OPTICAL SYSTEM AND METHOD FOR IMAGING AN OBJECT
20220075172 ยท 2022-03-10
Inventors
Cpc classification
International classification
Abstract
An optical system for imaging an object onto an image plane of a microscope comprises a first lens group and a fourth lens group which are stationary, and a second lens group and a third lens group which are independently movable along an optical axis (O) of the optical system for focusing the object onto the image plane while zooming between a short focal length extremity and a long focal length extremity.
Claims
1. An optical system (100, 200) for imaging an object (342) onto an image plane (IP) of a microscope (308), comprising: a first lens group (L1) and a fourth lens group (L4) which are stationary, and a second lens group (L2) and a third lens group (L3) which are independently movable along an optical axis (O) of the optical system (100, 200) for focusing the object (324) onto the image plane (IP) while zooming between a short focal length extremity and a long focal length extremity.
2. The optical system (100, 200) according to claim 1, wherein the first lens group (L1) has negative power, the second lens group (L2) has positive power, the third lens group (L3) has positive power and the fourth lens group (L4) has negative power, and wherein the first through fourth lens groups are arranged in the following order from an object side: the first lens group (L1), the second lens group (L2), the third lens group (L3), and the fourth lens group (L4).
3. The optical system (100, 200) according to claim 1, wherein the optical system (100, 200) is configured to be telecentric on an object side and telecentric on an image side.
4. The optical system (100, 200) according to claim 1, wherein the short focal length extremity and the long focal length extremity define a zoom range from Z1=0.9 to Z2=5.
5. The optical system (100, 200) according to claim 1, comprising memory means (320) for storing information assigning each combination of zoom setting and focus setting to a corresponding lens group position along the optical axis for each of the second and third lens groups (L2, L3).
6. The optical system (200) according to claim 1, comprising an optical element (202) for coaxial light coupling.
7. The optical system (200) according to claim 6, wherein the optical element (202) is arranged in a segment of the optical system (200) where an angular characteristic of light passing the optical system is the same for the whole range of zoom and focus positions of the second lens group (L2) and the third lens group (L3).
8. The optical system (200) according to claim 7, wherein the optical element (202) is arranged in the fourth lens group (L4).
9. The optical system (200) according to claim 8, wherein the fourth lens group comprises a first sub-lens group (204) having negative power and a second sub-lens group (206) having positive power arranged in the following order from an object side: the first sub-lens group (204) and the second sub-lens group (206), and the optical element (202) is arranged between the first sub-lens group (204) and the second sub-lens group (206).
10. A method for imaging an object (328) onto an image plane (IP) of a microscope (308), comprising the steps of: holding a first lens group (L1) and a fourth lens group (L4) stationary during imaging of the object (328); and moving a second lens group (L2) and a third lens group (L3) independently along an optical axis (O) for focusing the object (328) onto the image plane (IP) while zooming between a short focal length extremity and a long focal length extremity.
11. A microscope (308) comprising an image plane (IP) and an optical system (100) according to claim 1.
Description
SHORT DESCRIPTION OF THE FIGURES
[0021] Hereinafter, preferred embodiments are described with reference to the drawings in which:
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025]
[0026]
[0027] The optical system 100 comprises a first lens group L1 having negative power, a second lens group L2 having positive power, a third lens group L3 having positive power and a fourth lens group L4 having negative power, the lens group L1 to L4 being arranged in this order from the image plane OP1, OP2 to the image plane IP. The first lens group L1 facing towards the object plane OP1, OP2 and the fourth lens group L4 facing to the image plane IP are stationary. In other words, upon focusing and zooming, the two outer lens groups L1, L4 of the optical system 100 remain unchanged in their positions along the optical axis O. In contrast, both inner lens groups L2, L3 of the optical system 100 are independently moved along the optical axis O for focusing the object onto the image plane IP while zooming between the long focal length extremity, i.e. V.sub.min, and the short focal length extremity, i.e. V.sub.max.
[0028] Specifically, both the second lens group L2 and the third lens group L3 are moved from the object plane OP1, OP2 to the image plane IP while zooming between the long focal length extremity and the short focal length extremity. Further, the second lens group is moved towards the object plane OP1, OP2, and the third lens group L3 is moved towards the image plane IP when the distance from the object plane to the image plane IP is increased, i.e. when the object plane is moved from OP1 to OP2. This focusing movement of the second lens group L2 and the third lens group L3 applies for both the long focal length extremity and the short focal length extremity.
[0029]
[0030] According to the embodiment shown in
[0031] Each combination of zoom setting and focus setting corresponds to a combination of an associated position of the second lens group L2 and an associated position of the third lens group L3 along the optical axis O. Thus, an information assigning each combination of zoom setting and focus setting to the corresponding lens group positions of the second and third lens groups L2, L3 O may be stored beforehand so that this information can be referred to when a specific zoom setting and a specific focus setting shall be provided.
[0032]
[0033] Preferably, the optical element 202 is arranged in a segment of the optical system 200 where an angular characteristic of light passing through the optical system 200 is the same for the whole range of zoom and focus positions of the second lens group L2 and the third lens group L3. In other words, the segment of the optical system 200, which preferably includes the optical element 202, exhibits a constant angular characteristic with respect to the light passing the optical system 100 throughout the entire zoom range from the short focal length extremity to the long focal length extremity as well as throughout the entire focus range FR defined by OP1 and OP2. As the afore-mentioned angular characteristic remains unchanged while performing the coupled zoom and focus operation, the light passing the optical system 200 from the object plane OP1, OP2 to the image plane IP1 can be supplied to all zoom positions of the second and third lens group L2, L3 without any need to perform a corresponding zoom operation on the illumination light path which is coupled into the optical system 200 by means of the optical element 202.
