group and the fourth lens group have positive refractive power as a whole.
そして第1図(A)は、広角端でのズーム位置、第1図
(B)は望遠端でのズーム位置を示している。FIG. 1(A) shows the zoom position at the wide-angle end, and FIG. 1(B) shows the zoom position at the telephoto end.
つまり広角側から望遠側への変倍に際して、第4レンズ
群4を固定させ、第1レンズ群lと第3レンズ群3を物
体側へ第2レンズ群2を物体側もしくは像面側へ移動さ
せている。In other words, when changing the magnification from the wide-angle side to the telephoto side, the fourth lens group 4 is fixed, the first lens group 1 and the third lens group 3 are moved to the object side, and the second lens group 2 is moved to the object side or the image side. I'm letting you do it.
本実施例に示すズームレンズは、前記第3レンズ群3を
像面側へ凹面を向けたレンズGと前記レンズGの像面側
に少な(とも1つの非球面を有する正の屈折力のレンズ
3Bを有するように構成している。また前記第4レンズ
群を負の屈折力のレンズGI5と前記レンズG+sのガ
ラスの屈折率よりも低い屈折率のガラスより成る正の屈
折力のレンズGasとを貼り合せたレンズより構成して
いる。The zoom lens shown in this embodiment includes a lens G in which the third lens group 3 has a concave surface facing toward the image surface, and a lens G with a positive refractive power having one aspherical surface (both have a small aspherical surface on the image surface side of the lens G). Further, the fourth lens group includes a lens GI5 having a negative refractive power and a lens Gas having a positive refractive power made of glass having a refractive index lower than the refractive index of the glass of the lens G+s. It is composed of lenses bonded together.
しかしながら、第3レンズ群のC++ 、 G 12を
始め第2レンズ群のG7. Gs、 Cz、 Gsの
順で組立上の傾き及び平行移動等の偏心誤差があること
画面全体つまり、軸外、軸上共に多くの偏心収差を発生
する。However, C++, G12 in the third lens group, G7. Eccentricity errors such as tilt and parallel movement during assembly occur in the order of Gs, Cz, and Gs, which causes many eccentric aberrations on the entire screen, both off-axis and on-axis.
特に広角端から望遠端になる程度、この傾向が強くなり
、この結果光学性能は著しく低下してくる。This tendency becomes especially strong from the wide-angle end to the telephoto end, and as a result, the optical performance deteriorates significantly.
そこで本実施例では望遠ズーム位置で、絞りSより像面
側の第3レンズ群に配置した正の屈折力のGs。Therefore, in this embodiment, at the telephoto zoom position, Gs with positive refractive power is arranged in the third lens group on the image plane side from the aperture S.
G9より成るレンズ群を光軸に対して平行移動させ、即
ち偏心させ製作上及び組立上から生ずる偏心収差の特に
軸上の収差をバランズ良く補正している。The lens group consisting of G9 is moved parallel to the optical axis, that is, decentered, and eccentric aberrations, particularly axial aberrations, caused by manufacturing and assembly are corrected in a well-balanced manner.
この補正で軸外収差は、大きな変化を与えることな(、
中心の収差補正が可能である。With this correction, off-axis aberrations do not change significantly (,
Center aberration correction is possible.
次に第1レンズ群の好ましくは全体Gl、 G2. G
3レンズ群を光軸に対して傾け、即ち偏心させ製作上及
び組立上からの生ずる偏心収差の特に軸外収差をバラン
ス良く補正している。この補正で軸上での変動収差はほ
とんどな(軸外の補正が可能である。Next, preferably the entire first lens group Gl, G2. G
The three lens groups are tilted with respect to the optical axis, that is, decentered, and eccentric aberrations, particularly off-axis aberrations, caused by manufacturing and assembly are corrected in a well-balanced manner. With this correction, there is almost no on-axis fluctuating aberration (off-axis correction is possible).
即ち、軸外収差と軸上収差とをほぼ独立に補正すること
が可能となってくる。That is, it becomes possible to correct off-axis aberrations and on-axis aberrations almost independently.
