Information
-
Patent Application
-
20030189767
-
Publication Number
20030189767
-
Date Filed
April 04, 200321 years ago
-
Date Published
October 09, 200321 years ago
-
CPC
-
US Classifications
-
International Classifications
Abstract
An objective has a front group, a focus group displaceable along the optical axis and a follow-on lens group having a diaphragm. The front group is arranged at the objective end. The lens group having the diaphragm includes at least two composite lenses and/or two positive lenses and/or the back focus can be adjusted. An objective series is presented wherein all objectives of the series have a uniform appearance and/or the diaphragm is arranged in all objectives proceeding from the image plane at the same location.
Description
FIELD OF THE INVENTION
[0001] The invention relates to objectives including the following: an objective having a front group arranged at the objective end; a focus group displaceable along the optical axis; and, a follow-on lens group having a diaphragm. These objectives are especially suited for high definition television (HDTV) applications.
BACKGROUND OF THE INVENTION
[0002] In the text of Naumann et al entitled “Bauelemente der Optik”, sixth edition, page 388, a photo objective is disclosed which includes a front group, an axially-displaceable focus group and a lens group having a diaphragm.
[0003] HDTV objectives are known from the Fujinon Company which were introduced in April 2000 and have been on sale in the marketplace since July 2001 under the internet address: http://www.fujinon.co.jp/news/010515.htm.
[0004] International patent publication WO 00/30348 discloses an adapter for coupling photo objectives to a video camera. This adapter is provided for use in HDTV and this can be noted in that a prism arrangement is provided for the spectral separation into the individual color channels. A high-quality recordation is achieved with this separation into the individual color channels.
[0005] European patent publication 0,841,583 discloses an optical adapter with which the use of objectives is made possible in an electronic camera. The separation into individual color channels is also provided in this adapter.
SUMMARY OF THE INVENTION
[0006] It is an object of the invention to reduce the manufacturing costs for objectives or for a series of objectives which are suitable for use with HDTV. It is another object of the invention to simplify the handling of the different objectives of an objective series.
[0007] The objective defining an optical axis of the invention includes: a front group; a focus group displaceable along the optical axis; and, a lens group incorporating a diaphragm. The lens group is mounted adjacent the focus group and includes at least two composite lenses.
[0008] The optical characteristics can be improved by providing at least two composite lenses in the lens group having the diaphragm. The optical characteristics are especially improved in that the chromatic aberrations are reduced. High requirements are imposed on objectives which are intended to be used in HDTV cameras and these high requirements include: the resolution, a minimal chromatic aberration, an image end telecentric chief array path, a low aperture number and a low brightness fall off.
[0009] A positive effect on the optical characteristics of the objective can be achieved with the measure of providing two individual lenses of positive refractive power at the image end in the lens group including the diaphragm.
[0010] For the use of objectives with HDTV cameras, it has been shown to be advantageous to provide a back focus via which an adaptation of the focal intercept is made possible to the particular camera. In this way, the objectives can be adapted to various cameras of different manufacturers. With this back focus, tolerances can be compensated which occur at the focal intercept of the camera to the objective. In this way, an avoidance of a defocusing can be ensured which would otherwise lead to a very substantial quality loss. To make available the back focus, it is provided that the lenses of the objective in their entirety are displaceably mounted in the axial direction, preferably by at least ±0.2 mm.
[0011] Furthermore, it has been shown to be advantageous to provide at least one lens of a composite lens made of glass having an abnormal dispersion such as fluor crown or phosphate crown.
[0012] The manufacturing costs can be reduced with the measure to mount the diaphragm in all objectives in an objective series at an identical position in the objective with reference to the image plane.
[0013] Furthermore, it has been shown to be advantageous in a series of objectives to use the same diaphragm in all objectives and to adapt only their maximum or minimum diameter from objective to objective. This saves the development of several diaphragms and affords advantages in the objective assembly.
[0014] It has also been shown to be advantageous that all objectives of the objective series have the same structural length. This has advantages especially with respect to manufacturing costs.
[0015] It has been shown to be further advantageous in the objectives of an objective series to arrange actuating elements in all objectives at the same location. In this way, the handling for the user is significantly simplified. The holding position for actuating an actuating element, such as the focusing, is the same in all objectives of the objective series of the invention.
[0016] It has also been shown to be advantageous that all objectives of the objective series have an exit pupil position of less than 500 mm from the image plane for the realization of a telecentric chief beam path.
