Electrosurgical System
The electrosurgical system dynamically adjusts RF energy based on tissue dryness to optimize sealing time and reduce thermal damage, addressing the reliance on surgeon skill and variability in bipolar instruments.
Patent Information
- Application Number
- JP2024039627
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-11-16
- Filing Date
- 2024-03-14
- Publication Date
- 2026-01-15
- Estimated Expiration
- 2039-11-05
AI Technical Summary
Surgical outcomes with bipolar electrosurgical instruments depend heavily on surgeon skill, and there is a risk of thermal tissue damage and necrosis due to variations in tissue type and pressure, making it difficult to assess the rate of tissue sealing or cutting effectively.
An electrosurgical system that dynamically adjusts RF energy delivery based on tissue dryness levels, using a controller to apply initial RF energy, reduce, and then increase it to a peak condition, maintaining this for a predetermined time before termination, optimizing sealing time and reducing thermal damage.
The system ensures consistent and efficient tissue sealing by dynamically controlling RF energy, reducing thermal damage and necrosis, and optimizing sealing time without compromising tissue integrity.
Smart Images

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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to and the benefit of U.S. Provisional Patent Application No. 62 / 768,782, entitled "Electrosurgical System," filed November 16, 2018, which is incorporated herein by reference in its entirety.
[0002] FIELD OF THE INVENTION This application relates generally to electrosurgical systems and methods, and more particularly, to electrosurgical generators and related instruments for sealing and cutting tissue. [Background technology]
[0003] There are available electrosurgical devices or instruments that use electrical energy to perform certain surgical tasks. Typically, electrosurgical instruments are surgical instruments such as graspers, scissors, tweezers, blades, and / or needles that include one or more electrodes configured to receive electrical energy from an electrosurgical generator. The electrical energy can be used to coagulate, lyse, or cut tissue.
[0004] Electrosurgical instruments typically fall into two categories: monopolar and bipolar. In monopolar instruments, electrical energy is delivered at a high current density to one or more electrodes on the instrument, while a separate return electrode is electrically coupled to the patient. The separate return electrode is often designed to minimize current density. While monopolar electrosurgical instruments can be useful for certain procedures, they can involve the risk of certain types of problems, such as electrical burns, that may be attributable in part to the function of the return electrode.
[0005] In a bipolar electrosurgical instrument, one or more electrodes are electrically coupled to a source of electrical energy of a first polarity. In addition, one or more other electrodes are electrically coupled to a source of electrical energy of a second polarity opposite the first polarity. Bipolar electrosurgical instruments, which operate without a separate return electrode, can deliver electrical signals to a tissue area of interest with reduced risk compared to monopolar electrosurgical instruments. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] U.S. Patent Application Serial No. 12 / 416,668 [Patent Document 2] U.S. Patent Application Serial No. 12 / 416,751 [Patent Document 3] U.S. Patent Application Serial No. 12 / 416,695 [Patent Document 4] U.S. Patent Application Serial No. 12 / 416,765 [Patent Document 5] U.S. Patent Application Serial No. 12 / 416,128 [Patent Document 6] U.S. Patent Application Serial No. 14 / 848,116 [Patent Document 7] U.S. Provisional Patent Application No. 61 / 994,215 [Patent Document 8] U.S. Provisional Patent Application No. 61 / 994,185 [Patent Document 9] U.S. Provisional Patent Application No. 61 / 994,415 [Patent Document 10] U.S. Provisional Patent Application No. 61 / 944,192 Summary of the Invention [Problem to be solved by the invention]
[0007] However, even with the relatively focused surgical effect of bipolar electrosurgical instruments, surgical outcomes often depend heavily on the skill of the surgeon. For example, thermal tissue damage and necrosis can occur in instances where electrical energy is delivered for a relatively long duration or where a relatively high-power electrical signal is delivered for a short duration. The rate at which tissue will achieve the desired dissolution, sealing, or cutting effect upon application of electrical energy varies based on tissue type and can also vary based on the pressure applied to the tissue by the electrosurgical device. However, it can be difficult for a surgeon to assess how quickly a mass of multiple tissue types captured by an electrosurgical instrument will achieve the desired amount of sealing. [Means for solving the problem]
[0008] Disclosed herein are methods, devices, and systems for dissolving or sealing tissue. In a first embodiment, a method for dissolving or sealing tissue is described. The method begins by initially applying a first amount of RF energy to an area of tissue. A dryness level of the area of tissue affected by the first amount of RF energy is then determined. Based on the determined dryness level, the amount of RF energy is reduced to a second amount. Following the reduction of RF energy to the second amount, increasing amounts of RF energy are applied to the area of tissue until a third amount is reached. The rate at which RF energy is added and the third amount are based on the determined dryness level. The third amount of RF energy is applied to the area of tissue for a predetermined period of time. Once the predetermined period has elapsed, application of RF energy to the area of tissue is terminated.
[0009] In another embodiment, an electrosurgical generator for use in dissolving or sealing tissue is described. The electrosurgical generator includes a controller and an RF amplifier that generates a corresponding amount of RF energy based on instructions provided by the controller. The controller first commands the RF amplifier to apply a first amount of RF energy to an area of tissue. The controller then determines a dryness level of the area of tissue affected by the first amount of RF energy. The controller then commands the RF amplifier to first reduce the amount of RF energy to a second amount based on the determined dryness level, and subsequently increase the amount of RF energy applied to the area to a third amount. The rate at which RF energy is added and the third amount are based on the determined dryness level. The controller commands the RF amplifier to maintain the third amount of RF energy applied to the area of tissue for a predetermined period of time. Once the predetermined period has elapsed, the controller commands the RF amplifier to terminate application of RF energy to the area of tissue.
[0010] In another embodiment, a system for dissolving or sealing tissue is described. The system includes an electrosurgical generator that generates RF energy and an electrosurgical instrument that dissolves or seals a section of tissue. The electrosurgical instrument receives RF energy from the electrosurgical generator to dissolve or seal the section of tissue. The amount of RF energy generated and provided to the electrosurgical instrument for use in dissolving or sealing the section of tissue is based on a determined dryness level of the section of tissue.
[0011] To illustrate the manner in which the above-listed and other advantages and features of the present disclosure can be obtained, a more particular description of the principles briefly described above will now be provided with reference to specific embodiments shown in the accompanying drawings. The principles herein will be explained and explained with additional specificity and detail through the use of the accompanying drawings in which reference numerals designate like parts throughout the drawings, with the understanding that these drawings are merely illustrative of embodiments of the present disclosure and, therefore, are not to be considered as limiting its scope. [Brief explanation of the drawings]
[0012] [Figure 1] 1 is a perspective view of an electrosurgical system according to various embodiments of the present invention; [Figure 2] 1 is a perspective view of an electrosurgical instrument according to various embodiments of the present invention; [Figure 3] 1 is a perspective view of an electrosurgical instrument according to various embodiments of the present invention; [Figure 4] 10A-10C are graphical representations of sample experimental data relating to a sealing process or aspect thereof using an electrosurgical system according to various embodiments of the present invention. [Figure 5] 10A-10C are graphical representations of sample experimental data relating to a sealing process or aspect thereof using an electrosurgical system according to various embodiments of the present invention. [Figure 6] 10A-10C are graphical representations of sample experimental data relating to a sealing process or aspect thereof using an electrosurgical system according to various embodiments of the present invention. [Figure 7] 10A-10C are graphical representations of sample experimental data relating to a sealing process or aspect thereof using an electrosurgical system according to various embodiments of the present invention. [Figure 8] 1 is a schematic block diagram of portions of an electrosurgical system according to various embodiments of the present invention; [Figure 9] 10A-10C are graphical representations of sample experimental data relating to a sealing process or aspect thereof using an electrosurgical system according to various embodiments of the present invention. [Figure 10] 1 is a flow chart illustrating operation of an electrosurgical system according to various embodiments of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0013] Various embodiments provide an electrosurgical instrument configured to lyse and cut tissue. In various embodiments, the electrosurgical device or instrument includes a first jaw and a second jaw. The second jaw opposes the first jaw to facilitate capturing tissue between the first and second jaws. Both the first and second jaws include electrodes. The electrodes on the first and second jaws are positioned to seal tissue captured between the first and second jaws using radio frequency (RF) energy.
