Movatterモバイル変換


[0]ホーム

URL:


US3913583A - Control circuit for electrosurgical units - Google Patents

Control circuit for electrosurgical units
Download PDF

Info

Publication number
US3913583A
US3913583AUS475668AUS47566874AUS3913583AUS 3913583 AUS3913583 AUS 3913583AUS 475668 AUS475668 AUS 475668AUS 47566874 AUS47566874 AUS 47566874AUS 3913583 AUS3913583 AUS 3913583A
Authority
US
United States
Prior art keywords
control circuit
patient
control
current
winding
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US475668A
Inventor
William T Bross
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Castle Co
Original Assignee
Sybron Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sybron CorpfiledCriticalSybron Corp
Priority to US475668ApriorityCriticalpatent/US3913583A/en
Application grantedgrantedCritical
Publication of US3913583ApublicationCriticalpatent/US3913583A/en
Assigned to LIEBEL-FLARSHEIM COMPANYreassignmentLIEBEL-FLARSHEIM COMPANYASSIGNMENT OF ASSIGNORS INTEREST.Assignors: SYBRON CORPORATION, A CORP OF NY.
Assigned to CASTLE COMPANYreassignmentCASTLE COMPANYASSIGNMENT OF ASSIGNORS INTEREST.Assignors: LIEBEL-FLARSHEIM COMPANY, A CORP. OF DE.
Anticipated expirationlegal-statusCritical
Expired - Lifetimelegal-statusCriticalCurrent

Links

Images

Classifications

Definitions

Landscapes

Abstract

A control circuit for electrosurgical units which controls power levels to patient electrode in response to load conditions thereof. A saturable reactor is connected in series between the output of the electrosurgical unit and the patient electrodes. The saturable reactor is biased by a control coil activated by a rectified current corresponding to the alternating current flowing between the patient electrodes which is an indication of the area of contact between the patient and one of the electrodes.

