RESECTOSCOPE AND ELECTRODE INSTRUMENT FOR A RESECTOSCOPE
20240008918 ยท 2024-01-11
Assignee
Inventors
Cpc classification
A61B2017/00738
HUMAN NECESSITIES
A61B18/149
HUMAN NECESSITIES
International classification
Abstract
An electrode instrument and a resectoscope, wherein a cross section of the at least one electrode carrier is locally enlarged between the distal end of the electrode carrier and a guide element.
Claims
1. An electrode instrument for a resectoscope having an electrode, the electrode being fastened to two distal ends of two tubular electrode carriers aligned parallel with one another, and at least one guide element that connects the two electrode carriers to one another being arranged on the electrode carriers, wherein a cross section of at least one electrode carrier is locally enlarged between the distal end of the electrode carrier and a guide element.
2. The electrode instrument for a resectoscope as claimed in claim 1, wherein an instrument tip is arranged on a distal segment of the electrode carriers.
3. The electrode instrument for a resectoscope as claimed in claim 2, wherein the cross-sectional enlargement is arranged in front of the instrument tip as seen in a proximal direction.
4. The electrode instrument for a resectoscope as claimed in claim 2, wherein the cross section of at least one electrode carrier is enlarged between the instrument tip and the at least one guide element.
5. The electrode instrument for a resectoscope as claimed in claim 1, wherein the cross-sectional enlargement has an oval shape, the cross-sectional enlargement having an oval shape in relation to a cross section of an electrode carrier.
6. The electrode instrument for a resectoscope as claimed in claim 5, wherein the oval shape is aligned perpendicularly to a plane defined by the two electrode carriers.
7. The electrode instrument for a resectoscope as claimed in claim 1, wherein the cross-sectional enlargement of the at least one electrode carrier consists in crimping a sleeve to the electrode carrier, applying a solder spot on the electrode carrier, or the like, or varying the shape of the electrode carrier.
8. The electrode instrument for a resectoscope as claimed in claim 2, wherein the instrument tip has two bores, through which the two electrode carriers are guided, the instrument tip being mounted freely movably on the two electrode carriers.
9. The electrode instrument for a resectoscope as claimed in claim 8, wherein the cross-sectional enlargement is larger than the bore through the instrument tip.
10. The electrode instrument for a resectoscope as claimed in claim 2, wherein both electrode carriers have a cross-sectional enlargement, these being dimensioned in such a way that the instrument tip cannot be displaced beyond the cross-sectional enlargements.
11. The electrode instrument for a resectoscope as claimed in claim 1, wherein a distal guide element is offset in relation to the distal end of the electrode carrier in the proximal direction by from 10 mm to 100 mm.
12. A resectoscope having an electrode instrument as claimed in claim 1 and an inner shaft, in which optics are mounted, the electrode instrument being guidable with at least one guide element on the inner shaft.
Description
[0018]
[0019]
[0020]
[0021] One essential component of the resectoscope 10 is the transporter 17. This transporter 17 has inter glia a first gripping means 18, and is connected by means of a spring element 19 to a second gripping means 20 and to an optics plate 21.
[0022] Furthermore, an electrode instrument 22 extends along the inner shaft 12 from the distal end 14 of the resectoscope 10 to the transporter 17. The electrode instrument 22 represented in
[0023] The electrode instrument 22 represented here can be secured with a proximal end 24 in the transporter 17. In this way, the electrode instrument 22 can on the one hand straightforwardly be decoupled from the transporter 17, or coupled to the transporter 17, and on the other hand move together with the transporter 17 along the longitudinal axis of the resectoscope 10 in the distal or proximal direction.
[0024] At the distal end 14 of the electrode instrument 22, the latter has an electrode 23. This electrode 23, or cutting electrode, can be supplied by means of an RF generator (not represented) with electrical energy that is used to manipulate tissue. By the application of an RF voltage to the electrode, a plasma is formed around the electrode 23, represented here as a cutting loop. By an axial movement of the electrode instrument 22 forward and backward, the organic tissue can be manipulated, or cut, Besides the cutting loop represented in the figures, other electrode shapes may also be envisioned.
[0025] For the highly accurate manipulation of human tissue, it is extremely important that the electrode 23 can be handled very precisely. This precise handling is impeded in particular by the length of the electrode instrument 22, or by a reduction of the cross section of the instrument 22.
[0026] As may be seen in
[0027] Besides the mechanical connection, the electrode carriers 25 and 26, or the electrode sleeve tubes, are also used for the electrical contacting of the electrode 23. It is provided that the electrode carriers 25 and 26 as well as electrical conductors inside the carriers 25 and 26 are used as electrical lines, or contacts.
