ELECTRODE ASSEMBLY
20230363815 · 2023-11-16
Assignee
Inventors
Cpc classification
A61B2018/00916
HUMAN NECESSITIES
International classification
Abstract
The present disclosure relates to an electrode assembly provided with a lead-in feature that gradually increases the diameter of the outer shaft to that of the insulation sleeve. In doing so, there is no blunt edge formed by the insulation used to secure the electrode assembly to the instrument handle. This prevents a user catching this edge on the cannula, therefore reducing the force needed to insert the device, and the risk of causing damage to the insulation or entry site of the patient.
Claims
1. An end effector for an electrosurgical instrument, comprising: an electrode assembly for delivering a radio-frequency (RF) power signal to a surgical site, the electrode assembly comprising an active electrode and a return electrode, wherein the return electrode comprises: a distal region, wherein a portion of the distal region comprises a sloped surface, the sloped surface forming a protruding edge at a first end of the distal region, and the protruding edge having a first outer diameter; and a proximal region extending from the first end of the distal region, the proximal region having a second outer diameter, the second outer diameter being smaller than the first outer diameter; and an insulating sleeve configured to be received by the proximal region of the return electrode, the insulating sleeve having an outer diameter substantially the same as the first outer diameter.
2. An end effector according to claim 1, wherein the protruding edge extends around at least a portion of a circumference of the return electrode.
3. An end effector according to claim 1, wherein the protruding edge extends around up to about 75% of the circumference of the return electrode.
4. An end effector according to claim 1, wherein an end of the insulating sleeve is configured to mate with a surface of the protruding edge.
5. An end effector according to claim 1, wherein the electrode assembly further comprises an insulating element arranged between the active electrode and the return electrode.
6. An end effector according to claim 5, wherein the insulating element is formed of a ceramic or a polymer.
7. An end effect according to claim 1, further comprising a rotatory shaver arrangement.
8. An end effector according to claim 1, wherein the insulating sleeve is heat-shrink wrapped around the proximal region of the return electrode.
9. An end effector according to claim 1, wherein the insulating sleeve comprises a polymer material.
10. An end effector according to claim 9, wherein the polymer material comprising polyvinylidene fluoride.
11. An end effector according to claim 1, wherein the active electrode comprises an aperture for providing access to a suction channel extending through the insulating element to a lumen configured to carry fluid from the surgical site.
12. An end effector according to claim 11, wherein the lumen is connectable to a suction tube for connecting to a suction source.
13. An electrosurgical instrument, comprising: a hand-piece; one or more user-operable buttons on the handpiece for operably controlling the instrument; and an operative shaft, having RF electrical connections, and drive componentry for an end effector, the electrosurgical instrument further comprising an end effector according to claim 1, the active electrode and the return electrode being connected to the RF electrical connections.
14. An electrosurgical system, comprising: an RF electrosurgical generator; a suction source; and an electrosurgical instrument according to claim 13, the arrangement being such that in use the RF electrosurgical generator supplies an RF coagulation or ablation signal via the RF electrical connections to the active electrode and the return electrode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Embodiments of the invention will now be further described by way of example only and with reference to the accompanying drawings, wherein like reference numerals refer to like parts, and wherein:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0033]
[0034] As described above, the electrosurgical instrument 3 may be a dual sided (or an opposite sided) RF shaver device. In this respect, the main RF componentry and the manual shaving/cutting componentry of the instrument 3 can be provided on opposite sides of a distal end portion of the instrument 3. The structure of the distal end of the instrument is described in more detail below.
[0035] In known RF electrosurgical instruments that implement a return electrode in the form of an outer shaft, the insulating sleeve used to define the RF return area typically leaves a blunt edge that can catch on other surfaces during use. This can result in damage to the entry site on the patient, and if the material erodes a sufficient amount, can lead to material being left in the patient after the instrument is removed. The present disclosure therefore seeks to address this problem by providing a lead-in feature on the electrode assembly, to gradually increase the diameter of the outer shaft to that of the insulation diameter. This would prevent a user catching this edge on the cannula, and therefore reduce the force needed to insert the device, and reduce the risk of damaging the insulation or hurting the patient.
[0036]
[0037] The return electrode component 106 is shown in more detail in
[0038] The shaft 108 comprises a lumen 112 that provides a hollow space for receiving an inner blade arrangement 132, as shown in more detail in
[0039] The distal end region 114 of the return electrode component 106 is further provided with lead-in feature in the form of a sloped surface 124 around at least portion of its circumference, for example, approximately 75% of its circumference extending from one side 120a of the mating surface 120 to the opposing side 120b, such that the profile of the distal end region 114 extends beyond that of the shaft 108, and such that it forms an edge 126 facing in the proximal direction (i.e., towards the shaft 108). In this respect, the protruding edge 126 also extends around at least portion of the circumference of the return electrode component, for example, approximately 75% of the circumference. When the insulating sleeve 110 is assembled, as shown in
[0040] The return electrode component 106 may be manufactured by any suitable means. One particularly advantageous manufacturing method is Metal Injection Moulding (MIM), which would allow the lead-in feature (e.g., the sloped surface 124) to be easily moulded into the return electrode component 106 without adding significant cost to the return electrode 106 or overall assembly of the end effector 100. Alternatively, the return electrode component 106 may be machined or 3D printed.
[0041] Whilst the example described with reference to
[0042] As another example, a separate lead-in component may be assembled onto the return shaft or insulating casing, and then welded or bonded in place,
[0043] Various further modifications to the above-described embodiments, whether by way of addition, deletion or substitution, will be apparent to the skilled person to provide additional embodiments, any and all of which are intended to be encompassed by the appended claims.