[0014] Various embodiments also provide an electrosurgical system for sealing tissue. The electrosurgical system in various embodiments includes an electrosurgical generator and an electrosurgical instrument or device. The electrosurgical generator includes an RF amplifier and a controller. The RF amplifier delivers RF energy through a removably coupled electrosurgical instrument configured to seal tissue using RF energy alone. The controller and / or RF sensor are configured to monitor and / or measure the delivered RF energy and / or its components. In various embodiments, the controller signals the RF amplifier to adjust, e.g., increase, hold, reduce, and / or stop, the voltage of the delivered RF energy at predetermined points or conditions in the sealing cycle. In various embodiments, the controller signals the RF amplifier to pause the delivered RF energy or to initiate a termination of the delivered RF energy from the RF amplifier.
[0015] The various features and embodiments provided throughout may be used alone or in combination with other features and / or embodiments other than those expressly described, and although particular combinations of embodiments and features or aspects of various embodiments may not be explicitly described, such combinations are contemplated and are within the scope of the invention. Many of the features attendant to the present invention will be more readily appreciated as they become better understood by reference to the foregoing and following description and when considered in conjunction with the accompanying drawings.
[0016] Generally, an electrosurgical system is provided that includes an electrosurgical generator configured to optimally seal or lyse tissue and a removably coupled electrosurgical instrument. RF energy is supplied by the electrosurgical generator configured to provide the appropriate RF energy to seal tissue. The electrosurgical generator, according to various embodiments, determines the appropriate RF energy and appropriate manner of delivering the RF energy for the particular connected electrosurgical instrument, the particular tissue in contact with the electrosurgical instrument, and / or the particular surgical procedure being performed. Operatively, RF sealing or lysing of tissue between the jaws is provided to reduce sealing time and / or heat spread.
[0017] According to various embodiments, the electrosurgical system includes a dynamic pulsing system arranged to control and interrupt RF energy delivery to provide an optimal balance of hemostatic reliability, sealing time, and tissue adhesion for a wide range of tissues. In various embodiments, the electrosurgical system includes a dual or repeated sealing system arranged to reduce the application of RF energy for multiple actuations to reduce eschar (sealed tissue debris) buildup, tissue adhesion, and heat spread for already sealed tissues.
[0018] With reference to both Figures 1 and 2, an exemplary embodiment of an electrosurgical system is shown. The electrosurgical system includes an electrosurgical generator 10 (shown in Figure 1) and a removably connectable electrosurgical instrument 20 (shown in Figure 2). The electrosurgical instrument 20 can be electrically coupled to the electrosurgical generator 10 through a cabled connection 30 having an adapter 32 configured to connect to a tool or device port 12 on the electrosurgical generator 10. The electrosurgical instrument 20 can include audio, tactile, and / or visual indicators to notify a user of certain predetermined statuses of the electrosurgical instrument 20, such as the initiation and / or completion of a lysing or cutting operation. In other embodiments, the electrosurgical instrument 20 can be reusable and / or connectable to another electrosurgical generator for another surgical procedure. In some embodiments, a manual controller, such as a hand or foot switch, can be connectable to the electrosurgical generator 10 and / or the electrosurgical instrument 20 to enable predetermined, selective control of the electrosurgical instrument 20, such as to initiate a lysing or cutting operation.
[0019] According to various embodiments, electrosurgical generator 10 is configured to generate radio frequency (RF) electrosurgical energy and to receive data or information from an electrosurgical instrument 20 electrically coupled to electrosurgical generator 10. Electrosurgical generator 10, in one embodiment, outputs RF energy (e.g., 375 VA, 150 V, 5 A at 350 kHz) and, in one embodiment, is configured to measure the current and / or voltage of the RF energy and / or calculate the power of the RF energy or the phase angle or phase difference between the RF output voltage and the RF output current during activation or delivery of the RF energy. Electrosurgical generator 10 regulates the voltage, current, and / or power and monitors the RF energy output (e.g., voltage, current, power, and / or phase). In one embodiment, the electrosurgical generator 10 terminates RF energy output under predetermined conditions, such as when a device switch is deasserted (e.g., when a melt button is released), when a time value is satisfied, and / or when the active phase angle, current, voltage, or power, and / or changes thereto, are greater than, less than, or equal to a termination value, threshold, or condition, and / or changes thereto.
[0020] As shown in FIGURE 1, electrosurgical generator 10 includes at least one modern bipolar tool port 12, a standard bipolar tool port 16, and a power port 14. In other embodiments, an electrosurgical unit may include a different number of ports. For example, in some embodiments, electrosurgical generator 10 may include more or fewer than two modern bipolar tool ports, more or fewer than standard bipolar tool ports 11, and more or fewer power ports. In one embodiment, electrosurgical generator 10 includes only two modern bipolar tool ports.
[0021] According to various embodiments, each advanced bipolar tool port 12 is configured to be coupled to an advanced electrosurgical instrument having an attached or integrated memory module. The standard bipolar tool port 16 is configured to accept non-specialized bipolar electrosurgical tools that are different from the advanced bipolar electrosurgical instruments connectable to the advanced bipolar tool port 12. The power port 14 is configured to accept or connect to non-specialized bipolar electrosurgical tools and direct current (DC) auxiliary devices that are different from the advanced electrosurgical instruments. The power port 14 is configured to provide DC voltage. For example, in some embodiments, the power port 14 can provide approximately 12 volts DC. The power port 14 can be configured to power a surgical accessory, such as a ventilator, a pump, a light, or another surgical accessory. Thus, in addition to replacing a standard or non-specialized bipolar tool with the electrosurgical generator 10, the electrosurgical generator 10 can replace the power source of a surgical accessory. In some embodiments, replacing an existing generator and power supply with electrosurgical generator 10 can reduce the amount of storage space required on a storage rack card or shelf and reduce the number of main power cords required in the surgical workspace.
[0022] According to various embodiments, electrosurgical generator 10 can include a display 15. Display 15 can be configured to indicate, among other information, the status of the electrosurgical system, including the status of one or more electrosurgical instruments and / or accessories, connectors, or connections thereto.
[0023] Electrosurgical generator 10, according to various embodiments, can include a user interface, such as a plurality of buttons 17. The plurality of buttons 17 can enable user interaction with electrosurgical generator 10 (e.g., receiving user input), such as, for example, requesting an increase or decrease in electrical energy provided to one or more electrosurgical instruments connected to electrosurgical generator 10. In other embodiments, display 15 can be a touchscreen display, thereby integrating data display and user interface functions. In one embodiment, electrosurgical tool or instrument 20 can further include one or more memory modules. In some embodiments, the memory contains operational data related to the electrosurgical instruments and / or other instruments. For example, in some embodiments, the operational data can include information regarding electrode configuration / reconfiguration, electrosurgical instrument use, operation time, voltage, power, phase, and / or current settings, and / or specific operational status, conditions, scripts, processes, or procedures. In one embodiment, electrosurgical generator 10 can initiate reads and / or writes to the memory module.
[0024] According to various embodiments, the electrosurgical generator 10 provides the capability to read the phase difference or phase angle between the voltage and current of the RF energy sent through the connected electrosurgical instrument 20 while the RF energy is active. While tissue is being lysed, the phase readings are used to detect different conditions during the lysis or sealing and cutting process.
[0025] The electrosurgical generator 10, according to various embodiments, monitors, measures, or calculates the current, power, impedance, or phase of the RF output, but does not control the current, power, impedance, or phase. The electrosurgical generator 10 regulates the voltage and can also adjust the voltage. The delivered electrosurgical power is a function of the applied voltage, current, and tissue impedance. The electrosurgical generator 10 can affect the electrosurgical power, RF output, or energy being delivered through adjustment of the voltage. Power response is caused by power interacting with tissue or tissue conditions without any control by the generator other than by the powering generator.
[0026] Once electrosurgical generator 10 has begun delivering electrosurgical power, it continues to do so continuously, for example, for 150 ms, until a failure occurs or a specified parameter is reached. In one example, the jaws of the electrosurgical instrument may open, thereby relieving compression, at any time before, during, and after application of electrosurgical power. Similarly, electrosurgical generator 10, in one embodiment, does not pause or wait a specified duration or predetermined delay time to initiate termination of electrosurgical energy.
[0027] 3 , in accordance with various embodiments, a bipolar electrosurgical instrument 20 is provided. In the illustrated embodiment, the bipolar electrosurgical instrument 20 includes an actuator 24 coupled to an elongated rotatable shaft 26. The elongated rotatable shaft 26 has a proximal end and a distal end defining a central longitudinal axis therebetween. The elongated rotatable shaft 26 has a jaw 22 at its distal end and an actuator 24 at its proximal end. In one embodiment, the actuator 24 is a pistol-grip-like handle.
