GB2390024A - Electro-surgical system with protection against unwanted low impedance conduction paths between electrodes. - Google Patents

Electro-surgical system with protection against unwanted low impedance conduction paths between electrodes. Download PDF

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Publication number
GB2390024A
GB2390024A GB0214907A GB0214907A GB2390024A GB 2390024 A GB2390024 A GB 2390024A GB 0214907 A GB0214907 A GB 0214907A GB 0214907 A GB0214907 A GB 0214907A GB 2390024 A GB2390024 A GB 2390024A
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United Kingdom
Prior art keywords
electrodes
radio frequency
electrosurgical
characteristic
controller
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Granted
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GB0214907A
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GB2390024B (en
GB0214907D0 (en
Inventor
Alistair Ian Fleming
Huw Leonard Jones
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Gyrus Medical Ltd
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Gyrus Medical Ltd
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Priority to GB0214907A priority Critical patent/GB2390024B/en
Publication of GB0214907D0 publication Critical patent/GB0214907D0/en
Priority to AT03253587T priority patent/ATE527953T1/en
Priority to EP03253587A priority patent/EP1374788B1/en
Priority to US10/464,778 priority patent/US7220260B2/en
Publication of GB2390024A publication Critical patent/GB2390024A/en
Application granted granted Critical
Publication of GB2390024B publication Critical patent/GB2390024B/en
Priority to US11/797,063 priority patent/US7901401B2/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/04Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
    • A61B18/12Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating by passing a current through the tissue to be heated, e.g. high-frequency current
    • A61B18/1206Generators therefor
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00636Sensing and controlling the application of energy
    • A61B2018/00642Sensing and controlling the application of energy with feedback, i.e. closed loop control
    • A61B2018/00648Sensing and controlling the application of energy with feedback, i.e. closed loop control using more than one sensed parameter
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00636Sensing and controlling the application of energy
    • A61B2018/00696Controlled or regulated parameters
    • A61B2018/00702Power or energy
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00636Sensing and controlling the application of energy
    • A61B2018/00773Sensed parameters
    • A61B2018/00827Current
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00636Sensing and controlling the application of energy
    • A61B2018/00773Sensed parameters
    • A61B2018/00875Resistance or impedance
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00636Sensing and controlling the application of energy
    • A61B2018/00773Sensed parameters
    • A61B2018/00892Voltage
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/04Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
    • A61B18/12Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating by passing a current through the tissue to be heated, e.g. high-frequency current
    • A61B18/14Probes or electrodes therefor
    • A61B2018/1472Probes or electrodes therefor for use with liquid electrolyte, e.g. virtual electrodes

Abstract

An electro-surgical system comprises a rf generator 60 (10 fig 1) producing a rf signal carried by leads 60c to a surgical instrument (12, fig 1) having two adjacent electrodes 62 (2,3 fig 1) which are connected to the patient load 64. The electrodes are separated by an insulating spacer (4 fig 1) which may separate the electrodes by a distance of 0.25mm to 3.0mm. A control system 72 monitors a characteristic of the output 60C of the generator or the signal at the electrodes, such as the voltage 68 or current 80 at the electrodes or the impedance measured across the electrodes. The rf signal is interrupted 68A, so that the power is substantially zero, preferably for a fixed period of time, 68b, 70 such as 5 seconds, if analysis of the characteristic indicates the onset of a 'flare-out' condition where a second, low impedance conduction path has formed between the electrodes, possibly due to debris adhered to the instrument. The indication of 'flare-out' can be the changeability of the characteristic such as the rate of change of the impedance, or sudden large changes in the voltage or current, or possibly an increase in the number or amplitude of high frequency components of the current or voltage.

