OPTICAL ZOOM SYSTEM
20220317423 ยท 2022-10-06
Assignee
Inventors
- Stephan Smolka (Dietikon, CH)
- Michael BUELER (Dietikon, CH)
- Johannes Haase (Dietikon, CH)
- David NIEDERER (Dietikon, CH)
- Manuel Aschwanden (Dietikon, CH)
- Frank Bose (Dietikon, CH)
Cpc classification
G02B17/023
PHYSICS
International classification
Abstract
Optical zoom system comprising an image sensor, an objective having multiple refractive surfaces and a focus tunable lens which has a tunable optical power, an expansion unit which is arranged to alter a total track length, wherein in the total track length is measured from a first refractive surface of the objective to the image sensor along the optical path.
Claims
1. Optical zoom system comprising an image sensor, an objective having multiple refractive surfaces and a focus tunable lens which has a tunable optical power, an expansion unit which is arranged to alter a total track length, wherein in the total track length is measured from a first refractive surface of the objective to the image sensor along the optical path.
2. Optical zoom system according to claim 1, wherein the expansion unit is arranged to alter the total track length by movement of the image sensor along an optical axis with respect to the first refractive surface.
3. Optical zoom system according to claim 1, wherein the expansion unit is arranged to alter the total track length by movement of the first refractive surface and the tunable lens along an optical axis of the tunable lens with respect to the image sensor.
4. Optical zoom system according to claim 1, wherein the objective comprises a first reflective element with a first reflective surface and a second reflective surface, the first reflective surface and the second reflective surface are arranged obliquely with respect to each other, the optical path extends from the first refractive surface to the first reflective surface to the second reflective surface to the image sensor, and the expansion unit is arranged to alter the total track length continuously by moving the first reflective element with respect to the first refractive surface and/or with respect to the image sensor.
5. Optical zoom system according to claim 4, wherein a first section of the optical path runs anti-parallel to a second section of the optical path, wherein the first section of the optical path describes the course of the light immediately before it impinges on the first reflective surface, and the second section of the optical path describes the course of the light immediately after the light is reflected on the second reflective surface.
6. Optical zoom system according to claim 1, wherein the objective comprises a first optical pathway and a second optical pathway, the expansion unit is arranged to direct incoming light along the first optical pathway or the second optical pathway before impinging onto the image sensor, wherein the total track length along the second optical pathway is longer than the total track length along the first optical pathway.
7. Optical zoom system according to claim 6, wherein the expansion unit comprises a second reflective element, wherein an angle of the second reflective element with respect to the optical path is adjustable, and/or the expansion unit is arranged to move the second reflective element in the optical path and out of the optical path.
8. Optical zoom system according to claim 6, wherein the expansion unit comprises a tunable polarizing filter, wherein in a first state the polarizing filter transmits light polarized in a first direction, in a second state the polarizing filter transmits light polarized in a second direction, and the light polarized in the first direction is directed along the first optical pathway and light polarized in the second direction is directed along the second optical pathway.
9. Optical zoom system comprising an image sensor, an objective with multiple refractive surfaces, wherein the objective comprises a focus tunable lens which has a tunable optical power, a total track length is larger than an installation length, wherein the installation length is defined as the length of a straight line extending from a first refractive surface to the image sensor, and a total track length is defined as a length measured along the optical path from the first refractive surface to the image sensor.
10. Optical zoom system according to claim 9, wherein the optical path extends in sections obliquely with respect to a direction of the installation length.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] It is shown in
DETAILED DESCRIPTION
[0027] Identical or identically acting elements are provided with the same reference symbols in the figures. The figures and the proportions of the elements shown in the figures are not to be regarded as being to scale. Rather, individual elements can be shown exaggeratedly large for better displayability and/or for better understanding.
[0028]
[0029] The expansion unit 210 is arranged to alter a total track length 2, wherein in the total track length 2 is measured from the first refractive surface 20a of the objective 20 to the image sensor 10 along the optical path 3. Here and in the following, the optical path 3 is drawn along the optical axis of the objective 20. The expansion unit 210 is arranged to alter the total track length 2 by movement of the first refractive surface 20a and the tunable lens 200 along an optical axis of the tunable lens 200 with respect to the image sensor 10. In this embodiment, the tunable lens comprises a second refractive surface 20b, the expansion unit is arranged to move both, the first 20a and the second 20b refractive surface along the optical axis 3. The objective 20 comprises a further optical component 230. In particular, the expansion unit may be arranged to move both the tunable lens 200 and the further optical component 230 along the optical axis 3 when altering the total track length 3.
[0030] In the figures, the expansion unit is represented by a double-sided arrow, which illustrates the directions in which the expansion element causes a movement for altering the total track length 3. The expansion unit 210 may comprise any actuation means which is suitable to move optical components precisely in a dedicated direction. The actuation means may comprise a piezo element, a shape memory alloy, a magnetic actuator, an electromagnetic actuator or a stepper motor. For the sake of simplified representation, the actuation means is not illustrated in the figures.
[0031]
[0032]
[0033] The first reflective surface 211 and the second reflective surface 212 are arranged obliquely with respect to each other and the second refractive surface 212 is subordinate to the first refractive surface 211 along the optical path 3. The optical path 3 extends from the first refractive surface 20a to the first reflective surface 211 to the second reflective surface 212 to the image sensor 10.
[0034] As shown in the embodiment of
[0035] The expansion unit 210 is arranged to alter the total track length 2 continuously by moving the first reflective element 213 with respect to the further optical component 230, in particular with respect to the first refractive surface 20a and with respect to the image sensor 10. In particular, the total track length is altered by changing the length of the first section 31 and the second section 32 of the optical path simultaneously. Advantageously, changing the length of the total track length 2 does not result in any changes of incident angles of the light onto the first reflective element 213 or the further optical component 230.
[0036] The embodiment of
[0037]
[0038]
[0039]
[0040] The expansion unit 210 comprises a second reflective element 220, wherein an angle of the second reflective element 220 with respect to the optical path 3 is adjustable. The second reflective element 220 comprises a third reflective surface 221 and a fourth reflective surface 222. The expansion unit 210 is arranged to rotate the third and fourth reflective surface 221, 222 to direct the light along the first pathway 21 or the second pathway 22. The objective 20 comprises further optical components 230 having further reflective surfaces 231, which define the first 21 and second 22 optical pathway.
[0041]
[0042]
[0043]
[0044] The
[0045] The invention is not restricted to the exemplary embodiments by the description thereof. Rather, the invention encompasses any new feature and any combination of features, which in particular includes any combination of features in the patent claims, even if this feature or this combination itself is not explicitly specified in the patent claims or exemplary embodiments.
LIST OF REFERENCE SIGNS
[0046] 1 Optical zoom system [0047] 2 Total track length [0048] 3 Optical axis, optical path [0049] 10 Image sensor [0050] 20 Objective [0051] 21 First optical pathway [0052] 22 Second optical pathway [0053] 20a First refractive surface [0054] 20b Second refractive surface [0055] 31 First section of the optical path [0056] 32 Second section of the optical path [0057] 210 Expansion unit [0058] 230 Further optical element [0059] 231 Further reflective surface [0060] 211 First reflective surface [0061] 212 Second reflective surface [0062] 213 First reflective element [0063] 220 Second reflective element [0064] 221 Third reflective surface [0065] 222 Fourth reflective surface [0066] 300 Liquid crystal [0067] 310 Beam splitter [0068] 311 Further beam splitter [0069] 320 Quarter lambda plate