[0028] Actuator 24 includes a movable handle 23 and a stationary handle or housing 28. Movable handle 23 is coupled to and movable relative to stationary housing 28. According to various embodiments, movable handle 23 is slidably and pivotally coupled to stationary housing 28. In operation, movable handle 23 is manipulated by a user, e.g., a surgeon, to actuate the jaws, e.g., selectively open and close jaws 22.
[0029] According to various embodiments, the actuator 24 includes a latch mechanism for maintaining the movable handle 23 in the second position relative to the stationary housing 28. In various embodiments, the movable handle 23 has a latch arm that engages with a matching latch enclosed in the stationary handle or housing 28 to hold the movable handle 23 in the second, or closed, position. Also, in various embodiments, the actuator 24 includes a wire harness that includes individual insulated electrical wires or leads enclosed in a single sheath. The wire harness exits the stationary housing 28 at its underside and can form part of a cabled connection 30 (shown in FIG. 2 ). The wires within the harness can provide electrical communication between the electrosurgical instrument 20 and the electrosurgical generator 10 and / or its accessories.
[0030] In various embodiments, the switch is connected to a user-operated activation button 29 and is activated when the activation button 29 is depressed. In one aspect, when activated, the switch completes a circuit by electrically coupling at least two leads, thus establishing an electrical path from the electrosurgical generator 10 to the actuator 24, delivering RF energy to the electrosurgical instrument 20. In various embodiments, the electrosurgical instrument 20 has a translatable mechanical cutting blade that can be coupled to a blade actuator, such as a blade lever or trigger 25 of the actuator 24. The mechanical cutting blade is actuated by the blade trigger 25 to divide tissue between the jaws 22.
[0031] In one embodiment, the actuator 24 includes an elongated rotatable shaft 26 assembly that includes a rotation knob 27 disposed on an outer cover tube of the elongated rotatable shaft 26. The rotation knob 27 allows a surgeon to rotate the elongated rotatable shaft 26 of the electrosurgical instrument 20 while grasping the actuator 24. According to various embodiments, the elongated rotatable shaft 26 has an actuation tube that couples the jaws 22 to the actuator 24.
[0032] Attached to the distal end of the elongated rotatable shaft 26 is a jaw 22 having a first or upper jaw 31 and a second or lower jaw 33. In one embodiment, a jaw pivot pin pivotally couples the first jaw 31 and the second jaw 33, allowing the first jaw 31 to move and pivot relative to the second jaw 33. In various embodiments, one jaw is fixed relative to the elongated rotatable shaft 26 so that the opposing jaw pivots between open and closed positions relative to the fixed jaw. In other embodiments, both the first jaw 31 and the second jaw 33 can be pivotally coupled to the elongated rotatable shaft 26 so that both the first jaw 31 and the second jaw 33 can pivot relative to each other.
[0033] The first or upper jaw 31 includes an electrode plate or pad. Similarly, the second or lower jaw 33 also includes an electrode plate or pad. The electrodes of the first or upper jaw 31 and the second or lower jaw 33 are electrically coupled to the electrosurgical generator 10 through wires and connectors to deliver RF energy to tissue captured between the electrodes of the first jaw 31 and the second jaw 33. Thus, the electrodes have opposite polarities and are arranged to transmit RF energy therebetween. In various embodiments, the first or upper jaw 31 also includes an upper jaw support, with an assembly spacer positioned between the upper jaw support and the electrode. Similarly, the first or upper jaw 31 includes or is overmolded. The second or lower jaw 33 also includes a lower jaw support and an electrode. In the illustrated embodiment, the electrodes are integrated or incorporated into the lower jaw support, so that the lower jaw support and electrodes form a monolithic structure and electrical connection. A blade channel extends longitudinally along the length of the first or upper jaw 31, the second or lower jaw 33, or both, through which the blade operatively passes. Surrounding a portion of the blade channel are one or more conductive posts. The conductive posts assist in immobilizing the tissue being cut. The conductive posts also participate in the transmission of RF energy to tissue captured between the jaws 22, thereby aiding in ensuring lysis of tissue being cut adjacent or near the blade channel. The second or lower jaw 33 can also include or be overmolded.
[0034] According to various embodiments, the electrodes have generally planar sealing surfaces that are positioned to contact and compress tissue captured between the jaws 22. The electrodes of the first or upper jaw 31 and the second or lower jaw 33 in various embodiments have sealing surfaces whose width remains uniform, constant, or unchanging throughout.
[0035] In various embodiments, the jaws 22 are curved at the target surgical site to enhance visualization and mobility of the jaws 22 during a surgical procedure. The jaws 22 have a proximal elongated portion that exhibits or aligns with a straight line and a curved distal portion that exhibits or defines a curve connected to the straight line. In various embodiments, the proximal-most portion of the proximal elongated portion has or defines a diameter equal to or not exceeding the maximum outer diameter of the jaws 22 or the elongated rotatable shaft 26. The jaws 22 in various embodiments have a maximum outer diameter within which the proximal-most portion of the jaws 22 and the distal-most portion of the jaws 22 reside. The curved distal portion has or defines a diameter smaller than the maximum outer diameter and the diameter of the proximal-most portion of the proximal elongated portion. In various embodiments, the jaws 22 have a notch at the inner curve that is deeper than the outer curve, and in various embodiments, the tip of the jaws 22 is tapered for blunt dissection. Jaw 22 includes a blade channel with a proximal elongated channel curving into a distal curved channel, where the proximal elongated channel is parallel to and offset from the longitudinal axis of elongated rotatable shaft 26 of electrosurgical instrument 20. Thus, visualization and maneuverability in jaw 22 are maintained or enhanced without increasing the size of the jaw, which may further reduce the surgical working area or require larger access devices or incisions into the patient's body.
[0036] In some embodiments, the electrode geometry of the conductive pads of the jaw assembly ensures that the sealing area or surface completely surrounds the distal portion of the cutting path. According to various embodiments, the dimensions of the jaw surface are related to the optimal pressure applied to the tissue between the jaws 22 and are appropriately proportionate to the potential force that the force mechanism can generate. Similarly, the surface area is electrically important in terms of the area that contacts the tissue. The ratio of this area to tissue thickness is optimized in relation to the relative electrical properties of the tissue.
[0037] In various embodiments, the second or lower jaw 33 and associated conductive pad have upper outer surfaces positioned to contact tissue. These upper surfaces are angled or sloped, mirror images of each other, and such positioning or orientation facilitates focused current density and tissue fixation. In various embodiments, the second or lower jaw 33 can be made of stainless steel and is as rigid as or more rigid than the conductive pad. In various embodiments, the second or lower jaw 33 includes a rigid insulator that can be made of a non-conductive material that is as rigid as or more rigid than the second or lower jaw 33 or conductive pad. In various embodiments, the second or lower jaw 33 and the conductive pad can be made of the same material.
[0038] According to various embodiments, an RF energy control process or system delivers RF energy and controls the delivered RF energy to seal or lyse tissue. At the start of a sealing cycle, the system is configured to apply RF energy having a rapidly increasing voltage. Thus, the system delivers RF energy having an increasing voltage over a minimal amount of time, resulting in a voltage profile of the delivered RF energy having a steep slope or rate of change. According to various embodiments, the system attempts to continue increasing the voltage of the RF energy to identify or determine a peak RF power condition. According to various embodiments, the peak RF power condition is indicated by a maximum current or power value resulting from the increasing voltage of the delivered RF energy. In various embodiments, the system attempts to increase the voltage of the delivered RF energy to reach and / or equal this peak RF power condition. However, determining this peak RF power condition or point may vary based on the type and / or volume of tissue in contact with the electrodes of the electrosurgical instrument. Thus, the high voltage ramps or pulses provided by the systems of the present invention have variable durations based on the tissue in contact with the instrument, rather than a static, fixed, or predetermined value, as illustrated in Figure 4. Similarly, electrode size and electrode contact with the tissue can further result in variations in this RF power peak requirement. Thus, determining the RF power peak requirement can be difficult.