Description

1 2390024
Electrosurpcal System s This invention relates to an electrosurgical system, and in particular to one in which an electrosurgical generator provides a radio frequency cutting signal to a bipolar surgical instrument.
A typical bipolar cutting instrument, which may also be capable of tissue coagulation, comprises first and second electrodes separated by an insulating spacer.
0 An early example of a bipolar RF cutting device is US 4,706,667 issued to Roos, in which the return or "neutral" electrode is set back from the active electrode. In a series of patents (including US 4,674,498, US 4, 850,353, US 4,862,890 and US 4,958,539) Stasz proposed a variety of cutting blade designs. These were designed with relatively small gaps between two electrodes such that arcing would occur therebetween when an 15 RF signal was applied to the blade, the arcing causing the cutting of the tissue. an alternative arrangement, described in our co-pending patent applications GB 0130975.6 and US 10/105811, a device is provided in which the spacing of the electrodes is designed such that direct arcing between the electrodes does not occur, but arcing does occur between one of the electrodes and the tissue at the target site.
20 Normal use of this instrument has proved very satisfactory, but in exceptional circumstances (especially where the instrument has been used in an overly aggressive manner) a situation hereinafter referred to as a "flare-out" may develop. It is not uncommon for small particles of condensed tissue and other debris to become attached to the electrodes, and ordinarily this poses no particular problem. However in 2s the case of a flare-out, the debris forms a conductive track between the electrodes, allowing current to flow directly therebetween. This low impedance electrical pathway from one electrode to the other, if allowed to continue for a period of several seconds, may conduct sufficient current that a failure of the device may occur. This may be by way of a failure of the insulating material forming the spacer, either by the insulating 30 material experiencing such high temperatures that it becomes conductive, or by the temperature differentials throughout the insulator causing a physical cracking of the material. Alternatively, the extreme temperatures caused by the current flow may
produce a physical melting of the electrode material itself.
The present invention provides a way in which this condition, although rarely occurring, can be prevented from causing a failure of the device. Accordingly, there is provided an electrosurgical system including a radio frequency generator, an 5 electrosurgical instrument comprising at least first and second electrodes and an insulating spacer separating the first and second electrodes, the radio frequency generator being adapted to supply a radio frequency signal between the first and second electrodes, means for measuring a characteristic of the output of the radio frequency generator, and a controller adapted to analyse the measured characteristic and change lo the radio frequency signal supplied between the first and second electrodes when an aspect of the characteristic meets a predetermined criterion indicating the onset of a "flare-out". Conveniently, the characteristic of the output of the radio frequency generator which is measured is the voltage across the first and second electrodes, or Is alternatively the current flowing therebetween. It has been discovered that there are a number of criteria which may indicate the onset of a flare-out. These include rapid changes in the impedance experienced between the electrodes, leading to large and sudden changes in the voltage between the electrodes or the current flowing therebetween. There may be an increase in the number or amplitude of high frequency 20 components of the current or voltage signal, or an increase in the D.C. thermionic current sensed between the electrodes. In a preferred arrangement, the predetermined criterion indicating the onset of a flare-out is the changeability of the measured characteristic, typically the rate of change of the impedance between the electrodes, or the changeability as represented by the sum of the differences between successive 2s impedance measurements.
Preferably, the controller is adapted to change the radio frequency signal by reducing the power thereof when the predetermined criteria indicating the onset of a flare-out is met. Alternatively, the controller may reduce the voltage of the radio frequency signal, or even the frequency thereof. Where the radio frequency signal 30 comprises a signal having dual components at a first and second frequency, the controller may change the signal by adjusting the relative proportions of the first and second frequency components. Preferably, however, the controller is adapted to reduce the power of the radio frequency signal, and may reduce it substantially to zero when