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The invention will now be described with reference to the drawings wherein:
[0018]
FIG. 1 is a perspective view of the objectives of a series of objectives;
[0019]
FIG. 2 is a side elevation view of an objective of a series of objectives;
[0020]
FIG. 3 is a schematic representation of the configuration of a lens arrangement of the objective;
[0021]
FIG. 4 is a schematic lens section view of an objective having a focal length of 39.84 mm;
[0022]
FIG. 5 is a schematic lens section view of an objective having a focal length of 20.1 mm;
[0023]
FIG. 6 is a schematic lens section view of an objective having a focal length of 13.98 mm;
[0024]
FIG. 7 is a schematic lens section view of an objective having a focal length of 10.01 mm;
[0025]
FIG. 8 is a schematic lens section view of an objective having a focal length of 7.05 mm; and,
[0026]
FIG. 9 is a schematic lens section view of an objective having a focal length of 5.2 mm.
DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION
[0027] The configuration of an objective of an objective series is shown by way of example in FIGS. 1 and 2. The objective 1 includes a unitary structural length 2 for all objectives in an objective series. At the camera end, the objective is provided with a connecting element 6 via which the objective can be fixedly connected to the camera. The objective is provided with a scale 7 at the end thereof facing toward the camera. The adjusted back focus is displayed by the scale 7. A rotating ring 8 is provided for adjusting the back focus. A rotating knob 9 is provided for latching the adjusted back focus. The rotating knob 9 must be loosened in order to carry out an adjustment of the back focus by means of the rotating ring 8.
[0028] The rotating ring 11 is provided for adjusting the diaphragm. The rotating ring 13 is provided for focusing.
[0029] An objective series will now be explained with respect to the lens sections shown in FIGS. 3 to 9.
[0030] All objectives are of the retrofocus type, that is, their focal intercept is greater than their focal length. This is attributed to the special configuration of HDTV cameras which use a beam splitter prism for color separation and therefore require a correspondingly large image end focal intercept. The structural configuration is shown in FIG. 3. As shown in FIG. 3, the objective includes: a front group mounted at the object end with the front group being fixedly mounted; a focus group 21 which is arranged so as to be displaceable along the optical axis of the objective; and, a lens group 23 which is provided with a diaphragm 25 to which the camera with the beam splitter prism 5 borders for separating the image into various color channels. By providing an inner focusing, it was possible that all objectives have a unitary and constant structural length.
[0031] In the illustrated embodiments, the structural configuration of the lens group 23 is identical insofar that this lens group has two composite lenses in each case and wherein the last two lenses, which are mounted forward of the beam splitter prism 5, are individual lenses having a positive refractive power. The diaphragm 25 is mounted in the lens group 23. Tooling costs are saved because of the similar configuration of the lens group 23 having diaphragm 25. Furthermore, the assembly of the objective is simplified thereby.
[0032] In the embodiments, examples are given for a modular group behind the diaphragm for the wide angle range. The modular configuration can be recognized in that a lens group of negative refractive power is constructed on a pregiven lens group of positive refractive power so that a new objective having another focal length is provided. With this method, it is especially possible to rationally develop a series of objectives having different focal lengths which manifests itself advantageously with respect to development costs.
[0033] All illustrated objectives are virtually limited in the green channel with respect to diffraction. All objective sets have a uniformly high image quality, that is, no power drop occurs when changing an objective. The TV distortion is less than 1% for all objectives. The TV distortion, TVV, is computed as follows:
1
[0034] wherein:
[0035] Vdiagonal is the distortion along the image diagonal; and,
[0036] Vlongitudinal is the distortion along the image longitudinal end.
[0037] The distortion is computed as follows:
2
[0038] wherein:
[0039] yparaxial is the paraxial image height; and,
[0040] yx is the real image height diagonally or longitudinally.
[0041] The focal length changes, in general, when through focusing because of the internal focusing. In this way, the imaging scale also changes and the image appears to expand or blow up when through focusing or it collapses. This is characterized as image angle change or pumping and is computed in accordance with the formula:
3
[0042] wherein:
[0043] wi is the image angle for the focus position at infinity; and,
[0044] wn is the image angle for the close-up focusing position.
[0045] In all objectives, pumping is less than 2% in the focusing range from infinity to the shortest close-up limit (object to image distance OO′=0.5 m).
[0046] All objectives have a telecentric chief beam path which is realized by an exit pupil position which is larger than 500 mm from the image plane.