[0039] As the system of the present invention attempts to reach this varying RF power peak condition, the amount of time the system of the present invention or electrosurgical generator delivers RF energy may also vary. For example, as shown in FIG. 5 , peak condition 121 occurs at different times for tissues of different volumes. For example, tissues with smaller volumes may experience their respective peak condition much earlier in the seal cycle (e.g., as much as 1250 ms later in the seal cycle) than tissues with potentially larger volumes. Thus, in various embodiments, peak conditions generally occur later for thicker tissues because thicker tissues require more time to heat up. Additionally, the height of the peak may depend on the area of the tissue. Larger tissues may experience higher peak values due to more tissues acting as or acting as electrical resistors in parallel. However, in various embodiments, the amount of time for rapidly increasing the voltage of RF energy applied to the tissue is limited to a set maximum time threshold or limit value, thereby avoiding applying RF energy for longer than necessary. Setting a fixed time without attempting to reach the RF power peak condition may result in applying RF energy for longer than necessary, especially for small tissue volumes. Additionally, using a fixed time may result in situations where RF energy is not applied for long enough, especially in the case of large tissue volumes.
[0040] Thus, various embodiments provide a dynamic voltage ramp that balances system performance at each end, allowing for near-ideal or optimal RF energy delivery initially or early, ultimately resulting in an optimal tissue seal. Rapidly achieving this RF power peak condition optimizes the overall tissue seal and reduces seal time without compromising or reducing tissue integrity. Various embodiments provide this dynamic voltage ramp or pulse by initially adjusting the RF energy voltage relatively high (e.g., 40% or more above maximum voltage) and then rapidly increasing the RF energy voltage (e.g., at a rate of 10 volts per millisecond) to achieve the RF power peak condition.
[0041] By using a dynamic ramp, for example, all tissue, regardless of volume, is quickly brought to the same RF power peak condition or water vaporization point. Therefore, the likelihood of not reaching or maintaining the water vaporization point for tissue (underpulsing) is reduced. Reducing the likelihood of underpulsing allows for the average RF delivery after a pulse to be shorter in duration or lower in power without affecting the quality of the seal. Additionally, the focus or attention of the inventive system can be directed toward efficiently removing water from tissue, rather than on tissue heating and the associated variability.
[0042] As discussed above, determining when an RF power peak condition occurs can be difficult, especially in real time. Noise or similar fluctuations or imprecision in the measurement of RF power can obscure or delay the determination of an RF power peak condition. In various embodiments, smoothing or filtering such imprecision can help enhance the detection or determination of an RF power peak condition. However, delays such as filtering in various embodiments can delay the determination of an RF power peak condition. A delay in identifying the determination of an RF power peak condition can cause the system of the present invention to overpulse the tissue.
[0043] According to various embodiments, to avoid or reduce this delay in identifying an RF power peak condition or the possibility of tissue overpulsing, the system of the present invention can provide an interruption system. The interruption system utilizes a predetermined interruption value based on an expected maximum value or window representing an RF power peak condition. In various embodiments, the interruption value is a percentage of the expected maximum value and / or a fixed threshold or gap (e.g., 400 mA or 30 W) below the expected maximum value or within the window. The system of the present invention monitors the RF power, e.g., current and / or power, and the interruption system ensures that the monitored current and / or power reaches this interruption value before the voltage is adjusted, e.g., dropped, ensuring that the RF power peak condition is quickly and accurately identified, thereby balancing both benefits. However, it is recognized that a small or large offset of the interruption value below the expected maximum value may increase the time that an extra high voltage of RF power is applied (e.g., overpulsing), but may reduce the likelihood that the system of the present invention will prematurely pause or reduce the voltage of the RF power (e.g., underpulsing), for example, due to noise triggering.
[0044] In various embodiments, the system records or stores the expected maximum value and looks to see if the next monitored value exceeds the stored expected maximum value. If the maximum value is exceeded, the monitored value is stored as a "new" maximum value. In various embodiments, the system monitors or records RF power at set intervals, such as every 50 ms, and compares the RF power value of interest to the stored expected maximum value to determine if a new maximum value has occurred.
[0045] According to various embodiments, the system of the present invention utilizes a series of states with exit conditions set at regular intervals. The states progress, or cascade, as RF energy is applied and values of interest change (e.g., power and / or current increase). Increasing the number of states increases the resolution of the cascade. However, although some accuracy in determining RF power peak conditions may be lost depending on the resolution of the cascade, a cascade of states or similar progression is less computationally intensive and requires no or minimal use of variables.
[0046] In various embodiments, the cutoff value or range is calculated by multiplying the expected value by a percentage (e.g., 80%) from the expected maximum. A higher expected maximum may require a larger drop in the value of interest (e.g., current or power) to trigger or identify an RF power peak condition. In various embodiments, the cutoff value or range is calculated by subtracting a fixed offset (e.g., 400 mA or 30 W) from the expected maximum. Depending on the expected maximum, this may result in a value smaller or larger than the percentage calculation, but may be useful if the noise amplitude or similar inaccuracies of the inventive system are known so that the offset can be set to account for the inaccuracy (e.g., higher than the noise amplitude). The value of interest (e.g., current or power) may be checked against the cutoff value to ensure a peak is detectable, and in some scenarios, the value of interest (e.g., current or power) must at least reach the cutoff value before any adjustments to the voltage are made to ensure a peak can be identified. In various embodiments, the system of the present invention provides for a combination and / or sequence of offset and percentage modifications acting in parallel or serially to enhance identification or determination of RF power peak conditions, for example, when the expected maximum value reaches a certain threshold where a larger drop in the value of interest to account for known inaccuracies or to trigger is not desired.
[0047] In various embodiments, the systems of the present invention monitor the rate of change of a value of interest (e.g., current and / or power) to determine or predict an RF power condition. Thus, the systems of the present invention monitor the derivative or rate of change of the value of interest and transitions (e.g., a decrease in change or rate of change) to identify a peak RF power condition or an indication that a peak RF power condition is imminent or imminent.
[0048] In various embodiments, the system of the present invention is configured to adjust the current of the RF power to determine the RF power peak condition. Specifically, the system of the present invention, e.g., the RF amplifier of the generator, gradually ramps up the current of the delivered RF energy while the generator is placed in current regulation. If the current regulation value exceeds the tissue's ability to accept more current, the system of the present invention will no longer regulate the current, resulting in a sudden increase in voltage when the system of the present invention switches regulation. This voltage condition is then used as an indicator or determination of the RF power peak condition. This system regulation can therefore forgo the use of a percentage or offset system or process-provided expected maximum value of interest that is stored or utilized.
[0049] In various embodiments, the system of the present invention terminates the process, e.g., the delivery of RF energy, if an error or unexpected result occurs. In various embodiments, such errors include a short circuit detection error or an open circuit detection error. In one embodiment, a short circuit detection error is determined by the electrosurgical generator when the measured phase angle of the delivered RF energy by the electrosurgical generator equals or exceeds a predetermined value, e.g., 60 degrees. In one embodiment, an open circuit detection error is determined by the electrosurgical generator when the measured current of the delivered RF energy is equal to or less than a predetermined value, e.g., 100 mA, and / or the measured voltage of the delivered RF energy equals or exceeds a predetermined value, e.g., 50 V. Completion of the control process without error indicates a successful tissue seal. According to various embodiments, a successful tissue seal is recognized as being able to withstand a predetermined range of burst pressure or a specified threshold pressure.
[0050] Various embodiments have demonstrated that the formation of a tissue seal depends on the denaturation and cross-linking of native collagen present in the vascular extracellular matrix, initiated at approximately 60°C. The strength of this matrix is largely dependent on drying (or removal of water) at the seal site due to evaporation of water present in the sealed tissue. Additionally, temperatures of at least 80°C are sufficient to initiate bonding between the denatured collagen and other biological tissues. Furthermore, collagen degradation is dependent on the duration of exposure to elevated temperatures, rather than the peak temperature of exposure. Thus, exposing tissue to elevated temperatures (e.g., 100°C) during the relatively short duration of a sealing cycle does not affect the collagen structure but allows water evaporation. Various embodiments demonstrate that the total time required to seal the tissue depends on the heating of the structure to elevated temperatures, e.g., 100°C, to evaporate water and limit collagen-water hydrogen bonding, allowing the denatured collagen to cross-link and bond with the tissue. Therefore, to optimize sealing time, it has been found desirable to initiate the drying process by achieving 100°C within the captured tissue as quickly as possible.
[0051] Thus, according to various embodiments, after RF energy is initiated and / or various device checks are performed, the electrosurgical generator employs a dynamic voltage ramp through the delivered RF energy. Once the dynamic voltage ramp is complete, the system of the present invention reduces the voltage to a predetermined level and slowly ramps up the voltage of the delivered RF energy. During the ramp, a sufficient amount of power is applied to the tissue to maintain a temperature sufficient for desiccation, thereby allowing for continued vaporization at a rate that does not cause structural failure of the seal, improving the vessel sealing performance.