the characteristic meets the predetermined criterion. Conveniently, the power is reduced substantially to zero for a period of at least 5 seconds, allowing time for the instrument to be withdrawn from the surgical site and the electrodes to be cleaned if necessary. Alternatively the power is reduced to zero until the operator of the 5 instrument manually resets the instrument.
In one convenient arrangement, the controller is adapted to reduce the power of the radio frequency signal supplied between the first and second electrodes only when the aspect of the characteristic meets the predetermined criterion for a predetermined period of time. This serves to ensure that * false detection of a flare-out lo is not triggered by a transient change in the measured characteristic. The system may require a series of repeated measurements of the characteristic to all fit the predetermined criteria before action is taken.
Although potentially of use with other types of instrument, the present invention is primarily designed to be employed with instruments in which the first and 5 second electrodes and the insulating spacer are such that the spacing between the electrodes is between 0.25 mm and 3.0 mm.
According to one preferred construction, an electrosurgical system includes a radio frequency generator, an electrosurgical instrument comprising at least first and second electrodes and an insulating spacer separating the first and second electrodes, 20 the radio frequency generator being adapted to supply a radio frequency signal between the first and second electrodes, means for measuring the impedance between the first and second electrodes, and a controller adapted to analyse the impedance measurements and interrupt the radio frequency signal supplied between the first and second electrodes when the changeability of the impedance exceeds a predetermined threshold 2s value.
The invention further resides in an electrosurgical generator for supplying radio frequency power to an electrosurgical instrument which includes at least first and second electrodes, the radio frequency generator including a radio frequency output stage having at least a pair of RF output lines for connection to the first and second 30 electrodes respectively, a power supply coupled to the output stage for supplying power to the output stage, and a controller capable of varying the RF signal applied to the RF output lines, wherein there is provided means for measuring a characteristic of the radio frequency signal across the output lines, the controller being adapted to analyse the
measured characteristic and change the radio frequency signal supplied to the output stage when an aspect of the characteristic meets a predetermined criterion indicating the onset of a "flare-out".
More specifically, the present invention relates to an electrosurgical 5 generator for supplying radio frequency power to an electrosurgical instrument which includes at least first and second electrodes, the radio frequency generator including a radio frequency output stage having at least a pair of RF output lines for connection to the first and second electrodes respectively, a power supply coupled to the output stage for supplying power to the output stage, and a controller capable of varying the RF lo signal applied to the RF output lines, wherein there is provided means for measuring the impedance across the output lines, the controller being adapted to analyse the impedance measurements and interrupt the radio frequency signal supplied to the output stage when the changeability of the impedance exceeds a predetermined threshold value.
is Finally, the present invention extends to a method of cutting tissue at a target site comprising providing a bipolar cutting blade comprising first and second electrodes and an electrical insulator spacing apart the electrodes, bringing the blade into position with respect to the target site such that one electrode is in contact with tissue at the target site and the other is adjacent thereto, supplying an electrosurgical 20 voltage to the cutting blade such that arcing does not occur in air between the first and second electrodes but that arcing does occur between one of the electrodes and the tissue at the target site, measuring the impedance between the first and second electrodes, and interrupting the electrosurgical voltage when the changeability of the impedance exceeds a predetermined threshold value.
25 The present invention will now be further described, by way of example only, with reference to the accompanying drawings, in which, Figure 1 is a schematic diagram of an electrosurgical system in accordance with the present invention; Figure 2 is a schematic side view of an electrosurgical instrument suitable 30 for use in the system of Figure 1, Figure 3 is a schematic block diagram of the generator of the system of Figure 1, and Figures 4 and S are schematic representations of the impedance measured
s across the electrodes of the system of Figure 1, in normal operation and in the event of a flare-out, respectively.
