IP Library Granted Patent US 10,495,101
Granted Patent B2
US 10,495,101 · App. 14/985,237 · Granted Dec 3, 2019

Fluid pump with a rotor

Inventor: Mario Scheckel (Berlin, DE)
Assignee: ECP ENTWICKLUNGSGESELLSCHAFT MBH
F04D29/18A61M1/1024A61M1/1031B63H1/14F04D29/026F04D29/247F04D29/605A61M1/101A61M1/1034A61M1/122A61M1/125B63H2001/122F05D2230/50F05D2300/501F05D2300/505F05D2300/518Y10T29/49229Y10T29/49245
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Quick Facts
Patent No.
US 10,495,101
App. No.
14/985,237
Granted
Dec 3, 2019
Kind
B2
Abstract

The invention relates to a fluid pump, in particular to a liquid pump having a rotor with at last one rotor blade for conveying the fluid, the rotor being variable with respect to its diameter between a first, compressed state and a second expanded state. In order to produce a simple compressibility and expandability of the rotor of the pump, it is provided according to the invention that at least one rotor blade is deformable between a first state which it assumes in the compressed state of the rotor and a second state which it assumes in the expanded state of the rotor by means of a fluid counterpressure during a rotation of the rotor during pump operation.

Claims (48)

1. A percutaneous pump, comprising:

a rotor with a hub and a rotor blade for conveying fluid, the rotor having a compressed state, a first expanded state, and a second expanded state;

wherein the rotor is configured to increase in diameter between the compressed state and the first expanded state;

wherein the rotor is configured to increase in diameter between the first expanded state and the second expanded state while the rotor blade conveys fluid in a first rotational direction, said increase in diameter from the first expanded state due at least in part to fluid counterpressure acting against a leading side of the rotor blade in a second direction counter to the first rotational direction;

wherein the rotor blade is a compressible and expandable continuous helical rotor blade; and

wherein, in the second expanded state, the rotor blade forms a substantially straight line between a radially inner end of the rotor blade and a radially outer end of the rotor blade along a length of the continuous helical rotor blade.

2. The percutaneous pump of claim 1 , wherein the percutaneous pump is located at a distal end of a drive shaft, and the percutaneous pump is driven by an external motor connected to a proximal end of the drive shaft.

3. The percutaneous pump of claim 1 , wherein the rotor includes multiple rotor blades.

4. The percutaneous pump of claim 1 , wherein the rotor is formed at least in part from stretch-resistant fibers that are unstretched in the compressed state and stretched in both the first expanded state and the second expanded state.

5. The percutaneous pump of claim 1 , wherein the rotor has a trailing side opposite the leading side, and wherein the leading side is formed from a first material and the trailing side is formed from a second material, different from the first material.

6. The percutaneous blood pump of claim 5 , wherein the first material has fibres embedded therein, wherein the fibres are more stretch-resistant than the first material.

7. A method for conveying fluid with a rotor, the method comprising:

rotating a rotor in a first rotational direction, wherein a diameter of a rotor blade of the rotor increases between a compressed state and a first expanded state; and

rotating the rotor in the first rotational direction such that fluid counterpressure acts against a leading side of the rotor blade in a second direction which is counter to the first rotational direction, to increase the diameter of the rotor blade of the rotor between a first expanded state and a second expanded state,

wherein the rotor blade is a compressible and expandable continuous helical rotor blade; and

wherein, in the second expanded state, the rotor blade forms a substantially straight line between a radially inner end of the rotor blade and a radially outer end of the rotor blade along a length of the continuous helical rotor blade.

8. The method of claim 7 , further comprising:

drawing a pump housing axially through a vessel, to introduce a pump head with the rotor into a heart.

9. The method of claim 7 , further comprising:

rotating the rotor in a second rotational direction which is counter to the first rotational direction, to decrease the diameter of the rotor.

10. The method of claim 9 , further comprising:

radially compressing the rotor to a state of lowest possible radial elongation to remove the rotor through a vessel.

11. The method of claim 10 , further comprising:

removing a pump head with the rotor from a heart.

12. A percutaneous pump, comprising:

a rotor with a hub and a rotor blade for conveying fluid, the rotor having a compressed state, a first expanded state, and a second expanded state, wherein a blade root of the rotor blade is connected to the hub at a connection point on a surface of the hub;

wherein the rotor is configured to increase in diameter between the compressed state and the first expanded state;

wherein the rotor blade is a compressible and expandable rotor blade, and the blade root of the rotor blade forms a continuous helix on the hub; and

wherein the rotor is configured to increase in diameter between the first expanded state and the second expanded state while the rotor blade conveys the fluid in a first rotational direction, said increase in diameter from the first expanded state due at least in part to fluid counterpressure acting against a leading side of the rotor blade in a second direction counter to the first rotational direction.

13. The percutaneous pump of claim 12 , wherein the percutaneous pump is located at a distal end of a drive shaft, and the percutaneous pump is driven by an external motor connected to a proximal end of the drive shaft.

14. The percutaneous pump of claim 13 , wherein the rotor includes multiple rotor blades.

15. The percutaneous pump of claim 6 , wherein the rotor is formed at least in part from stretch-resistant fibers that are unstretched in the compressed state and stretched in both the first expanded state and the second expanded state.

16. The percutaneous pump of claim 12 , wherein the rotor has a trailing side opposite the leading side, and wherein the leading side is formed from a first material and the trailing side is formed from a second material, different from the first material.

17. The percutaneous pump of claim 16 , wherein the first material is more ductile than the second material.

18. A method for conveying fluid with a rotor, comprising:

rotating a rotor in a first rotational direction, wherein a diameter of a rotor blade of the rotor increases between a compressed state and a first expanded state, wherein a blade root of the rotor blade is connected to a hub at a surface of the hub, and wherein the blade root of the rotor blade forms a continuous helix on the surface of the hub; and

rotating the rotor in the first rotational direction such that fluid counterpressure acts against a leading side of the rotor blade in a second direction which is counter to the first rotational direction to increase the diameter of the rotor blade of the rotor between a first expanded state and a second expanded state.

19. The method of claim 18 , further comprising:

drawing a pump housing axially through a vessel, to introduce a pump head with the rotor into a heart.

20. The method of claim 18 , further comprising:

rotating the rotor in a second rotational direction which is counter to the first rotational direction, to decrease the diameter of the rotor.

21. The percutaneous pump of claim 1 , wherein the rotor blade is directly connected to the hub.

22. The percutaneous pump of claim 1 , wherein the rotor blade is connected to the hub at a connection point on a surface of the hub.

23. The percutaneous pump of claim 22 , wherein the rotor blade is configured to pivot about the connection point on the surface of the hub.

24. The percutaneous pump of claim 23 , wherein in the compressed state the rotor blade is configured to pivot about the connection point toward the hub.

25. The method of claim 7 , wherein the rotor blade is connected to the hub at a connection point on a surface of the hub.

26. The method of claim 25 , wherein the rotor blade is configured to pivot about the connection point on the surface of the hub.

27. The method of claim 26 , wherein in the compressed state the rotor blade is configured to pivot about the connection point toward the hub.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2016
From: SCHECKEL, MARIO
To: ECP ENTWICKLUNGSGESELLSCHAFT MBH
Reel/Frame 038071/0059 →
Priority Claims (1)
EP 08075923 · Dec 5, 2008 · regional
Continuity (5)
Continuation 14638587 · Mar 4, 2015
Continuation 14275182 · May 12, 2014
Continuation 13132385
Provisional Application 61120095 · Dec 5, 2008
Related Publication 20160106897A1 · Apr 21, 2016
Cited By (18)
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