Fluid enhanced electrosurgery with integrated irrigation and aspiration

By designing a hand-held electrosurgical device equipped with flushing, ablation and suction functions, the problems of many equipment and complex operations in the prior art are solved, and the effect of simplifying surgical procedures and reducing the number of equipment is achieved.

CN120152677APending Publication Date: 2025-06-13MEDTRONIC ADVANCED ENERGY LLC
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Patent Information

Application Number
CN202380077022.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2022-11-03
Filing Date
2023-11-01
Publication Date
2025-06-13

AI Technical Summary

Technical Problem

When performing electrosurgical surgery, existing electrosurgical devices need to use multiple different devices to complete complex procedures, resulting in a large number of equipment, large space occupancy, and complex operation.

Method used

A handheld electrosurgical device is designed that is equipped with the function of flushing, dispersing or infusion of surgical fluids and ablating or cauteing tissue in the presence of fluids while being able to aspirate residual fluid from the target treatment site. The device includes a proximal and distal portion with at least one flush port and two electrodes for providing and receiving current and drawing fluid through the suction port.

Benefits of technology

By reducing the number of surgical tools required on the site, surgical procedures are simplified and the number of equipment required to complete the procedures is reduced, thereby improving patient outcomes.

✦ Generated by Eureka AI based on patent content.

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Abstract

An electrosurgical device includes: a distal portion defining at least one irrigation port configured to deliver surgical fluid distally to a target treatment site; a distal portion including a first electrode extending distally from the elongate shaft, where the first electrode is configured to provide a delivered current to the target treatment site, and where the first electrode defines a first suction port; and a second electrode extending distally from the elongate shaft, where the second electrode is configured to receive a return current from the target treatment site, and where the second electrode defines a second suction port; wherein the electrosurgical device is configured to aspirate the surgical fluid proximally from the target treatment site via the first aspiration port and the second aspiration port.
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Description

Technical Field

[0001] The present disclosure relates to electrosurgery. Background Art

[0002] Electrosurgical devices for applying electrical energy to tissue can be used in surgical procedures for hemostatic sealing or coagulating soft tissue and bone at a surgical site. Such electrosurgical devices can be used in, but are not limited to, plastic surgery, spinal surgery, thoracic surgery, or abdominal surgery.

[0003] An electrosurgical device can include a handpiece unit having a distal end with one or more electrodes. The one or more electrodes can be positioned adjacent to target tissue such that current is introduced into the tissue. The resulting generated heat can be used to cut, coagulate the target tissue, or induce metabolic processes in the target tissue. The electrosurgical device can be used with an electrosurgical generator that typically provides power and electrical energy in the form of radio frequency (“RF”) energy via either of two handpiece topologies (or a particular combination thereof): monopolar or bipolar.

[0004] During monopolar operation, the active electrode introduces current into the target tissue. The current returns through a return electrode located separately on the patient's body. Thus, a monopolar handpiece has only one wire for the treatment signal in the monopolar connector—a second contact for what is referred to as the “return signal” is present in a different connector referred to as the “return pad connector”. During bipolar operation, current is introduced into the target tissue via an “active” electrode located on the bipolar handpiece and returns from the target tissue via a “return” electrode located on the bipolar handpiece.

[0005] Conventional electrosurgical devices for electrosurgical tissue treatment face a series of challenges, which can vary depending on the different procedures. Some of the challenges that can arise are using multiple different devices to perform individual functions, thus complicating the procedure and occupying a greater amount of limited space both inside the patient and within the surgical environment. Summary of the Invention

[0006] The technology of the present disclosure generally relates to a handheld electrosurgical device configured to: flush, disperse, or infuse a surgical fluid (e.g., saline); ablate or cauterize tissue in the presence of the fluid; and aspirate residual fluid from the target treatment site simultaneously or subsequently.

[0007] In one aspect, the present disclosure provides an electrosurgical device that includes a proximal portion and a distal portion. The proximal portion includes an electrical connector configured to be electrically coupled to a generator configured to provide electrical energy. The distal portion defines at least one irrigation port configured to deliver surgical fluid distally to a target treatment site. The distal portion includes a first electrode extending distally from an elongate shaft, wherein the first electrode is configured to provide the delivered current to the target treatment site and wherein the first electrode defines a first suction port. The distal portion further includes a second electrode extending distally from the elongate shaft, wherein the second electrode is configured to receive a return current from the target treatment site and wherein the second electrode defines a second suction port. The electrosurgical device is configured to aspirate the surgical fluid proximally from the target treatment site via the first suction port and the second suction port.

