Electrosurgical treatment system
US-2016367308-A1 · Dec 22, 2016 · US
US11304744B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11304744-B2 |
| Application number | US-201916413756-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 16, 2019 |
| Priority date | Jun 13, 2018 |
| Publication date | Apr 19, 2022 |
| Grant date | Apr 19, 2022 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A bipolar surgical instrument comprises a body, first and second opposed jaws located at the distal end of a shaft, the first jaw being movable with respect to the second jaw between an open position in which the first and second jaws are spaced apart from one another, and a closed position in which the first and second jaws are adjacent one another. The first and second elongate jaw members have respective first and second electrodes. A controller is operable to determine a boiling point for tissue between the jaws using a measure of impedance therebetween.
Opening claim text (preview).
The invention claimed is: 1. An electrosurgical system comprising: a bipolar electrosurgical instrument comprising: a body; an elongate shaft (1) attached to the body and (2) having a distal end; first and second elongate jaw members at the distal end of the elongate shaft, the first elongate jaw member carrying a first electrode and the second elongate jaw member carrying a second electrode, the first and second elongate jaw members being movable relative to one another between an open position in which the first and second electrodes are spaced apart from one another, and a closed position in which the first electrode is adjacent the second electrode; and a power cable having (1) a pair of electrically conductive elements, (2) a first end for connection with a source of radio frequency electromagnetic energy, and (3) a second end for connection to the first and second electrodes; and a waveform generator which is the source of radio frequency electromagnetic energy and is connected with the power cable of the bipolar electrosurgical instrument, and comprising: a radio frequency signal generator configured to supply a radio frequency signal to the first and second electrodes via the power cable; and a controller configured to control operation of the radio frequency signal generator, in dependence upon a received control input, wherein the controller is configured, in a heating stage: to control the radio frequency signal generator to supply the radio frequency signal at a controlled voltage level to the first and second electrodes, the controlled voltage level starting at a starting voltage at a heating start time, and ending at a final voltage at a heating end time; to measure an impedance between the first and second electrodes during supply of the controlled voltage level and to record the impedance as a recorded impedance measurement; to detect a minimum measured impedance between the first and second electrodes during the heating stage, and to store the minimum measured impedance as a minimum recorded impedance measurement for the heating stage; and to determine the heating end time as a time when the recorded impedance measurement for the heating stage is greater than the minimum recorded impedance measurement by a threshold amount, wherein the controller is configured, in a sealing stage following the heating stage: to supply the radio frequency signal at a predetermined sealing voltage level to the first and second electrodes for a predetermined sealing time period having a sealing end time; to measure an impedance level between the first and second electrodes at the sealing end time; to compare the measured impedance with a predetermined reference impedance to produce a comparison signal; and to determine a next mode of operation for the radio frequency signal generator in dependence upon the comparison signal, and wherein the controller is configured, subsequent to the sealing stage: to repeat the heating and sealing stages when the minimum recorded impedance measurement for a repeated heating stage is lower than or equal to an overall minimum impedance measurement of a previous heating stage when there is only one previous heating stage or all previous heating stages when there are two or more previous heating stages, and to end the heating and sealing stages when the minimum recorded impedance measurement for the repeated heating stage is greater than the overall minimum impedance measurement of the previous heating stage or the all previous heating stages. 2. An electrosurgical system as claimed in claim 1 , wherein the controller is configured, in an initialisation stage prior to the heating stage: to control the radio frequency signal generator to supply the radio frequency signal of a predetermined initial power level to the first and second electrodes for a predetermined initial time period having an end time; to measure a voltage level between the first and second electrodes at the end time; and to store the voltage level as a starting voltage for the heating stage. 3. An electrosurgical system as claimed in claim 1 , wherein the controller is configured, in a completion stage subsequent to the ending of the heating and sealing stages: to control the radio frequency signal generator to apply the radio frequency signal at a predetermined completion voltage level, lower than the predetermined sealing voltage level, for a predetermined completion time period; and to end supply of the radio frequency signal. 4. An electrosurgical system as claimed in claim 1 , wherein the controller is configured to measure electrical current supplied to the first and second electrodes to generate a measured current signal, and to detect a short circuit between the first and second electrodes if the measured current signal exceeds a first predetermined value for at least a predetermined time period. 5. An electrosurgical system as claimed in claim 1 , wherein the threshold amount is an absolute value of impedance. 6. An electrosurgical system as claimed in claim 1 , wherein the threshold amount is a relative value related to the minimum recorded impedance measurement. 7. A method of operating an electrosurgical system comprising a bipolar electrosurgical instrument comprising a body; an elongate shaft (1) attached to the body and (2) having a distal end; first and second elongate jaw members at the distal end of the elongate shaft, the first elongate jaw member carrying a first electrode and the second elongate jaw member carrying a second electrode, the first and second elongate jaw members being movable relative to one another between an open position in which the first and second electrodes are spaced apart from one another, and a closed position in which the first electrode is adjacent the second electrode; and a power cable having (1) a pair of electrically conductive elements, (2) a first end for connection with a source of radio frequency electromagnetic energy, and (3) a second end for connection to the first and second electrodes; and a waveform generator which is the source of radio frequency electromagnetic energy and is connected with the power cable of the bipolar electrosurgical instrument and comprising a radio frequency signal generator configured to supply a radio frequency signal to the first and second electrodes via the power cable; and a controller configured to control operation of the radio frequency signal generator, in dependence upon a received control input, wherein the method comprises: a heating stage comprising: controlling the radio frequency signal generator to supply the radio frequency signal at a controlled voltage level to the first and second electrodes, the controlled voltage level starting at a starting voltage at a heating start time, and ending at a final voltage at a heating end time; measuring an impedance between the first and second electrodes during supply of the controlled voltage level and recording the impedance as a recorded impedance measurement; detecting a minimum measured impedance between the first and second electrodes during the heating stage, and to store the minimum measured impedance as a minimum recorded impedance measurement for the heating stage; and determining the heating end time as a time when the recorded impedance measurement for the heating stage is greater than the minimum recorded impedance measurement by a threshold amount, subsequent to the heating stage, a sealing stage comprising: supplying the radio frequency signal at a predetermined sealing voltage level to the first and second electrodes for a predetermined sealing time period having a sealing end time; measuring an impedance level between the first and second electrodes at the sealing end time; comparing th
at the distal end of a shaft, e.g. forceps or scissors at the end of a rigid rod · CPC title
Voltage · CPC title
Coagulation · CPC title
bipolar · CPC title
with feedback, i.e. closed loop control · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.