Connector assembly for an electrosurgical system
11376067 · 2022-07-05
Assignee
Inventors
Cpc classification
A61B18/1445
HUMAN NECESSITIES
H01R13/5833
ELECTRICITY
A61B18/18
HUMAN NECESSITIES
International classification
A61B18/18
HUMAN NECESSITIES
Abstract
A connector assembly is provided. The connector assembly includes a housing having a first end that includes one or more mechanical interfaces thereon. The at least one mechanical interface configured to selectively engage a corresponding mechanical interface on an electrosurgical generator. A second end is configured to selectively engage an end of an electrosurgical cable to couple the electrosurgical generator to an electrosurgical instrument. A plurality of splines extends along an interior of the housing and is configured for electrical communication with a plurality of corresponding electrical conductors of the electrosurgical cable.
Claims
1. A electrosurgical system, comprising: an electrosurgical energy source; a connector assembly configured to couple an electrosurgical instrument to the electrosurgical energy source; and a spring-loaded ball disposed within the connector assembly and having a cutter element configured to pierce an electrosurgical cable received within the connector assembly to electrically couple the electrosurgical instrument to the electrosurgical energy source via the electrosurgical cable.
2. The electrosurgical system according to claim 1, wherein the connector assembly includes a keying tract configured to couple the connector assembly to the electrosurgical energy source.
3. The electrosurgical system according to claim 1, further comprising an electrically conductive spline disposed within the connector assembly.
4. The electrosurgical system according to claim 3, wherein the electrically conductive spline is helically wound about the connector assembly.
5. The electrosurgical system according to claim 1, wherein the electrosurgical energy source is a radiofrequency energy generator.
6. The electrosurgical system according to claim 1, wherein the spring-loaded ball is electrically conductive.
7. The electrosurgical system according to claim 1, wherein the spring-loaded ball is configured to bias the electrosurgical cable to maintain the electrosurgical cable within the connector assembly.
8. The electrosurgical system according to claim 1, wherein the connector assembly includes a first hub configured to electrically couple to a supply line of the electrosurgical cable and a second hub configured to electrically couple to a return line of the electrosurgical cable.
9. The electrosurgical system according to claim 1, wherein the cutter element includes a blade extending from the spring-loaded ball configured to pierce the electrosurgical cable.
10. A electrosurgical system, comprising: an electrosurgical energy source; a connector assembly configured to couple an electrosurgical instrument to the electrosurgical energy source; and a spring-loaded ball disposed within the connector assembly and configured to engage an electrosurgical cable received within the connector assembly to couple the electrosurgical instrument to the electrosurgical energy source via the electrosurgical cable.
11. The electrosurgical system according to claim 10, further comprising a cutter element disposed within the connector assembly and configured to pierce the electrosurgical cable.
12. The electrosurgical system according to claim 11, wherein the cutter element extends from the spring-loaded ball.
13. The electrosurgical system according to claim 10, wherein the connector assembly includes a keying tract configured to couple the connector assembly to the electrosurgical energy source.
14. The electrosurgical system according to claim 10, wherein the connector assembly includes a helically wound electrically conductive spline.
15. The electrosurgical system according to claim 10, wherein the spring-loaded ball is electrically conductive.
16. The electrosurgical system according to claim 10, wherein the spring-loaded ball is configured to bias the electrosurgical cable to maintain the electrosurgical cable within the connector assembly.
17. The electrosurgical system according to claim 10, wherein the connector assembly includes a first hub configured to electrically couple to a supply line of the electrosurgical cable and a second hub configured to electrically couple to a return line of the electrosurgical cable.
18. A electrosurgical system, comprising: an electrosurgical energy source; an electrosurgical instrument configured to couple to the electrosurgical energy source for treating tissue; a connector assembly configured to couple the electrosurgical instrument to the electrosurgical energy source via an electrosurgical cable; and a biasing member disposed within the connector assembly and configured to bias the electrosurgical cable to maintain the electrosurgical cable within the connector assembly; and an electrically conductive element extending from the biasing member and configured to electrically couple the electrosurgical instrument to the electrosurgical energy source via the electrosurgical cable.
19. The electrosurgical system according to claim 18, wherein the biasing member includes a spring-loaded ball.
20. The electrosurgical system according to claim 18, wherein the electrically conductive element includes a blade configured to pierce the electrosurgical cable.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) Various embodiments of the present disclosure are described hereinbelow with references to the drawings, wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Detailed embodiments of the present disclosure are disclosed herein; however, the disclosed embodiments are merely examples of the disclosure, which may be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the present disclosure in virtually any appropriately detailed structure.
(8) In accordance with the instant disclosure, a connector assembly configured for use with electrosurgical cables that utilize a helical configuration is provided. The connector assembly is configured to interchangeably couple to an electrosurgical cable for coupling the electrosurgical cable to an electrosurgical energy source and/or one or more types of electrosurgical instruments.