[0008] In another aspect, the present disclosure provides a method of performing an electrosurgical procedure that includes: delivering surgical fluid to a target treatment site within a patient via at least one irrigation port defined by a distal portion of an electrosurgical device; providing the delivered current to the target treatment site via a first electrode defining a first suction port; receiving a return current from the target treatment site via a second electrode defining a second suction port; and aspirating the surgical fluid from the target treatment site via the first suction port and the second suction port.

[0009] In another aspect, the present disclosure provides a medical system that includes: a generator configured to provide electrical energy; and an electrosurgical device. The electrosurgical device includes a proximal portion and a distal portion. The proximal portion includes an electrical connector configured to be electrically coupled to the generator. The distal portion defines at least one irrigation port configured to deliver surgical fluid distally to a target treatment site. The distal portion includes a first electrode extending distally from an elongate shaft, wherein the first electrode is configured to provide the delivered current to the target treatment site and wherein the first electrode defines a first suction port. The distal portion further includes a second electrode extending distally from the elongate shaft, wherein the second electrode is configured to receive a return current from the target treatment site and wherein the second electrode defines a second suction port. The electrosurgical device is configured to aspirate the surgical fluid proximally from the target treatment site via the first suction port and the second suction port.

[0010] In another aspect, the present disclosure provides techniques for performing an electrosurgical procedure using a hand-held electrosurgical device, including irrigating and aspirating surgical fluid both via the hand-held device.

[0011] Examples of the present disclosure advantageously reduce the number of surgical tools required in the field, thereby allowing irrigation and aspiration of surgical fluids to be performed by the same tools that provide electrosurgery.

[0012] Details of one or more aspects of the present disclosure are set forth in the following drawings and the description. Other features, objects, and advantages of the techniques described in this disclosure will be apparent from the description, the drawings, and the claims. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] The subject matter of the present invention may be more fully understood when the following detailed description of various embodiments is considered in conjunction with the accompanying drawings, in which:

[0014] Figure 1 is a front view of an exemplary medical system having an electrosurgical unit, a surgical fluid source, and a hand-held electrosurgical device;

[0015] Figure 2 is Figure 1 a front perspective view of the electrosurgical unit of

[0016] Figure 3 is Figure 1 a rear view of the electrosurgical unit of

[0017] Figure 4 is a perspective view of an electrosurgical device in accordance with the present invention;

[0018] Figure 5 is Figure 1 and Figure 4 a close-up cross-sectional view of an exemplary distal portion of the device of

[0019] Figure 6 is Figure 1 a perspective view of another exemplary distal portion of the hand-held electrosurgical device of

[0020] Figure 7 is Figure 1 a perspective view of another exemplary distal portion of the hand-held electrosurgical device of

[0021] Figure 8 is of a hand-held electrosurgical device having an inwardly facing aspiration port Figure 1 a perspective view of another exemplary distal portion of

[0022] Figure 9 is Figure 8 a bottom view of an exemplary hand-held electrosurgical device of

[0023] Figure 10 isFigure 8 Side view of an exemplary hand-held electrosurgical device;

[0024] Figure 11 is Figure 8 Front perspective view of an exemplary hand-held electrosurgical device;

[0025] Figure 12 is a flowchart showing techniques for performing an electrosurgical procedure. Detailed Description

[0026] Figure 1 Depicted is an exemplary medical system 100 having an electrosurgical unit 102 combined with a fluid source 104 and a hand-held electrosurgical device 106. Certain elements of the medical system 100 are further detailed in U.S. Patent No. 8,882,756, titled "FLUID-ASSISTED ELECTROSURGICAL DEVICES, METHODS AND SYSTEMS," which is commonly assigned and the entire content of which is incorporated herein by reference.

[0027] Figure 1 An example of the system 100 shown includes a mobile cart 108 having a chassis 110 provided with two or more wheels 112 to facilitate transportation. The chassis 110 carries a support member 114 including a hollow cylindrical column to which a storage basket 116 can be fastened and which is used to store the user manual for the electrosurgical unit 102; as well as additional unused devices. Additionally, the support member 114 carries a platform 118 (e.g., a base table) to provide a flat, stable surface for holding the electrosurgical unit 102.

[0028] As Figure 1 shown, the cart 108 further includes a surgical fluid source carrier rod 120, the height of which can be adjusted by sliding the carrier rod 120 up and down within the support member 114 and then fastening the rod 120 in place with a set screw (not shown). On top of the fluid source carrier rod 120 is a lateral support 122 provided at its ends with loops 124 to provide hooks for carrying the surgical fluid source 104.

[0029] As Figure 1 shown, the fluid source 104 includes a bag of surgical fluid (e.g., saline), and after the bag is pierced by a spike provided at the end of a drip chamber 128, the fluid 126 flows from the bag through the drip chamber 128. Thereafter, the surgical fluid 126 flows through a flexible delivery tubing 130 to the hand-held electrosurgical device 106. The fluid delivery tubing 130 can be formed of a polymeric material.