Referring to Figure 1, a generator 10 has an output socket 105 providing a radio frequency (RF) output for an instrument 12 via a connection cord 14. Activation 5 of the generator may be performed from the instrument 12 via a connection in cord 14 or by means of a footswitch unit 16, as shown, connected to the rear of the generator by a footswitch connection cord 18. In the illustrated embodiment footswitch unit 16 has two footswitches 16A and 16B for selecting a coagulation mode and a cutting mode of the generator respectively. The generator front panel has push buttons 20 and 22 for lo respectively setting coagulation and cutting power levels, which are indicated in a display 24. Push buttons 26 are provided as an alternative means for selection between coagulation and cutting modes.
Referring to Figure 2, the instrument 12 comprises a blade shown generally at 1 and including a generally flat first electrode 2, a larger second electrode 3 and an l5 electrical insulator 4 separating the first and second electrodes. The first electrode 2 is formed of stainless steel while the second electrode 3 is formed from copper. The surface of the second electrode is plated with a biocompatible material such as stainless steel, or alternatively with a non-oxidising material such as gold, platinum or palladium. The electrical insulator 4 is formed from a ceramic material such as AL203.
20 A conductive lead 5 is connected to the first electrode 2, while lead 6 is connected to the second electrode 3. The RF output from the generator 10 is connected to the blade 1 via the leads 5 and 6 so that a radio frequency signal having a substantially constant peak voltage (typically around 400V) appears between the first and second electrodes. When the blade 1 is brought into contact with tissue at a target 2s site, the RF voltage will cause arcing between one of the electrodes and the tissue surface. Because the first electrode 2 is smaller in cross- sectional area, and has a lower thermal capacity and conductivity than that of the second electrode 3, the first electrode will assume the role of the active electrode and arcing will occur from this electrode to the tissue. Electrical current will flow through the tissue to the second electrode 3, 30 which will assume the role of the return electrode. Cutting of the tissue will occur at the active electrode, and the blade may be moved through the tissue.
Referring to Figure 3, the generator comprises a radio frequency (RF) power oscillator 60 having a pair of output lines 60C for coupling via output terminals 62 to
the load impedance 64 represented by the instrument 12 when in use. Power is supplied to the oscillator 60 by a switched mode power supply 66.
In the preferred embodiment, the RF oscillator 60 operates at about 400 kHz, with any frequency from 300 kHz upwards into the range being feasible. The 5 switched mode power supply typically operates at a frequency in the range of from 25 to SO kHz. Coupled across the output lines 60C is a voltage threshold detector 68 having a first output 68A coupled to the switched mode power supply 16 and a second output 68B coupled to an "on" time control circuit 70. A micro-processor controller 72 coupled to the operator controls and display (shown in Figure 1) is connected to a lo control input 66A of the power supply 66 for adjusting the generator output power by supply voltage variation and to a thresholdset input 68C of the voltage threshold detector 68 for setting peak RF output voltage limits. Also coupled across the output lines 60C is a current detection circuit 80 which feeds signals to the controller 72 via line 81.
5 In operation, the microprocessor controller 72 causes power to be applied to the switched mode power supply 66 when electrosurgical power is demanded by the surgeon operating an activation switch arrangement which may be provided on a hand piece or footswitch (see Figure 1). A constant output voltage threshold is set independently on the supply voltage via input 68C according to control settings on the 20 front panel of the generator (see Figure 1). Typically, for desiccation or coagulation the threshold is set at a desiccation threshold value between 150 volts and 200 volts. When a cutting or vaporization output is required the threshold is set to a value in the range of from 250 or 300 volts to 600 volts. These voltage values are peak values. Their being peak values means that for desiccation at least it is preferable to have an output RF 25 wave-form of low crest factor to give maximum power before the voltage is clamped at the values given. Typically a crest factor of 1.5 or less is achieved.
When the generator is first activated, the status of the control input 60I of the RF oscillator 60 (which is connected to the "on" time control circuit 70) is "on", such that the power switching device which forms the oscillating element of the 30 oscillator 60 is switched on for a maximum conduction period during each oscillation cycle. The power delivered to the load 64 depends partly on the supply voltage applied to the RF oscillator 60 from the switched mode power supply 66 and partly on the load impedance 64. The voltage threshold for a desiccation output is set to cause trigger