[0034]
[0035] The microscope 308 further comprises a second magnification changing subsystem 312 including a second digital camera 314 and a second optical magnification system 316. The second digital camera 314 and the second optical magnification system 316 are aligned along a second optical axis O2.
[0036] The microscope 308 further comprises a controller 318 including a memory 320. Further, the microscope 308 comprises a microscope stage 322 on which an object 324 is arranged. The microscope stage 322 is movable in a direction orthogonal to the optical axis O1 and O2 by means of a positioning device 326. In particular, the controller 318 is configured to cause the positioning device 326 to laterally shift the microscope stage 322 such that a target region 328 of the object 324 is positioned on the optical axis O1 of the first magnification changing subsystem 309 or the optical axis O2 of the second magnification changing subsystem 312.
[0037] Whereas the first magnification changing subsystem 309 comprising the optical system 100 may be used as an optical zoom system, the second magnification changing subsystem 312 may be used as a digital zoom system. For this, the second digital camera 314 may be provided with a digital zoom function whereas the second optical magnification system 316 is configured to provide a fixed magnification.
[0038] For instance, in the configuration shown in
[0039] It is to be noted that the microscope 308 shown in
[0040] Although some aspects have been described in the context of an apparatus, it is clear that these aspects also represent a description of the corresponding method, where a block or device corresponds to a method step or a feature of a method step. Analogously, aspects described in the context of a method step also represent a description of a corresponding block or item or feature of a corresponding apparatus. Some or all of the method steps may be executed by (or using) a hardware apparatus, like for example, a processor, a microprocessor, a programmable computer or an electronic circuit. In some embodiments, some one or more of the most important method steps may be executed by such an apparatus.
[0041] Depending on certain implementation requirements, embodiments of the disclosure can be implemented in hardware or in software. The implementation can be performed using a non-transitory storage medium such as a digital storage medium, for example a floppy disc, a DVD, a Blu-Ray, a CD, a ROM, a PROM, and EPROM, an EEPROM or a FLASH memory, having electronically readable control signals stored thereon, which cooperate (or are capable of cooperating) with a programmable computer system such that the respective method is performed. Therefore, the digital storage medium may be computer readable.
[0042] Some embodiments according to the disclosure comprise a data carrier having electronically readable control signals, which are capable of cooperating with a programmable computer system, such that one of the methods described herein is performed.
[0043] Generally, embodiments of the present disclosure can be implemented as a computer program product with a program code, the program code being operative for performing one of the methods when the computer program product runs on a computer. The program code may, for example, be stored on a machine readable carrier.
[0044] Other embodiments comprise the computer program for performing one of the methods described herein, stored on a machine readable carrier.
[0045] In other words, an embodiment of the present disclosure is, therefore, a computer program having a program code for performing one of the methods described herein, when the computer program runs on a computer.
[0046] A further embodiment of the present disclosure is, therefore, a storage medium (or a data carrier, or a computer-readable medium) comprising, stored thereon, the computer program for performing one of the methods described herein when it is performed by a processor. The data carrier, the digital storage medium or the recorded medium are typically tangible and/or non-transitionary. A further embodiment of the present disclosure is an apparatus as described herein comprising a processor and the storage medium.
[0047] A further embodiment of the disclosure is, therefore, a data stream or a sequence of signals representing the computer program for performing one of the methods described herein. The data stream or the sequence of signals may, for example, be configured to be transferred via a data communication connection, for example, via the internet.
[0048] A further embodiment comprises a processing means, for example, a computer or a programmable logic device, configured to, or adapted to, perform one of the methods described herein.
[0049] A further embodiment comprises a computer having installed thereon the computer program for performing one of the methods described herein.
[0050] A further embodiment according to the disclosure comprises an apparatus or a system configured to transfer (for example, electronically or optically) a computer program for performing one of the methods described herein to a receiver. The receiver may, for example, be a computer, a mobile device, a memory device or the like. The apparatus or system may, for example, comprise a file server for transferring the computer program to the receiver.
[0051] In some embodiments, a programmable logic device (for example, a field programmable gate array) may be used to perform some or all of the functionalities of the methods described herein. In some embodiments, a field programmable gate array may cooperate with a microprocessor in order to perform one of the methods described herein. Generally, the methods are preferably performed by any hardware apparatus.
LIST OF REFERENCE SIGNS
[0052] 100 optical system
[0053] 200 optical system
[0054] 202 optical element
[0055] 204 first sub-lens group
[0056] 206 second sub-lens group
[0057] 308 microscope
[0058] 309 first magnification changing subsystem
[0059] 310 first digital camera
[0060] 312 second magnification changing subsystem
[0061] 314 second digital camera
[0062] 316 second optical magnification system
[0063] 318 controller
[0064] 320 memory
[0065] 322 microscope stage
[0066] 324 object
[0067] 326 positioning device
[0068] 328 target region
[0069] O optical axis
[0070] O1 optical axis
[0071] O2 optical axis
[0072] L1 first lens group
[0073] L2 second lens group
[0074] L3 third lens group
[0075] L4 fourth lens group
[0076] IP image plane
[0077] OP1 object plane
[0078] OP2 object plane
[0079] R1 image point
[0080] R2 image point
[0081] Q1 object point
[0082] Q2 object point