[0030] As Figure 1 shown, a fluid delivery tube 130 passes through a pump 132. In the Figure 1 example shown, the pump 132 includes a peristaltic pump and more specifically a rotary peristaltic pump. With a rotary peristaltic pump, a portion of the delivery tube 130 is loaded into the pump head by raising and lowering the pump head in a predetermined manner. Surgical fluid 126 is conveyed within the delivery tube 130 by contraction waves that are guided externally onto the tube 130, which are typically mechanically generated by rotating pinch rollers that rotate on a drive shaft to intermittently press the tube 130 against an anvil support. Additionally or alternatively, the pump 132 can include a linear peristaltic pump. With a linear peristaltic pump, surgical fluid 126 is conveyed within the delivery tube 130 by contraction waves that are guided externally onto the tube 130, which are typically mechanically generated by a series of compression fingers or pads that sequentially squeeze the tube 130 against a support.

[0031] In some examples, the surgical fluid 126 includes saline, preferably normal (physiological) saline; however, any other suitable electrically conductive fluid can alternatively or additionally be used. Although an electrically conductive fluid is preferred, the surgical fluid 126 can also include a non-conductive (e.g., electrically insulating) fluid. The use of a non-conductive fluid is less preferred than an electrically conductive fluid; however, the use of a non-conductive fluid still provides certain advantages over the use of dry electrodes, including, for example, reducing the occurrence of tissue adhesion to the electrodes of the hand-held device 106 and cooling of the electrodes and / or the tissue. Accordingly, the use of a non-conductive fluid (such as deionized water) is also within the scope of the present disclosure.

[0032] As Figure 1 shown, the hand-held electrosurgical device 106 is electrically coupled to an electrosurgical unit 102 via a cable 134, which includes a plurality of electrically insulated wire conductors and at least one plug 136 at its end. The electrosurgical unit 102 provides radio frequency (RF) energy to the hand-held electrosurgical device 106 via the cable 134. As Figure 2 shown, a plug socket 238 of the electrosurgical unit 102 receives the plug 136 of the device 106 therein to electrically connect the device 106 to the electrosurgical unit 102. The fluid delivery tube 130 can be integrated with the cable 134 and produced together with the electrically insulated wires via plastic coextrusion.

[0033] According to the techniques of the present disclosure, the hand-held electrosurgical device 106 is configured to flush surgical fluid 126 into a target treatment site and also subsequently aspirate residual surgical fluid 126 from the target treatment site. In this manner, the electrosurgical device 106 is configured to reduce the complexity of the surgical procedure and also reduce the net form factor of the set of surgical devices required to complete the procedure, thereby further improving patient outcomes.

[0034] For example, as Figure 1 shown, the hand-held device 106 can be fluidly coupled to a suction source 142 and a discharge reservoir 144 via a flexible fluid extraction tube 140. The hand-held device 106 can include various user input mechanisms, such as buttons, switches, levers, triggers, toggle switches, knobs, etc., which are configured to control the irrigation and suction of the surgical fluid 126 via the distal portion of the hand-held device 106. For example, a clinician can actuate a first user input mechanism 146 to deploy the surgical fluid 126 into a target treatment site, and can actuate another user input mechanism 148 to actuate the suction source 142 to suction the surgical fluid from the target treatment site. In some examples, the user input mechanism (or additional user input mechanisms) is configured to enable a user to appropriately control the rate or intensity of irrigation and / or suction. For example, a control knob on the hand-held device 106 can be configured to increase or decrease the amount of suction applied by the suction source 142 independent of other system parameters. In some examples, the suction source 142 can include a suction source provided by a facility (e.g., a hospital or other care center) where an electrosurgical procedure occurs.

[0035] Figure 2 shown is Figure 1 an exemplary front panel 240 of the electrosurgical unit 102. The front panel 240 includes a power switch 242 configured to turn on and off the electrosurgical unit 102. After the electrosurgical unit 102 is turned on, an RF power setting display 244 is used to digitally display the RF power setting in watts. In some examples, the power setting display 244 includes a liquid crystal display (LCD) or other suitable display screen. Additionally, such a display 244 is used to display errors, in which case the display 244 can indicate "Err" along with a related error code number.

[0036] The RF power selector 246 includes RF power setting switches 246a, 246b that are used to select the RF power setting. Pressing switch 246a increases the RF power setting, while pressing switch 246b decreases the RF power setting. The RF power output can be set in 5-watt increments in the range of 20 watts to 100 watts, and in 10-watt increments in the range of 100 watts to 200 watts. Additionally, the electrosurgical unit 102 includes an RF power activation display 248 that includes an indicator light 250 that lights up when the RF power is activated. Switches 246a, 246b can include membrane switches.