signals to be sent to the "on" time control circuit 70 and to the switched mode power supply 66 when the voltage threshold is reached. The "on" time control circuit 70 has the effect of virtually instantaneously reducing the "on" time of the RP oscillator-
switching device. Simultaneously, the switched mode power supply is disabled so that 5 the voltage supplied to oscillator 60 begins to fall. The operation of the generator in this way is described in detail in our European Patent Application No. 0754437, the disclosure of which is hereby incorporated by way of reference.
Referring back to Figure 2, when the instrument 12 is in use, small particles of condensed tissue and other debris can become adhered to the edge electrode 2 and, to lo a lesser extent, the base electrode 3. If the instrument is used particularly aggressively, it is possible that a conductive track of such debris can build up between the electrodes 2 and 3 across the ceramic insulator 4. Such a conductive track is shown schematically at 11 in Figure 2. If no action is taken to prevent it, this conductive track 11 will develop into a "flare-out" in which the current passing directly between the electrode 2 5 and the electrode 3 will cause the instrument to overheat and finally fail. The following description explains how the generator 10 detects and compensates for just such a
situation. At regular intervals, in this case every 10 ms the current is measured across the load 64 by the current detector 80 and the current value is sent to the controller 72.
20 The controller uses the current value to determine repeatedly the impedance across the load 64. The difference between successive impedance values is calculated, and summed for 16 consecutive readings to give a first total Zag. The current measurements continue every 10ms until a further 16 consecutive impedance calculations have been made, which calculations are again summed to give a second total Z2. If Zen and Z2 are 2s both less than the threshold criteria for the sum Q of the impedance changes, then the generator continues to supply RF signals to the instrument 12. The process is continued with further current measurements being sent to the controller 72 every 10 ms. This normal operation is shown in Figure 4, in which the voltage across the electrodes 2, 3 is shown by trace 31, the current flowing by trace 32 and the impedance 30 measured by the generator by trace 33.
If a flare-out starts to develop between the electrodes 2 and 3, the current measured across the load 64 will start to fluctuate widely, and with a high frequency of oscillation. This is shown in Figure 5, with the build up to the flare-out being shown at
34 and the onset of the flare-out at 35. In these circumstances Zen and Z2 will both be above the threshold for the sum Q of the impedance changes, and this causes the controller to send a signal to the power supply 66 to cause the power to be interrupted.
typical value for Q is 1000 ohms, for a 16 measurement cycle.
s In addition to interrupting the power supply, the controller may cause a message (such as "Clean Tip") to be displayed by the display 24. The controller does not allow power to be restored to the output of the generator until the surgeon has pressed a reset button to indicate that the tip has been cleaned, and will repeat the interruption process if the impedance measurements show that the flare-out conditions lo are still in existence when the power is recommenced.
It will be appreciated that criteria other than the changeability of the impedance across the output of the generator could be employed to give an indication of the onset of a flare-out. These include, non-exhaustively, the high frequency content (e.g. the number of high frequency components) of the modulation of the current or 5 voltage signal, or the D.C. thermionic current flowing between the electrodes 2 and 3.
The latter will be measured in the manner disclosed in European Patent Publication No. 1053719, the contents of which are incorporated herein by reference.
It will also be appreciated that, while the embodiments of the invention have been described with reference to the elimination of flare-outs, the invention could in 20 some aspects be used to prevent overheating of electrodes without the actual existence of a flare-out. The generator, detecting criteria indicating the start of a potential overheating situation, could reduce the power or alter the radio frequency signal in other ways so as to maintain operation of the electrosurgical system operating within proper parameters. Those skilled in the art of electrosurgical generators will readily be 25 able to establish suitable detection criteria to keep the generator operating within safe and effective limits.