Description

United States Patent 'Bross Oct. 21, 1975 [54] CONTROL CIRCUIT FOR 3,699,967 10/1972 Anderson l28/303.14
ELECTROSURGICAL UNITS FOREIGN PATENTS OR APPLICATIONS Inventor: William BPOSS, Cincinnati, Ohio 1,439,302 l/1969 Germany 128/303.14 Assignee: Sybron Corporation, Rochester 642,239 5/1932 Germany 323/56 N.Y. I Primary ExaminerRichard A. Gaudet 22] Fled: June 1974 Assistant Examiner-Lee S. Cohen 2 APPL 475, 3 Attorney, Agent, or FirmTheodore B. Roessel; J.
Stephen Yeo [52] US. Cl. 128/303.l4; 323/6; 323/56;
330/8; 336/155 [571 ABSTRACT [51] Int. Cl.A6lB 17/36 A ontrol ir uit for electrosurgical units which conl Field Of 128/303J4, trols power levels to patient electrode in response to 33 /8; 6 load conditions thereof. A saturable reactor is connected in series between the output of the electrosur- References Cited gical unit and the patient electrodes. The saturable re- UNIT ED STATES PATENTS actor is biased by a control coil activated by a recti- 2,581,202 1/1952 Post 336/155 fied current crresponding the alternating current 2,735,979 2/1956 323,6 flowing between the patient electrodes which is an in- 2,856,498 l0/1958 Jones..... dication of the area of contact between the patient 3,061,828 10/1962 Hauck 323/6 and one of the electrodes. 3,601,126 8 1971 Estes 128 303.14 3,658,067 4/1972 Bross 128/303.14 7 Clams, 2 Drawlng FlgllresINDICATINGJ MEANS J 34 l l l l l 3,
US. Patent Oct. 21, 1975 OSCILLATOR MODULATION MEANS FIG. I
FROM OSCILLATOR ACTIVE PROBE l6 PALIgNT as W I? INDICATING MEANS PATIENT PLATE TO RECTIFIER DC OUTPUT FIG. 2
TO ACTIVE PROBE CONTROL CIRCUIT FOR ELECTROSURGICAL UNITS BACKGROUND OF THE INVENTION This invention relates generally to RF control circuits and more particularly concerns RF control circuits that are used in electrosurgical units. Electrosurgical units generate high frequency power for the cutting and collagulation of tissue under surgical conditions. The electrosurgical units supply a high frequency alternating current at power levels up to several hundred watts to electrodes usually consisting of an active probe and a relatively large dispersive plate generally known as a patient plate. The electrodes are available in various configurations to be selected by the surgeon according to the intended use. Alternating current enters at the surgical site from the active probe, passes through the body of the patient to the patient plate and then returns to the low or grounded terminal of the electrical surgical unit. The physiological effects produced by electrosurgery are a result of a very high current density at the interface of the surgical active probe and the body tissue. There are no physiological effects at the patient plate site because the same current flows out of the patient through a relatively large area. During an operation the active probe is placed in contact with the patient. The patient should be in continual electrical communication with the patient plate. In the case of low power coagulators, capacitive coupling between patient and ground is satisfactory. The current levels produced by high powered equipment, such as used in general and transurethral surgery require a direct contact patient plate return connection. In the latter situation there is potential danger associated with electrosurgery should the patient plate by improperly applied or if an initial electrical contact becomes interrupted. If there is no other ground connections and if no other part of the patient is in contact with electrical ground, the available surgical current will be so reduced that in most cases, the surgeon will be immediately aware of the problem and he would either stop the procedure and investigate or request that the power should'be increased. The latter could be dangerous as a subsequent return of electrical continuity would result in excessive power being dissipated at the surgical site. Also, should the resistance of the patient plate interface be high, any extraneous ground connection, such as a cardioscope ground lead, would act as a high frequency ground connection. The contact area of such an extraneous ground connection is likely to be too small for the magnitude of current present and a burn at this site is almost a certainty.
It is possible to include a monitoring device that insures high frequency continuity to the patient plate. However, this monitor cannot determine if the patient plate has sufficient area in contact with the patient. If
area contact isnt proper, some surgical current could is effective, but complicated because it requires filter circuits to prevent high frequency from adversely effecting electrosurgical device control circuitry.
It would be, therefore, highly desirable to provide a simpler control circuit,- either to be used alone or to supplement one of the prior types of patient plate monitoring systems to additionally determine whether the patient plate electrode is contacting the patient. Such a monitoring system should be passive and be able to reduce high frequency to a low value should there be a impedance condition at the patient plate interface or return cable.
It is the object of this invention to provide a new and improved control circuit for electrosurgical units to monitor the impedance of a patient plate interface and connecting cable.
It is also an object of this invention to provide a new and improved control circuit for electrosurgical units for controlling output as a function of contact area between patient and patient plate.
It is another object of this invention to provide a new and improved control circuit for connection in the output circuit of an electrosurgical unit for reducing high frequency current to a low value for sensing and increasing RF current to normal level only if a complete circuit exists between the active and the patient plate electrodes.
An additional object of this invention is to provide a new and improved control circuit for monitoring circuit conditions between active and patient plate electrodes and having a switching time in microseconds.
SUMMARY OF THE INVENTION A control circuit is disclosed that controls the high frequency output current of an electrosurgical unit as applied across patient electrodes in response to the load between said patient electrodes.
The control circuit includes a saturable reactor means having variable reactance windings connected in seriesbetween the electrosurgical unit and the active patient electrode. The high frequency return current is conducted through a bridge rectifier which produces a DC current which passes through a control winding of the saturable reactor. Under normal high frequency current flow the DC current will be sufficient to saturate the reactor, minimizing the impedance thereof. Should the high frequency current be less than normal the DC current will be correspondingly reduced, causing the reactor to appear as a series inductive reactance, further reducing the high frequency current flow. Since the reactor reactance is a function of patient to patient plate impedance, the control sequence requires that sufficient area'of contact be made between the patient and the patient plate electrode for the application of full power.
The saturable reactor means can include a three legged ferromagnetic core, with the variable reactance winding wound on the outer legs and connected so as to null out induced voltages that would adversely effect the control winding which is wound about the middle leg.
Electrostatic sheild material may be used between windings to prevent capacitive coupling.
An alternate construction of the variable reactor is to use two cores, which may be cup, U, vor toroid cores, each core having a variable reactance winding and a control coil.
Indicating means can be provided to alert the operator of the state of the variable reactor.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a diagram of an electrosurgical unit which includes the control circuit of the invention.
FIG. 2 is an alternative embodiment of the control circuit of the invention.
DETAILED DESCRIPTION'OF THE DRAWING FIG. 1, an electrosurgical unit having an oscillator generates RF signals at hectowatt power levels. Such an oscillator may be a spark gap, a vacuum tube oscillator, or a solid state oscillator. Modulation means 12 are used by the surgeon to select the desired amplitude and modulation mode suitable to the surgical functions of the cutting, hemostasis, and coagulation which are dependent upon the shape of the output wave form. Theoscillator 10 means also includes a activating switch which may be hand or foot operated. The output of theoscillator 10 goes to thecontrol circuit 14 of the present invention and therefrom to patient electrodes comprising of anactive probe 16 and apatient plate 17.
Asaturable reactor 18 is used in thecontrol circuit 14. Thereactor 18 includes a three-leggedmagnetic core 20 substantially symmetrical. About the twoouter legs 22, 24 of thecore 20 are woundvariable reactance windings 26, 28 having substantially equal number of turns. Thevariable reactance windings 26, 28 are wound and interconnected so as to cancel any induced voltage caused by magnetic flow in thecore 20. The twovariable reactance windings 26, 28 are connected in series with theoutput oscillator 10 of the electical surgical unit and the active probe l6.
About thecenter leg 30 of the core is wound a control winding 32.
The leads of the control winding 32 are connected to the DC terminals of a highfrequency bridge rectifier 34. The AC terminals of the high frequency bridge rectifier are connected in series from thepatient plate 17 to electrical ground through afirst capacitor 36. Asecond capacitor 38 is placed across control winding 32 to level the ripple on the DC voltage. The amount of RF current passing through the patient will be dependent upon the impedance between theactive probe 16 and thepatient plate 17. The impedance is the sum of the patient resistance, typically between 400 and 500 ohms, and the interface resistance between the patient and thepatient plate electrode 17. Should thepatient plate 17 be improperly attached so as to have insufficient contact area between the patient and the patient electrode, the interface resistance will be high and the current at a given setting will be low campared to what it would be if the patient plate was correctly applied. The alternating RF current flows from theactive probe 16 through the patient to thepatient plate 17, through thehigh frequency rectifier 34 across thecapacitor 36 to ground. The higher the amplitude of the RF current, the higher will be the rectified DC current passing through the control winding 32. Conversely, a poor connection will reduce the alternating RF current". The rectified DC current will be correspondingly lower reducing the current flowing through the control winding 32. When no DC current is present, the core material is unsaturated, and inductively loads thevariable reactance windings 26, 28, effectively introducing a series reactance into the output circuit. This limits the output current to a low value typically..50 to milliamps when no DC control current is present. When a completed high frequency circuit is established, returning current passes through the rectifiedcircuit 34, causing a DC current to flow through the reactor control winding 32 partly, saturating thecore 20. This lowers the impedance of the reactance winding 26, 28 and increases the output current. The higher output current passes through therectifier 34 further increasing the control winding current which completely saturates the reactor minimizing the reactance.
The core may be made of suitable ferromagnetic material such as ferrite. Unlike the usual saturable reactor it is not necessary for the core material to exhibit a square hysteresis loop. Details of the RF variable reactance windings include that the two coils are series connected but opposed so as to cancel any induced voltages in the DC control circuit. It is also important that thevariable reactance windings 26, 28 are not coupled to the bias control circuit as RF passing through these windings could conceivably be coupled into the control winding 32 to be rectified by thehigh frequency rectifier 34 and affect the reactor. Therefore,electrostatic shield material 42 may be interposed between the outer 26, 28 and inner 30 legs to prevent capacitive coupling.
It would be desirable for the surgeon to be made aware of the condition of the control circuit. Indicating means 44 may be provided across the DC leads of the rectifier bridge circuit so as to be responsive to the amount of DC voltage and to provide indication thereof.
As shown in FIG. 2, an alternative method of making the saturable reactor is to use twocup cores 44, each having one RF winding 46 and one control winding 48 wherein the RF windings are connected so to cancel the induced voltage in the DC control winding. As herein defined, cup cores include U and toroid shaped cores.
The control circuit for disclosed units is a simple passive device that when connected in the output circuit of an electrosurgical unit, reduces high frequency current to a low value for sensing andincreases to normal level only if a complete circuit exists between the active probe and the patient plate. Switching time is in microseconds. Tests have been conducted with actual electrosurgical units using tubes, solid state and spark gap technologies over the frequency range of 500 kiloherz to 2.3 megaherz and the control circuit has been found to be both reliable and efficient.
I claim: i 1. In combination with an electrosurgical unit having an oscillator applying variable high frequency current to a plurality of patient electrodes, a control circuit comprising:
a saturable reactor connected between said oscillator and at least one of said patient electrodes; and
bias means responsive to current flow through said patient electrodes for biasing said saturable reactor to control the impedance thereof, whereby for a first range of current flow through said patient electrodes said saturable reactor represents an inductive reactance'to said oscillator and during a second range of current flow through said patient electrodes substantially greater than said first current flow said reactor represents a lower inductive reactance to said oscillator.
2. A control circuit as defined in claim 1, wherein said saturable reactor includes:
a ferromagnetic core;
a plurality of variable reactances windings, and
a control winding.
3. A control circuit as defined in claim 2, wherein said bias means includes:
a diode rectifying bridge connected between one of said patient electrodes and said control winding, said bridge having a DC current output corresponding to the amplitude of AC current flow, said DC output being applied to said control winding for biasing said saturable reactor.
4. A control circuit as defined in claim 3 which further includes an indicator means connected across said bias means so as to be indicative of said bias current and load conditions across said patient electrodes.
5. A control circuit as defined in claim 2, wherein said variable reactance windings are interconnected so as to nullify any induced voltage in said control winding.
6. A control circuit as defined in claim 5, which further includes an electrostatic shield means interposed between said variable reactance windings and said control windings.
7. A control circuit defined in claim 1, wherein said saturable reactor is comprised of:
two cup cores; at least one variable reactance winding wound abou each of said cup cores; and at least one DC control bias winding wound about each of said cup cores, whereas said variable reactance windings are connected in series so as to nullify the effect on said DC control coils winding.
UNITED STATES PATENT GFFICE CERTIFIQATE 0F COERECTEON Patent 3, 913, 583 I v D d October 21; 1975 Inventor(s) William T. Bross It is certified that error appears in the above-identified patent and that said Letters Patent: are hereby corrected as shown below:
Column 1, line 6L1- "exists" should be 7 --exits--. v
Column 2, line 63 "s heild" should be "Sm 91d".
Column 3, line 53 "camp ared" should be --compared--.
Signed and Scaled this tenth D3) Of February 1976 [SEAL] Arrest:
RUTH C. MA SON C. MARSHALL DANN Arresting Officer Commissioner ofParents and Trademarks UNITED STATES PATEP-ZT 0mm; CERTIFICATE 9F CGRRECHON Patent No, 3,913,583 Dated Octoloer 21,- 1975 Inventor(s) William T; Bross It is certified that error appears in the above-identified. patent and that said Letters Patent are hereby corrected as shown below: r
Column 1, line 6A "exists" should be --exits--.
Column 2, line 63 "s heild" 7 should be --sfii eld--,
Column 3, line 53 "campared" should be --compared--.
Engncd and Scaled this D tenth Day Of February 1976 [SEAL] Arrest:
RUTH C. MASON C. MARSHALL DANN Arresting Offive Commissioner oj'larents and Trademarks

