IP Library Granted Patent US 9,782,180
Granted Patent B2
US 9,782,180 · App. 13/465,820 · Granted Oct 10, 2017

Method of maintaining constant movement of a cutting blade of an ultrasonic waveguide

Inventors: Kevin W. Smith (Coral Gables, FL); Thomas O. Bales, Jr. (Coral Gables, FL); Matthew A. Palmer (Miami, FL); Derek Dee Deville (Coral Gables, FL)
Assignee: COVIDIEN AG
A61B17/1285A61B17/320092A61B2017/00017A61B2017/0046A61B2017/00734
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Quick Facts
Patent No.
US 9,782,180
App. No.
13/465,820
Granted
Oct 10, 2017
Kind
B2
Abstract

A method of maintaining a constant movement of a cutting blade of an ultrasonic waveguide includes providing an ultrasonic transducer operable to convert a received motional current into a movement of a cutting blade of an ultrasonic waveguide, a measurement circuit connected in a parallel configuration with the ultrasonic transducer, and a variable power source operable to supply current through a set of connection points to the parallel configuration and thereby create the motional current in the ultrasonic transducer. Current is supplied through a set of connection points of the parallel configuration with the variable power source to, thereby, create the motional current in the ultrasonic transducer and the motional current is regulated with a current controller by varying an output of the power source, thereby maintaining a substantially constant rate of movement of the cutting blade across a variety of cutting loads.

Claims (44)

1. A method of maintaining a constant movement of a cutting blade of an ultrasonic waveguide of a surgical instrument, which comprises:

providing within a handle of the surgical instrument:

an ultrasonic transducer operable to convert a received motional current into a movement of a cutting blade of an ultrasonic waveguide;

a measurement circuit connected in a parallel configuration with the ultrasonic transducer; and

a variable power source comprising a battery;

providing a clamping mechanism having a range of clamping force values and being operable to place material in physical contact with the cutting blade, wherein the clamping mechanism is communicatively coupled to a current controller;

supplying current through a set of connection points of the parallel configuration with the variable power source to, thereby, create the motional current in the ultrasonic transducer;

regulating the motional current with the current controller by varying an output of the power source, thereby maintaining a resonant condition along the cutting blade in which there is a substantially constant rate of movement of the cutting blade across a variety of cutting loads; and

varying the motional current with the current controller based upon a given clamping value within the range of clamping values.

2. The method according to claim 1 , wherein:

the ultrasonic transducer has a first capacitance in a parallel configuration with a series configuration of a resistance, an inductance, and a second capacitance; and

the motional current flows through the series configuration.

3. The method according to claim 2 , wherein the measurement circuit is comprised of a third capacitance in a parallel configuration with the first capacitance.

4. The method according to claim 3 , wherein the variable power source is coupled to the third capacitance and the ultrasonic transducer.

5. The method according to claim 4 , which further comprises carrying out the motional current regulating step by varying an output of the power source based upon a product of the current flowing through the third capacitance multiplied by a ratio between a value of the first capacitance and a value of the third capacitance subtracted from a total current flowing into the ultrasonic transducer.

6. The method according to claim 1 , wherein:

the current controller comprises a processor; and

the variable power source comprises a phase locked loop communicatively coupled to the processor, and which further comprises:

determining a frequency of movement of the cutting blade with the phase locked loop; and

storing a last frequency of blade movement in a memory communicatively coupled to the processor.

7. The method according to claim 1 , which further comprises providing a disposable handle body with:

a portion defining a battery-holding compartment having at least two battery contacts;

a waveguide attachment dock exposed to the environment and shaped to accept the ultrasonic waveguide therein;

a transducer attachment dock exposed to the environment and shaped to place the ultrasonic transducer in coaxial alignment with the ultrasonic waveguide when the ultrasonic waveguide is disposed within the waveguide attachment dock; and

an ultrasonic-signal-generator assembly dock exposed to the environment and shaped to substantially simultaneously:

selectively removably secure at least the ultrasonic transducer to the handle body;

place an end of the ultrasonic transducer within the transducer attachment dock; and

electrically couple at least the ultrasonic transducer to the at least two battery contacts.

8. A method of maintaining a constant movement of a cutting blade of an ultrasonic waveguide of a surgical instrument, which comprises:

providing within a handle of the surgical instrument:

an ultrasonic transducer operable to convert a received motional current into a movement of a cutting blade of an ultrasonic waveguide, wherein the ultrasonic transducer is comprised of a first capacitance in a parallel configuration with a series configuration of a resistance, an inductance, and a second capacitance, whereby the motional current flows through the series configuration;

a measurement circuit connected in a parallel configuration with the ultrasonic transducer, wherein the measurement circuit is comprised of a third capacitance in a parallel configuration with the first capacitance; and

a variable power source comprising a removable battery, the variable power source coupled to the third capacitance and the ultrasonic transducer;

supplying current through a set of connection points of the parallel configuration with the variable power source to, thereby, create the motional current in the ultrasonic transducer; and

regulating the motional current with a current controller by varying an output of the power source, wherein the varying of the output of the power source is based upon a product of the current flowing through the third capacitance multiplied by a ratio between a value of the first capacitance and a value of the third capacitance subtracted from a total current flowing into the ultrasonic transducer, thereby maintaining a resonant condition along the cutting blade in which there is a substantially constant rate of movement of the cutting blade across a variety of cutting loads.

9. The method according to claim 8 , wherein:

the current controller comprises a processor; and

the variable power source comprises a phase locked loop communicatively coupled to the processor, and which further comprises:

determining a frequency of movement of the cutting blade with the phase locked loop; and

storing a last frequency of blade movement in a memory communicatively coupled to the processor.

10. The method according to claim 8 , which further comprises:

providing a clamping mechanism having a range of clamping force values and being operable to place material in physical contact with the cutting blade;

communicatively coupling the current controller to the clamping mechanism; and

varying the motional current with the current controller based upon a given clamping value within the range of clamping values.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 23, 2012
From: SYNTHEON, LLC
To: COVIDIEN AG
Reel/Frame 028253/0833 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2012
From: SMITH, KEVIN W.; BALES, THOMAS O., JR.; PALMER, MATTHEW A.; DEVILLE, DEREK DEE
To: SYNTHEON, LLC
Reel/Frame 028196/0644 →
Continuity (26)
Continuation In Part 12266146 · Nov 6, 2008
Continuation In Part 12266101 · Nov 6, 2008
Continuation In Part 12266226 · Nov 6, 2008
Continuation In Part 12266252 · Nov 6, 2008
Continuation In Part 12266320 · Nov 6, 2008
Continuation In Part 12266664 · Nov 7, 2008
Continuation In Part 12269544 · Nov 12, 2008
Continuation In Part 12269629 · Nov 12, 2008
Continuation In Part 12270146 · Nov 13, 2008
Division 13072187 · Mar 25, 2011
Division 13072373 · Mar 25, 2011
Division 13072309 · Mar 25, 2011
Division 13072345 · Mar 25, 2011
Division 13072247 · Mar 25, 2011
Division 13072273 · Mar 25, 2011
Division 13072221 · Mar 25, 2011
Division 12547898 · Aug 26, 2009
Division 12547975 · Aug 26, 2009
Division 12547999 · Aug 26, 2009
Provisional Application 60991829 · Dec 3, 2007
Provisional Application 60992498 · Dec 5, 2007
Provisional Application 61019888 · Jan 9, 2008
Provisional Application 61045475 · Apr 16, 2008
Provisional Application 61048809 · Apr 29, 2008
Provisional Application 61081885 · Jul 18, 2008
Related Publication 20120221031A1 · Aug 30, 2012