[0052] In one embodiment, application of high voltage levels can cause sealed tissue to adhere to the active electrode. Therefore, terminating the voltage ramp at a lower peak voltage and ultimately holding the voltage output constant allows for continued energy application while reducing the likelihood of tissue adhesion to the active electrode. Determining when to terminate the voltage ramp is accomplished, according to various embodiments, by monitoring the phase and current of the delivered RF energy. As the tissue dries, the phase becomes more capacitive and draws less current. Terminating the voltage ramp at a fixed current value when the current drops and the phase becomes capacitive can classify the level of tissue desiccation. This variable voltage setting allows the sealing cycle to adjust energy application based on electrical and structural differences in the tissue being sealed.
[0053] In various embodiments, the phase angle, current, and / or power of the applied RF energy are measured, calculated, and / or monitored to achieve the appropriate tissue effect. FIGS. 4 through 7 provide graphical representations of an exemplary sealing cycle according to various embodiments. As shown in FIG. 7, voltage 111a is shown compared to other RF output readings or indicators, such as power 111b, impedance 111c, energy 111d, current 111e, and phase 111f. Additionally, as shown in FIGS. 4 through 7, in various embodiments, the electrosurgical generator may be configured not to measure or calculate one or more of the indicators or readings (e.g., impedance) to reduce operating and power costs and wear and / or reduce the number of parts in the electrosurgical generator. Additional information or readings are typically provided or displayed for related purposes. Additionally, in various embodiments, impedance or temperature readings may not be used or measured because such readings may be inaccurate or impractical.
[0054] As shown in FIG. 7, the voltage of RF power 111a is increased for a relatively short period of time compared to the total sealing time early in the sealing cycle, generating a voltage ramp or pulse 131 of RF energy (shown in FIG. 6). According to various embodiments, the system of the present invention determines or reaches a peak RF power condition 121. Subsequently, after reaching the peak RF power condition 121, the voltage of the RF energy is reduced and ramped up more slowly than the voltage pulse. In various embodiments, the system of the present invention provides a gradual voltage ramp 132 to maintain the tissue between the jaws at a temperature near at least 100°C, thereby attempting to control the boiling rate of water in the tissue. In various embodiments, the phase angle, current, and / or power of the applied RF energy are monitored to achieve the appropriate tissue effect for tissue sealing. The voltage of the RF energy is then held constant 133 to reduce the likelihood of tissue adhesion. Upon completion of the seal (e.g., within a predetermined time frame or period by the system), the RF energy delivered by the system is terminated or the delivery of RF energy is paused, interrupted, or stopped 134. In various embodiments, the voltage ramp of RF energy is terminated and after a predetermined period by the system, the RF energy delivered by the system is terminated or the delivery of RF energy is paused, interrupted, or stopped.
[0055] In various embodiments, the system of the present invention identifies unintended current draw, for example, provided by some tissue bundles that draw the maximum current or power deliverable by the generator. While the system of the present invention is under such a current condition, the RF energy required to seal the tissue may not be delivered sufficiently or efficiently by the system of the present invention. To address such a condition, in various embodiments, the system of the present invention determines whether the current of the RF energy output is greater than 90% of the maximum allowable current, e.g., 4500 mA. If so, the system of the present invention further waits or delays to ensure that the current has sufficiently decreased, thereby indicating that sufficient desiccation of the tissue has occurred. If the current has not sufficiently decreased after such a delay, an error is indicated and / or the delivered RF energy is paused. In various embodiments, the system of the present invention determines or confirms that the current has sufficiently decreased when the current falls below a current threshold (e.g., 4100 mA). Thus, the system of the present invention determines that the current condition has ended and / or that the tissue has reached a vaporization or peak condition.
[0056] 8, in one embodiment, electrosurgical generator 10 is connected to an AC mains input and power supply 41 converts the AC voltage from the AC mains input to a DC voltage for powering the various circuits of electrosurgical generator 10. The power supply also provides the DC voltage to RF amplifier 42, which generates RF energy. In one embodiment, RF amplifier 42 converts the DC 100V from the power supply into a sinusoidal waveform having a frequency of 350 kHz, which is delivered through the connected electrosurgical instrument or tool 20. RF sensor circuit 43 measures / calculates the voltage, current, power, and phase at the output of electrosurgical generator 10, which supplies RF energy to the connected electrosurgical instrument or tool 20. The measured / calculated information is provided to controller 44.
[0057] In one embodiment, the RF sensor 43 analyzes the measured AC voltage and current from the RF amplifier 42 to generate DC signals related to the control signals, including voltage, current, power, and phase, which are sent to the controller 44 for further processing. In one embodiment, the RF sensor 43 measures the output voltage and current and calculates the root mean square (RMS) values of the voltage and current, the apparent power of the RF output energy, and the phase angle between the voltage and current of the RF energy supplied through the connected electrosurgical instrument or tool 20. In particular, the voltage and current of the output RF energy are processed by analog circuitry in the RF sensor to generate real and imaginary components of both the voltage and current. These signals are processed by a field programmable gate array (FPGA) to provide various measurements related to the voltage and current, including the RMS measurement of the AC signal, the phase shift between the voltage and current, and power. Thus, in one embodiment, the output voltage and current are measured analog, converted to digital, and processed by the FPGA to calculate the RMS voltage and current, the apparent power, and the phase angle between the voltage and current, before being converted back to analog for the controller 44.
[0058] In one embodiment, the controller 44 controls or signals the RF amplifier 42 to affect the output RF energy. For example, the controller 44 uses information provided by the RF sensor 43 to determine whether to output, adjust, or terminate RF energy. In one embodiment, the controller 44 determines whether or when predetermined current, power, and / or phase thresholds are reached or exceeded, and determines when to terminate the output of RF energy. In various embodiments, the controller 44 performs the lysis or sealing process described in more detail herein, and in some embodiments, the controller 44 receives instructions, settings, or script data for performing the sealing process from data transmitted from the electrosurgical instrument or tool 20.
[0059] The RF amplifier 42 generates high-power RF energy that passes through the connected electrosurgical instrument or tool 20. In one example, the electrosurgical instrument or tool 20 is used to melt or seal tissue. According to various embodiments, the RF amplifier 42 is configured to convert a 100V DC power source into a high-power sinusoidal waveform having a frequency of 350 kHz. The converted power is then delivered to the connected electrosurgical instrument or tool 20. The RF sensor 43 interprets the measured AC voltage and current from the RF amplifier 42 and generates DC signals related to control signals including voltage, current, power, and phase, which are interpreted by the controller 44.
[0060] The electrosurgical generator 10 (including the controller 44 and / or RF sensor 43) monitors and / or measures the RF energy being delivered to determine whether it is as expected. In various embodiments, the system (e.g., the controller and / or RF sensor) monitors the voltage and / or current of the RF energy to ensure that the voltage and current exceed predetermined thresholds. Similarly, the system (e.g., the controller and / or RF sensor) monitors, measures, and / or calculates the phase and / or power of the delivered RF energy. The system (e.g., the controller and / or RF sensor) ensures that the delivered RF energy voltage, current, phase, and / or power is within a predetermined voltage, current, phase, and / or power window or range. In one embodiment, the voltage, current, phase, and / or power window is predetermined by a predetermined maximum voltage, current, phase, and / or power and a predetermined minimum voltage, current, phase, and / or power, respectively. If the voltage, current, phase, and / or power of the RF energy falls outside their respective windows, an error is indicated. In one embodiment, the respective windows are slid or adjusted by the system as RF energy is being delivered to seal tissue between the jaws of the instrument. The adjustment of the respective windows is to ensure that the delivered RF energy is as expected. In various embodiments, the system monitors the phase and / or current, or the rate of change of the phase and / or current, of the delivered RF energy to determine whether the phase and / or current reaches or crosses a predetermined phase and / or current threshold. If a phase and / or current crossing occurs relative to the predetermined phase and / or current threshold, the RF energy is delivered for a predetermined period of time before being terminated.
[0061] According to various embodiments, the actuation engine of the controller 44 enables the electrosurgical generator 10 to be configurable to accommodate a variety of operating scenarios, including, but not limited to, many different electrosurgical instruments or tools, surgical procedures, and preferences. The actuation engine receives and interprets data from external sources and specifically configures the operation of the electrosurgical generator 10 based on the received data.