Claims (7)

US475668A1974-06-031974-06-03Control circuit for electrosurgical unitsExpired - LifetimeUS3913583A (en)

Priority Applications (1)

Application NumberPriority DateFiling DateTitle
US475668AUS3913583A (en)1974-06-031974-06-03Control circuit for electrosurgical units

Applications Claiming Priority (1)

Application NumberPriority DateFiling DateTitle
US475668AUS3913583A (en)1974-06-031974-06-03Control circuit for electrosurgical units

Publications (1)

Publication NumberPublication Date
US3913583Atrue US3913583A (en)1975-10-21

Family

ID=23888591

Family Applications (1)

Application NumberTitlePriority DateFiling Date
US475668AExpired - LifetimeUS3913583A (en)1974-06-031974-06-03Control circuit for electrosurgical units

Country Status (1)

CountryLink
US (1)US3913583A (en)

Cited By (107)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3964487A (en)*1974-12-091976-06-22The Birtcher CorporationUncomplicated load-adapting electrosurgical cutting generator
FR2409487A1 (en)*1977-11-171979-06-15Valleylab Inc APPARATUS AND METHOD FOR MEASURING THE SURFACE OF CONTACT WITH TISSUES OF AN ELECTRODE FOR ELECTROSURGERY AND CRYOSURGERY
US4184492A (en)*1975-08-071980-01-22Karl Storz Endoscopy-America, Inc.Safety circuitry for high frequency cutting and coagulating devices
US4303073A (en)*1980-01-171981-12-01Medical Plastics, Inc.Electrosurgery safety monitor
DE3239640A1 (en)*1981-10-261983-05-19Valleylab, Inc., Boulder, Col.Monitoring arrangement for a return electrode
US4494541A (en)*1980-01-171985-01-22Medical Plastics, Inc.Electrosurgery safety monitor
US4590934A (en)*1983-05-181986-05-27Jerry L. MalisBipolar cutter/coagulator
US5335668A (en)*1993-04-301994-08-09Medical Scientific, Inc.Diagnostic impedance measuring system for an insufflation needle
US5413574A (en)*1992-09-041995-05-09Fugo; Richard J.Method of radiosurgery of the eye
US5417687A (en)*1993-04-301995-05-23Medical Scientific, Inc.Bipolar electrosurgical trocar
FR2735009A1 (en)*1995-06-091996-12-13Aquitaine Technologie MedicalHigh-frequency current generator for tissue cutting or coagulation
US5611798A (en)*1995-03-021997-03-18Eggers; Philip E.Resistively heated cutting and coagulating surgical instrument
US5688269A (en)*1991-07-101997-11-18Electroscope, Inc.Electrosurgical apparatus for laparoscopic and like procedures
US5713896A (en)*1991-11-011998-02-03Medical Scientific, Inc.Impedance feedback electrosurgical system
US5772659A (en)*1995-09-261998-06-30Valleylab Inc.Electrosurgical generator power control circuit and method
WO1998047436A1 (en)*1997-04-241998-10-29Gyrus Medical LimitedAn electrosurgical instrument
EP1034747A1 (en)*1999-03-052000-09-13Gyrus Medical LimitedElectrosurgery system and instrument
US6156036A (en)*1999-06-112000-12-05Alcon Laboratories, Inc.Surgical handpiece tip
US6162216A (en)*1998-03-022000-12-19Guziak; Robert AndrewMethod for biopsy and ablation of tumor cells
US6211749B1 (en)*1998-11-272001-04-03Kyosan Electric Mfg. Co., Ltd.Impedance matching device
US6258085B1 (en)1999-05-112001-07-10Sherwood Services AgElectrosurgical return electrode monitor
US6409725B1 (en)2000-02-012002-06-25Triad Surgical Technologies, Inc.Electrosurgical knife
JP3315623B2 (en)1997-06-192002-08-19オリンパス光学工業株式会社 Return electrode peeling monitor of electrocautery device
US6589239B2 (en)2000-02-012003-07-08Ashok C. KhandkarElectrosurgical knife
WO2004028385A1 (en)2002-09-252004-04-08Sherwood Services AgMultiple rf return pad contact detection system
US20040119577A1 (en)*2002-12-202004-06-24Robert WegerCoil arrangement with variable inductance
US20050192566A1 (en)*2004-02-262005-09-01Madden Sean C.Surgical handpiece tip
US20050273091A1 (en)*2002-10-292005-12-08CathrxptyltdSystem for, and method of, heating a biological site in a patient's body
US20060041252A1 (en)*2004-08-172006-02-23Odell Roger CSystem and method for monitoring electrosurgical instruments
US20060041251A1 (en)*2004-08-172006-02-23Odell Roger CElectrosurgical system and method
US20060041253A1 (en)*2004-08-172006-02-23Newton David WSystem and method for performing an electrosurgical procedure
US7044948B2 (en)2002-12-102006-05-16Sherwood Services AgCircuit for controlling arc energy from an electrosurgical generator
US7131860B2 (en)2003-11-202006-11-07Sherwood Services AgConnector systems for electrosurgical generator
US7137980B2 (en)1998-10-232006-11-21Sherwood Services AgMethod and system for controlling output of RF medical generator
US7255694B2 (en)2002-12-102007-08-14Sherwood Services AgVariable output crest factor electrosurgical generator
US20070222458A1 (en)*2004-05-252007-09-27Erbe Elektromedizin GmbhMethod And Measurement Apparatus For Determining The Transition Impedance Between Two Parts Of A Subdivided Neutral Electrode
US7300435B2 (en)2003-11-212007-11-27Sherwood Services AgAutomatic control system for an electrosurgical generator
US7303557B2 (en)1998-10-232007-12-04Sherwood Services AgVessel sealing system
US7364577B2 (en)2002-02-112008-04-29Sherwood Services AgVessel sealing system
USRE40388E1 (en)1997-04-092008-06-17Covidien AgElectrosurgical generator with adaptive power control
US7396336B2 (en)2003-10-302008-07-08Sherwood Services AgSwitched resonant ultrasonic power amplifier system
USD574323S1 (en)2007-02-122008-08-05Tyco Healthcare Group LpGenerator
US7473145B2 (en)2001-06-012009-01-06Covidien AgReturn pad cable connector
US7513896B2 (en)2006-01-242009-04-07Covidien AgDual synchro-resonant electrosurgical apparatus with bi-directional magnetic coupling
US20090112204A1 (en)*2007-10-262009-04-30Encision, Inc.Multiple Parameter Fault Detection in Electrosurgical Instrument Shields
US20090198229A1 (en)*2008-02-052009-08-06Tyco Healthcare Group LpHybrid Contact Quality Monitoring Return Electrode
US7628786B2 (en)2004-10-132009-12-08Covidien AgUniversal foot switch contact port
US7637907B2 (en)2006-09-192009-12-29Covidien AgSystem and method for return electrode monitoring
US7648499B2 (en)2006-03-212010-01-19Covidien AgSystem and method for generating radio frequency energy
US7651492B2 (en)2006-04-242010-01-26Covidien AgArc based adaptive control system for an electrosurgical unit
US7651493B2 (en)2006-03-032010-01-26Covidien AgSystem and method for controlling electrosurgical snares
US7722603B2 (en)2006-09-282010-05-25Covidien AgSmart return electrode pad
US7722601B2 (en)2003-05-012010-05-25Covidien AgMethod and system for programming and controlling an electrosurgical generator system
US7731717B2 (en)2006-08-082010-06-08Covidien AgSystem and method for controlling RF output during tissue sealing
US7736359B2 (en)2006-01-122010-06-15Covidien AgRF return pad current detection system
US7749217B2 (en)2002-05-062010-07-06Covidien AgMethod and system for optically detecting blood and controlling a generator during electrosurgery
US7766905B2 (en)2004-02-122010-08-03Covidien AgMethod and system for continuity testing of medical electrodes
US7780662B2 (en)2004-03-022010-08-24Covidien AgVessel sealing system using capacitive RF dielectric heating
US7794457B2 (en)2006-09-282010-09-14Covidien AgTransformer for RF voltage sensing
US7834484B2 (en)2007-07-162010-11-16Tyco Healthcare Group LpConnection cable and method for activating a voltage-controlled generator
US7880577B1 (en)*2006-08-252011-02-01Lockheed Martin CorporationCurrent doubler rectifier with current ripple cancellation
US7901400B2 (en)1998-10-232011-03-08Covidien AgMethod and system for controlling output of RF medical generator
US20110071520A1 (en)*2009-09-232011-03-24Tyco Healthcare Group LpMethods and Apparatus for Smart Handset Design in Surgical Instruments
US20110077631A1 (en)*2009-09-282011-03-31Tyco Healthcare Group LpElectrosurgical Generator User Interface
US7927328B2 (en)2006-01-242011-04-19Covidien AgSystem and method for closed loop monitoring of monopolar electrosurgical apparatus
US7927329B2 (en)2006-09-282011-04-19Covidien AgTemperature sensing return electrode pad
US7947039B2 (en)2005-12-122011-05-24Covidien AgLaparoscopic apparatus for performing electrosurgical procedures
US7972328B2 (en)2006-01-242011-07-05Covidien AgSystem and method for tissue sealing
US8007494B1 (en)2006-04-272011-08-30Encision, Inc.Device and method to prevent surgical burns
US8021360B2 (en)2007-04-032011-09-20Tyco Healthcare Group LpSystem and method for providing even heat distribution and cooling return pads
US8034049B2 (en)2006-08-082011-10-11Covidien AgSystem and method for measuring initial tissue impedance
US8080007B2 (en)2007-05-072011-12-20Tyco Healthcare Group LpCapacitive electrosurgical return pad with contact quality monitoring
US8100898B2 (en)2007-08-012012-01-24Tyco Healthcare Group LpSystem and method for return electrode monitoring
US8104956B2 (en)2003-10-232012-01-31Covidien AgThermocouple measurement circuit
US8147485B2 (en)2006-01-242012-04-03Covidien AgSystem and method for tissue sealing
US8216220B2 (en)2007-09-072012-07-10Tyco Healthcare Group LpSystem and method for transmission of combined data stream
US8216223B2 (en)2006-01-242012-07-10Covidien AgSystem and method for tissue sealing
US8226639B2 (en)2008-06-102012-07-24Tyco Healthcare Group LpSystem and method for output control of electrosurgical generator
US8231614B2 (en)2007-05-112012-07-31Tyco Healthcare Group LpTemperature monitoring return electrode
US8251989B1 (en)2006-06-132012-08-28Encision, Inc.Combined bipolar and monopolar electrosurgical instrument and method
US20120239025A1 (en)*2011-03-172012-09-20Tyco Healthcare Group LpIsolated Current Sensor
US8388612B2 (en)2007-05-112013-03-05Covidien LpTemperature monitoring return electrode
US8486061B2 (en)2009-01-122013-07-16Covidien LpImaginary impedance process monitoring and intelligent shut-off
US8512332B2 (en)2007-09-212013-08-20Covidien LpReal-time arc control in electrosurgical generators
US8663214B2 (en)2006-01-242014-03-04Covidien AgMethod and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US8685016B2 (en)2006-01-242014-04-01Covidien AgSystem and method for tissue sealing
US8734438B2 (en)2005-10-212014-05-27Covidien AgCircuit and method for reducing stored energy in an electrosurgical generator
US8753334B2 (en)2006-05-102014-06-17Covidien AgSystem and method for reducing leakage current in an electrosurgical generator
US8777941B2 (en)2007-05-102014-07-15Covidien LpAdjustable impedance electrosurgical electrodes
US8777940B2 (en)2007-04-032014-07-15Covidien LpSystem and method for providing even heat distribution and cooling return pads
US8801703B2 (en)2007-08-012014-08-12Covidien LpSystem and method for return electrode monitoring
US8808161B2 (en)2003-10-232014-08-19Covidien AgRedundant temperature monitoring in electrosurgical systems for safety mitigation
US8821487B2 (en)2005-03-312014-09-02Covidien AgTemperature regulating patient return electrode and return electrode monitoring system
US9116179B2 (en)2012-12-172015-08-25Covidien LpSystem and method for voltage and current sensing
US9186200B2 (en)2006-01-242015-11-17Covidien AgSystem and method for tissue sealing
US9314294B2 (en)2008-08-182016-04-19Encision, Inc.Enhanced control systems including flexible shielding and support systems for electrosurgical applications
US9474564B2 (en)2005-03-312016-10-25Covidien AgMethod and system for compensating for external impedance of an energy carrying component when controlling an electrosurgical generator
US9636165B2 (en)2013-07-292017-05-02Covidien LpSystems and methods for measuring tissue impedance through an electrosurgical cable
US9833281B2 (en)2008-08-182017-12-05Encision Inc.Enhanced control systems including flexible shielding and support systems for electrosurgical applications
US9863983B2 (en)2012-12-172018-01-09Covidien LpSystem and method for voltage and current sensing
US9872719B2 (en)2013-07-242018-01-23Covidien LpSystems and methods for generating electrosurgical energy using a multistage power converter
US10278764B2 (en)2014-12-022019-05-07Covidien LpElectrosurgical generators and sensors
US10281496B2 (en)2014-12-022019-05-07Covidien LpElectrosurgical generators and sensors
US10292753B2 (en)2014-12-022019-05-21Covidien LpElectrosurgical generators and sensors
US10908187B2 (en)2016-05-022021-02-02Covidien LpCurrent sensor with reduced voltage coupling
US11364076B2 (en)2019-12-122022-06-21Covidien LpMonopolar return pad
US12226143B2 (en)2020-06-222025-02-18Covidien LpUniversal surgical footswitch toggling