[0047] All objectives have a back focus which permits an adaptation of the focal intercept to the particular camera. A back focus is necessary because the focal intercept of the camera to the objective has too large a tolerance and a defocusing caused thereby which would lead to a very significant loss of quality.
[0048] All objectives have a uniform diaphragm position, that is, the distance of the diaphragm to the image plane is the same. In all objectives of the series, the same diaphragm can be used. Only the maximum or minimum diameter of the diaphragm 25 has to be adapted from objective to objective because of the different entry pupil radii. This saves the development of several diaphragms and affords advantages in the assembly of the objective.
[0049] The lens data of the lens section shown in FIG. 4 is set forth in Table 1.
1TABLE 1
|
|
Example 1
Focal length: 39.84 Stop Aperture Surface: 18
Focus group: Surface 10 . . . 13
No.RadiusDistancendvd
|
1INFINITY 0.000
2 73.9180011.0001.5523563.46
3−510.2800016.000
4 27.98200 8.5001.8467623.83
5 20.68400 5.360
6 74.98900 2.4001.6229958.02
7 29.42700 7.300
8 −29.64000 2.0001.7440244.85
9 62.64300 3.410
10INFINITY 5.5001.4970281.54
11 −41.26900 0.100
12 334.97000 3.5001.7495634.82
13 109.02000 9.954
14 67.31700 8.0001.4970281.54
15 −58.71500 0.100
16 35.7380010.0001.8081922.76
17 45.64300 9.000
18INFINITY 9.700
19 −48.00100 3.8001.7495635.28
20 38.40400 9.0001.4970281.54
21 −57.04900 4.200
22−258.52000 5.0001.7205334.71
23 39.81100 8.5001.4970281.54
24 −59.56600 0.100
25 93.72900 7.0001.6031460.64
26−244.06000 0.100
27 45.64300 4.5001.7620640.10
28−381.29000 2.138
29INFINITY 7.600
30INFINITY33.0001.6086346.44
31INFINITY13.2001.5168264.17
32INFINITY 0.860
33INFINITY 1.000
34INFINITY 0.000
|
[0050] The focal length of the objective is 39.84 mm. The first lens surface arranged at the object end is the surface number 2 and the fifth and sixth lenses in the propagation direction of the light have the surfaces 10 to 13 and are mounted to be displaceable along the optical axis of the objective. The focus group 21 is formed by these lenses. Reference numeral 27 identifies the composite lens of the lens group 23 having diaphragm 25. Reference numeral 5 identifies the prism arrangement of the HDTV camera.
[0051] The lens data of the lens section of an objective shown in FIG. 5 is set forth in Table 2.
2TABLE 2
|
|
Example 2
Focal Width: 20.10 Stop Aperture Surface: 18
Focus group: Surfaces 11 . . . 17
No.RadiusDistancendvd
|
1INFINITY 0.000
2139.24000 6.3001.6910454.71
3−530.88000 7.500
460.86600 2.8001.5481745.85
525.6670010.000
682.34300 2.7501.4875170.40
720.3880010.0001.8052725.36
830.5050012.830
9−29.85400 2.6001.8052725.43
10−392.42000 4.002
11−83.53600 8.9501.4875170.40
12−47.65700 0.250
1387.85200 8.2001.7130453.83
14−49.40300 2.6001.6727732.25
1533.49700 6.630
1657.46100 5.5001.7848125.76
17−128.6400018.588
18INFINITY20.390
19−51.95500 2.6001.6910454.71
20165.48000 7.0001.4970281.54
21−35.22700 0.800
221295.70000 3.3001.7495634.95
2352.70800 6.4001.4970281.54
24−89.12500 0.300
2558.29400 6.4001.4970281.54
26−137.25000 0.150
2737.31400 5.0001.5168264.17
28139.24000 1.700
29INFINITY 7.600
30INFINITY33.0001.6086346.44
31INFINITY13.2001.5168264.17
32INFINITY 0.860
33INFINITY 1.000
34INFINITY 0.000
|
[0052] This objective includes a focal length of 20.1 mm. The first lens surface, which is arranged at the object end, is the lens surface number 2. The front group 19 is formed by the first five lenses arranged at the object end. The focus group 21 is formed by the lenses 6 to 9 following the front group. The lens group 23 having the diaphragm 25 is formed by the lenses, which are arranged after the diaphragm, together with the diaphragm. This last lens group 23 has a focal length of 37.61 mm.
[0053] The lens data of the lens section shown in FIG. 6 is set in Table 3.
