Patent classifications
A61B2017/320097
METHODS FOR ESTIMATING AND CONTROLLING STATE OF ULTRASONIC END EFFECTOR
- Cameron R. Nott ,
- Foster B. Stulen ,
- Fergus P. Quigley ,
- John E. Brady ,
- Gregory A. Trees ,
- Amrita S. Sawhney ,
- Patrick J. Scoggins ,
- Kristen G. Denzinger ,
- Craig N. Faller ,
- Madeleine C. Jayme ,
- Alexander R. Cuti ,
- Matthew S. Schneider ,
- Chad P. Boudreaux ,
- Brian D. Black ,
- Maxwell T. Rockman ,
- Gregory D. Bishop ,
- Eric M. Roberson ,
- Stephen M. Leuck ,
- James M. Wilson
Various aspects of a generator, ultrasonic device, and method for estimating and controlling a state of an end effector of an ultrasonic device are disclosed. The ultrasonic device includes an electromechanical ultrasonic system defined by a predetermined resonant frequency, including an ultrasonic transducer coupled to an ultrasonic blade. A control circuit measures a complex impedance of an ultrasonic transducer, wherein the complex impedance as defined as
The control circuit receives a complex impedance measurement data point and compares the complex impedance measurement data point to a data point in a reference complex impedance characteristic pattern. The control circuit then classifies the complex impedance measurement data point based on a result of the comparison analysis and assigns a state or condition of the end effector based on the result of the comparison analysis. The control circuit estimates the state of the end effector of the ultrasonic device and controls the state of the end effector of the ultrasonic device based on the estimated state.
SUCTION AND IRRIGATION VALVE AND METHOD OF PRIMING SAME IN A ROBOTIC SURGICAL SYSTEM
A method of priming a surgical instrument, wherein the surgical instrument includes a shaft assembly including a lumen, and a valve assembly. The valve assembly includes a first inlet configured to receive the fluid from a fluid source, a second inlet configured to receive a suction from a vacuum source, an outlet in fluid communication with the lumen, a valve chamber, and at least one valve plug. The method includes activating the fluid source to provide the fluid to the first inlet, activating the vacuum source to provide the suction to the second inlet, transitioning the at least one valve plug from a first position to a second position, and transferring a first portion of the fluid from the first inlet toward the vacuum source through the second inlet thereby priming the surgical instrument.
Method for controlling smart energy devices
- Frederick E. Shelton, IV ,
- David C. Yates ,
- Jason L. Harris ,
- Kevin L. Houser ,
- John E. Brady ,
- Gregory A. Trees ,
- Patrick J. Scoggins ,
- Madeleine C. Jayme ,
- Kristen G. Denzinger ,
- Cameron R. Nott ,
- Craig N. Faller ,
- Amrita S. Sawhney ,
- Eric M. Roberson ,
- Stephen M. Leuck ,
- Brian D. Black ,
- Fergus P. Quigley ,
- Tamara Widenhouse
A method for controlling an operation of an ultrasonic blade of an ultrasonic electromechanical system is disclosed. The method includes providing an ultrasonic electromechanical system comprising an ultrasonic transducer coupled to an ultrasonic blade via an ultrasonic waveguide; applying, by an energy source, a power level to the ultrasonic transducer; determining, by a control circuit coupled to a memory, a mechanical property of the ultrasonic electromechanical system; comparing, by the control circuit, the mechanical property with a reference mechanical property stored in the memory; and adjusting, by the control circuit, the power level applied to the ultrasonic transducer based on the comparison of the mechanical property with the reference mechanical property.
SLIP RING ASSEMBLY FOR SURGICAL INSTRUMENT
A surgical instrument includes a body assembly, a shaft assembly extending distally from the body assembly along a shaft axis, and an end effector at a distal end of the shaft assembly. The shaft assembly includes an outer tube configured to rotate relative to the body assembly about the shaft axis. The surgical instrument further includes a slip ring assembly configured to enable electrical communication between the shaft assembly and the body assembly while permitting relative rotation therebetween. The slip ring assembly includes a first electrical contact supported by the outer tube, and a second electrical contact electrically coupled with the first electrical contact and positioned radially outward of the outer tube. The first electrical contact is configured to rotate with the outer tube about the shaft axis relative to the second electrical contact while the first and second electrical contacts remain electrically coupled.
METHOD OF COMPRESSING TISSUE WITHIN A STAPLING DEVICE AND SIMULTANEOUSLY DISPLAYING THE LOCATION OF THE TISSUE WITHIN THE JAWS
A method of compressing tissue during a surgical procedure is disclosed. The method comprises obtaining a surgical instrument comprising an end effector, wherein the end effector comprises a first jaw and a second jaw, establishing a communication pathway between the surgical instrument and a surgical hub, and inserting the surgical instrument into a surgical site. The method further comprises compressing tissue between the first jaw and the second jaw, determining a location of the compressed tissue with respect to at least one of the first jaw and the second jaw, communicating the determined location of the compressed tissue to the surgical hub, and displaying the determined location of the compressed tissue on a visual feedback device.