Citations (7)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US2581202A (en)*1949-11-251952-01-01Rca CorpMultistage variable-saturation tuning system and apparatus
US2735979A (en)*1956-02-21Input
US2856498A (en)*1950-11-301958-10-14Delapena & Son LtdHigh frequency electric induction heating systems
US3061828A (en)*1958-03-111962-10-30Basic Products CorpCircuit means
US3601126A (en)*1969-01-081971-08-24Electro Medical Systems IncHigh frequency electrosurgical apparatus
US3658067A (en)*1969-05-191972-04-25Sybren CorpElectro-surgical apparatus
US3699967A (en)*1971-04-301972-10-24Valleylab IncElectrosurgical generator

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US2735979A (en)*1956-02-21Input
US2581202A (en)*1949-11-251952-01-01Rca CorpMultistage variable-saturation tuning system and apparatus
US2856498A (en)*1950-11-301958-10-14Delapena & Son LtdHigh frequency electric induction heating systems
US3061828A (en)*1958-03-111962-10-30Basic Products CorpCircuit means
US3601126A (en)*1969-01-081971-08-24Electro Medical Systems IncHigh frequency electrosurgical apparatus
US3658067A (en)*1969-05-191972-04-25Sybren CorpElectro-surgical apparatus
US3699967A (en)*1971-04-301972-10-24Valleylab IncElectrosurgical generator