[0028] In order to increase the stability and the associated secure or precise handling of the electrode instrument 22, according to the invention the electrode carriers 25, 26 are connected to one another by a guide element 27. Furthermore, it may be provided, or it is conceivable, that the two electrode carriers 25, 26 are connected to one another by at least one further guide element 27.
[0029] This guide element 27 is used not only to stabilize the electrode instrument 22 as a whole, but also for guiding along the inner shaft 12. The at least one guide element 27 is in this case placed or clamped, or clipped, onto a lateral face of the inner shaft 12, with the at least one guide element 27 enclosing the inner shaft 12 at least partially. As an alternative, it is also conceivable that the at least one guide element 27 may be fastened on the electrode carriers 25, 26 from below, the electrode instrument 22 then being located below a longitudinal axis 32 of the inner shaft 12.
[0030] During the damping or clipping of the inner shaft 12 onto the at least one guide element 27, the two electrode carriers 25, 26 are slightly bent so that the inner shaft 12 can be fitted with its outer contour between the electrode carriers 25, 26 and the guide element 27. In the clamped state of the inner shaft 12, the two electrode carriers 25, 26 return to their original parallel, or non-bent, shape. In this state, the electrode instrument 22 can move parallel to the longitudinal axis 32 against only a small friction resistance.
[0031] In order to insulate the electrode 23, to which an electrical potential is applied, electrically from the inner shaft 12, or to prevent the electrode 23 from coming in contact with the metal inner shaft 12 and electrical discharges being able to form between the electrode 23 and the inner shaft 12, the inner shaft 12 is assigned an instrument tip 30 made of plastic. This instrument tip 30 is assigned to the distal end 14 of the electrode instrument 22 during assembly. One possible exemplary embodiment of this is represented in a highly schematized way in
[0032] As already described, the electrode carriers 25, 26 are bent slightly out of their parallel setting during the joining of the inner shaft 12 to the electrode instrument 22, or to the at least one guide element 27. Elastic bending of the guide element 27 also takes place in this case. So that this bending is not hindered by the instrument tip 30, or so that the force that is used for the bending is not transmitted onto the instrument tip 30 and plastically deforms it, the instrument tip 30 must be located at a sufficient distance on the electrode carriers 25, 26 from the guide element 27. So that the instrument tip 30 does not slip accidentally into the immediate vicinity of the guide element 27, according to the invention the cross section of at least one electrode carrier 25, 26 has an enlargement between the instrument tip 30 and the guide element 27. Because of this local or localized cross-sectional enlargement 31, the cross section of at least one electrode carrier 25, 26 is larger than one of the bores through the instrument tip 30. The instrument tip 30 can therefore no longer move freely on the electrode carriers 25, 26, or arbitrarily close to the guide element 27. Instead, the movement of the instrument tip 30 in the direction of the guide element 27 is prevented by the cross-sectional enlargement 31 (
[0033] This cross-sectional enlargement 31 may, for example, consist in a crimping of the at least one electrode carrier 25, 26. A sleeve is in this case placed onto at least one electrode carrier 25, 26 and crimped. As an alternative, the shape of the at least one electrode carrier 26 may also be modified at this position in such a way that the cross section is larger than a bore of the instrument tip 30. It is also conceivable for both electrode carriers 25, 26 to have a corresponding cross-sectional enlargement 31. In order to prevent the instrument tip from being plastically deformed during the installation of the inner shaft 12, the at least one cross-sectional enlargement 31 must be arranged at a sufficient distance from the guide element 27. The distance may in this case be configured as a function of the shape and design of the electrode instrument 22. Conceivable distances may be from 10 mm to 100 mm, preferably from 20 mm to 60 mm, or 40 mm.
[0034] So that the cross-sectional enlargement 31 does not affect the relative movement between the electrode instrument 22 and the inner shaft 12, according to the invention the shape of the cross-sectional enlargement 31 is matched to the outer contour of the inner shaft 12. For example, the cross-sectional enlargement 31 may in this case assume an oval or sickle-like cross section. Likewise, the cross-sectional enlargement 31 is shaped, or dimensioned, in such a way that it also does not come in contact with the shaft 11.
LIST OF REFERENCES
[0035] 10 resectoscope [0036] 11 shaft [0037] 12 inner shaft [0038] 13 optics [0039] 14 distal end [0040] 15 proximal end [0041] 16 eyepiece [0042] 17 transporter [0043] 18 first gripping means [0044] 19 spring element [0045] 20 second gripping means [0046] 21 optics plate [0047] 22 electrode instrument [0048] 23 electrode [0049] 24 proximal end [0050] 25 electrode carrier [0051] 26 electrode carrier [0052] 27 guide element [0053] 28 segment [0054] 29 segment [0055] 30 instrument tip [0056] 31 cross-sectional enlargement [0057] 32 longitudinal axis