Illumination unit for microscopes

The illumination unit with an MID structure addresses assembly challenges in microscopes by enabling free spatial arrangement and modular integration, enhancing assembly efficiency and reducing costs through a modular design.

JP7798575B2Active Publication Date: 2026-01-14CARL ZEISS MICROSCOPY GMBH
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Patent Information

Application Number
JP2021575447
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-06-18
Filing Date
2020-05-14
Publication Date
2026-01-14
Estimated Expiration
2040-05-14

AI Technical Summary

Technical Problem

Microscopes using standard printed circuit boards face challenges with complex and expensive assembly due to limited installation space, leading to potential damage and impaired functionality, while existing MID technology solutions require replacement as a whole unit during repair.

Method used

An illumination unit with an MID structure featuring integrated conductor paths, pillars, and adjustable illumination means, allowing for a free spatial arrangement of components, easy assembly, and modular design for quick replacement.

Benefits of technology

Enables efficient, cost-effective assembly and maintenance of illumination units in microscopes by allowing free spatial arrangement and modular integration of electronic and optical components, reducing assembly time and costs, and facilitating easy replacement.

✦ Generated by Eureka AI based on patent content.

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Abstract

To obtain an illumination unit for a microscope with an MID structure for free spatial arrangement of various electronic and optical components, so that the surface of a three-dimensional carrier can be used instead of a printed circuit board, a MID structure (1) is proposed, which is designed as an illumination unit and has a body formed in a closed ring shape with an annular free beam opening (1.1). Pillars (5) are arranged on the body (2), and illumination means (4) are arranged on the free ends of the pillars (5), which are contactable via conductor tracks (3) provided on the surface of the MID structure (1). The pillars (5) have cooling structures (9) on their side opposite the free beam opening (1.1). The body (2) of the MID structure (1) is provided with a plug (2) for supplying energy and a control unit (8) for driving and controlling the illumination means (4). The MID structure (1) designed as an illumination unit is mounted in a housing (11) of a microscope objective (10).
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Description

[Technical Field]

[0001] The present invention relates to an illumination unit for a microscope having an MID structure that allows various electronic and optical components to be spatially arranged freely. [Background technology]

[0002] Currently, microscopes use standard FR4 printed circuit boards, rigid-flexible boards, and semi-flexible boards to implement simple or complex circuits. Although these allow for improved spatial arrangement, they still have the disadvantage of a flat surface. This often leads to complex and expensive arrangement and assembly solutions, especially due to the severely limited installation space. Furthermore, the use of these types of printed circuit boards entails high costs and the risk of damage during assembly, which can impair functionality.

[0003] Many applications of MID technology (MID = molded interconnected device) for various fields of application are known from the prior art. For example, from DE 102 25 919 B3, an optical module and an optical system are known, which comprise a lens holder in which a lens assembly is integrated. The lenses are preferably aligned with each other and with the lens holder due to their geometric design, since this makes further optical adjustment of the system unnecessary. The lens holder is designed as an MID with integrated conductor tracks and serves as a circuit carrier for semiconductor components using flip-chip technology.

[0004] Furthermore, DE 103 44 767 B4 discloses an optical module with a circuit carrier for semiconductor components applied in flip-chip technology, the circuit carrier having at least one thin area and one thick area that holds the thin area, and a lens holder of a lens unit is supported and held on the thin area of ​​the circuit carrier, the thin and thick areas being designed as MIDs with integrated conductor tracks.

[0005] The MIDs known from the prior art are designed as compact units, which in the event of repair must be replaced and reconditioned as a whole. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] German Patent Registration No. 102 25 919 [Patent Document 2] German Patent Registration No. 103 44 767 Summary of the Invention

[0007] In view of the prior art, the present invention is based on the problem of proposing an illumination unit for a microscope having an MID structure which is improved compared to the prior art, in particular being easy to maintain.

[0008] To achieve this object, the present invention proposes an illumination unit for a microscope, which comprises an MID structure with integrated conductor paths for the free spatial arrangement of various electronic and optical components, the MID structure comprising a body with an annular free beam opening, pillars arranged on the body, illumination means arranged on the free ends of the pillars, the illumination means being contactable via conductor paths arranged on the surface of the MID structure, and a plug for supplying energy and a control unit for driving and controlling the illumination means being arranged on the body of the MID structure.

[0009] The term annular free beam opening also includes deviations from a strictly circular shape. For example, the beam opening can also be elliptical, polygonal, or irregular. What is important is that the normally round beam side cross section can pass through the closed beam opening without undesired effects (for example asymmetric dimming).