Cited By (181)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3964487A (en)*1974-12-091976-06-22The Birtcher CorporationUncomplicated load-adapting electrosurgical cutting generator
US4184492A (en)*1975-08-071980-01-22Karl Storz Endoscopy-America, Inc.Safety circuitry for high frequency cutting and coagulating devices
FR2409487A1 (en)*1977-11-171979-06-15Valleylab Inc APPARATUS AND METHOD FOR MEASURING THE SURFACE OF CONTACT WITH TISSUES OF AN ELECTRODE FOR ELECTROSURGERY AND CRYOSURGERY
US4200104A (en)*1977-11-171980-04-29Valleylab, Inc.Contact area measurement apparatus for use in electrosurgery
US4303073A (en)*1980-01-171981-12-01Medical Plastics, Inc.Electrosurgery safety monitor
US4494541A (en)*1980-01-171985-01-22Medical Plastics, Inc.Electrosurgery safety monitor
DE3239640A1 (en)*1981-10-261983-05-19Valleylab, Inc., Boulder, Col.Monitoring arrangement for a return electrode
DE3249766C2 (en)*1981-10-261988-08-18Valleylab, Inc., Boulder, Col., UsMonitoring arrangement in a high-frequency surgical instrument
US4590934A (en)*1983-05-181986-05-27Jerry L. MalisBipolar cutter/coagulator
US5688269A (en)*1991-07-101997-11-18Electroscope, Inc.Electrosurgical apparatus for laparoscopic and like procedures
US5713896A (en)*1991-11-011998-02-03Medical Scientific, Inc.Impedance feedback electrosurgical system
US5413574A (en)*1992-09-041995-05-09Fugo; Richard J.Method of radiosurgery of the eye
US5335668A (en)*1993-04-301994-08-09Medical Scientific, Inc.Diagnostic impedance measuring system for an insufflation needle
US5417687A (en)*1993-04-301995-05-23Medical Scientific, Inc.Bipolar electrosurgical trocar
US5658279A (en)*1993-04-301997-08-19Medical Scientific, Inc.Bipolar electrosurgical trocar
US5611798A (en)*1995-03-021997-03-18Eggers; Philip E.Resistively heated cutting and coagulating surgical instrument
FR2735009A1 (en)*1995-06-091996-12-13Aquitaine Technologie MedicalHigh-frequency current generator for tissue cutting or coagulation
US5772659A (en)*1995-09-261998-06-30Valleylab Inc.Electrosurgical generator power control circuit and method
US6251106B1 (en)1995-09-262001-06-26Sherwood Services AgElectrosurgical generator power control circuit and method
USRE40388E1 (en)1997-04-092008-06-17Covidien AgElectrosurgical generator with adaptive power control
WO1998047436A1 (en)*1997-04-241998-10-29Gyrus Medical LimitedAn electrosurgical instrument
US6325799B1 (en)1997-04-242001-12-04Gyrus Medical LimitedElectrosurgical instrument
JP3315623B2 (en)1997-06-192002-08-19オリンパス光学工業株式会社 Return electrode peeling monitor of electrocautery device
US6162216A (en)*1998-03-022000-12-19Guziak; Robert AndrewMethod for biopsy and ablation of tumor cells
US7901400B2 (en)1998-10-232011-03-08Covidien AgMethod and system for controlling output of RF medical generator
US8105323B2 (en)1998-10-232012-01-31Covidien AgMethod and system for controlling output of RF medical generator
US9113900B2 (en)1998-10-232015-08-25Covidien AgMethod and system for controlling output of RF medical generator
US7137980B2 (en)1998-10-232006-11-21Sherwood Services AgMethod and system for controlling output of RF medical generator
US9168089B2 (en)1998-10-232015-10-27Covidien AgMethod and system for controlling output of RF medical generator
US8287528B2 (en)1998-10-232012-10-16Covidien AgVessel sealing system
US7303557B2 (en)1998-10-232007-12-04Sherwood Services AgVessel sealing system
US6211749B1 (en)*1998-11-272001-04-03Kyosan Electric Mfg. Co., Ltd.Impedance matching device
EP1034747A1 (en)*1999-03-052000-09-13Gyrus Medical LimitedElectrosurgery system and instrument
US6565559B2 (en)1999-05-112003-05-20Sherwood Services AgElectrosurgical return electrode monitor
US6258085B1 (en)1999-05-112001-07-10Sherwood Services AgElectrosurgical return electrode monitor
US6156036A (en)*1999-06-112000-12-05Alcon Laboratories, Inc.Surgical handpiece tip
US6589239B2 (en)2000-02-012003-07-08Ashok C. KhandkarElectrosurgical knife
US6409725B1 (en)2000-02-012002-06-25Triad Surgical Technologies, Inc.Electrosurgical knife
US7722412B2 (en)2001-06-012010-05-25Covidien AgReturn pad cable connector
US7473145B2 (en)2001-06-012009-01-06Covidien AgReturn pad cable connector
US7364577B2 (en)2002-02-112008-04-29Sherwood Services AgVessel sealing system
US7749217B2 (en)2002-05-062010-07-06Covidien AgMethod and system for optically detecting blood and controlling a generator during electrosurgery
WO2004028385A1 (en)2002-09-252004-04-08Sherwood Services AgMultiple rf return pad contact detection system
US7938825B2 (en)2002-09-252011-05-10Covidien AgMultiple RF return pad contact detection system
EP1719471A2 (en)2002-09-252006-11-08Sherwood Services AGMultiple RF return pad contact detection system
EP2258295A2 (en)2002-09-252010-12-08Covidien AGMultiple RF return pad contact detection system
US7871410B2 (en)*2002-10-292011-01-18Cathrx LtdSystem for, and method of, heating a biological site in a patient's body
US20050273091A1 (en)*2002-10-292005-12-08CathrxptyltdSystem for, and method of, heating a biological site in a patient's body
US7044948B2 (en)2002-12-102006-05-16Sherwood Services AgCircuit for controlling arc energy from an electrosurgical generator
US8523855B2 (en)2002-12-102013-09-03Covidien AgCircuit for controlling arc energy from an electrosurgical generator
US7824400B2 (en)2002-12-102010-11-02Covidien AgCircuit for controlling arc energy from an electrosurgical generator
US7255694B2 (en)2002-12-102007-08-14Sherwood Services AgVariable output crest factor electrosurgical generator
US20040119577A1 (en)*2002-12-202004-06-24Robert WegerCoil arrangement with variable inductance
US8303580B2 (en)2003-05-012012-11-06Covidien AgMethod and system for programming and controlling an electrosurgical generator system
US7722601B2 (en)2003-05-012010-05-25Covidien AgMethod and system for programming and controlling an electrosurgical generator system
US8080008B2 (en)2003-05-012011-12-20Covidien AgMethod and system for programming and controlling an electrosurgical generator system
US8267929B2 (en)2003-05-012012-09-18Covidien AgMethod and system for programming and controlling an electrosurgical generator system
US8012150B2 (en)2003-05-012011-09-06Covidien AgMethod and system for programming and controlling an electrosurgical generator system
US8298223B2 (en)2003-05-012012-10-30Covidien AgMethod and system for programming and controlling an electrosurgical generator system
US8647340B2 (en)2003-10-232014-02-11Covidien AgThermocouple measurement system
US8104956B2 (en)2003-10-232012-01-31Covidien AgThermocouple measurement circuit