Automated end effector component reloading system for use with a robotic system
A surgical instrument. The surgical instrument includes an end effector that comprises a staple channel and an anvil that is movably translatable relative to the staple channel. A tool mounting portion is configured to interface with a robotic system and operably communicate with the end effector. The instrument further includes a first sensor that has an output that represents a first condition of a portion of the robotic system. A second sensor has an output that represents a position of the anvil. A third sensor has an output that represents a position of a reciprocating knife within the end effector. An externally accessible memory device communicates with the first, second and third sensors.
Method of operating an articulating ultrasonic surgical instrument
- Barry C. Worrell ,
- Benjamin J. Danziger ,
- Benjamin D. Dickerson ,
- Brian D. Black ,
- Cara L. Shapiro ,
- Charles J. Scheib ,
- Craig N. Faller ,
- Daniel J. Mumaw ,
- David J. Cagle ,
- David T. Martin ,
- David A. Monroe ,
- Disha V. Labhasetwar ,
- Foster B. Stulen ,
- Frederick L. Estera ,
- Geoffrey S. Strobl ,
- Gregory W. Johnson ,
- Jacob S. Gee ,
- Jason R. Sullivan ,
- Jeffrey D. Messerly ,
- Jeffrey S. Swayze ,
- John A. Hibner ,
- John B. Schulte ,
- Joseph E. Hollo ,
- Kristen G. Denzinger ,
- Kristen L. D'Uva ,
- Matthew C. Miller ,
- Michael R. Lamping ,
- Richard W. Timm ,
- Rudolph H. Nobis ,
- Ryan M. Asher ,
- Stephen M. Leuck ,
- Tylor C. Muhlenkamp ,
- William B. Weisenburgh, II ,
- William A. Olson
An apparatus comprises a body assembly, a shaft, an acoustic waveguide, an articulation section, an end effector, and an articulation drive assembly. The shaft extends distally from the body assembly and defines a longitudinal axis. The acoustic waveguide comprises a flexible portion. The articulation section is coupled with the shaft. A portion of the articulation section encompasses the flexible portion of the waveguide. The articulation section comprises a plurality of body portions aligned along the longitudinal axis and a flexible locking member. The flexible locking member is operable to secure the body portions in relation to each other and in relation to the shaft. The end effector comprises an ultrasonic blade in acoustic communication with the waveguide. The articulation drive assembly is operable to drive articulation of the articulation section to thereby deflect the end effector from the longitudinal axis.
Determining tissue composition via an ultrasonic system
Various systems and methods for determining the composition of tissue via an ultrasonic surgical instrument are disclosed. A control circuit can be configured to monitor the change in resonant frequency of an ultrasonic electromechanical system of the ultrasonic surgical instrument as the ultrasonic blade oscillates against a tissue and determine the composition of the tissue accordingly. In some aspects, the control circuit can be configured to modify the operation of the ultrasonic electromechanical system or other operational parameters of the ultrasonic surgical instrument according to the detected tissue composition.
METHOD FOR SMART ENERGY DEVICE INFRASTRUCTURE
A method for characterizing a state of an end effector of an ultrasonic device is disclosed. The ultrasonic device including an electromechanical ultrasonic system defined by a predetermined resonant frequency. The electromechanical ultrasonic system further including an ultrasonic transducer coupled to an ultrasonic blade. The method including applying, by an energy source, a power level to the ultrasonic transducer, measuring, by a control circuit coupled to a memory, an impedance value of the ultrasonic transducer, comparing, by the control circuit, the impedance value to a reference impedance value stored in the memory; classifying, by the control circuit, the impedance value based on the comparison; characterizing, by the control circuit, the state of the electromechanical ultrasonic system based on the classification of the impedance value; and adjusting, by the control circuit, the power level applied to the ultrasonic transducer based on the characterization of the state of the end effector.
ARTICULATION SYSTEM FOR SURGICAL INSTRUMENT
A surgical instrument assembly is disclosed. The surgical instrument assembly comprises a shaft, an end effector, and a drive member configured to actuate a function of the end effector. The surgical instrument assembly further comprises an articulation member configured to be actuated to articulate the end effector and an articulation region, wherein the articulation member is configured to articulate the end effector relative to the shaft by way of the articulation region, wherein the drive member extends through the shaft, the articulation region, and the end effector. The articulation region comprises an articulation support pivot positioned within the articulation region, wherein the articulation member is coupled to the articulation support pivot, wherein the articulation member is actuatable to rotate the articulation support pivot, and wherein the drive member extends through the articulation support pivot.