3TABLE 3
|
|
Example 3
Focal Width: 13.98 Stop Aperture Surface: 17
Focus group: Surfaces 11 . . . 16
No.RadiusDistancendvd
|
1INFINITY 0.000
2247.60000 6.2401.7130453.83
3−247.6000013.350
4205.35000 2.7001.4970281.54
522.0670012.200
6−64.93800 4.1001.4970281.54
716.4300010.2501.6727632.21
8−66.35500 2.820
9−28.59200 2.4001.8081922.76
1060.43000 2.877
11403.88000 4.6001.4875170.40
12−32.78100 8.770
13−211.35000 6.5001.8061733.27
1435.99600 8.550
1577.73600 9.3001.7552827.58
16−64.9380014.523
17INFINITY11.220
1832.31300 3.5001.8081922.76
1938.68100 4.450
20−330.18000 2.0001.6204460.32
2136.51700 7.3401.4970281.54
22−63.55100 0.940
23−97.17100 3.0001.8010634.97
2434.84300 8.2501.4970281.54
25−52.70800 0.200
2671.30600 5.7501.4970281.54
27−82.93700 0.200
2838.40400 6.0501.4970281.54
29−562.34000 1.140
30INFINITY 7.600
31INFINITY33.0001.6086346.44
32INFINITY13.2001.5168264.17
33INFINITY 0.860
34INFINITY 1.000
35INFINITY 0.000
|
[0054] In this embodiment, the focus group 21 includes three lenses. The focus range 21 of this objective extends from 0.5 m to infinity.
[0055] The lens data for the lens section shown in FIG. 7 is set forth in Table 4.
4TABLE 4
|
|
Example 4
Focal Width: 10.01 Stop Aperture Surface: 20
Focus group: Surfaces 8 . . . 14
No.RadiusDistancendvd
|
1INFINITY 0.000
2937.29000 8.0001.7440244.85
3−177.83000 7.080
4−167.88000 2.5001.8341137.30
532.78100 8.760
6269.93000 9.5001.8350743.13
7−56.2340010.772
82585.20000 2.1001.5690971.22
924.7600013.000
10−31.85100 3.1001.6180363.33
1160.8660011.6001.7410452.64
12−27.7810015.400
13−30.94700 2.6001.6180363.33
14−349.74000 3.868
1560.86600 2.8001.7495634.95
16−68.78600 2.940
17−26.99300 1.2001.8350743.13
1828.18400 4.0001.6200936.37
19−45.97300 7.070
20INFINITY 4.500
21−275.82000 2.7001.8350743.13
2224.7600013.2001.7552827.58
23131.45000 0.560
2454.63900 8.3001.4875170.40
25−32.54600 0.200
26−97.16300 3.0001.8010634.97
2734.84300 8.2501.4970281.54
28−52.70800 0.200
2971.30600 5.7501.4970281.54
30−82.93700 0.200
3138.40400 6.0501.4970281.54
32−562.34000 1.140
33INFINITY 7.600
34INFINITY33.0001.6086346.44
35INFINITY13.2001.5168264.17
36INFINITY 0.860
37INFINITY 1.000
38INFINITY 0.000
|
[0056] In this objective, the front group 19 is formed by the first three lenses mounted at the object end. The focus group 21 is formed by the following lenses and the lens group having diaphragm 18 follows the focus group 21.
[0057] The lens data for the lens section shown in FIG. 8 is set forth in Table 5.
5TABLE 5
|
|
Example 5
Focal Width: 7.05 Stop Aperture Surface: 25
Focus group: Surfaces 10 . . . 17
No.RadiusDistancendvd
|
1INFINITY 0.000
2199.53000 6.3001.7200750.62
32660.70000 0.350
474.98900 3.0001.4970281.54
523.5440014.000
6258.52000 3.0001.8081922.76
726.79900 6.050
857.46100 8.4001.7174329.51
9−57.46100 2.408
10INFINITY 0.000
11307.26000 3.0001.4970281.54
1219.38700 7.000
13−1412.50000 3.0001.4970281.54
1418.1710017.4001.5111560.41
15−23.04100 0.400
16−50.48100 2.5001.4970281.54
1727.38400 4.092
18INFINITY 0.000
19INFINITY 7.000
2055.03300 4.1501.6477433.85
21−55.03300 1.650
22−33.98200 2.0001.8042546.50
2318.70100 5.0001.6034738.03
24−74.4520015.200
25INFINITY 0.000
26INFINITY 4.500
27−275.82000 2.7001.8350743.13
2824.7600013.2001.7552827.58
29131.45000 0.560
3054.63900 8.3001.4875170.40
31−32.54600 0.200
32−97.16300 3.0001.8010634.97
3334.84300 8.2501.4970281.54
34−52.70800 0.200
3571.30600 5.7501.4970281.54
36−82.93700 0.200
3738.40400 6.0501.4970281.54
38−562.34000 1.140
39INFINITY 7.600
40INFINITY33.0001.6086346.44
41INFINITY13.2001.5168264.17
42INFINITY 0.860
43INFINITY 1.000
44INFINITY 0.000
|
[0058] In this objective, the front group 19 is formed by the first four lenses arranged at the object end. The next lenses are arranged to be displaceable axially along the optical axis of the objective and thereby form the focus group 21. The lenses which follow define the lens group 23 having the diaphragm 25.