[0062] According to various embodiments, the actuation engine may receive configuration data from a database script file that is read from a memory device of the electrosurgical tool or instrument 20. The database script file defines the state logic used by the electrosurgical generator 10. Based on the states determined by the electrosurgical generator 10 and measurements made, the database script file may define or set the trip criteria along with the output levels for the electrosurgical generator 10. The database script file, in one embodiment, includes trigger events that include indications of a short circuit condition, for example, when the measured phase is greater than 60 degrees, or an open circuit condition, for example, when the measured current is less than 100 mA.
[0063] According to various embodiments, tissue that draws a relatively small amount of current or power after a dynamic voltage ramp may be small in volume or may already be highly desiccated, as shown, for example, in FIG. 9. Highly desiccated tissue may commonly be encountered in double or repeated sealing situations (e.g., when a surgeon activates an instrument to deliver RF energy again after an initial or already completed sealing cycle without moving the instrument or positioning the instrument on a different portion of tissue or on a completely different tissue). Double or repeated sealing results in the application of additional RF energy, including heat, thereby increasing the likelihood of eschar buildup, heat spread, and / or adhesion. In various embodiments, the systems of the present invention reduce or prevent RF output with high voltages when such repeated sealing occurs.
[0064] According to various embodiments, the system of the present invention identifies or determines the dryness level of tissue in contact with the instrument. The system of the present invention identifies the dryness level of tissue using low levels of current or power, high levels of impedance, low phase angle, low energy delivery, and / or a lack of water evaporation (e.g., water vapor) during the sealing cycle. Once the dryness level of tissue is identified, RF power is reduced, such as by providing RF energy for a limited time or power level. In various embodiments, a fixed threshold for any of these values can be used to trigger the condition (e.g., 500 mA) and / or the threshold can be calculated during the sealing cycle (e.g., 20% reduction from the expected maximum).
[0065] In various embodiments, the system of the present invention uses one or more of these thresholds to identify tissue that has already been sealed and trigger earlier in the sealing cycle. At the end of the sealing cycle, the first actuation and subsequent actuations will be very similar, and the tissue may be dry in both cases. However, at the beginning of the sealing cycle, the first actuation will draw more current or power (compared to subsequent seals that do not) due to the presence of water still in the tissue. In addition, the current or power drawn may change significantly as the tissue is sealed. Actuations on already sealed tissue may have a much lower rate of change, and therefore the system of the present invention utilizes the derivative of the measurement of interest, which can be used to identify significant changes being made to the tissue.
[0066] In various embodiments, the system tracks the phase of the RF output, particularly at the beginning of a seal cycle, to identify repeat seals and / or thin tissue. Double seals tend to have phase values greater than 20 degrees. Once a repeat seal or thin tissue segment is identified, an alternative RF path can be applied to the tissue.
[0067] In various embodiments, the systems of the present invention use a cascade of phase values that adjust RF power depending on the magnitude of the initial phase. For example, when the phase is between 20 and 25 degrees, a moderate reduction in RF energy is applied. However, when the phase is between 25 and 30 degrees, the applied RF energy is further or aggressively reduced to better ensure that that type of tissue is in contact with the instrument. Continuing with this example, phase angles greater than 30 degrees will result in the greatest or most aggressive reduction in RF energy.
[0068] Once highly dry or thin tissue is identified, varying the RF power results in less heat being applied, resulting in a better tissue seal. Adding or not reducing RF energy to this type of tissue can result in additional heat spread, eschar, adhesions, and / or longer procedure times without providing additional benefit to hemostasis.
[0069] According to various embodiments, the electrosurgical system includes a dual seal system that uses a threshold to stop the voltage ramp, provides a lower holding voltage across the seal, and / or uses a threshold to terminate or pause RF power and / or terminate the seal cycle. In various embodiments, the dual seal system can also provide a reduction in total seal time using a threshold to immediately exit the state rather than reaching a timeout value.
[0070] An exemplary RF energy control process, script, or system for an electrosurgical generator and associated electrosurgical tool for dissolving or sealing tissue, according to various embodiments, is shown in FIG. 10. In a first step 71, RF energy is delivered by the electrosurgical generator through a connected electrosurgical tool. The electrosurgical generator sets the voltage of the delivered RF energy to generate RF energy having a steep ramp, in step 72. According to various embodiments, the delivered or generated RF energy is a steep ramp in which the voltage increases from a predetermined initial value (e.g., 40 V) to a maximum value (e.g., 60 V) over a predetermined period of time (e.g., 75 ms) and / or the current increases from a predetermined initial value (e.g., 2500 mA) to a predetermined maximum value (e.g., 5000 mA) over the same predetermined period of time (e.g., 75 ms). The electrosurgical generator or system determines or identifies an RF power peak condition, in step 73, while continuing to deliver RF energy in the ramp manner performed in step 72.
[0071] In various embodiments, the system monitors or measures the current and / or power of the RF output to determine whether the current and / or power is decreasing or whether a predetermined threshold has been reached. This is done to further determine whether a peak condition has been reached. If a peak condition is not identified or reached, the system determines whether a double seal condition exists in step 74. In various embodiments, the system monitors or measures the current of the RF output to determine whether the current is decreasing or whether a predetermined current threshold has been reached, determining whether a double seal condition exists or is identified. If a peak condition and / or double or repeated seals are identified, the system modifies or adjusts the voltage of the RF output downward in step 75. In various embodiments, the system gradually ramps (in step 75) the RF energy from a predetermined initial value (e.g., 35 V) to a maximum value (e.g., 45 V) over a predetermined period of time (e.g., 500 ms).
[0072] The electrosurgical generator or system continues to deliver RF energy in a ramped manner as described above in step 75 (above) while monitoring, determining, or identifying a hold condition in step 76. In various embodiments, the electrosurgical generator or system measures, calculates, and / or monitors at least the phase, voltage, current, power, and / or change / rate of change of the delivered RF energy. If a hold condition (e.g., phase and current condition) is reached in step 76 or equals, exceeds, or falls below a predetermined threshold or value, the RF power is adjusted in step 77. In various embodiments, the electrosurgical generator attempts to hold the voltage of the delivered RF power constant and / or terminates the ramp. In various embodiments, if a phase condition or threshold reaches or falls below a predetermined phase threshold, and if a current condition or value reaches or falls below a predetermined current threshold, the electrosurgical generator adjusts the voltage of the delivered RF energy to be constant. If the phase and current conditions or thresholds have not been reached or crossed, the electrosurgical generator continues to deliver RF energy in a ramped manner (per step 75) and waits a predetermined period while monitoring for a hold condition (per step 76). In a constant voltage state (per step 77), the electrosurgical generator continues to deliver and / or adjust the delivered RF energy (per step 77) while monitoring, identifying, or determining an exit condition (per step 78). If an exit condition is determined or identified, the process is considered complete. A termination procedure is initiated, and / or the RF energy delivered by the generator is stopped (per step 79). The process is considered complete if a power condition or threshold representing an exit condition is reached or equals, exceeds, or falls below a predetermined threshold or value. At that time, a termination procedure can be initiated, and / or the RF energy delivered by the generator can be stopped. If the exit condition or threshold has not been reached or crossed, the electrosurgical generator continues to deliver RF energy while monitoring the power condition.
[0073] In various embodiments, impedance is measured before the start of the procedure to determine a short or open circuit condition by a low voltage measurement signal sent to the connected electrosurgical tool. In one embodiment, passive impedance is measured to determine whether the captured tissue is within the operating range of the electrosurgical tool (e.g., 2-200 Ω). If the initial impedance check is passed, RF energy is delivered to the electrosurgical tool, after which the impedance / resistance is not measured again or is ignored.
[0074] In various embodiments, the maximum current or power value is fixed or predetermined, stored in memory, or provided or set through an external input. According to various embodiments, the maximum current or power value is determined by the system of the present invention through application of RF energy and monitoring the current and / or power of the delivered RF energy to determine the current or power peak. In various embodiments, the maximum current or power value represents the vaporization point of tissue in contact with the electrosurgical instrument. In various embodiments, the generator provides a steep ramp of high voltage to quickly bring the tissue to the vaporization point.
