IP Library Granted Patent US 9,763,731
Granted Patent B2
US 9,763,731 · App. 14/673,063 · Granted Sep 19, 2017

Vacuum powered rotary devices and methods

Inventors: Brian R. Dubois (Redwood City, CA); James T. Nielsen (San Francisco, CA); Alexander Gordon (Menlo Park, CA)
Assignee: Myromed, LLC
A61B18/148A61B17/32A61B17/32002A61B17/32053A61B2017/0023A61B2017/00544A61B2017/320024A61B2017/320064A61B2018/00577A61B2018/00595A61B2217/005
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Quick Facts
Patent No.
US 9,763,731
App. No.
14/673,063
Granted
Sep 19, 2017
Kind
B2
Abstract

The present devices and methods relate generally to vacuum or suction powered medical devices and methods for cutting, resecting, excising, morcellating and/or evacuating tissue from various regions of a patient's body. In certain variations, the devices may produce a rotational motion by converting a linear reciprocating motion to a rotational motion, causing a cutting shaft or other tool to rotate to perform work on a tissue in various regions of the body.

Claims (56)

1. A medical device for cutting tissue from the human body comprising:

a shaft having a proximal end, a distal end, and a lumen extending there between, wherein the shaft has an opening at the distal end and a sharpened edge surrounding at least a portion of a perimeter of the opening, wherein the shaft is rotatable about a central axis of the shaft, wherein the shaft is coaxially positioned within an outer shaft;

a mechanism powered by suction from a vacuum source, wherein the mechanism is configured to produce a linear reciprocating motion;

a component coupled to the mechanism and coupled to the shaft, wherein the component is configured to convert the linear reciprocating motion to rotary motion, thereby causing the shaft to rotate to cut tissue; and

a shaft position control, wherein the shaft position control is configured to axially translate the outer shaft or the shaft.

2. The device of claim 1 , wherein the mechanism is powered solely by suction created by a vacuum source.

3. The device of claim 1 , wherein the component is configured to convert linear reciprocating motion to oscillating rotary motion.

4. The device of claim 1 , wherein the shaft is configured to receive a grasper advanced distally through the shaft lumen, where the grasper is configured to draw or retract tissue proximally against the sharpened distal edge or extremity of the shaft to allow for cutting or excision of the tissue wherein cut tissue is removed or evacuated through the shaft lumen and out of the body.

5. The device of claim 1 , further comprising a seal located at a proximal end of the shaft, wherein the seal is configured to allow the passage of instruments through a lumen of the shaft without allowing fluid to escape through the lumen.

6. The device of claim 1 , wherein the medical device produces an oscillating rotary motion such that the shaft cuts tissue while preventing tissue breakage resulting from twisting of the tissue.

7. The device of claim 1 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to cauterize tissue.

8. The device of claim 1 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to ablate tissue.

9. The device of claim 1 , wherein the component comprises a rack and pinion gear assembly having one or more racks and one or more gears, wherein the rack is coupled to the mechanism such that linear reciprocating motion produced by the mechanism causes the rack to reciprocate, wherein the reciprocating rack drives the pinion gear in an oscillating rotary motion.

10. The device of claim 1 , wherein the component comprises a gear and a crank arm, wherein the gear is coupled to the mechanism via the crank arm and the linear reciprocating motion produced by the mechanism causes the crank arm to rotate the gear.

11. A medical device for cutting tissue from the human body comprising:

a shaft having a proximal end, a distal end, and a lumen extending there between, wherein the shaft has an opening at the distal end and a sharpened edge surrounding at least a portion of a perimeter of the opening, wherein the shaft is rotatable about a central axis of the shaft;

a mechanism powered by suction from a vacuum source, wherein the mechanism is configured to produce a linear reciprocating motion; and

a component coupled to the mechanism and coupled to the shaft, wherein the component is configured to convert the linear reciprocating motion to rotary motion, thereby causing the shaft to rotate to cut tissue, wherein the component comprises a rack and pinion gear assembly having one or more racks and one or more gears, wherein the rack is coupled to the mechanism such that linear reciprocating motion produced by the mechanism causes the rack to reciprocate, wherein the reciprocating rack drives the pinion gear in an oscillating rotary motion.

12. The device of claim 11 , wherein the mechanism is powered solely by suction created by a vacuum source.

13. The device of claim 11 , wherein the component is configured to convert linear reciprocating motion to oscillating rotary motion.

14. The device of claim 11 , wherein the shaft is configured to receive a grasper advanced distally through the shaft lumen, where the grasper is configured to draw or retract tissue proximally against the sharpened distal edge or extremity of the shaft to allow for cutting or excision of the tissue wherein cut tissue is removed or evacuated through the shaft lumen and out of the body.

15. The device of claim 11 , wherein the shaft is coaxially positioned within an outer shaft.

16. The device of claim 15 , further comprising a shaft position control, wherein the shaft position control is configured to axially translate the outer shaft or the shaft.

17. The device of claim 11 , further comprising a seal located at a proximal end of the shaft, wherein the seal is configured to allow the passage of instruments through a lumen of the shaft without allowing fluid to escape through the lumen.

18. The device of claim 11 , wherein the medical device produces an oscillating rotary motion such that the shaft cuts tissue while preventing tissue breakage resulting from twisting of the tissue.

