Claims
- 1. A backflow resistant ventricular assist device comprising:
a pump; an inflow cannula coupled to the pump to deliver blood to the pump from a ventricle; and an outflow cannula coupled to the pump to convey blood from the pump to a blood vessel; wherein the pump, the inflow cannula, and the outflow cannula form a flow path with a reactance sufficient to resist backflow through the flow path during pump stoppage to permit natural life-sustaining blood circulation.
- 2. The backflow resistant ventricular assist device of claim 1, wherein at least one of the inflow cannula and the outflow cannula has at least one geometric characteristic tuned to provide the reactance.
- 3. The backflow resistant ventricular assist device of claim 2, wherein the geometric characteristic comprises a diameter of a bore of the cannula.
- 4. The backflow resistant ventricular assist device of claim 3, wherein the diameter of the bore ranges from about 7 millimeters to about 10 millimeters.
- 5. The backflow resistant ventricular assist device of claim 3, wherein the diameter is selected to maintain an established length-to-diameter squared ratio.
- 6. The backflow resistant ventricular assist device of claim 5, wherein the length-to-diameter squared ratio ranges from about 3,000 to about 6,000.
- 7. The backflow resistant ventricular assist device of claim 2, wherein the geometric characteristic comprises a length of the cannula.
- 8. The backflow resistant ventricular assist device of claim 2, wherein the geometric characteristic comprises a cross sectional shape of a bore of the cannula.
- 9. The backflow resistant ventricular assist device of claim 2, wherein the geometric characteristic comprises a compliance of the cannula.
- 10. The backflow resistant ventricular assist device of claim 2, wherein the flow path has an inertance ranging from about 0.7×107 kg/m4 to about 3.0×107 kg/m4.
- 11. The backflow resistant ventricular assist device of claim 2, wherein the geometric characteristic is also tuned to keep a resistance of the flow path under a threshold level.
- 12. The backflow resistant ventricular assist device of claim 11, wherein the resistance of the flow path ranges from about 2.5 mmHg/lpm to about 10 mmHg/lpm.
- 13. The backflow resistant ventricular assist device of claim 11, wherein the reactance of the flow path is determined by adding reactances of the inflow cannula, pump, and outflow cannula, and wherein the resistance of the flow path is determined by adding resistances of the inflow cannula, pump, and outflow cannula.
- 14. A cannula for a backflow resistant ventricular assist device having a pump, the cannula comprising:
a shank portion configured to be inserted at least partially into a body part; and a conduit portion that conveys blood between the shank portion and a pump; wherein at least one of the shank portion and the conduit portion has at least one geometric characteristic tuned to provide a reactance of the cannula sufficient to resist backflow through the cannula during pump stoppage to permit natural life-sustaining blood circulation.
- 15. The cannula of claim 11, wherein the geometric characteristic comprises a diameter of a bore of the conduit portion.
- 16. The cannula of claim 11, wherein the diameter of the bore ranges from about 7 millimeters to about 10 millimeters.
- 17. The cannula of claim 11, wherein the diameter is selected to maintain an established length-to-diameter squared ratio.
- 18. The cannula of claim 17, wherein the length-to-diameter squared ratio ranges from about 3,000 to about 6,000.
- 19. The cannula of claim 14, wherein the geometric characteristic comprises a length of the cannula.
- 20. The cannula of claim 14, wherein the geometric characteristic comprises a cross sectional shape of a bore of the conduit portion.
- 21. The cannula of claim 14, wherein the geometric characteristic comprises a compliance of the cannula.
- 22. The cannula of claim 14, wherein the reactance of the cannula is determined with reference to reactances of the pump and of a second cannula to provide a desired reactance of the ventricular assist device.
- 23. The cannula of claim 22, wherein a summation of inertances of the cannula, pump, and second cannula ranges from about 0.7×107 kg/m4 to about 3.0×107 kg/m4.
- 24. The cannula of claim 14, wherein the geometric characteristic is also tuned to keep a resistance of the cannula under a threshold level.
- 25. The cannula of claim 24, wherein the resistance of the cannula is determined with reference to resistances of the pump and of a second cannula to ensure that the ventricular assist device has a resistance less than a maximum resistance.
- 26. The cannula of claim 25, wherein a summation of the resistances of the cannula, pump, and second cannula ranges from about 2.5 mmHg/lpm to about 10 mmHg/lpm.
- 27. A method for reducing an incidence of backflow through a ventricular assist device comprising a pump configured to be coupled to a ventricle and a blood vessel through the use of at least one cannula, the method comprising:
calculating a desired cannula reactance selected to provide a reactance of the ventricular assist device that is sufficient to resist backflow through the ventricular assist device during pump stoppage to permit natural life-sustaining blood circulation; tuning at least one geometric characteristic of the cannula to provide the desired cannula reactance; and forming a cannula having the geometric characteristic.
- 28. The method of claim 27, wherein tuning the geometric characteristic comprises determining a diameter of a bore of the cannula.
- 29. The method of claim 28, wherein determining the diameter of the bore comprises selecting a diameter ranging from about 7 millimeters to about 10 millimeters.
- 30. The method of claim 28, wherein sizing the diameter comprises maintaining an established length-to-diameter squared ratio.
- 31. The method of claim 30, wherein sizing the diameter comprises maintaining a length-to-diameter squared ratio ranging from about 3,000 to about 6,000.
- 32. The method of claim 27, wherein tuning the geometric characteristic comprises determining a length of the cannula.
- 33. The method of claim 27, wherein tuning the geometric characteristic comprises selecting a cross sectional shape of a bore of the cannula.
- 34. The method of claim 27, wherein tuning the geometric characteristic comprises determining a compliance of the cannula.
- 35. The method of claim 27, wherein tuning the geometric characteristic comprises providing a total inertance of the ventricular assist device ranging from about 0.7×107 kg/m4 to about 3.0×107 kg/m4.
- 36. The method of claim 27, wherein tuning the geometric characteristic comprises keeping a resistance of the ventricular assist device under a threshold level.
- 37. The method of claim 36, wherein tuning the geometric characteristic comprises providing a resistance of the ventricular assist device ranging from about 2.5 mmHg/lpm to about 10 mmHg/lpm.
- 38. The method of claim 27, wherein calculating the desired cannula reactance comprises:
determining the desired reactance of the ventricular assist device; determining a reactance of the pump; and subtracting the reactance of the pump from the desired reactance of the ventricular assist device.
- 39. The method of claim 38, wherein the ventricular assist device is further configured to be coupled to the ventricle and the blood vessel through the use of a second cannula, the method further comprising:
forming the second cannula, the second cannula having the geometric characteristic.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/296,393, filed Jun. 6, 2001 and entitled HEART PUMP FLOW PATH DEVICE. The disclosure of the above application is incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60296393 |
Jun 2001 |
US |