[0044] The electrosurgical instrument and/or end effector disclosed herein can be designed to be disposed of after a single use, or they can be designed to be used multiple times. In either case, however, the electrosurgical instrument and/or end effector can be reconditioned for reuse after at least one use. Reconditioning can include a combination of the steps of disassembly of the electrosurgical instrument, followed by cleaning or replacement of particular pieces, and subsequent reassembly. In particular, the electrosurgical instrument can be disassembled, and any number of particular pieces or parts of the device (such as the end effector) can be selectively replaced or removed in any combination. Upon cleaning and/or replacement of particular parts, the electrosurgical instrument can be reassembled for subsequent use either at a reconditioning facility, or by a surgical team immediately prior to a surgical procedure.
[0045] Those of ordinary skill in the art will appreciate that the reconditioning of an electrosurgical instrument can utilize a variety of different techniques for disassembly, cleaning/replacement, and reassembly. Use of such techniques, and the resulting reconditioned electrosurgical instrument, are all within the scope of the present application.
[0046] Preferably, the invention described herein will be processed before surgery. First a new or used instrument is obtained and, if necessary, cleaned. The instrument can then be sterilized. In one sterilization technique, the instrument is placed in a closed and sealed container, such as a plastic or TYVEK® bag. The container and instrument are then placed in a field of radiation that can penetrate the container, such as gamma radiation, x-rays, or higher energy electrons. The radiation kills bacteria on the instrument and in the container. The sterilized instrument can then be stored in the sterile container. The sealed container keeps the instrument sterile until it is opened in the medical facility. The electrosurgical instrument may also be sterilized using any other technique known in the art, including but limited to beta or gamma radiation, ethylene oxide, or steam.
[0047] There follows a set of numbered features describing particular embodiments of the invention. Where a feature refers to another numbered feature then those features may be considered in combination.
[0048] 1. An end effector for an electrosurgical instrument, comprising: [0049] an electrode assembly for delivering a radio-frequency (RF) power signal to a surgical site, the electrode assembly comprising an active electrode and a return electrode, wherein the electrode assembly comprises at least a first portion having a first outer diameter a second portion having a second outer diameter, the first outer diameter being larger than the second outer diameter; and [0050] an insulating sleeve configured to be received by the second portion of the electrode assembly, the insulating sleeve having an outer diameter substantially the same as the first outer diameter.
[0051] 2. An end effector according to feature 1, wherein the return electrode comprises the first portion having the first outer diameter and the second portion having the second diameter.
[0052] 3. An end effector according to feature 2, wherein the return electrode comprises a lead-in feature between the first portion and the second portion to thereby provide a difference in outer diameter.
[0053] 4. An end effector according to features 2 or 3, wherein the return electrode comprises a protruding edge formed between the first portion and the second portion.
[0054] 5. An end effector according to feature 4, wherein the protruding edge extends around at least a portion of a circumference of the return electrode.
[0055] 6. An end effector according to features 4 or 5, wherein the protruding edge extends around up to about 75% of the circumference of the return electrode.
[0056] 7. An end effector according to any of features 4 to 6, wherein an end of the insulating sleeve is configured to mate with a surface of the protruding edge.
[0057] 8. An end effector according to any of features 4 to 7, wherein the first portion of the return electrode comprises a sloped surface, the sloped surface forming the protruding edge.
[0058] 9. An end effector according to feature 1, wherein the electrode assembly further comprises an insulating element arranged between the active electrode and the return electrode, wherein the insulating element comprises the first portion having the first outer diameter and the return electrode comprises the second portion having the second outer diameter.
[0059] 10. An end effector according to any of features 2 to 8, wherein the electrode assembly further comprises an insulating element arranged between the active electrode and the return electrode.
[0060] 11. An end effector according to features 9 or 10, wherein the insulating element is formed of a ceramic or a polymer.
[0061] 12. An end effector according to any preceding feature, further comprising a rotatory shaver arrangement.
[0062] 13. An end effector according to any preceding feature, wherein the insulating sleeve is heat-shrink wrapped around the second portion of the electrode assembly.
[0063] 14. An end effector according to any preceding feature, wherein the insulating sleeve comprises a polymer material.
[0064] 15. An end effector according to feature 14, wherein the polymer material comprising polyvinylidene fluoride.
[0065] 16. An end effector according to any preceding feature, wherein the return electrode is manufactured by a process of metal injection moulding.
[0066] 17. An end effector according to any preceding feature, wherein the active electrode comprises an aperture for providing access to a suction channel extending through the insulating element to a lumen configured to carry fluid from the surgical site.
[0067] 18. An end effector according to feature 17, wherein the lumen is connectable to a suction tube for connecting to a suction source.
[0068] 19. An electrosurgical instrument, comprising: [0069] a hand-piece; [0070] one or more user-operable buttons on the handpiece for operably controlling the instrument; and [0071] an operative shaft, having RF electrical connections, and drive componentry for an end effector, the electrosurgical instrument further comprising an end effector according to any of the preceding features, the active electrode and the return electrode being connected to the RF electrical connections.
[0072] 20. An electrosurgical system, comprising: [0073] an RF electrosurgical generator; [0074] a suction source; and [0075] an electrosurgical instrument according to feature 19, the arrangement being such that in use the RF electrosurgical generator supplies an RF coagulation or ablation signal via the RF electrical connections to the active electrode and the return electrode.