[0059] The lens data to the lens section shown in FIG. 9 are set forth in Table 6.
6TABLE 6
|
|
Example 6
Focal Width: 5.20 Stop Aperture Surface: 23
Focus group: Surfaces 10 . . . 17
No.RadiusDistancendvd
|
1INFINITY 0.000
2147.30000 4.0001.7440244.85
322.0670022.190
4−33.01800 3.0001.8830640.76
522.06700 7.0001.5481745.85
6−40.09800 6.550
750.11900 6.3001.5481745.85
8−17.27800 2.0001.4970281.63
922.38700 4.066
1091.07000 3.2001.8830640.76
1114.33000 6.7001.5927535.31
12−18.70100 1.520
13−22.87600 2.0001.8830640.76
1436.51700 2.020
1519.38700 3.0001.9230018.90
1612.23200 6.8501.6398534.47
17−101.08000 1.924
1836.51700 5.7001.6541639.63
19−24.23100 4.030
20−17.6550016.6001.7859544.20
2117.91100 5.7001.7552827.51
22−139.24000 2.060
23INFINITY 1.950
24INFINITY23.0001.8341137.30
2547.31500 1.530
2639.24200 6.2301.4560190.34
27−52.70800 0.500
28160.79000 2.0001.8010634.97
2928.38700 6.8001.4970281.63
30−75.53100 0.500
3195.77500 4.8501.4560190.34
32−79.43300 0.510
3339.52500 5.6501.4560190.34
34−89.76900 0.520
35INFINITY 7.600
36INFINITY33.0001.6086346.44
37INFINITY13.2001.5168264.17
38INFINITY 0.860
39INFINITY 1.000
40INFINITY 0.000
|
[0060] Lens 1 has aspheric surface number 2.
[0061] The following are the development constants:
[0062] A: 1.120e-005 B: −8.920e-009 C: 7.780e-012
[0063] In this objective, the front group 19 is formed by the first individual lens with the two following composite lenses. The focus group 21 includes the two following composite lenses. The lens group 23 having diaphragm 25 follows the focus group 21. In this objective, as in all lens sections shown, the first object-end surface is the surface number 2. In this objective, this surface is an aspheric lens surface.
[0064] The focal lengths of front group 19, focus group 21 and lens group 23 having diaphragm 25 as well as the total focal length of the particular objective are set forth in the Table 7.
7TABLE 7
|
|
Component Focal Widths
FocalStationaryFocusFixed Group
LengthGroupGroupwith Diaphragm
|
39.84 −40.205131.44836.380
20.10 −32.41970.70537.610
13.98 −22.17678.67938.442
10.01−616.698−32.55229.897
7.05−191.321−31.18629.897
5.20 −10.661−162.15231.741
|
[0065] The refractive index of 1.49702 set forth in the tables is the refractive index of fluor crown which has an abnormal dispersion.
[0066] Priority is claimed herein from German patent application 102 15 434.1, filed Apr. 8, 2002, and this application is incorporated herein by reference.
[0067] It is understood that the foregoing description is that of the preferred embodiments of the invention and that various changes and modifications may be made thereto without departing from the spirit and scope of the invention as defined in the appended claims.
Claims
- 1. An objective defining an optical axis and comprising:
a front group; a focus group displaceable along said optical axis; and, a lens group incorporating a diaphragm; and, said lens group being mounted adjacent said focus group and including at least two composite lenses.
- 2. The objective of claim 1, wherein said lens group has a focal length in the range of 25 to 40 mm.
