Lens for a distal end of an optical channel of an endoscope shaft
11209640 · 2021-12-28
Assignee
Inventors
Cpc classification
A61B1/07
HUMAN NECESSITIES
International classification
G02B23/24
PHYSICS
A61B1/00
HUMAN NECESSITIES
A61B1/07
HUMAN NECESSITIES
Abstract
A lens for a distal end of an optical channel of an endoscope shaft is provided, wherein the lens defines an outer side and an inner side as well as a circumferential surface connecting the two sides, wherein a light-absorbing coating is applied to the circumferential surface and an area of the inner side connected thereto, and wherein a solderable layer is applied to the light-absorbing coating in the area of the circumferential surface with the result that the lens can be soldered in the distal end such that the distal end is sealed.
Claims
1. A lens for a distal end of an optical channel of an endoscope shaft, comprising: an outer side; an inner side; and a circumferential surface connecting the outer side and the inner side, wherein a light-absorbing coating is applied to the circumferential surface and an annular area of the inner side that is oriented parallel to the outer side, wherein a solderable layer is applied to the light-absorbing coating in the area of the circumferential surface such that the lens can be soldered in the distal end so that the distal end is sealed, and wherein the circumferential surface and the annular area of the inner side have a matte structure.
2. The lens according to claim 1, wherein the light-absorbing coating is a metallic coating.
3. The lens according to claim 1, wherein the inner side comprises a concavely curved portion.
4. The lens according to claim 1, wherein the solderable layer is also applied to the annular area of the inner side.
5. The lens according to claim 1, wherein the light-absorbing coating comprises chromium.
6. The lens according to claim 1, wherein the area of the light-absorbing coating formed on the circumferential surface forms, in a cross-sectional view through a diameter of the lens, an angle which lies in the range of from 80° to 100° with a portion of the light-absorbing coating formed on the annular area of the inner side.
7. The lens according to claim 1, wherein a portion of the light-absorbing coating formed on the annular area of the inner side is annular when seen in a direction normal to the inner side.
8. The lens according to claim 1, wherein the solderable layer comprises gold.
9. An endoscope, comprising: an endoscope shaft, comprising an optical channel including a distal end; and a lens according to claim 1, wherein the lens is soldered in the distal end via the solderable layer such that the distal end is sealed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(6) While the invention is amenable to various modifications and alternative forms, specifics thereof have been shown by way of example in the drawings and will be described in detail. It should be understood, however, that the intention is not to limit the invention to the particular example embodiments described. On the contrary, the invention is to cover all modifications, equivalents, and alternatives falling within the scope of the invention as defined by the appended claims.
DETAILED DESCRIPTION
(7) The invention is explained in yet more detail below with the aid of embodiment examples with reference to the attached drawings, which also disclose features essential to the invention. These embodiment examples merely serve the purpose of illustration and are not to be interpreted as limiting. For example, a description of an embodiment example with a plurality of elements or components is not to be interpreted to the effect that all of these elements or components are necessary for the implementation. Rather, other embodiment examples can also contain alternative elements and components, fewer elements or components or additional elements or components. Elements or components of different embodiment examples can be combined with each other, unless otherwise indicated. Modifications and alterations which are described for one of the embodiment examples can also be applicable to other embodiment examples. To avoid repetitions, the same or corresponding elements are given the same reference numbers in different figures and are not explained repeatedly.
(8) In the embodiment example shown in
(9) An optical tube 4, in which an endoscope lens system 5 is arranged, extends in the shaft 3. The endoscope lens system 5 comprises an objective 6 with a first lens 7, a deflecting prism 8 as well as a second and third lens 9, 10, which images an object 12 located in front of a distal end 11 of the optical tube 4 as a distal intermediate image in a distal intermediate image plane 13. Furthermore, the endoscope lens system 5 comprises an inversion system 14, which images the distal intermediate image from the distal intermediate image plane 13 into a proximal intermediate image plane 15 as a proximal intermediate image. The inversion system can be formed e.g. as a rod lens system and carry out one or more intermediate imagings in order to generate the desired proximal intermediate image.
(10) A further lens system 16 (e.g. eyepiece 16) can be arranged in the main part 2. A camera connection 17, to which a camera 18 is releasably secured, can be provided at the end of the main part 2 facing away from the shaft 3. The camera 18 can comprise a lens system (not shown) as well as a two-dimensional image sensor 19. The image sensor 19 can, for example, be a CCD sensor or a CMOS sensor. The camera does not have to be connected to the camera connection 17 directly, as is shown in
(11) On the main part 2, a lighting connection 20 is formed, which is connected to optical fibres 21 (of which only one is drawn in representatively in
(12) As is shown in
(13) The first lens 7 comprises a planar or curved outer side 25, an inner side 26 with concave curvature as well as a circumferential surface 27 connecting the two sides. The planar outer side 25 or the curved outer side 25 as well as the concavely curved inner side 26 are formed such that the first lens 7 has a negative focal length.