19. The device of claim 11 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to cauterize tissue.

20. The device of claim 11 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to ablate tissue.

21. A medical device for cutting tissue from the human body comprising:

a shaft having a proximal end, a distal end, and a lumen extending there between, wherein the shaft has an opening at the distal end and a sharpened edge surrounding at least a portion of a perimeter of the opening, wherein the shaft is rotatable about a central axis of the shaft;

a mechanism powered by suction from a vacuum source, wherein the mechanism is configured to produce a linear reciprocating motion; and

a component coupled to the mechanism and coupled to the shaft, wherein the component is configured to convert the linear reciprocating motion to rotary motion, thereby causing the shaft to rotate to cut tissue, wherein the component comprises a gear and a crank arm, wherein the gear is coupled to the mechanism via the crank arm and the linear reciprocating motion produced by the mechanism causes the crank arm to rotate the gear.

22. The device of claim 21 , wherein the mechanism is powered solely by suction created by a vacuum source.

23. The device of claim 21 , wherein the component is configured to convert linear reciprocating motion to oscillating rotary motion.

24. The device of claim 21 , wherein the shaft is configured to receive a grasper advanced distally through the shaft lumen, where the grasper is configured to draw or retract tissue proximally against the sharpened distal edge or extremity of the shaft to allow for cutting or excision of the tissue wherein cut tissue is removed or evacuated through the shaft lumen and out of the body.

25. The device of claim 21 , wherein the shaft is coaxially positioned within an outer shaft.

26. The device of claim 25 , further comprising a shaft position control, wherein the shaft position control is configured to axially translate the outer shaft or the shaft.

27. The device of claim 21 , further comprising a seal located at a proximal end of the shaft, wherein the seal is configured to allow the passage of instruments through a lumen of the shaft without allowing fluid to escape through the lumen.

28. The device of claim 21 , wherein the medical device produces an oscillating rotary motion such that the shaft cuts tissue while preventing tissue breakage resulting from twisting of the tissue.

29. The device of claim 21 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to cauterize tissue.

30. The device of claim 21 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to ablate tissue.

31. A medical device for cutting tissue from the human body comprising:

a shaft having a proximal end, a distal end, and a lumen extending there between, wherein the shaft has an opening at the distal end and a sharpened edge surrounding at least a portion of a perimeter of the opening, wherein the shaft is rotatable about a central axis of the shaft;

a mechanism powered by suction from a vacuum source, wherein the mechanism is configured to produce a linear reciprocating motion;

a component coupled to the mechanism and coupled to the shaft, wherein the component is configured to convert the linear reciprocating motion to rotary motion, thereby causing the shaft to rotate to cut tissue, wherein the component comprises a gear and a crank arm, wherein the gear is coupled to the mechanism via the crank arm and the linear reciprocating motion produced by the mechanism causes the crank arm to rotate the gear; and

a cam lobe coupled to the gear and a cam follower, wherein the cam follower is configured to exert a force on the cam lobe to cause the gear to translate into a position wherein the vacuum powered mechanism is unlikely to stall.

32. The device of claim 31 , wherein the mechanism is powered solely by suction created by a vacuum source.

33. The device of claim 31 , wherein the component is configured to convert linear reciprocating motion to oscillating rotary motion.

34. The device of claim 31 , wherein the shaft is configured to receive a grasper advanced distally through the shaft lumen, where the grasper is configured to draw or retract tissue proximally against the sharpened distal edge or extremity of the shaft to allow for cutting or excision of the tissue wherein cut tissue is removed or evacuated through the shaft lumen and out of the body.

35. The device of claim 31 , wherein the shaft is coaxially positioned within an outer shaft.

36. The device of claim 35 , further comprising a shaft position control, wherein the shaft position control is configured to axially translate the outer shaft or the shaft.

37. The device of claim 31 , further comprising a seal located at a proximal end of the shaft, wherein the seal is configured to allow the passage of instruments through a lumen of the shaft without allowing fluid to escape through the lumen.

38. The device of claim 31 , wherein the gear is coupled to the shaft such that rotation of the gear causes rotation of the shaft.

39. The device of claim 31 , wherein the medical device produces an oscillating rotary motion such that the shaft cuts tissue while preventing tissue breakage resulting from twisting of the tissue.

40. The device of claim 31 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to cauterize tissue.

41. The device of claim 31 , further comprising at least one electrical conductor positioned on a patient contact portion of the device, wherein electrical energy from the conductor is used to ablate tissue.

42. The device of claim 31 , further comprising a cam lobe coupled to the gear and a cam follower, wherein the cam follower is configured to exert a force on the cam lobe to cause the gear to translate into a position wherein the vacuum powered mechanism is unlikely to stall.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 21, 2016
From: LAURIMED, LLC
To: MYROMED, LLC
Reel/Frame 040464/0788 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 30, 2015
From: DUBOIS, BRIAN R.; NIELSEN, JAMES T.; GORDON, ALEXANDER
To: LAURIMED, LLC
Reel/Frame 035289/0284 →
Continuity (4)
Division 13734828 · Jan 4, 2013
Provisional Application 61597648 · Feb 10, 2012
Provisional Application 61684656 · Aug 17, 2012
Related Publication 20150201995A1 · Jul 23, 2015