(9)
(10)
(11) One or more mechanical interfaces (e.g., a keying structure 33, threads, or the like) are provided on an outside of the generator 34 and are configured to selectively couple to connector assembly 42 (
(12)
(13) In accordance with the instant disclosure, cable 36 provides a transmission medium to deliver RF energy from generator 34 to a tissue site. Cable 36 orients supply and return lines 38, 40 so that the electrical fields generated therethrough are canceled, thereby reducing the amount of leaked stray RF energy. More specifically, placement and the physical geometric orientation of supply and return lines 38, 40 in the double helix configuration provides for reduced RF leakage by the electrical field coupling generated during transmission of electrosurgical RF energy and maximizes the amount of energy delivered to the treatment site. Other positive attributes associated with placement and orientation of supply and return lines 38, 40 in the double helix configuration may include, but are not limited to: increased safety in the operating theatre due to reduced stray energy; decreased capacitive and RF field leakage, which, in turn may improve RF control of the delivered energy; decreased RF transmission loss, which, in turn, may improve efficiency of the generator 36; and decreased RF noise to additional equipment found in (or adjacent) the surgical theatre, such as patient monitoring equipment.
(14) With reference to
(15) Continuing with reference to
(16) Second end 51 is configured to selectively engage an end of cable 36. Specifically, second end 51 includes an opening 59 of suitable configuration configured to receive a portion of cable 36 therein after sheath 56 has been sufficiently pulled back (or removed). A friction-fit or press-fit may be utilized to securely join cable 36 with connector assembly 42.
(17) A plurality of splines 53 extend along an interior wall 55 of the housing 47 and are configured for electrical communication with supply and return lines 38, 40 of electrosurgical cable 36. In the illustrated embodiment, the plurality of splines 53 are shown including two splines 53a, 53b that extend along interior wall 55 within housing 47 and in a double helical configuration similar to that of supply and return 38, 40 in cable 36. In one particular embodiment, supply line 38 is configured for electrical communication with spline 53a and return line 40 is configured for electrical communication with spline 53b; other electrical configurations are contemplated.
(18) In embodiments, each spline 53a, 53b of the plurality splines 53 includes one or more biasing members 57 that are configured to align the splines 53a, 53b with supply and return lines 38, 40 of cable 36 and to facilitate coupling connector assembly 42 to cable 36. In the illustrated embodiment, biasing members 57 include a plurality of electrically conductive spring loaded balls 57a that follow the same general path of splines 53a, 53b. Spring loaded balls 57a are urged radially outward and are configured to press against supply and return lines 38, 40 when cable 36 is inserted into connector assembly 42. This pressing against supply and return lines 38, 40 facilitates maintaining cable 36 and connector assembly 42 in a secured electrical engagement with one another.
(19) Spring loaded balls 57a may be made from any suitable metallic material including, but not limited to copper, brass, nickel, gold etc., capable of making good RF energy contact to cable 36, etc. In the illustrated embodiment, spring loaded balls 57a are formed from a conductive material, e.g., metal, which is configured to increase electrical continuity between splines 53a, 53b and supply and return lines 38, 40.
(20) In one embodiment, a portion of sheathing 56 may be pulled back (or removed) to expose supply and return lines 38, 40. Thereafter, the insulator covering supply and return lines 38, 40 may be removed and the exposed portion of cable 36 may be inserted into connector assembly 42. Spring loaded balls 57a press against supply and return lines 38, 40 to secure cable 36 to connector assembly 42 and maintain supply and return lines 38, 40 in electrical communication with splines 53a, 53b. Subsequently, keying tract 43 may be utilized to couple connector assembly 42 to generator 34 or forceps 4.
(21) The unique configuration of connector assembly 42 allows a user to couple cable 36 to generator 34 and/or forceps 4 while maintaining the double helix configuration of cable 36 thus, overcoming the aforementioned drawbacks associated with present day connectors.
(22) From the foregoing and with reference to the various figure drawings, those skilled in the art will appreciate that certain modifications can also be made to the present disclosure without departing from the scope of the same. For example, those skilled in the art will understand that the connector assembly 42 may be adapted for use with either an endoscopic instrument (as shown in
(23) In embodiments, one or more structures (or mechanisms) may be utilized to pierce the sheathing that covers supply and return lines 38, 40 when cable 36 is inserted into connector assembly 42. For example, in one embodiment, all spring loaded balls 57a could include a connective cutter blade 63 (or the like), that is configured to simultaneously pierce the sheathing and make good RF contact to the supply and return lines 38, 40 (
(24) In embodiments, connector assembly 42 may be permanently coupled to forceps 4, generator 34 or cable 36. The specific fixation configurations of connector assembly 42 to forceps 4, generator 34 or cable 36 may depend on a manufacturer's preference, a specific surgical procedure, an end user's contemplated needs, etc.
(25) In embodiments, a proximal face 60 of connector assembly 42 adjacent keying tract 42 may be conductive and in electrical communication with splines 53a, 53b to provide an uninterrupted path for current flow.
(26) In embodiments, connector assembly may be configured to selectively couple to a forceps 104 that is configured for monopolar operation.
(27) While several embodiments of the disclosure have been shown in the drawings, it is not intended that the disclosure be limited thereto, as it is intended that the disclosure be as broad in scope as the art will allow and that the specification be read likewise. Therefore, the above description should not be construed as limiting, but merely as exemplifications of particular embodiments. Those skilled in the art will envision other modifications within the scope and spirit of the claims appended hereto.