[0010] Advantageously, the pillars have a metal-coated portion on the side opposite the free beam opening that is designed as a cooling structure, or the cooling structure of the pillars is formed as a molded protrusion on the side opposite the free beam opening. The cooling structure can also be provided with various protrusions or designed in the form of ribs. The cooling structure is advantageously designed on the side opposite the free beam opening to reduce the influence of airflows of various densities and refractive powers. In addition to or instead of the cooling body, further electrical or electronic components can be arranged on the body.

[0011] A further advantageous embodiment is to design the control unit in such a way that the lighting means are provided with adjustable driveability of their respective intensity collectively, in groups or individually.

[0012] Preferably, the MID structure is mounted on the housing of the microscope objective, along the optical axis of which the front lens of the microscope objective and any further optical lenses are arranged, and the MID structure is guided and held against a stop on the housing. The illumination means protrudes from the housing of the microscope objective next to the front lens in order to uniformly and completely illuminate the sample to be observed or optically captured with the microscope objective. Furthermore, it becomes possible to illuminate the area in front of the front lens from various directions.

[0013] In a preferred embodiment, an adjustment protrusion is formed on the side of the body opposite the free beam opening to accurately position the MID structure within the receptacle of the microscope objective housing. Furthermore, the microscope objective can be equipped with a shielding unit to prevent unwanted light from the illumination means from entering the interior of the microscope objective. Therefore, only light from the area in front of the front lens enters the microscope objective via the shielding unit and is collected by it. For example, a light-tight partition can be provided between the illumination means and the microscope objective. The above-described arrangement of the illumination means and shielding unit prevents light from the illumination means from entering the beam path of the microscope objective without being collected by the microscope objective.

[0014] A production-technically advantageous aspect of the microscope objective housing is that the lighting unit can be inserted or plugged into the microscope objective, or the microscope objective housing is designed to be modular, and the individual parts of the MID structure designed as a lighting unit can be plugged together or firmly connected to one another and held within the microscope objective housing.

[0015] A further advantageous aspect from the viewpoint of production technology is that the housing of the microscope objective manufactured using MID technology has conductor tracks and a plug for electrically connecting the integrated control unit to the illumination means. Furthermore, via the plug on the housing of the microscope objective, the integrated control unit is connected to an integrated drive, so that a displacement of at least one lens along the optical axis takes place, for example, to perform a zoom function.

[0016] The application of MID technology to microscopes, particularly as illumination units for microscope objectives, allows the use of a three-dimensional carrier surface with integrated conductor tracks instead of a printed circuit board, allowing for the free spatial arrangement of various electronic and optical components, such as diodes and sensors. Furthermore, the application of MID technology allows for the integration of electrical, mechanical, and optical properties into a single component, significantly streamlining the number of components, assembly time, and manufacturing costs. If the MID structure designed as an illumination unit is designed to be pluggable into the microscope objective housing, simple and fast assembly and disassembly of the illumination unit and the MID body is achieved. In such an embodiment, the illumination unit can be easily installed, assembled, or replaced as an entire component as an illumination module. Furthermore, if the microscope objective housing is designed in a modular configuration, the individual parts can be plugged together or, for example, screwed together, allowing for easy, fast, and simple assembly and disassembly. [Brief explanation of the drawings]

[0017] The present invention will be described in more detail below with reference to the drawings and examples. [Figure 1] FIG. 1 is a diagram schematically illustrating a first embodiment of a lighting unit according to the present invention. [Figure 2] FIG. 2 is a diagram showing a detailed schematic view of a second embodiment of the lighting unit according to the present invention. [Figure 3] FIG. 3 is a diagram schematically illustrating a first embodiment of a microscope objective lens equipped with an illumination unit according to the present invention. [Figure 4] FIG. 4 is a diagram schematically illustrating a second embodiment of a microscope objective lens equipped with an illumination unit according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0018] FIG. 1 shows the body 2 of a MID structure 1 of a lighting unit according to the present invention, which includes integrated conductor tracks 3 for the free spatial arrangement of various electronic and optical components, such as diodes and sensors. The MID structure 1, designed as a lighting unit, has a body 2 that annularly surrounds a free beam opening 1.1. The conductor tracks 3 are provided on the surface of the MID structure 1 and serve as electrical contacts for the lighting means 4, designed as LEDs or OLEDs, which are arranged on the free ends of pillars 5 protruding from the body 2 of the MID structure 1. To enable precise positioning of the MID structure 1 in a receiving space, such as the housing 11 of a microscope objective 10 (see FIGS. 3 and 4), an adjustment protrusion 6 is formed on the side of the body 2 opposite the free beam opening 1.1. Furthermore, the body 2 is provided with a plug 7 and a control unit 8. The plug 7 serves to connect to an external source of electrical energy and / or transmit data in the form of electrical signals. The control unit 8 for controlling the lighting means 4 is designed so that the lighting means 4 can be controlled collectively, in groups or individually, and for example their respective intensities can be set.