次に本発明の数値実施例を示す。数値実施例においてR
iは物体側より順に第i番目のレンズ面の曲率半径、D
iは物体側より第i番目のレンズ厚及び空気間隔、Ni
とνiは各々物体側より順に第i番目のレンズのガラス
の屈折率とアツベ数である。Next, numerical examples of the present invention will be shown. In numerical examples R
i is the radius of curvature of the i-th lens surface in order from the object side, D
i is the i-th lens thickness and air distance from the object side, Ni
and νi are the refractive index and Abbe number of the glass of the i-th lens, respectively, in order from the object side.
非球面形状は光軸方向にX軸、光軸と垂直方向にH軸、
光の進行方向を正とし、Rを近軸曲率半径、A、 B、
C,D、 Eを各々非球面係数としたとき
数値実施例
F=36.0〜132. FNO=1 : 3.6〜
4.62ω=61.7°〜18.6゜R1= 318
.08 D l=2.15 N 1=1.8051
8 ν1=25.4R2= 67.95 D 2
=7.00 N 2=1.65160 シ2=58
.6R3= −163,95D 3=0.12R4=
44.95 D 4=4.20 N 3=1.6
9680 ν3=55.5R5= 119.18
D 5=可変R6= 100.66 D 6
=1.37 N 4=1.88300 シ4=40
,8R7= 19.76 D 7=5.83R8=
−37,65D 8=1.18 N 5=1.8
8300 ν5=40.8R9= 83.24
D 9=1.73R10= 47.94
D10=4.70 N 6=1.84666
シロ=23.9R11= −38,01D
11=0.88R12= −26,70D12=1
,03 N 7=1.81600 シフ=46
.6R13= −83,05D13=可変R14=
53.26 D14=3.40 N 8
=1.61800 シ8=63.4R15= −
629,24D15=0.15R16= 38.
32 D16=3.40 N 9=1,60
311 ν9 = 60.7R17= 16
84.80 D17=0.15R18= 3
5.63 D18=2.70 Nl0=1.
51633 シ1o=64.lR19= 5
5.61 D19=0.15R20= 2
2.31 D20=5.54 N11=1.4
8749 ν11 =70.lR21=−162,
15D21=7.68 N12=1.85026
ν12=23.9R22= 14.89
D22=4.86R23= 33.69
D23=3.5 N15=1.57309
シ13=42,6R24= −35,33D24=
1.0 N14=1.84666 ν14=
23.9R25= −63,72D25=可変R26
= −37,90D26=0.98 N15
=1.83481 シ15=42.7R27=
−279,06D27=4.90 N16=
1.53172 シ16=48.9R28=
−27,90
R25:非球面
非球面係数
A= O
B= 2.957xlO−’
C= −8,998x l O−”
D= −7,522X10−”
E= 0
次に第2図に数値実施例におけるMTF値を示す。The aspherical shape has an X axis in the optical axis direction, an H axis in a direction perpendicular to the optical axis,
The traveling direction of light is positive, R is the paraxial radius of curvature, A, B,
When C, D, and E are each aspherical coefficients, numerical example F=36.0 to 132. FNO=1: 3.6~
4.62ω=61.7°~18.6°R1=318
.. 08 D l = 2.15 N 1 = 1.8051
8 ν1=25.4R2= 67.95 D 2
=7.00 N2=1.65160 C2=58
.. 6R3= -163,95D 3=0.12R4=
44.95 D 4=4.20 N 3=1.6
9680 ν3=55.5R5= 119.18
D 5 = Variable R6 = 100.66 D 6
=1.37 N4=1.88300 C4=40
,8R7= 19.76 D 7=5.83R8=
-37,65D 8=1.18 N 5=1.8
8300 ν5=40.8R9=83.24
D9=1.73R10=47.94
D10=4.70 N6=1.84666
White = 23.9R11 = -38,01D
11=0.88R12=-26,70D12=1
,03 N 7=1.81600 Schiff=46
.. 6R13=-83,05D13=variable R14=
53.26 D14=3.40 N 8
=1.61800 shi8=63.4R15=-
629,24D15=0.15R16=38.