[0037] In addition to the RF power setting display 244, the electrosurgical unit 102 further includes a fluid flow rate setting display 252. The flow rate setting display 252 includes three indicator lights 252a, 252b, 252c, where the first light 252a corresponds to a "low" fluid flow rate setting, the second light 252b corresponds to a "medium" (or "moderate") fluid flow rate setting, and the third light 252c corresponds to a "high" flow rate setting. When the corresponding fluid flow rate setting is selected, one of these three indicator lights 252 will light up.

[0038] A fluid flow selector 254 including flow rate setting switches 254a, 254b, 254c is used to select or switch the flow rate setting. There are three push buttons 254 provided, where the first switch 254a corresponds to a "low" fluid flow rate setting, the second switch 254b corresponds to a "medium" (or "moderate") fluid flow rate setting, and the third switch 254c corresponds to a "high" flow rate setting. Pressing one of these three switches 254 selects the corresponding "low", "medium" ("moderate") or "high" flow rate setting. If no other setting is manually selected, the "medium" or "moderate" flow rate setting is automatically selected as the default setting. The switches 254a, 254b and 254c may include membrane switches.

[0039] Before starting an electrosurgical procedure, it may be desirable to perfuse the handpiece 106 with the surgical fluid 126 ( Figure 1 ). In the absence of the fluid 126, perfusion is required to inhibit RF power activation. Therefore, a perfusion switch 256 ( Figure 2 ) is used to initiate the perfusion of the handpiece 106 with the surgical fluid 126. Pressing the switch 256 once starts the operation of the pump 132 for a predetermined duration to perfuse the handpiece 106. After the predetermined duration expires, the pump 132 automatically shuts off. When the perfusion of the handpiece 106 is initiated, a perfusion display 258 (e.g., an indicator light) lights up during the perfusion cycle.

[0040] On the front panel 240, when RF power is activated from the electrosurgical unit 102 via a switch 138 ( Figure 1 ) on the handpiece 106 or via a foot switch (not shown), a bipolar activation indicator 260 lights up. A pull-out drawer 262 ( Figure 2 ) is located below the electrosurgical unit 102 where a user (e.g., a clinician) of the electrosurgical unit 102 can find a short form of the user manual.

[0041] Figure 3 is shown Figure 1Exemplary rear panel 340 of electrosurgical unit 102. The rear panel 340 of electrosurgical unit 102 includes a speaker 342 and a volume control knob 344 to adjust the volume of a tone (“RF power activation tone”) that will sound when RF power is activated. The volume of the RF power activation tone is increased by turning the knob 344 clockwise and decreased by turning the knob 344 counterclockwise. However, for safety reasons, electrosurgical unit 102 prevents this tone from being completely muted.

[0042] The rear panel 340 of electrosurgical unit 102 also includes a power cord socket 346 for connecting a main power cord to electrosurgical unit 102 and an equipotential ground lug connector 348 for connecting electrosurgical unit 102 to ground using a suitable cable. The rear panel 340 also includes a removable cover 350 for a bipolar footswitch socket that can be connected to the internal footswitch circuit of electrosurgical unit 102 such that, in addition to the manual switch 138 of the handpiece 106, RF power can also be activated by the footswitch. Additionally, the rear panel 340 also includes a fuse drawer 352 that holds two or more additional fuses consistent with the line voltage. Finally, the rear panel 340 includes a nameplate 354 that can provide information such as the model number, serial number, nominal line voltage, frequency, current, and fuse rating information of electrosurgical unit 102.

[0043] Electrosurgical unit 102 is specifically configured for use with a bipolar electrosurgical device, such as Figure 1 the handpiece 106). With a bipolar device, an alternating current (AC) circuit is created between the two electrical poles (“electrodes”) of the device. Figure 4 is a perspective view of an exemplary bipolar electrosurgical device 106 that can be used in combination with electrosurgical unit 102.

[0044] As Figure 4 shown, the exemplary bipolar device 106 includes a proximal handle 404 having mating lateral handle portions 404a, 404b. The handle 404 is preferably made of a sterilizable, rigid, non-conductive material such as a polymer (e.g., polycarbonate). Additionally, the handle 404 is preferably configured to be elongated along with the rest of the device 106 to facilitate a user of the device 106 to hold and manipulate the device 106 in a manner similar to a writing utensil. The device 106 also includes a cable 134 that can be connected to electrosurgical unit 102 and a flexible fluid delivery tubing 130 that can be connected to a surgical fluid source 104 ( Figure 1 ), the flexible fluid delivery tubing being preferably connectable to the surgical fluid source via a spike located at the end of the drip chamber 128, the cable and the flexible fluid delivery tubing providing radiofrequency energy and surgical fluid 126 to the electrodes 406a, 406b, respectively.

