Impedance monitoring apparatus, system, and method for ultrasonic surgical instruments
US-9017326-B2 · Apr 28, 2015 · US
US9427249B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9427249-B2 |
| Application number | US-201313891269-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 10, 2013 |
| Priority date | Feb 11, 2010 |
| Publication date | Aug 30, 2016 |
| Grant date | Aug 30, 2016 |
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.
An ultrasonic surgical instrument includes a housing, an ultrasonic transducer assembly rotatably supported within said housing and communicating with a source of ultrasonic electrical signals, a motor within said housing and communicating with a source of motor drive signals, said motor coupled to said ultrasonic transducer assembly for applying rotational motion thereto, a horn coupled to said ultrasonic transducer assembly, an outer sheath coupled to said housing, said outer sheath including a distal portion, and a blade operably coupled to said horn, said blade rotatably supported relative to said outer sheath, wherein said blade includes an outer sheath contacting surface, wherein said distal portion of said outer sheath includes a blade contacting surface, and wherein at least one of said outer sheath contacting surface and said blade contacting surface includes a friction reducing material.
Opening claim text (preview).
What is claimed is: 1. An ultrasonic surgical instrument comprising: a housing; an ultrasonic transducer assembly rotatably supported within said housing and communicating with a source of ultrasonic electrical signals, wherein said source of ultrasonic electrical signals is configured to cause said ultrasonic transducer assembly to generate at least one ultrasonic motion; a motor within said housing and communicating with a source of motor drive signals, said motor coupled to said ultrasonic transducer assembly for applying rotational motion thereto; a circuit configured to convert said rotational motion of said motor into electrical pulses for controlling said motor; a horn coupled to said ultrasonic transducer assembly; an outer sheath coupled to said housing, said outer sheath comprising a distal portion; and a blade operably coupled to said horn, wherein said horn is configured to transmit said at least one ultrasonic motion to said blade, wherein said blade is rotatably supported relative to said outer sheath, wherein said blade is rotatable about a longitudinal axis in response to said rotational motion, wherein said blade includes an outer sheath contacting surface, wherein said distal portion of said outer sheath includes a blade contacting surface, and wherein at least one of said outer sheath contacting surface and said blade contacting surface comprises a friction reducing material. 2. The ultrasonic surgical instrument of claim 1 , wherein said friction reducing material is selected from the group of materials consisting of a polyimide material, Teflon material, a carbon-filled polyimide material, and a Teflon-ceramic material. 3. The ultrasonic surgical instrument of claim 1 , wherein said blade contacting surface of said outer sheath is arranged in interference fit with said outer sheath contacting surface of said blade. 4. The ultrasonic surgical instrument of claim 1 , wherein said distal portion of said outer sheath comprises a cavity configured to rotatably support said blade. 5. The ultrasonic surgical instrument of claim 4 , wherein said friction reducing material comprises a friction reducing pad mounted within said cavity. 6. The ultrasonic surgical instrument of claim 5 , wherein said friction reducing pad has a surface that matches a geometric shape of said outer sheath contacting surface of said blade. 7. The ultrasonic surgical instrument of claim 5 , wherein said friction reducing pad is fabricated from a material selected from the group of materials consisting of a polyimide material, Teflon material, a carbon-filled polyimide material, and a Teflon-ceramic material. 8. The ultrasonic surgical instrument of claim 5 , wherein said friction reducing pad is arranged in interference fit with said outer sheath contacting surface of said blade. 9. The ultrasonic surgical instrument of claim 1 , wherein said at least one of said outer sheath contacting surface and said blade contacting surface is coated with said friction reducing material. 10. An ultrasonic surgical instrument comprising: a housing; an ultrasonic transducer assembly rotatably supported within said housing and communicating with a source of ultrasonic electrical signals, wherein said source of ultrasonic electrical signals is configured to cause said ultrasonic transducer assembly to generate at least one ultrasonic motion; a motor within said housing and communicating with a source of motor drive signals, said motor coupled to said ultrasonic transducer assembly for applying rotational motion thereto; a circuit configured to convert said rotational motion of said motor into electrical pulses for controlling said motor; a horn coupled to said ultrasonic transducer assembly; an outer sheath coupled to said housing, said outer sheath comprising a distal portion; and a blade operably coupled to said horn, wherein said horn is configured to transmit said at least one ultrasonic motion to said blade, wherein said blade is rotatably supported relative to said outer sheath, wherein said blade is rotatable about a longitudinal axis in response to said rotational motion, wherein said blade includes an outer sheath contacting surface, wherein said distal portion of said outer sheath includes a blade contacting surface, wherein said outer sheath contacting surface comprises a first friction reducing material, wherein said blade contacting surface comprises a second friction reducing material, and wherein said second friction reducing material is softer than said first friction reducing material. 11. The ultrasonic surgical instrument of claim 10 , wherein said second friction reducing material is selected from the group of materials consisting of a polyimide material, Teflon material, a carbon-filled polyimide material, and a Teflon-ceramic material. 12. The ultrasonic surgical instrument of claim 10 , wherein said blade contacting surface of said outer sheath is arranged in interference fit with said outer sheath contacting surface of said blade. 13. The ultrasonic surgical instrument of claim 10 , wherein said distal portion of said outer sheath comprises a cavity configured to rotatably support said blade. 14. The ultrasonic surgical instrument of claim 13 , wherein said second friction reducing material comprises a friction reducing pad mounted within said cavity. 15. The ultrasonic surgical instrument of claim 14 , wherein said friction reducing pad has a surface that matches a geometric shape of said outer sheath contacting surface of said blade. 16. The ultrasonic surgical instrument of claim 14 , wherein said friction reducing pad is fabricated from a material selected from the group of materials consisting of a polyimide material, Teflon material, a carbon-filled polyimide material, and a Teflon-ceramic material. 17. The ultrasonic surgical instrument of claim 14 , wherein said friction reducing pad is arranged in interference fit with said outer sheath contacting surface of said blade. 18. An ultrasonic surgical instrument comprising: a housing; an ultrasonic transducer assembly rotatably supported within said housing and communicating with a source of ultrasonic electrical signals, wherein said source of ultrasonic electrical signals is configured to cause said ultrasonic transducer assembly to generate at least one ultrasonic motion; a motor within said housing and communicating with a source of motor drive signals, said motor coupled to said ultrasonic transducer assembly for applying rotational motion thereto; a circuit configured to convert said rotational motion of said motor into electrical pulses for controlling said motor; a horn coupled to said ultrasonic transducer assembly; an outer sheath coupled to said housing, said outer sheath comprising a distal portion; and a blade operably coupled to said horn, wherein said horn is configured to transmit said at least one ultrasonic motion to said blade, wherein said blade is rotatably supported relative to said outer sheath, wherein said blade is rotatable about a longitudinal axis in response to said rotational motion, wherein said blade includes an outer sheath contacting surface, wherein said distal portion of said outer sheath includes a blade contacting surface, and wherein said blade contacting surface comprises: a first portion; a second portion; and an intermediate portion connecting said first portion and said second portion, wherein said intermediate portion is softer than at least one of said first portion and said second portion. 19. The ultrasonic surgical instr
using mechanical vibrations, e.g. ultrasonic (A61B17/22012 takes precedence; dental tooth drilling devices operated by vibration A61C3/03; removing intra-ocular material using mechanical vibrations A61F9/00745) · CPC title
node location · CPC title
using mechanical vibrations, e.g. ultrasonic shock waves (A61B17/225 takes precedence) · CPC title
through side-hole, e.g. sliding or rotating cutter inside catheter · CPC title
with suction or vacuum means · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.