Continuous zoom afocal lens assembly
11774732 · 2023-10-03
Assignee
Inventors
Cpc classification
G02B13/18
PHYSICS
G02B7/10
PHYSICS
International classification
G02B15/20
PHYSICS
G02B13/18
PHYSICS
G02B15/14
PHYSICS
G02B7/10
PHYSICS
Abstract
Aspects of the embodiments include an optical device comprising a housing; and an afocal lens assembly comprising a zoom lens in the housing, the zoom lens supported in the housing to move along a long axis of the housing. The afocal lens assembly can also include an objective lens configured to move synchronously with the zoom lens based on rotation of a zoom+focus adjustment knob coupled to a lens driving mechanism.
Claims
1. An optical device comprising: a housing; an afocal lens assembly in the housing, the afocal lens assembly comprising a zoom lens and an objective lens, the zoom lens and objective lens supported in the housing to move along a long axis of the housing; a lens driving mechanism coupled to the zoom lens and the objective lens; and zoom+focus adjustment knob coupled to the lens driving mechanism; wherein the objective lens is configured to move synchronously with the zoom lens along the long axis based on rotation of the zoom+focus adjustment knob.
2. The optical device of claim 1, further comprising a worm drive within the housing and coupled to the zoom lens and the objective lens, wherein the zoom lens and the objective lens are configured to move synchronously by the worm drive.
3. The optical device of claim 1, wherein the afocal lens assembly comprises a focusing lens assembly residing in the housing proximate a second end of the housing opposite the first end.
4. The optical device of claim 3, further comprising a light detection element residing in the housing, positioned to receive light from the focusing lens assembly.
5. The optical device of claim 4, wherein the light detection element comprises an infrared detector.
6. The optical device of claim 5, wherein the infrared detector comprises a long wavelength infrared detector.
7. The optical device of claim 3, further comprises a display unit at the second end of the housing to display images based on light received by the light detection element.
8. The optical device of claim 1, wherein the zoom lens comprises a spherical lens.
9. The optical device of claim 1, wherein the zoom lens comprises an aspherical lens.
10. The optical device of claim 1, wherein the zoom lens comprises a surface grating.
11. A camera system comprising: an afocal lens assembly, the afocal lens assembly comprising: an objective lens; a zoom lens; and a collimator lens assembly comprising one or more lens elements to receive light from the zoom lens; a lens driving mechanism coupled to the objective lens and the zoom lens; an adjustment knob coupled to the lens driving mechanism, wherein the objective lens is configured to move synchronously with the zoom lens based on rotation of the adjustment knob: a light detector to receive light from the collimator lens; and a display unit to display an image based on light received by the light detector.
12. The camera system of claim 11, wherein the light detector comprises a long wavelength infrared light detector.
13. The camera system of claim 11, wherein one or more of the objective lens, the zoom lens, and the one or more lens elements of the collimating lens assembly comprise a spherical lens.
14. The camera system of claim 11, wherein one or more of the objective lens, the zoom lens, and the one or more lens elements of the collimating lens assembly comprise an aspherical lens.
15. The camera system of claim 11, wherein one or more of the objective lens, the zoom lens, and the one or more lens elements of the collimating lens assembly comprise a grating surface.
16. The camera system of claim 11, wherein the lens driving mechanism comprises one of a worm drive or a motor driven track.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) This disclosure describes a continuous zoom afocal device that facilitates smooth zooming. Afocal attachments of different magnifications are desirable for use in thermally calibrated fixed focal length long wavelength infrared (LWIR) optical systems. Though thermal imaging applications are discussed above, the continuous zoom afocal device described herein can also be used for visible optical applications.
(8) A benefit of the design presented herein is that the lens that is already mounted and calibrated on the camera itself does not need to be removed.
(9) A design is presented herein that includes and claims:
(10) An optical device that facilitates movement of two groups of lenses synchronously. Such movement can be facilitated by a worm drive, for example, or by other mechanisms.
(11) A long wavelength infrared (LWIR) afocal zoom lens with spherical elements that zooms from X to Y magnification.
(12) A LWIR afocal zoom lens that is designed for good performance over a 74 degree field of vision (FoV) at a sensor side of the optical device.
(13) A LWIR afocal zoom lens that even with large FoV has no vignetting.
(14) A LWIR afocal zoom lens that forms an intermediate image within the lens such that the moveable zoom element is in the vicinity of the intermediate image and functions to provide variable power for the zoom function and also functions as a field lens, bending the light flux in such a way as to both minimize lens diameters and avoid vignetting.
(15) In some implementations, the lens assembly can include 4 optical elements. In some implementation, the adapter includes 4 optical elements. The first two elements L1 and L2 are fixed, the third L3 is moveable and provides the zoom function, while the fourth element L4 moves to provide focus adjustment.
(16) In some implementations, the lens assembly can include three elements, wherein one of the elements is aspheric.
(17) There are other implementations where better color correction is desired, and is accomplished by way of a diffractive surface on one of the lens elements
(18) The lens in various zoom configurations is shown in
(19) The lens assembly 100 can include a third lens L3. The third lens L3 can be a zoom lens that can move along a long axis of a housing. In some embodiments, the third lens L3 can also rotate about the long axis as the third lens L3 translates along the long axis of the housing (shown in
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(21) Table 1 provides a non-limiting example of the effective focal length of L1, L2 and L3, along with the focal length of L4. The ratio corresponds to the zoom. Additionally the optical “work,” meaning the optical power multiplied by the zero field ray height, of L3 is shown. Where the values are low, that indicates where L3 is functioning primarily as a field lens.
(22) TABLE-US-00001 TABLE 1 Focal length of Focal length of Optical “work” of Zoom L1, L2 and L3 L4 L3 2 23.2 47.82 0.0558 3 15.5 47.82 0.0366 4 11.8 47.82 0.0175 5 9.5 47.82 0 6 7.9 47.82 −0.02 7 6.8 47.82 −0.038 8 5.9 47.82 −0.05
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(24) A zoom+focus adjustment knob 204 is shown. The zoom+focus adjustment knob 204 is configured to adjust the third lens L3 and the fourth lens L4 synchronously to provide continuous zoom capability. A battery cap 206 is also shown in
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(27) The third lens L3 and the fourth lens L4 can move along a direction parallel to the long axis 220 of the housing. In embodiments, the third lens L3 and the fourth lens L4 can also rotate about the long axis 220 as the third lens L3 and the fourth lens L4 translate along the axis 220.
(28) The zoom+focus adjustment knob 204 is configured to rotate, and upon rotation, can move the third lens L3 and the fourth lens L4, in a configuration similar to that shown in
(29) Reference throughout this specification to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, the appearances of the phrases “in one embodiment” or “in an embodiment” in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.
(30) In the foregoing specification, a detailed description has been given with reference to specific exemplary embodiments. It will, however, be evident that various modifications and changes may be made thereto without departing from the broader spirit and scope of the invention as set forth in the appended claims. The specification and drawings are, accordingly, to be regarded in an illustrative sense rather than a restrictive sense. Furthermore, the foregoing use of embodiment and other exemplarily language does not necessarily refer to the same embodiment or the same example, but may refer to different and distinct embodiments, as well as potentially the same embodiment.