US8808161B2 (en)2003-10-232014-08-19Covidien AgRedundant temperature monitoring in electrosurgical systems for safety mitigation
US9768373B2 (en)2003-10-302017-09-19Covidien AgSwitched resonant ultrasonic power amplifier system
US8485993B2 (en)2003-10-302013-07-16Covidien AgSwitched resonant ultrasonic power amplifier system
US8966981B2 (en)2003-10-302015-03-03Covidien AgSwitched resonant ultrasonic power amplifier system
US8096961B2 (en)2003-10-302012-01-17Covidien AgSwitched resonant ultrasonic power amplifier system
US7396336B2 (en)2003-10-302008-07-08Sherwood Services AgSwitched resonant ultrasonic power amplifier system
US8113057B2 (en)2003-10-302012-02-14Covidien AgSwitched resonant ultrasonic power amplifier system
US7766693B2 (en)2003-11-202010-08-03Covidien AgConnector systems for electrosurgical generator
US7131860B2 (en)2003-11-202006-11-07Sherwood Services AgConnector systems for electrosurgical generator
US7416437B2 (en)2003-11-202008-08-26Sherwood Services AgConnector systems for electrosurgical generator
US7300435B2 (en)2003-11-212007-11-27Sherwood Services AgAutomatic control system for an electrosurgical generator
US7766905B2 (en)2004-02-122010-08-03Covidien AgMethod and system for continuity testing of medical electrodes
US20050192566A1 (en)*2004-02-262005-09-01Madden Sean C.Surgical handpiece tip
US7276060B2 (en)2004-02-262007-10-02Alcon, Inc.Surgical handpiece tip
US7780662B2 (en)2004-03-022010-08-24Covidien AgVessel sealing system using capacitive RF dielectric heating
US7554341B2 (en)2004-05-252009-06-30Erbe Elektromedizin GmbhMethod and measurement apparatus for determining the transition impedance between two parts of a subdivided neutral electrode
US20070222458A1 (en)*2004-05-252007-09-27Erbe Elektromedizin GmbhMethod And Measurement Apparatus For Determining The Transition Impedance Between Two Parts Of A Subdivided Neutral Electrode
US20080278179A1 (en)*2004-05-252008-11-13Florian EiseleMethod and measurement apparatus for determining the transition impedance between two parts of a subdivided neutral electrode
US7425835B2 (en)2004-05-252008-09-16Erbe Elektromedizin GmbhMethod and measurement apparatus for determining the transition impedance between two parts of a subdivided neutral electrode
US7422589B2 (en)2004-08-172008-09-09Encision, Inc.System and method for performing an electrosurgical procedure
US7465302B2 (en)2004-08-172008-12-16Encision, Inc.System and method for performing an electrosurgical procedure
US20060041251A1 (en)*2004-08-172006-02-23Odell Roger CElectrosurgical system and method
US8758336B2 (en)2004-08-172014-06-24Encision, Inc.System and method for monitoring electrosurgical systems
US20060041253A1 (en)*2004-08-172006-02-23Newton David WSystem and method for performing an electrosurgical procedure
US20060041252A1 (en)*2004-08-172006-02-23Odell Roger CSystem and method for monitoring electrosurgical instruments
US8025660B2 (en)2004-10-132011-09-27Covidien AgUniversal foot switch contact port
US7628786B2 (en)2004-10-132009-12-08Covidien AgUniversal foot switch contact port
US8821487B2 (en)2005-03-312014-09-02Covidien AgTemperature regulating patient return electrode and return electrode monitoring system
US11013548B2 (en)2005-03-312021-05-25Covidien AgMethod and system for compensating for external impedance of energy carrying component when controlling electrosurgical generator
US9474564B2 (en)2005-03-312016-10-25Covidien AgMethod and system for compensating for external impedance of an energy carrying component when controlling an electrosurgical generator
US9522032B2 (en)2005-10-212016-12-20Covidien AgCircuit and method for reducing stored energy in an electrosurgical generator
US8734438B2 (en)2005-10-212014-05-27Covidien AgCircuit and method for reducing stored energy in an electrosurgical generator
US7947039B2 (en)2005-12-122011-05-24Covidien AgLaparoscopic apparatus for performing electrosurgical procedures
US8241278B2 (en)2005-12-122012-08-14Covidien AgLaparoscopic apparatus for performing electrosurgical procedures
US7736359B2 (en)2006-01-122010-06-15Covidien AgRF return pad current detection system
US8685016B2 (en)2006-01-242014-04-01Covidien AgSystem and method for tissue sealing
US8202271B2 (en)2006-01-242012-06-19Covidien AgDual synchro-resonant electrosurgical apparatus with bi-directional magnetic coupling
US7513896B2 (en)2006-01-242009-04-07Covidien AgDual synchro-resonant electrosurgical apparatus with bi-directional magnetic coupling
US8663214B2 (en)2006-01-242014-03-04Covidien AgMethod and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US9186200B2 (en)2006-01-242015-11-17Covidien AgSystem and method for tissue sealing
US9642665B2 (en)2006-01-242017-05-09Covidien AgMethod and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US8267928B2 (en)2006-01-242012-09-18Covidien AgSystem and method for closed loop monitoring of monopolar electrosurgical apparatus
US8147485B2 (en)2006-01-242012-04-03Covidien AgSystem and method for tissue sealing
US8187262B2 (en)2006-01-242012-05-29Covidien AgDual synchro-resonant electrosurgical apparatus with bi-directional magnetic coupling
US10582964B2 (en)2006-01-242020-03-10Covidien LpMethod and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US7927328B2 (en)2006-01-242011-04-19Covidien AgSystem and method for closed loop monitoring of monopolar electrosurgical apparatus
US8475447B2 (en)2006-01-242013-07-02Covidien AgSystem and method for closed loop monitoring of monopolar electrosurgical apparatus
US8216223B2 (en)2006-01-242012-07-10Covidien AgSystem and method for tissue sealing
US7972328B2 (en)2006-01-242011-07-05Covidien AgSystem and method for tissue sealing
US7972332B2 (en)2006-03-032011-07-05Covidien AgSystem and method for controlling electrosurgical snares
US7651493B2 (en)2006-03-032010-01-26Covidien AgSystem and method for controlling electrosurgical snares
US7648499B2 (en)2006-03-212010-01-19Covidien AgSystem and method for generating radio frequency energy
US7651492B2 (en)2006-04-242010-01-26Covidien AgArc based adaptive control system for an electrosurgical unit
US8556890B2 (en)2006-04-242013-10-15Covidien AgArc based adaptive control system for an electrosurgical unit
US9119624B2 (en)2006-04-242015-09-01Covidien AgARC based adaptive control system for an electrosurgical unit
US8007494B1 (en)2006-04-272011-08-30Encision, Inc.Device and method to prevent surgical burns
US8753334B2 (en)2006-05-102014-06-17Covidien AgSystem and method for reducing leakage current in an electrosurgical generator
US8251989B1 (en)2006-06-132012-08-28Encision, Inc.Combined bipolar and monopolar electrosurgical instrument and method