(14) As is to be seen in particular in the enlarged detail view of the first lens 7 in
(15) Through the first lens 7, large angles of view are possible and an otherwise customary optical flat for sealing the distal end 11 can be dispensed with, since this sealing is realized by the first lens 7 soldered into the socket 24 in the manner described. In addition, the first lens 7 is scratch-resistant since it is made from sapphire.
(16) The inner side 26 comprises a concavely curved first area 28 located in the centre and a second area 29 surrounding this first area 28 in an annular manner. The first area 28 of the inner side 26 as well as the outer side 25 are polished since they are used for the optical imaging. In contrast, the second area 29 is not polished but is only ground and thus comprises a matte or a rough-matte surface structure. It can also be said that the second area 29 has a frosted glass effect or milk glass effect.
(17) For the suppression of scattered light, a light-absorbing coating 30 is applied to the circumferential surface 27 and to the second area 29 of the inner side 26 directly bordering thereon. The light-absorbing coating 30 can, in particular, be a metallic coating. The light-absorbing coating 30 can be a single layer or a layer structure made up of several individual layers. The light-absorbing coating 30 can also be referred to as blackening. For example, the light-absorbing coating 30 can be formed as a black chromium coating.
(18) Since the light-absorbing coating 30 is applied to the circumferential surface 27 with the rough-matte surface structure and to the second area 29 with the rough-matte surface structure, a matte black layer or matte black surface is present which excellently absorbs undesired light.
(19) In the area of the circumferential surface 27, a solderable layer 31 is applied to the light-absorbing coating 30, wherein the light-absorbing coating 30 (and in particular the matte-black character thereof) is preserved underneath. The solderable layer 31 can be a single layer or can comprise several partial layers. When it is a single layer, the solderable layer is preferably formed as a gold layer. When the solderable layer 31 comprises several partial layers, the outermost partial layer is preferably a gold layer. The provision of the gold layer is advantageous for the soldering since it does not oxidize during the soldering.
(20) The light-absorbing coating 30 and the solderable layer 31 are shown in
(21) Through the described structure of the first lens 7, the first lens 7 can be soldered into the socket 24 with the result that the distal end 11 of the optical tube 4 can be formed hermetically sealed.
(22) As is readily recognizable in the sectional representation according to
(23) The shape of the light-absorbing coating 30 can be described as a hollow cylinder with a base comprising an opening, wherein the first portion 32 forms the wall of the hollow cylinder (e.g. with a circular outer contour or a circle as surface line) and the second portion 33 forms the base. Since the second portion 33 is annular (
(24) The first lens 7 can comprise an anti-reflection layer (not shown) on its outer side 25 and/or on the first area 28 of the inner side 26.
(25) In the embodiment example described here, part of the second area 29 of the inner side 26 is in contact with the socket 24, as is shown in
(26) The endoscope 1 can be modified such that it does not comprise a socket 24. In this case, the first lens 7 is soldered directly to the optical tube 4, for example.
(27) The embodiment example described hitherto shows an endoscope 1 with a direction of view which is oblique vis-à-vis the direction of extension of the shaft 3. Of course, the endoscope 1 can also be formed as a forward view endoscope 1, as is shown schematically in
(28) Furthermore, the endoscope 1 can be formed such that an optical view (or an eyepiece) is provided instead of the camera 18 and the camera connection 17. Alternatively, the image sensor 19 can be arranged in the distal intermediate image plane 13. In this case, the inversion system 14 and the further lens system 16 can be omitted. The image data of the image sensor 19 can be transmitted, e.g. via a data connection extending through the shaft, to the main part 2, which comprises e.g. a digital display for the image data.
(29) While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiments, it will be apparent to those of ordinary skill in the art that the invention is not to be limited to the disclosed embodiments. It will be readily apparent to those of ordinary skill in the art that many modifications and equivalent arrangements can be made thereof without departing from the spirit and scope of the present disclosure, such scope to be accorded the broadest interpretation of the appended claims so as to encompass all equivalent structures and products. Moreover, features or aspects of various example embodiments may be mixed and matched (even if such combination is not explicitly described herein) without departing from the scope of the invention.