[0045] Maintained at and connected to the distal end of shaft 408 are two laterally and spatially separated (by empty space) contact elements, including electrodes 406a, 406b, which in some examples are configured to be mirror images in size and shape and may have distal ends with edge-free surfaces (to provide uniform current density) to treat tissue without cutting. Electrodes 406a, 406b are formed of a conductive metal such as stainless steel, titanium, gold, silver, and / or platinum.

[0046] In some examples, the longitudinal axes "Z" of electrodes 406a, 406b ( Figure 4 ) may be center-to-center ("CC") separated by about 6.0 mm. As a result, when the electrodes 406 have a diameter of about 3.5 mm, the actual spatial gap spacing ("GS") between electrodes 406a, 406b is about 2.5 mm.

[0047] Figure 5 An exemplary distal portion 500 of electrosurgical device 106 is shown Figure 1 and Figure 4 . As Figure 5 shown, electrodes 406a, 406b are preferably configured to slide on surface 502 of target tissue 516 in the presence of radiofrequency energy 504 from electrosurgical unit 102 and surgical fluid 126 from fluid source 104. In some (but not all) examples, each of electrodes 406a, 406b has a dome-shaped distal shape that provides a smooth, blunt profiled outer surface, e.g., an outer surface that is neither pointed nor sharp.

[0048] In Figure 5 the example shown (but not all examples), electrodes 406a, 406b define respective internal fluid flushing lumens 506a, 506b and provide surgical fluid flushing ports 508a, 508b for flushing surgical fluid 126 onto target tissue 516. Thus, during use of device 106, fluid 126 from fluid source 104 ( Figure 1 ) is conveyed through the lumen of fluid delivery tubing 130, after which the surgical fluid flows through lumens 506a, 506b and then exits device 106 from flushing ports 508a, 508b to reach electrodes 406a, 406b and target tissue 516. In Figure 5 the specific example shown, flushing ports 506a, 506b are located on the outer lateral portions of electrodes 406a, 406b such that electrosurgical device 106 releases or delivers surgical fluid 126 in a radially outward direction (e.g., along the "Y" axis).

[0049] As Figure 5As shown, one way to use device 106 is to orient the longitudinal (e.g., distal to proximal) "Z" axis of electrodes 406a, 406b vertically, and to laterally space (e.g., along the "Y" axis) the spherical distal surfaces of electrodes 406a, 406b adjacent to surface 502 of tissue 516. Electrodes 406a, 406b are connected to electrosurgical unit 102( Figure 1 ) to provide RF electrical power and form an alternating current ("AC") electric field 504 in tissue 516 located between electrodes 406a and 406b. In the presence of the alternating current, electrodes 406a, 406b alternate polarity between positive and negative charges, with current flowing from the positive charge to the negative charge. Without being bound by a particular theory, the resulting heating of target tissue 516 is performed by resistive heating.

[0050] In addition to providing electrical coupling between device 106 and tissue 516, surgical fluid 126 also lubricates surface 502 of tissue 516 and facilitates movement of electrodes 406a, 406b over surface 502 of tissue 516. During movement of electrodes 406a, 406b, electrodes 406a, 406b typically slide over surface 502 of tissue 516. Generally, the user of device 106 slides electrodes 406a, 406b back and forth over surface 502 of tissue 516 with a "painting" motion while using surgical fluid 126 in particular as a lubricating coating. Preferably, the thickness of fluid 126 between the distal end surfaces of electrodes 406a, 406b and surface 502 of tissue 516 at the outer edges of irrigation lumens 506 (e.g., at irrigation ports 508a, 508b, respectively) is from about 0.05 mm to about 1.5 mm. Additionally, in some examples, the most distal tips of electrodes 406a, 406b may contact surface 502 of tissue 516 with no surgical fluid 126 therebetween.

[0051] As Figure 5 shown, fluid couplers 510a, 510b include discrete, local meshes of surgical fluid 126, and more specifically, include triangular meshes or beaded portions of membranes that provide fluid 126 between tissue surface 500 and electrodes 406a, 406b. When the user of electrosurgical device 106 places electrodes 406a, 406b at target tissue treatment site 516 and moves electrodes 406a, 406b over tissue surface 502, surgical fluid 126 is expelled from irrigation ports 508a, 508b and expelled onto tissue surface 502 in the form of fluid couplers 510a, 510b. Approximately simultaneously, electrodes 406 deliver and receive RF electrical energy as shown by electric field lines 504 to and from tissue 516 via fluid couplers 510a, 510b.