[0019] In further possible embodiments of the invention, additionally or alternatively further components can be arranged on the body 2, for example a cooling body and / or other electrical and / or electronic components.

[0020] 2 shows in detail a part of a lighting unit designed as an MID structure 1 according to the invention, with a cooling structure 9. Standing on the body 2 are pillars 5, the free ends of which are provided with lighting means 4, which are contacted via conductor tracks 3 shown by way of example. The cooling structure 9 in the form of a metallized portion is formed on the side of the pillar 5. Advantageously, the cooling structure 9 is located opposite the free beam opening 1.1 (see FIG. 1) in order to reduce disturbing effects due to airflows of different densities and refractive powers.

[0021] In a further embodiment, not shown in detail, the cooling structures 9 are designed as ribs or otherwise formed ridges.

[0022] FIG. 3 shows a first embodiment of a microscope objective 10 with an illumination unit designed as an MID structure 1 according to the present invention, which is arranged in the housing 11 of the microscope objective 10. The optional optical lens 13 and the front lens 13.1 of the microscope objective 10 are arranged along the optical axis 12. The MID structure 1 is guided against and held by a stopper 14 of the housing 11 of the microscope objective 10. The stopper 14 is part of a receiving portion 16 for holding and positioning the MID structure 1. The illumination means 4 protrudes from the housing 11 adjacent to the front lens 13.1 and allows the area located in front of the front lens 13.1 to be illuminated from various directions. In this way, for example, a sample (not shown in detail) to be observed and / or optically captured by the microscope objective 10 can be uniformly and completely illuminated. Unwanted illumination of light from the illumination means 4 onto the optics of the microscope objective 10 is avoided by appropriate positioning and by shielding the interior of the microscope objective 10 from the illumination means 4 with a shielding unit 17. In the exemplary embodiment, this is formed as a partition in the form of a light-tight side wall of the microscope objective 10 (not shown). Only light originating from the area in front of the front lens 13.1 and collected by it enters the microscope objective 10. The illumination means 4 can be controlled collectively or selectively by a control unit 8, which is arranged externally. The MID structure 1 is advantageously plugged into the housing 11 of the microscope objective 10 and can therefore be efficiently attached. There is no need to attach each illumination means 4 separately. Furthermore, the MID structure 1 can easily be replaced if necessary.

[0023] Furthermore, the housing 11 of the microscope objective 10 can also be made prefabricated. For example, its parts can then be plugged together or screwed together. Such an embodiment of the housing 11 facilitates the installation and, if necessary, replacement of the MID structure 1. The housing 11 of the microscope objective 10 itself can also be manufactured using MID technology. The objective 10 and / or the housing 11 can be used in a microscope M (only the symbol M).

[0024] The housing 11 itself can be manufactured using MID technology. As shown diagrammatically in Figure 4, the housing 11 has conductor tracks 3 that electrically connect the plug 7.1 of the objective lens 10 with an optional integrated control unit 8 and with the illumination means 4. In addition to the control unit 8, in particular, there can also be an integrated drive 15, which allows at least one of the lenses 13 to be displaced along the optical axis 12 (symbolized by the double arrow), for example, to perform a zoom function. [Explanation of symbols]

[0025] 1 MID Structure 1.1 Free beam aperture 2 Main body (Grundkoerper) 3 Conductor Line (Leiterbahn) 4 Lighting means (Leuchtmittel) 5 Pillar (Saeule) 6 Adjustment protrusion (Justiervorsprung) 7 Plug (Stecker) 7.1 Microscope Objective Plugs 8 Control unit (Steuereinheit) 9 Cooling structure 10 Microscope Objective Lens (Mikroskopobjektiv) 11 Housing 12 Optical axis 13. Lens 13.1 Frontlinse 14 Stopper (Anschlag) 15 Drive unit (Antrieb) 16 Containment Unit 17 Shield Unit (Abschirmeinheit) M Microscope (Mikroskop)