US8034049B2 (en)2006-08-082011-10-11Covidien AgSystem and method for measuring initial tissue impedance
US7731717B2 (en)2006-08-082010-06-08Covidien AgSystem and method for controlling RF output during tissue sealing
US7880577B1 (en)*2006-08-252011-02-01Lockheed Martin CorporationCurrent doubler rectifier with current ripple cancellation
US7637907B2 (en)2006-09-192009-12-29Covidien AgSystem and method for return electrode monitoring
US7794457B2 (en)2006-09-282010-09-14Covidien AgTransformer for RF voltage sensing
US7722603B2 (en)2006-09-282010-05-25Covidien AgSmart return electrode pad
US8062291B2 (en)2006-09-282011-11-22Covidien AgSmart return electrode pad
US8216222B2 (en)2006-09-282012-07-10Covidien AgTemperature sensing return electrode pad
US8231616B2 (en)2006-09-282012-07-31Covidien AgTransformer for RF voltage sensing
US7927329B2 (en)2006-09-282011-04-19Covidien AgTemperature sensing return electrode pad
US20110190761A1 (en)*2006-09-282011-08-04Covidien AgTemperature Sensing Return Electrode Pad
USD574323S1 (en)2007-02-122008-08-05Tyco Healthcare Group LpGenerator
US8777940B2 (en)2007-04-032014-07-15Covidien LpSystem and method for providing even heat distribution and cooling return pads
US8021360B2 (en)2007-04-032011-09-20Tyco Healthcare Group LpSystem and method for providing even heat distribution and cooling return pads
US8235980B2 (en)2007-05-072012-08-07Tyco Healthcare Group LpElectrosurgical system for measuring contact quality of a return pad
US8080007B2 (en)2007-05-072011-12-20Tyco Healthcare Group LpCapacitive electrosurgical return pad with contact quality monitoring
US8777941B2 (en)2007-05-102014-07-15Covidien LpAdjustable impedance electrosurgical electrodes
US8231614B2 (en)2007-05-112012-07-31Tyco Healthcare Group LpTemperature monitoring return electrode
US8388612B2 (en)2007-05-112013-03-05Covidien LpTemperature monitoring return electrode
US8382749B2 (en)2007-05-112013-02-26Covidien LpTemperature monitoring return electrode
US8690867B2 (en)2007-05-112014-04-08Covidien LpTemperature monitoring return electrode
US7834484B2 (en)2007-07-162010-11-16Tyco Healthcare Group LpConnection cable and method for activating a voltage-controlled generator
US8100898B2 (en)2007-08-012012-01-24Tyco Healthcare Group LpSystem and method for return electrode monitoring
US9539051B2 (en)2007-08-012017-01-10Covidien LpSystem and method for return electrode monitoring
US8801703B2 (en)2007-08-012014-08-12Covidien LpSystem and method for return electrode monitoring
US8430873B2 (en)2007-08-012013-04-30Covidien LpSystem and method for return electrode monitoring
US8216220B2 (en)2007-09-072012-07-10Tyco Healthcare Group LpSystem and method for transmission of combined data stream
US8353905B2 (en)2007-09-072013-01-15Covidien LpSystem and method for transmission of combined data stream
US8512332B2 (en)2007-09-212013-08-20Covidien LpReal-time arc control in electrosurgical generators
US9271790B2 (en)2007-09-212016-03-01Coviden LpReal-time arc control in electrosurgical generators
US9757183B2 (en)2007-10-262017-09-12Encision Inc.Multiple parameter fault detection in electrosurgical instrument shields
US20090112204A1 (en)*2007-10-262009-04-30Encision, Inc.Multiple Parameter Fault Detection in Electrosurgical Instrument Shields
US8460284B2 (en)2007-10-262013-06-11Encision, Inc.Multiple parameter fault detection in electrosurgical instrument shields
US9254165B2 (en)2007-10-262016-02-09Encision, Inc.Multiple parameter fault detection in electrosurgical instrument shields
US20090198229A1 (en)*2008-02-052009-08-06Tyco Healthcare Group LpHybrid Contact Quality Monitoring Return Electrode
US8523853B2 (en)2008-02-052013-09-03Covidien LpHybrid contact quality monitoring return electrode
US8226639B2 (en)2008-06-102012-07-24Tyco Healthcare Group LpSystem and method for output control of electrosurgical generator
US9833281B2 (en)2008-08-182017-12-05Encision Inc.Enhanced control systems including flexible shielding and support systems for electrosurgical applications
US9314294B2 (en)2008-08-182016-04-19Encision, Inc.Enhanced control systems including flexible shielding and support systems for electrosurgical applications
US8486061B2 (en)2009-01-122013-07-16Covidien LpImaginary impedance process monitoring and intelligent shut-off
US20110071520A1 (en)*2009-09-232011-03-24Tyco Healthcare Group LpMethods and Apparatus for Smart Handset Design in Surgical Instruments
US8568400B2 (en)*2009-09-232013-10-29Covidien LpMethods and apparatus for smart handset design in surgical instruments
US8652125B2 (en)2009-09-282014-02-18Covidien LpElectrosurgical generator user interface
US20110077631A1 (en)*2009-09-282011-03-31Tyco Healthcare Group LpElectrosurgical Generator User Interface
US20120239025A1 (en)*2011-03-172012-09-20Tyco Healthcare Group LpIsolated Current Sensor
JP2012192189A (en)*2011-03-172012-10-11Tyco Healthcare Group LpIsolated current sensor
US9366703B2 (en)2012-12-172016-06-14Covidien LpSystem and method for voltage and current sensing
US9116179B2 (en)2012-12-172015-08-25Covidien LpSystem and method for voltage and current sensing
US9863983B2 (en)2012-12-172018-01-09Covidien LpSystem and method for voltage and current sensing
US9872719B2 (en)2013-07-242018-01-23Covidien LpSystems and methods for generating electrosurgical energy using a multistage power converter
US11135001B2 (en)2013-07-242021-10-05Covidien LpSystems and methods for generating electrosurgical energy using a multistage power converter
US9655670B2 (en)2013-07-292017-05-23Covidien LpSystems and methods for measuring tissue impedance through an electrosurgical cable
US9636165B2 (en)2013-07-292017-05-02Covidien LpSystems and methods for measuring tissue impedance through an electrosurgical cable
US10278764B2 (en)2014-12-022019-05-07Covidien LpElectrosurgical generators and sensors
US10987154B2 (en)2014-12-022021-04-27Covidien LpElectrosurgical generators and sensors
US10292753B2 (en)2014-12-022019-05-21Covidien LpElectrosurgical generators and sensors
US10281496B2 (en)2014-12-022019-05-07Covidien LpElectrosurgical generators and sensors
US10908187B2 (en)2016-05-022021-02-02Covidien LpCurrent sensor with reduced voltage coupling
US11703525B2 (en)2016-05-022023-07-18Covidien LpCurrent sensor with reduced voltage coupling
US11364076B2 (en)2019-12-122022-06-21Covidien LpMonopolar return pad
US12186014B2 (en)2019-12-122025-01-07Covidien LpMonopolar return pad including a pathway for evacuating surgical smoke
US12226143B2 (en)2020-06-222025-02-18Covidien LpUniversal surgical footswitch toggling