32 D16=3.40 N9=1,60
311 ν9 = 60.7R17 = 16
84.80 D17=0.15R18=3
5.63 D18=2.70 Nl0=1.
51633 Si1o=64. lR19=5
5.61 D19=0.15R20=2
2.31 D20=5.54 N11=1.4
8749 ν11 =70. lR21=-162,
15D21=7.68 N12=1.85026
ν12=23.9R22=14.89
D22=4.86R23=33.69
D23=3.5 N15=1.57309
C13=42,6R24=-35,33D24=
1.0 N14=1.84666 ν14=
23.9R25=-63,72D25=variable R26
= -37,90D26=0.98 N15
=1.83481 Shi15=42.7R27=
-279,06D27=4.90 N16=
1.53172 Shi16=48.9R28=
-27,90 R25: Aspherical surface Aspherical coefficient A= O B= 2.957xlO-' C= -8,998xl O-" D= -7,522X10-" E= 0 Next, numerical implementation is shown in Figure 2 The MTF values in the example are shown.
MTF値においてYは像高、(A)は理想的に組立てら
れているときで偏心がないとき、(B)は表−1に示す
ように第1レンズ群から第4レンズ群に組立上の偏心が
あったとき、(C)は第3レンズ群のG8. G9レン
ズを平行偏心(0、08m m )させたとき、(D)
は更に第1レンズ群全てを光軸に対して傾け(−0,2
′)させて光学特性を調整したときを示す。In the MTF value, Y is the image height, (A) is when it is ideally assembled and there is no eccentricity, and (B) is when the assembly is performed from the first lens group to the fourth lens group as shown in Table 1. When there is eccentricity, (C) shows G8. of the third lens group. When the G9 lens is parallel decentered (0.08 mm), (D)
further tilts the entire first lens group with respect to the optical axis (-0, 2
′) to adjust the optical characteristics.
第2図に示すように本実施例によれば所定のレンズ群を
偏心させることにより偏心収差を良好に補正し、高い光
学性能を維持することができることがわかる。As shown in FIG. 2, it can be seen that according to this example, by decentering a predetermined lens group, decentering aberrations can be favorably corrected and high optical performance can be maintained.
尚、本撮影レンズを保持するレンズ鏡筒は特に図示して
いないが、偏心させるレンズを小型の鏡筒に固定し、外
側鏡筒の光軸に垂直な壁に、この小型鏡筒をガタ穴を介
して緩(ねじ止めして置き、小型鏡筒の位置をずらして
所望の性能になったときねじを固く締め付ける様にして
いる。他の構成レンズはこれまでと同じ構造で外側鏡筒
に固定しているが、従来の組立作業では前に固定したレ
ンズに対して後のレンズを慎重に位置決めしていたのに
対し、本例ではそれらの配慮を行うことなくレンズを固
定するだけで済むわけである。Although the lens barrel that holds the photographic lens is not particularly shown, the lens to be decentered is fixed to a small lens barrel, and this small lens barrel is installed in a hole in the wall perpendicular to the optical axis of the outer lens barrel. The small lens barrel is then moved and the screws are tightened firmly when the desired performance is achieved.The other constituent lenses have the same structure as before and are attached to the outer lens barrel. However, in conventional assembly work, the subsequent lens was carefully positioned relative to the previously fixed lens, but in this example, it is possible to simply fix the lens without taking such consideration. That's why.
本発明によれば前述のレンズ構成を有するズームレンズ
において所定のレンズ群を光軸に対して偏心収差を調整
し、常に高い光学性能を維持することのできる光学特性
可変のズームレンズを達成することができる。According to the present invention, in a zoom lens having the above-described lens configuration, decentering aberration of a predetermined lens group with respect to the optical axis is adjusted to achieve a zoom lens with variable optical characteristics that can always maintain high optical performance. Can be done.
第1図は本発明の数値実施例のレンズ断面図、第2図は
本発明の数値実施例のMTF値である。
Aは偏心がない時、
BはAにおいて第1表の各々偏心させた時、CはBにお
いてG8.G9を補正した時、DはCにおいてGl、
G2. G3を補正した時のMTFを夫々示す。
図中Giは第iレンズ群又は第iレンズ、Sは絞り、収
差図において(A)は無限遠物体、又△Mはメリデイオ
ナル像面、△Sはサジタル像面である。FIG. 1 is a sectional view of a lens according to a numerical example of the present invention, and FIG. 2 is an MTF value of a numerical example of the present invention. A is when there is no eccentricity, B is when each eccentricity shown in Table 1 is made at A, and C is G8 at B. When G9 is corrected, D is Gl at C,
G2. The MTF when G3 is corrected is shown. In the figure, Gi is the i-th lens group or i-th lens, S is the aperture, and in the aberration diagram (A) is an object at infinity, ΔM is the meridional image surface, and ΔS is the sagittal image surface.