Claims (1)

  1. Claims
    1. An electrosurgical system including: 5 a radio frequency generator; an electrosurgical instrument comprising at least first and second electrodes and an insulating spacer separating the first and second electrodes, the radio frequency generator being adapted to supply a radio frequency signal between the first and second electrodes; lo means for measuring a characteristic of the output of the radio frequency generator; and a controller adapted to analyse the measured characteristic and change the radio frequency signal supplied between the first and second electrodes when an aspect of the characteristic meets a predetermined criterion indicating the onset of a "flare-out".
    2. An electrosurgical system according to claim 1 wherein the characteristic of the Is output of the radio frequency generator is the voltage across the first and second electrodes. 3. An electrosurgical system according to claim 1 wherein the characteristic of the output of the radio frequency generator is the current flowing between the first and second electrodes.
    20 4. An electrosurgical system according to any preceding claim wherein the predetermined criterion relates to the changeability of the measured characteristic.
    S. An electrosurgical system according to claim 4 wherein the changeability of the measured characteristic is represented by the sum of the differences between successive measurements of the characteristic.
    25 6. An electrosurgical system according to any of claims 1 to S wherein the controller is adapted to change the radio frequency signal by reducing the power of the radio frequency signal when the aspect of the characteristic meets the predetermined criterion.
    7. An electrosurgical system according to any preceding claim wherein the controller is adapted to reduce the power of the radio frequency signal substantially to zero when the aspect of the characteristic meets the predetermined criterion.
    8. An electrosurgical system according to claim 7 wherein the controller is adapted 5 to reduce the power of the radio frequency signal substantially to zero for a minimum period of 5 seconds.
    9. An electrosurgical system according to claim 7 wherein the controller is adapted to reduce the power of the radio frequency signal substantially to zero until a user of the system undertakes a manual reset operation.
    lo 10. An electrosurgical system according to any preceding claim wherein the controller is adapted to reduce the power of the radio frequency signal supplied between the first and second electrodes only when the aspect of the characteristic meets the predetermined criterion for a predetermined period of time.
    11. An electrosurgical system according to any preceding claim wherein the first 5 and second electrodes and the insulating spacer are such that the spacing between the first and second electrodes is between 0.25 trim and 3.0 mm.
    12. An electrosurgical system including: a radio frequency generator; an electrosurgical instrument comprising at least first and second electrodes and an 20 insulating spacer separating the first and second electrodes, the radio frequency generator being adapted to supply a radio frequency signal between the first and second electrodes; means for measuring the impedance between the first and second electrodes; and a controller adapted to analyse the impedance measurements and interrupt the radio 25 frequency signal supplied between the first and second electrodes when the changeability of the impedance exceeds a predetermined threshold value.
    13. An electrosurgical generator for supplying radio frequency power to an
    electrosurgical instrument which includes at least first and second electrodes, the radio frequency generator including i) a radio frequency output stage having at least a pair of RF output lines for connection to the first and second electrodes respectively, s ii) a power supply coupled to the output stage for supplying power to the output stage, and iii) a controller capable of varying the RF signal applied to the RF output lines, wherein there is provided means for measuring a characteristic of the radio frequency signal across the output lines, the controller being adapted to analyse the measured lo characteristic and change the radio frequency signal supplied to the output stage when an aspect of the characteristic meets a predetermined criterion indicating the onset of a flare-out". 14. An electrosurgical generator for supplying radio frequency power to an electrosurgical instrument which includes at least first and second electrodes, the radio 5 frequency generator including i) a radio frequency output stage having at least a pair of RF output lines for connection to the first and second electrodes respectively, ii) a power supply coupled to the output stage for supplying power to the output stage, and 20 iii) a controller capable of varying the RF signal applied to the RF output lines, wherein there is provided means for measuring the impedance across the output lines, the controller being adapted to analyse the impedance measurements and interrupt the radio frequency signal supplied to the output stage when the changeability of the impedance exceeds a predetermined threshold value.
    2s 15. A method of cutting tissue at a target site comprising i) providing a bipolar cutting blade comprising first and second electrodes and an electrical insulator spacing apart the electrodes,
    ii) bringing the blade into position with respect to the target site such that one electrode is in contact with tissue at the target site and the other is adjacent thereto, iii) supplying an electrosurgical voltage to the cutting blade such that arcing does not occur in air between the first and second electrodes but that arcing does occur between s one of the electrodes and the tissue at the target site, iv) measuring the impedance between the first and second electrodes, and v) interrupting the electrosurgical voltage when the changeability of the impedance exceeds a predetermined threshold value.
    16. An electrosurgical system comprising a radio frequency generator having a lo pair of output terminals, and an electrosurgical instrument having a bipolar electrode assembly in the form of first and second electrodes adjacent each other and insulated from each other by a spacer, the electrodes being connectible to the output terminals, wherein the generator includes means for generating a monitoring signal representative of an electrical parameter associated with signals developed across the electrodes, and a 5 controller responsive to the monitoring means to change the radio frequency signal supplied by the generator to the instrument when the monitoring signal meets a predetermined criterion indicative of the onset of flare-out.
    17. A system according to claim 16, wherein the electrical parameter is the load 20 impedance and the predetermined criterion is the level of variability of the parameter.
    18. A system according to claim 16, wherein the controller is arranged to generate the sum of the differences between successive samples of the monitoring signal taken over a predetermined measurement period as a representation of the 25 variability of the parameter.
GB0214907A 2002-06-27 2002-06-27 Electrosurgical system Expired - Lifetime GB2390024B (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
GB0214907A GB2390024B (en) 2002-06-27 2002-06-27 Electrosurgical system
AT03253587T ATE527953T1 (en) 2002-06-27 2003-06-06 ELECTROSURGICAL SYSTEM
EP03253587A EP1374788B1 (en) 2002-06-27 2003-06-06 Electrosurgical system
US10/464,778 US7220260B2 (en) 2002-06-27 2003-06-19 Electrosurgical system
US11/797,063 US7901401B2 (en) 2002-06-27 2007-04-30 Electrosurgical system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
GB0214907A GB2390024B (en) 2002-06-27 2002-06-27 Electrosurgical system

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GB0214907D0 GB0214907D0 (en) 2002-08-07
GB2390024A true GB2390024A (en) 2003-12-31
GB2390024B GB2390024B (en) 2005-09-21

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EP1374788A1 (en) 2004-01-02
ATE527953T1 (en) 2011-10-15
EP1374788B1 (en) 2011-10-12
GB0214907D0 (en) 2002-08-07

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