[0052] To better maintain the fluid couplers 510a, 510b as separate, discrete fluid couplers during use of the electrosurgical device 106, it has been found that having a gap spacing "GS" of at least about 2.0 mm between the electrodes 406a, 406b in combination with the positioning of the irrigation ports 508a, 508b reduces the undesirable coalescence of the surgical fluid couplers 510.

[0053] As Figure 5 best shown therein, the arrangement of the irrigation ports 508 defined by the outer lateral portions of the electrodes 406 facilitates discharging the surgical fluid 126 onto the electrodes 406a, 406b only at locations remote from other electrode surface portions facing each other. More specifically, the irrigation port 508a discharges the surgical fluid 126 onto the electrode 406a at an electrode location remote from the inner lateral surface portion of the electrode 406a facing the electrode 406b, and the irrigation port 508b discharges the surgical fluid 126 onto the electrode 406b at an electrode location remote from the inner lateral surface portion of the electrode 406b facing the electrode 406a.

[0054] According to the techniques of the present disclosure, the handheld device 106 is configured to irrigate (e.g., deliver, release, or disperse via the irrigation ports 508) the surgical fluid 126 and also aspirate the residual surgical fluid 126. For example, as Figure 5 shown, the handheld device 106 further defines a fluid suction tube 518 that defines an internal fluid suction tube lumen 512 (or "suction channel 512") that terminates distally in a fluid suction port 514. The fluid suction tube 518 is fluidly coupled via the fluid suction tube lumen 512 to a discharge reservoir 144 ( Figure 1 ), which is configured to receive the aspirated surgical fluid. The fluid suction tube 518 is operatively coupled (e.g., via Figure 1 the suction tubing 140) to a suction source 144, such as a vacuum, a pump, or other suitable suction source.

[0055] Figure 6 is Figure 1 and Figure 4 A perspective view of another exemplary distal portion 600 of the handheld electrosurgical device 106. Except for any differences explicitly noted herein, the distal portion 600 is Figure 5 an example of the distal portion 500.

[0056] As Figure 6 shown, the distal portion 600 of the handheld device 106 includes four irrigation ports 608a, 608b, 608c, 608d (collectively "irrigation ports 608") defined by the furthest distal end of the elongate shaft 408. The irrigation ports 608 are Figure 5Examples of the irrigation ports 508 as they are configured to strategically disperse the surgical fluid 126 ( Figure 1 , e.g., saline) to fluidically enhance the electrosurgical procedure. In this example, the first irrigation port 608a is disposed laterally outward from the first electrode 606a (e.g., along the lateral "Y" axis), the second irrigation port 608b and the third irrigation port 608c are disposed laterally between the first electrode 606a and the second electrode 608b, and the fourth irrigation port 608d is disposed laterally outward from the second electrode 606b.

[0057] The distal portion 600 of the electrosurgical device 106 includes two electrodes 606a, 606b (e.g., Figure 4 and Figure 5 the electrodes 406a, 406b of Figure 4 and Figure 5 ) that extend distally from the most distal end of the elongate shaft 408. Different from the electrodes 406 of Figure 5 and

[0058] Figure 7 , the electrodes 606 of the distal portion 600 form a substantially cylindrical tubular shape such that the most distal end portions of the electrodes 606 respectively define aspiration ports 614a, 614b (collectively referred to as "aspiration ports 614"). The aspiration ports 614 define the most distal ends of the aspiration lumens that extend from distal to proximal (e.g., along the longitudinal axis "Z") through each of the tubular electrodes 606. The aspiration ports 614a, 614b are each Figure 1 and Figure 4 examples of the aspiration ports 514 of Figure 6 as they are configured to aspirate residual surgical fluid 126 proximally from the target treatment site. Figure 6 is Figure 7 a perspective view of another exemplary distal portion 700 of the hand-held electrosurgical device 106 of Figure 1 and

[0059] Figures 8 to 11 . Except for any differences expressly noted herein, the distal portion 700 is Figure 1 and Figure 4Another exemplary distal portion 800 of the handheld electrosurgical device 106, wherein the electrodes 806a, 806b are configured to both flush and aspirate a surgical fluid 126. Except for any differences explicitly noted herein, the distal portion 800 is respectively an Figures 5 to 7 example of the distal portions 500, 600, and 700. For example, similar to Figure 5 the distal portion 500, Figures 8 to 11 the distal portion 800 includes a flush port 808 (e.g., Figure 5 the flush port 508 of Figure 5 ) defined by the outer lateral portions of the electrodes 806 (e.g., Figure 5 the electrodes 406 of Figures 8 to 11 ). However, different from Figure 5 the electrodes 406 of Figures 8 to 11 (which together define only two circular flush ports 508), the outer lateral portions of the electrodes 806 define four elongated slit-shaped flush ports 808a, 808b, 808c (not visible in Figures 8 to 11 ) and 808d. That is, the outer lateral portion of the electrode 806a defines the slit-shaped flush ports 808a and 808b, and the outer lateral portion of the electrode 806b defines the slit-shaped flush ports 808c and 808d. The flush ports 808 are examples of the flush port 508 because they are configured to strategically disperse the surgical fluid 126 ( Figure 1 , e.g., saline) to fluidly enhance the electrosurgical procedure.