[0075] According to various embodiments, the maximum phase value is determined by the system through application of RF energy and monitoring the phase to determine a phase peak indicative of a peak RF power condition. In various embodiments, the instrument is provided with a thermocouple or similar temperature sensor or detection system, such as a thermocouple embedded in the jaw face, to monitor the temperature of the tissue and potentially identify a rapid temperature rise that occurs until water evaporation begins, at which point a change in state will cause the temperature rise to stop as additional heat generates water vapor, thus identifying a peak RF power condition. According to various embodiments, the minimum impedance is determined by the system of the present invention through application of RF energy and monitoring the tissue impedance to determine an impedance trough indicative of a trough RF power peak. Thus, this process or system is somewhat inverted, and a minimum value or minimum window is determined rather than a maximum value.
[0076] In various embodiments, the electrosurgical generator applies a high voltage ramp or pulse to quickly bring the tissue to a peak RF power point or condition. In various embodiments, the peak RF power condition represents or corresponds to a water vapor point or condition, e.g., when bodily fluids in the tissue change state and begin to evaporate. This can be observed when water vapor begins to evolve from the sealed tissue. This point or condition, in various embodiments, is predetermined or identified when the power or current output of the applied or delivered RF energy reaches a maximum or peak. If the vapor point or peak point is not reached during a pulse (e.g., underpulsed), the subsequent voltage drop and gradual ramp-up of the sealing cycle is delayed. Underpulsed tissue begins its active sealing cycle or water removal much later than expected, resulting in less total water being removed in the same time period.
[0077] According to various embodiments, the electrosurgical generator is configured to provide additional adjustment of various parameters or functions associated with RF energy output, voltage, current, power, and / or phase, and the actuation engine is configured to utilize the various parameters or functions to adjust the RF energy output. In one exemplary embodiment, the control circuit provides additional adjustment control for direct adjustment of phase, where the voltage, current, and / or power output is adjusted to meet specified phase adjustment settings provided by the actuation engine.
[0078] According to various embodiments, the generator utilizes monitored, measured, and / or calculated values (e.g., control indicators) of voltage, power, current, and / or phase to recognize and act upon operating conditions. In various embodiments, additional measurements or calculations based on measurements associated with the RF power adjustment circuitry are provided by a script or actuation engine to recognize and act upon additional or different events associated with or triggered by the additional measurements or calculations against other measurements or thresholds. In one embodiment, the additional measurements include an error signal in combination with a pulse width modulation (PWM) duty cycle used to adjust voltage, current, and / or power output, or other similar adjustment parameters. A different or additional event or indicator that can be identified or triggered in various embodiments can be a transition from one adjustment control to another adjustment control (e.g., from current adjustment to power adjustment). In various embodiments, subsequent impedance or temperature checks or measurements may not be performed because such checks or measurements may be inaccurate and / or impractical.
[0079] In various embodiments, the generator utilizes multiple states, control points, or checks to identify phase, current, or power values for positive or negative trends, respectively. If the electrosurgical generator does not identify the expected trend, an error is signaled. Multi-state checks increase or enhance the resolution of the electrosurgical generator in identifying expected RF power trends across different types of tissue.
[0080] In various embodiments, the electrosurgical generator also monitors the phase or current, and / or the rate of change of the phase or current, to determine if the connected electrosurgical tool experiences an electrical open-circuit or short-circuit condition. In one example, the electrosurgical generator identifies an electrical short-circuit condition of a connected electrosurgical instrument by monitoring the phase of the applied or delivered RF energy. An electrical short-circuit condition is identified when the monitored phase is greater than a predetermined maximum phase value. Similarly, in one example, the electrosurgical generator identifies an electrical open-circuit condition of a connected electrosurgical instrument by monitoring the current of the applied or delivered RF energy. An electrical open-circuit condition is identified when the monitored current is less than a predetermined minimum current. In either or both cases, the electrosurgical generator indicates an error upon detecting an open-circuit and / or short-circuit condition, and the delivered RF energy is terminated.
[0081] In various embodiments, the predetermined processes described throughout this application are loaded into a memory module embedded in a connector removably connected to the electrosurgical instrument connection and / or cabled connection. In various embodiments, the device scripts or processes are programmed onto an adapter PCBA (printed circuit board assembly) stored in the device connector or wired into the circuitry in the device connector or controller during manufacturing / assembly. Script source files are written in a custom text-based language and compiled by a script compiler into a script database file readable only by the generator. The script file contains parameters specifically selected to configure the generator to output a specific voltage (e.g., 100V (RMS)), current (e.g., 5000mA (RMS)), and power level (e.g., 300VA). In various embodiments, a device key programmer device reads the script database file and then programs it into the memory of the adapter PCBA.
[0082] Turning now to some of the modes of operation of the electrosurgical tools or instruments described herein according to various embodiments, once a vessel or tissue bundle has been identified for lysis, the first jaw 31 and second jaw 33 are positioned around the tissue. The movable handle 23 is squeezed, thereby causing the first jaw 31 and second jaw 33 to pivot together to substantially capture the tissue. The actuator 24 has a first or initial position in which the jaws 22 are in an open position with the movable handle 23 positioned or spaced apart from the stationary housing 28.
[0083] When the surgeon depresses the activation button 29, radio frequency energy is applied to the tissue between the jaws 22. Once the tissue has been lysed, the actuator 24 can be resumed by releasing the movable handle 23 and moving it away from the stationary housing 28. To cut the tissue between the jaws 22, the user can actuate the blade trigger 25. Moving the blade trigger proximally moves the cutting blade distally, dividing the tissue between the jaws 22. When the surgeon releases the blade trigger 25, a blade spring returns the cutting blade to its original position. According to various embodiments, the actuator 24 has a cutting position in which the jaws 22 are in a closed position, the movable handle 23 is closed and latched, and the blade trigger 25 is depressed to advance the cutting blade to its distal-most position.
[0084] In various embodiments, an intermediate or unlatched position is provided in which the jaws 22 are at or near a closed position but the movable handle 23 is not latched. Thus, when the movable handle 23 is released, the movable handle 23 will return to its original or initial position. In one embodiment, the blade trigger 25 may not be actuated to cut tissue between the jaws 22, but the activation button or switch 29 can be activated to lyse tissue between the jaws 22. In various embodiments, a latched position is provided in which the jaws 22 are at or near a closed position and the movable handle 23 is latched. Thus, when the movable handle 23 is released, the movable handle 23 will not return to its original or initial position. In one embodiment, the activation button or switch 29 can be activated to lyse tissue between the closed jaws 22 and / or the blade trigger 25 can be activated to sever tissue between the jaws 22.
[0085] As described above, according to various embodiments, the electrosurgical instrument has a first (open) state in which the jaws 22 are spaced apart, and therefore the movable handle 23 is spaced apart from the stationary housing 28. In this manner, the electrosurgical instrument is positioned to capture tissue between the jaws 22. In the second (intermediate) state of the instrument, the jaws 22 are proximate to each other to capture tissue between the jaws 22, and similarly, the movable handle 23 and stationary housing 28 are proximate to each other. The surgeon can return from the second state to the first state by opening the jaws 22, thereby repositioning the jaws 22 to capture that or other tissue. In the third (closed) state of the electrosurgical instrument, the movable handle 23 is brought closer to the stationary housing 28. In some embodiments, the movable handle 23 can latch to the stationary housing 28. Upon moving to the third state, tissue captured between the jaws 22 can be severed by actuation of the blade trigger 25. Movement of the movable handle 23 to the third state, in which the movable handle 23 is latched to the stationary housing 28, reduces the possibility of unintentional tissue release. This also better avoids inadvertent cutting of tissue or cutting of tissue along the wrong tissue line. Additionally, the third (closed) state allows for a constant, continuous, predetermined compression or range of compression to be applied to the tissue between the jaws 22 before, during, and after activation of RF energy, thereby enhancing the sealing or lysis of the tissue between the jaws 22. According to various embodiments, application of RF energy can occur immediately when the movable handle 23 and jaws 22 are in at least the second state and the activation button 29 is activated by the surgeon. In some embodiments, application of RF energy can occur immediately when the movable handle 23 and jaws 22 are in the third state and the activation button 29 is activated by the surgeon.
[0086] It should be noted that in various embodiments, to avoid false readings, the electrosurgical generator does not measure the resistance or impedance of the tissue during delivery of RF energy to the tissue. Various embodiments provide an electrosurgical system that reduces heat spread and provides efficient power delivery through the controlled and efficient delivery of RF energy to seal blood vessels or tissue in contact with a bipolar electrosurgical instrument.