Claims

1. An objective lens assembly comprising a microscope objective lens and an illumination unit for mounting on the microscope objective lens having an MID structure that allows various electronic and optical components to be freely arranged spatially, The microscope objective lens includes a lens assembly disposed within a housing, a front lens disposed at the front of the lens assembly, and a different lens disposed behind the front lens; In the lighting unit, The MID structure designed as the illumination unit comprises a main body formed in a closed annular shape having an annular free beam opening with an inner diameter corresponding to the outer diameter of the housing of the microscope objective, and is configured so that the illumination unit can be attached to the microscope objective by inserting the microscope objective into the free beam opening; a pillar is arranged on the main body, and an illumination means is arranged on the free end of the pillar, so that when the illumination unit is attached to the housing of the microscope objective, the illumination means is arranged at a position corresponding to the front lens of the microscope objective in the optical axis direction of the microscope objective, and the main body is arranged between different lenses of the microscope objective, and the illumination means is contacted via a conductor path provided on the surface of the MID structure; the main body of the MID structure is provided with a plug for energy supply and a circuit configured to drive and control the plurality of lighting means; the main body, the pillar, the lighting means, the conductor path, the plug, and the circuit are integrally configured; Objective lens assembly.

2. the pillar has a metal-coated portion on the side opposite the free beam opening that is designed as a cooling structure; 2. The objective lens assembly of claim 1.

3. the cooling structure is formed as a ridge on a side opposite the free beam opening.

3. The objective lens assembly of claim 2.

4. the circuit is designed so that the lighting means can be driven collectively, in groups or individually at their respective intensity settings; 4. An objective lens assembly according to claim 1.

5. An objective lens assembly comprising a microscope objective lens and an illumination unit for mounting on the microscope objective lens having an MID structure that allows various electronic and optical components to be freely arranged spatially, The microscope objective lens includes a lens assembly disposed within a housing, a front lens disposed at the front of the lens assembly, and a different lens disposed behind the front lens; In the lighting unit, The MID structure designed as the illumination unit comprises a main body formed in a closed annular shape having an annular free beam opening with an inner diameter corresponding to the outer diameter of the housing of the microscope objective, and is configured so that the illumination unit can be attached to the microscope objective by inserting the microscope objective into the free beam opening; Pillars are arranged on the body, and lighting means are arranged on the free ends of the pillars, and the lighting means are contacted via conductor tracks provided on the surface of the MID structure; the body of the MID structure is provided with a plug for an energy supply and a circuit configured to drive and control the lighting means, When the illumination unit is attached to the housing of the microscope objective, the illumination means is arranged at a position corresponding to the front lens of the microscope objective in the optical axis direction of the microscope objective, and the main body is arranged between different lenses of the microscope objective, The MID structure is configured to be guided and held against a stopper of the housing, the illumination means is configured to protrude from the housing of the microscope objective adjacent to the front lens in order to uniformly and completely illuminate a sample to be observed and / or optically captured by the microscope objective, the main body, the pillar, the lighting means, the conductor path, the plug, and the circuit are integrally configured; Objective lens assembly.

6. an adjustment protrusion is arranged on a side of the body opposite the free beam opening in order to position the MID structure at an accurate position in the receiving portion of the housing of the microscope objective lens; 6. An objective lens assembly according to any one of claims 1 to 5.

7. a shield unit is provided on the microscope objective lens to prevent unwanted light from entering the microscope objective lens from the illumination means; 7. An objective lens assembly according to any one of claims 1 to 6.

8. the MID structure, designed as an illumination unit, can be inserted into the housing of the microscope objective; 8. An objective lens assembly according to any one of claims 1 to 7.

9. The housing of the microscope objective is designed for assembly, The individual parts can be plugged together with the MID structure or can be fixedly connected to each other.

9. An objective lens assembly according to any one of claims 1 to 8.

10. the housing of the microscope objective is itself designed as the MID structure, the housing comprises conductor tracks and a plug for electrically conductively connecting an integrated control unit to the lighting means; 10. An objective lens assembly according to any one of claims 1 to 9.

11. the circuit is connected to an integrated drive for sliding at least one lens along an optical axis via a plug in the housing of the microscope objective; 11. An objective lens assembly according to any one of claims 1 to 10.

12. An illumination unit configured to be used with an objective lens unit according to any one of claims 1 to 10.

Citation Information

Patent Citations

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