- 3. The objective of claim 1, wherein one of said composite lenses comprises a material having an abnormal dispersion.
- 4. The objective of claim 1, wherein the TV distortion (TVV) is less than 1% and said TV distortion is obtained from the equation:
- 5. The objective of claim 1, wherein an exit pupil is provided of more than 500 mm distant from the image plane for making available a telecentric chief beam path.
- 6. The objective of claim 1, wherein said objective is one of a series of objectives and said series of objectives including objectives having focal widths in the range of 5 to 50 mm.
- 7. The objective of claim 6, wherein all of the objectives of said series have the identical mechanical structural length.
- 8. The objective of claim 6, wherein the actuating elements in all of said objectives are located at the same location.
- 9. An objective defining an optical axis and comprising:
a front group; a focus group displaceable along said optical axis; and, a lens group incorporating a diaphragm; and, said lens group being mounted adjacent said focus group and including individual lenses of positive refractive power mounted at the image side.
- 10. The objective of claim 9, wherein said lens group has a focal length in the range of 25 to 40 mm.
- 11. The objective of claim 9, wherein one of said composite lenses comprises a material having an abnormal dispersion.
- 12. The objective of claim 9, wherein the TV distortion (TVV) is less than 1% and said TV distortion is obtained from the equation:
- 13. The objective of claim 9, wherein an exit pupil is provided of more than 500 mm distant from the image plane for making available a telecentric chief beam path.
- 14. The objective of claim 9, wherein said objective is one of a series of objectives and said series of objectives including objectives having focal widths in the range of 5 to 50 mm.
- 15. The objective of claim 14, wherein all of the objectives of said series have the identical mechanical structural length.
- 16. The objective of claim 14, wherein the actuating elements in all of said objectives are located at the same location.
- 17. An objective defining an optical axis and comprising:
a front group; a focus group displaceable along said optical axis; and, a lens group incorporating a diaphragm; and, said lens group being mounted adjacent said focus group and including at least two composite lenses and two individual positive lenses mounted at the image side.
- 18. The objective of claim 17, wherein said lens group has a focal length in the range of 25 to 40 mm.
- 19. The objective of claim 17, wherein one of said composite lenses comprises a material having an abnormal dispersion.
- 20. The objective of claim 17, wherein the TV distortion (TVV) is less than 1% and said TV distortion is obtained from the equation:
- 21. The objective of claim 17, wherein an exit pupil is provided of more than 500 mm distant from the image plane for making available a telecentric chief beam path.
- 22. The objective of claim 17, wherein said objective is one of a series of objectives and said series of objectives including objectives having focal widths in the range of 5 to 50 mm.
- 23. The objective of claim 22, wherein all of the objectives of said series have the identical mechanical structural length.
- 24. The objective of claim 22, wherein the actuating elements in all of said objectives are located at the same location.
- 25. A series of objectives comprising a plurality of objectives and each of said objectives defining an optical axis and including a front group; a focus group displaceable along said optical axis; and, a lens group including a diaphragm; and, the diaphragm in all of said objectives being mounted at the same distance from the image plane of the objective.
- 26. The series of claim 25, wherein said series includes at least four objectives.
- 27. The series of claim 25, wherein said series includes at least six objectives.
- 28. A television camera assembly comprising:
an objective defining an optical axis and said objective including: a front group; a focus group displaceable along said optical axis; and, a lens group incorporating a diaphragm; and, said lens group being mounted adjacent said focus group and including at least two composite lenses; and, a television camera mounted on said optical axis next to said lens group.
- 29. A television camera assembly comprising:
an objective defining an optical axis and said objective including: a front group; a focus group displaceable along said optical axis; and, a lens group incorporating a diaphragm; and, said lens group being mounted adjacent said focus group and including two individual lenses of positive refractive power mounted at the image side; and, a television camera mounted on said optical axis next to said lens group.
- 30. A television camera assembly comprising:
an objective defining an optical axis and said objective including: a front group; a focus group displaceable along said optical axis; and, a lens group incorporating a diaphragm; and, said lens group being mounted adjacent said focus group and including at least two composite lenses and two individual positive lenses mounted at the image side; and, a television camera mounted on said optical axis next to said lens group.
- 31. A method of developing an objective series comprising the steps of:
proceeding from the structure of a lens group; and, modifying only the additional lens groups for making available the wanted focal length.
Priority Claims (1)
Number |
Date |
Country |
Kind |
102 15 434.1 |
Apr 2002 |
DE |
|