[0087] As described throughout this application, an electrosurgical generator supplies RF energy to a connected electrosurgical instrument. The electrosurgical generator ensures that the supplied RF energy does not exceed specified parameters and detects fault or error conditions. In various embodiments, the electrosurgical instrument provides the instructions or logic used to properly apply RF energy for a surgical procedure. For example, the electrosurgical instrument includes a memory with instructions and parameters that command the operation of an instrument interfaced with the electrosurgical generator. For example, the electrosurgical generator may supply RF energy, but the connected electrosurgical instrument determines the amount or duration of RF energy application. However, the electrosurgical generator will not allow the supply of RF energy to exceed a set threshold, even if indicated by the connected electrosurgical instrument, thereby providing a deterrent or guarantee against erroneous instrument command.
[0088] As generally described above and in more detail below, various electrosurgical instruments, tools, or devices can be used in the electrosurgical systems described herein. For example, electrosurgical graspers, scissors, tweezers, probes, needles, and other instruments incorporating one, some, or all of the aspects described herein can provide various advantages in electrosurgical systems. Various electrosurgical instrument and generator embodiments and combinations thereof are described throughout this application. It is contemplated that one, some, or all of the features generally described throughout this application can be included in any of the instrument, generator, and combination embodiments described herein. For example, each of the described instruments preferably includes a memory for interacting with the generator described above, and vice versa. However, in alternative embodiments, the described instruments and / or generators can be configured to interact with a standard bipolar radio frequency power source without interacting with an instrument memory. Additionally, while for ease of explanation, various embodiments may be described in terms of modules and / or blocks, such modules and / or blocks may be implemented by one or more hardware components, e.g., processors, digital signal processors (DSPs), programmable logic devices (PLDs), application specific integrated circuits (ASICs), circuits, registers, and / or software components, e.g., programs, subroutines, logic, and / or combinations of hardware and software components. Similarly, such software components may be substituted for hardware components or combinations thereof, and vice versa.
[0089] Further examples of electrosurgical units, instruments, and connections therebetween, and their operation and / or functionality, are set forth in U.S. patent application Ser. Nos. 12 / 416,668, entitled "Electrosurgical System," filed April 1, 2009; 12 / 416,751, entitled "Electrosurgical System," filed April 1, 2009; 12 / 416,695, entitled "Electrosurgical System," filed April 1, 2009; 12 / 416,765, entitled "Electrosurgical System," filed April 1, 2009; 12 / 416,128, entitled "Electrosurgical System," filed March 31, 2009; and 14 / 848,116, entitled "Electrosurgical System," filed September 8, 2015, the entire disclosures of which are hereby incorporated by reference as if fully set forth herein. Certain aspects of these electrosurgical generators, tools, and systems are described herein, and additional details and examples regarding various embodiments are described in U.S. Provisional Patent Application Nos. 61 / 994,215, filed May 16, 2014, and entitled "Electrosurgical Lysis Device," 61 / 994,185, filed May 16, 2014, and entitled "Electrosurgical Generator with Synchronized Detector," 61 / 994,415, filed May 16, 2014, and entitled "Electrosurgical System," and 61 / 944,192, filed May 16, 2014, and entitled "Electrosurgical Generator," the entire disclosures of which are hereby incorporated by reference as if fully set forth herein.
[0090] The foregoing description is provided to enable any person skilled in the art to make and use the surgical devices and practice the methods described herein, and sets forth the best modes of carrying out the invention contemplated by the inventors. However, various modifications will be apparent to those skilled in the art. These modifications are contemplated to be within the scope of this disclosure. In addition, different embodiments or aspects of such embodiments may be illustrated in the various figures and described throughout the specification. It should be noted, however, that each embodiment and aspect thereof shown or described separately may be combined with one or more of the other embodiments and aspects thereof, unless otherwise specified. The lack of explicit description of each combination is solely for the purpose of facilitating the reading of this specification. Likewise, the embodiments of the present invention are to be considered in all respects as illustrative and not restrictive. [Explanation of symbols]
[0091] 71 The first stage in which RF energy is delivered by an electrosurgical generator 72 Setting the voltage of the supplied RF energy 74. Determining whether a double seal condition exists 75. Changing or adjusting the RF output voltage downward 76. Monitoring, determining, or identifying a holding condition while continuing to apply RF energy in a ramped manner.
Claims
1. 1. An electrosurgical generator for fusing or sealing tissue, comprising: an RF amplifier configured to supply RF energy to an electrosurgical instrument connected to the electrosurgical generator; a controller, The controller determining one or more characteristics associated with the region of tissue; directing an RF amplifier to provide a predetermined amount of RF energy to the region of tissue based on the determined one or more characteristics; detecting a change in one or more properties of the region of tissue; instructing the RF amplifier to vary the RF energy by a predetermined amount based on the detected change in the one or more characteristics; instructing an RF amplifier to terminate a predetermined amount of RF energy delivered to the electrosurgical instrument; It is configured as follows: at least one of the one or more characteristics determined by the controller is a dryness level of the region of tissue; the controller is configured to determine a level of dryness of the tissue region by determining an amount of vapor generated from the tissue region during a sealing cycle. Electrosurgical generator.
2. the predetermined amount of RF energy provided by the RF amplifier is provided for a predetermined period of time; 10. The electrosurgical generator of claim 1.
3. the RF amplifier terminating RF energy supplied to the electrosurgical instrument after the predetermined period of time has elapsed.
3. An electrosurgical generator according to claim 2.
4. a user interface configured to receive user input, wherein the controller instructs the RF amplifier to modify the predetermined amount of RF energy based on the received user input.
10. The electrosurgical generator of claim 1.
5. the amount of RF energy provided by the RF amplifier is based on the type of electrosurgical instrument connected to the electrosurgical generator; 10. The electrosurgical generator of claim 1.
6. determining the level of dryness of the area of tissue is performed by using a low level of current or power during a sealing cycle from the area of tissue; 10. The electrosurgical generator of claim 1.
7. An electrosurgical generator for fusing or sealing tissue, comprising: an RF amplifier configured to supply RF energy to an electrosurgical instrument connected to the electrosurgical generator; a controller, The controller determining one or more characteristics associated with the region of tissue; directing an RF amplifier to provide a predetermined amount of RF energy to the region of tissue based on the determined one or more characteristics; detecting a change in one or more properties of the region of tissue; instructing the RF amplifier to vary the RF energy by a predetermined amount based on the detected change in the one or more characteristics; instructing an RF amplifier to terminate a predetermined amount of RF energy delivered to the electrosurgical instrument; It is configured as follows: at least one of the one or more characteristics determined by the controller is a dryness level of the region of tissue; the controller's determination of the level of desiccation of the region of tissue is based on a predetermined threshold related to the amount of current or power supplied to the region of tissue to distinguish between already sealed tissue and tissue that has not yet been sealed; Electrosurgical generator.
8. determining the level of desiccation of the region of tissue is performed by using a high level of impedance during a sealing cycle from the region of tissue; 10. The electrosurgical generator of claim 1.
9. determining a level of desiccation of the region of tissue by using a low phase angle during a sealing cycle from the region of tissue; 10. The electrosurgical generator of claim 1.
10. determining a level of dryness of the region of tissue by using low energy delivery during a sealing cycle from the region of tissue; 10. The electrosurgical generator of claim 1.
11. determining one or more characteristics associated with the region of tissue includes calculating an RF power peak condition corresponding to a maximum current or power value resulting from an increased voltage from the predetermined amount of RF energy provided to the region of tissue; 10. An electrosurgical generator according to claim 1 or 7.
12. the controller is configured to detect one or more errors and, upon detection of at least one of the one or more errors, instruct the RF amplifier to terminate the predetermined amount of RF energy provided to the region of tissue.
10. An electrosurgical generator according to claim 1 or 7.
13. the one or more errors include a short circuit detection error and an open circuit detection error; 13. An electrosurgical generator according to claim 12.
14. at least one of the one or more properties associated with the region of tissue is temperature, and the controller is configured to maintain the temperature of the region of tissue at 100°C; 10. An electrosurgical generator according to claim 1 or 7.
15. the controller is configured to download a script that configures the electrosurgical generator for a particular surgical procedure, the script being stored in a memory storage device associated with the electrosurgical instrument; 10. An electrosurgical generator according to claim 1 or 7.
16. the controller is configured to identify a current peak condition; The current peak condition is establishing a cutoff value, the cutoff value being based on a percentage of a maximum amount of voltage or current measurement of RF energy that may be applied to a region of tissue; detecting that the voltage or current measurement is greater than an interrupt value; Identified by, 10. An electrosurgical generator according to claim 1 or 7.
Citation Information
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