[0060] Additionally, different from the Figure 6 and Figure 7 aspiration ports 614 defined by the farthest distal end of the electrode 606, Figures 8 to 11 the aspiration ports 814 of

[0061] Figure 12 are defined by the inner lateral portions of the electrodes 806 such that the aspiration port 814a generally faces the aspiration port 814b. The aspiration ports 814 are examples of the aspiration port 614 because they are configured to aspirate the residual surgical fluid 126 from the target treatment site.

[0061] Figure 12 is a flowchart 1200 showing techniques for performing an electrosurgical procedure in accordance with the techniques of the present disclosure. Figure 12 The operations of

[0062] apply to any or all examples of the electrosurgical device 106 as shown and described herein.

[0063] At step 1202, a clinician actuates a first user input mechanism 146 of the handheld electrosurgical device 106 to deploy a surgical fluid 126, such as saline, from one or more flush ports defined by the distal portion of the device 106.

[0063] At steps 1204 and 1206, the clinician actuates the second user input mechanism 138 to cause an electric current to pass from the first electrode 406a through the target tissue 502 and return to the second electrode 406b of the device 106 in the presence of the surgical fluid 126, so as to properly seal, coagulate, etc. the target tissue 516.

[0064] At step 1208, the clinician actuates the third user input mechanism 148 of the handheld electrosurgical device 106 to enable the aspiration source 142, which is configured to aspirate any residual surgical fluid 126, ablated tissue, or other undesirable substances from the target treatment site via an aspiration port defined by the electrodes.

[0065] It should be understood that the individual operations of the techniques of the present disclosure can be performed in any order or simultaneously, as long as the techniques remain functional for the desired outcome or result.

[0066] Embodiments of the present disclosure can be applied to electrosurgical devices having additional functionality such as fluid flushing provided to the target treatment site and / or fluid aspiration from the target treatment site. In some such examples, the electrosurgical device can include a catheter, port, or passageway and be connected to a fluid source and / or pump. Providing aspiration and electrical energy to the tissue simultaneously advantageously allows for the aspiration of debris and / or tissue cut by the electrodes. Additional actuators can be included on the handpiece to control the flow or aspiration of the fluid.

[0067] Various examples of systems, devices, and techniques have been described herein. These examples are given by way of illustration only and are not intended to limit the scope of the claimed invention. Additionally, it should be understood that the various features of the described embodiments can be combined in various ways to produce many additional embodiments. Moreover, although various materials, dimensions, shapes, configurations, positions, etc. may have been described for use with the disclosed embodiments, other materials, dimensions, shapes, configurations, positions, etc. other than those disclosed can be utilized without exceeding the scope of the claimed invention.

[0068] Although the dependent claims in the claims may refer to specific combinations with one or more other claims, other embodiments can also include combinations of the dependent claims with the subject matter of each other dependent claim or combinations of one or more features with other dependent claims or independent claims. Such combinations are presented herein unless it is explicitly stated that a specific combination is not intended.

[0069] Any incorporation by reference of the above document is limited such that no subject matter contrary to the explicit disclosure herein is incorporated. Any incorporation by reference of the above document is further limited such that any claims contained in the document are not incorporated by reference herein. Any incorporation by reference of the above document is yet further limited such that any definitions provided in the document are not incorporated by reference herein unless expressly included herein.

[0070] For purposes of interpreting the claims, it is expressly intended that the provisions of 35 U.S.C. § 112(f) will not be invoked unless the specific terms "means for" or "step for" are recited in the claim.

Claims

1. An electrosurgical device, the electrosurgical device comprising: a proximal portion including an electrical connector configured to be electrically coupled to a generator configured to provide electrical energy; and a distal portion defining at least one irrigation port configured to deliver surgical fluid distally to a target treatment site; the distal portion including: a first electrode extending distally from an elongate shaft, wherein the first electrode is configured to provide the delivered current to the target treatment site, and wherein the first electrode defines a first suction port; and a second electrode extending distally from the elongate shaft, wherein the second electrode is configured to receive a return current from the target treatment site, and wherein the second electrode defines a second suction port; wherein the electrosurgical device is configured to aspirate the surgical fluid proximally from the target treatment site via the first suction port and the second suction port.