Similar Documents

PublicationPublication DateTitle
US3913583A (en)Control circuit for electrosurgical units
US10517663B2 (en)Electrosurgical medical system and method
US4662369A (en)Electrosurgical apparatus having a safety circuit
US5152762A (en)Current leakage control for electrosurgical generator
US4188927A (en)Multiple source electrosurgical generator
US3946738A (en)Leakage current cancelling circuit for use with electrosurgical instrument
US4437464A (en)Electrosurgical generator safety apparatus
US9750558B2 (en)Electrosurgical medical system and method
EP0544415B1 (en)Patient support tables and monitors
CA1079811A (en)Electrosurgical device
US3905373A (en)Electrosurgical device
US4051855A (en)Electrosurgical unit
US6860881B2 (en)Multiple RF return pad contact detection system
EP0533360B1 (en)Electrosurgery apparatus
US4114622A (en)Electrosurgical device
US3987796A (en)Electrosurgical device
GB2146534A (en)Electrosurgical system
DE3610393A1 (en)Method and evaluation component for determining high-frequency (radio-frequency) fault currents
JPH0614736Y2 (en) Electric scalpel device
CN116269726A (en)Electrosurgical generator with leakage current detection
HU191282B (en)Device for measuring dangerous currents developed in the course of application of surgical high-frequency cutting and coagulating devices

Legal Events

DateCodeTitleDescription
ASAssignment

Owner name:LIEBEL-FLARSHEIM COMPANY, A CORP OF DE.

Free format text:ASSIGNMENT OF ASSIGNORS INTEREST.;ASSIGNOR:SYBRON CORPORATION, A CORP OF NY.;REEL/FRAME:004624/0585

Effective date:19860731

ASAssignment

Owner name:CASTLE COMPANY

Free format text:ASSIGNMENT OF ASSIGNORS INTEREST.;ASSIGNOR:LIEBEL-FLARSHEIM COMPANY, A CORP. OF DE.;REEL/FRAME:004610/0412

Effective date:19860911

Owner name:CASTLE COMPANY, STATELESS

Free format text:ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:LIEBEL-FLARSHEIM COMPANY, A CORP. OF DE.;REEL/FRAME:004610/0412

Effective date:19860911


[8]ページ先頭

©2009-2025 Movatter.jp