Claims (1)
の第2レンズ群、そして正の屈折力の第3レンズ群を配
置したズームレンズに於いて、前記第1レンズ群の1部
又は全部と第3レンズ群のうち少なくとも一枚の正レン
ズを他のレンズに対して偏心させて偏心収差を調整した
ことを特徴とするズームレンズ。In a zoom lens in which a first lens group with a positive refractive power, a second lens group with a negative refractive power, and a third lens group with a positive refractive power are arranged in order from the object side, one of the first lens groups A zoom lens characterized in that at least one positive lens of the third lens group is decentered with respect to other lenses to adjust eccentric aberration.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP4510688A JPH01219710A (en) | 1988-02-26 | 1988-02-26 | Zoom lens |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP4510688A JPH01219710A (en) | 1988-02-26 | 1988-02-26 | Zoom lens |
Publications (1)
Publication Number | Publication Date |
---|---|
JPH01219710A true JPH01219710A (en) | 1989-09-01 |
Family
ID=12710022
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
JP4510688A Pending JPH01219710A (en) | 1988-02-26 | 1988-02-26 | Zoom lens |
Country Status (1)
Country | Link |
---|---|
JP (1) | JPH01219710A (en) |
Cited By (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2011090080A (en) * | 2009-10-21 | 2011-05-06 | Nikon Corp | Photographic lens, imaging apparatus, and method for adjusting the photographic lens |
JP2011186162A (en) * | 2010-03-08 | 2011-09-22 | Nikon Corp | Variable focal length lens, optical device, and method of adjusting the variable focal length lens |
JP2012042660A (en) * | 2010-08-18 | 2012-03-01 | Nikon Corp | Variable focal length lens, optical device, and method for adjusting variable focal length lens |
JP2012042663A (en) * | 2010-08-18 | 2012-03-01 | Nikon Corp | Photographic lens, optical device, and method for adjusting photographic lens |
US8202428B2 (en) | 2000-02-17 | 2012-06-19 | Fresenius Medical Care Deutschland Gmbh | Filter device, preferably a hollow fiber dialyser with curled hollow fibers |
JP2012247758A (en) * | 2011-05-31 | 2012-12-13 | Canon Inc | Zoom lens and imaging device including the same |
WO2015025831A1 (en) * | 2013-08-20 | 2015-02-26 | 株式会社ニコン | Variable focal length lens, optical device, method for adjusting variable focal length lens |
-
1988
- 1988-02-26 JP JP4510688A patent/JPH01219710A/en active Pending
Cited By (9)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US8202428B2 (en) | 2000-02-17 | 2012-06-19 | Fresenius Medical Care Deutschland Gmbh | Filter device, preferably a hollow fiber dialyser with curled hollow fibers |
JP2011090080A (en) * | 2009-10-21 | 2011-05-06 | Nikon Corp | Photographic lens, imaging apparatus, and method for adjusting the photographic lens |
JP2011186162A (en) * | 2010-03-08 | 2011-09-22 | Nikon Corp | Variable focal length lens, optical device, and method of adjusting the variable focal length lens |
JP2012042660A (en) * | 2010-08-18 | 2012-03-01 | Nikon Corp | Variable focal length lens, optical device, and method for adjusting variable focal length lens |
JP2012042663A (en) * | 2010-08-18 | 2012-03-01 | Nikon Corp | Photographic lens, optical device, and method for adjusting photographic lens |
JP2012247758A (en) * | 2011-05-31 | 2012-12-13 | Canon Inc | Zoom lens and imaging device including the same |
WO2015025831A1 (en) * | 2013-08-20 | 2015-02-26 | 株式会社ニコン | Variable focal length lens, optical device, method for adjusting variable focal length lens |
CN105612452A (en) * | 2013-08-20 | 2016-05-25 | 株式会社尼康 | Variable focal length lens, optical device, method for adjusting variable focal length lens |
JPWO2015025831A1 (en) * | 2013-08-20 | 2017-03-02 | 株式会社ニコン | Variable focal length lens, optical device, and variable focal length lens adjustment method |
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