2. The electrosurgical device according to claim 1, wherein the at least one irrigation port includes a first irrigation port, a second irrigation port, a third irrigation port, and a fourth irrigation port defined by a distalmost end of the elongate shaft, wherein the first irrigation port is disposed laterally outward from the first electrode, wherein the second irrigation port and the third irrigation port are disposed laterally between the first electrode and the second electrode, and wherein the fourth irrigation port is disposed laterally outward from the second electrode.

3. The electrosurgical device according to claim 1, wherein the at least one irrigation port includes a first irrigation port and a second irrigation port defined by a distalmost end of the elongate shaft, wherein the first irrigation port is disposed laterally outward from the first electrode, and wherein the second irrigation port is disposed laterally outward from the second electrode.

4. The electrosurgical device according to claim 1, wherein the at least one irrigation port includes a first irrigation port, a second irrigation port, a third irrigation port, and a fourth irrigation port, wherein a first outer lateral surface of the first electrode defines the first irrigation port and the second irrigation port, and wherein a second outer lateral portion of the second electrode defines the third irrigation port and the fourth irrigation port.

5. The electrosurgical device according to claim 1, wherein the at least one irrigation port is substantially circular.

6. The electrosurgical device according to claim 1, wherein the at least one irrigation port is substantially slit-shaped.

7. The electrosurgical device according to claim 1, wherein the first electrode and the second electrode define a substantially tubular shape such that distal end portions of the first electrode and the second electrode respectively define the first suction port and the second suction port.

8. The electrosurgical device according to claim 1, wherein a first inner lateral surface of the first electrode defines the first suction port, and wherein a second inner lateral surface of the second electrode defines the second suction port.

9. The electrosurgical device according to claim 1, wherein the surgical fluid comprises saline.

10. A method of performing an electrosurgical procedure, the method comprising: delivering a surgical fluid to a target treatment site within a patient via at least one irrigation port defined by a distal portion of the electrosurgical device; applying the delivered current to the target treatment site via a first electrode defining a first aspiration port; receiving a return current from the target treatment site via a second electrode defining a second aspiration port; and aspirating the surgical fluid from the target treatment site via the first aspiration port and the second aspiration port.

11. The method according to claim 10, wherein the at least one irrigation port comprises a first irrigation port, a second irrigation port, a third irrigation port, and a fourth irrigation port defined by a distal-most end of the elongate shaft, wherein the first irrigation port is disposed laterally outward from the first electrode, wherein the second irrigation port and the third irrigation port are disposed laterally between the first electrode and the second electrode, and wherein the fourth irrigation port is disposed laterally outward from the second electrode.

12. The method according to claim 10, wherein the at least one irrigation port comprises a first irrigation port and a second irrigation port defined by a distal-most end of the elongate shaft, wherein the first irrigation port is disposed laterally outward from the first electrode, and wherein the second irrigation port is disposed laterally outward from the second electrode.

13. The method according to claim 10, wherein the at least one irrigation port comprises a first irrigation port, a second irrigation port, a third irrigation port, and a fourth irrigation port, wherein a first outer lateral surface of the first electrode defines the first irrigation port and the second irrigation port, and wherein a second outer lateral portion of the second electrode defines the third irrigation port and the fourth irrigation port.

14. The method according to claim 10, wherein the at least one irrigation port is substantially circular.

15. The method according to claim 10, wherein the at least one irrigation port is substantially slit-shaped.

16. The method according to claim 10, wherein the first electrode and the second electrode define a substantially tubular shape such that distal-most ends of the first electrode and the second electrode define the first aspiration port and the second aspiration port, respectively.

17. The method according to claim 10, wherein a first inner lateral surface of the first electrode defines the first aspiration port, and wherein a second inner lateral surface of the second electrode defines the second aspiration port.

18. The method according to claim 10, wherein the surgical fluid comprises saline.

19. A medical system, the medical system comprising: a generator configured to provide electrical energy; and an electrosurgical device comprising: a proximal portion comprising an electrical connector configured to be electrically coupled to the generator; A distal portion that defines at least one irrigation port configured to deliver surgical fluid distally to a target treatment site; the distal portion includes: A first electrode that extends distally from the elongate shaft, wherein the First electrode is configured to provide the delivered current to the target treatment site, and wherein the first electrode defines a first suction port; and A second electrode that extends distally from the elongate shaft, wherein The second electrode is configured to receive the return current from the target treatment site, and wherein the second electrode defines a second suction port; Wherein the electrosurgical device is configured to aspirate the surgical fluid proximally from the target treatment site via the first suction port and the second suction port.

20. The medical system according to claim 19, wherein the first electrode and the second electrode are substantially tubular in shape such that the most distal end portions of the first electrode and the second electrode define the first suction port and the second suction port, respectively.

Citation Information

Patent Citations

  • Fluid-assisted electrosurgical devices, methods and systems

    US8882756B2