IP Library › Granted Patent US 11,313,228
Granted Patent B2
US 11,313,228 · App. 16/748,152 · Granted Apr 26, 2022

Rotor for a pump, produced with a first elastic material

Inventors: Joerg Schumacher (Teltow, DE); Mario Scheckel (Berlin, DE)
Assignee: ECP ENTWICKLUNGSGESFLI SCHAFT MBH
F01D5/02A61M60/122A61M60/135A61M60/205A61M60/148A61M60/414
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Quick Facts
Patent No.
US 11,313,228
App. No.
16/748,152
Granted
Apr 26, 2022
Kind
B2
Abstract

A rotor for a pump has a housing and a rotor, and has at least one blade. The rotor is able to be actuated to rotate about an axis of rotation in order to convey a fluid in the axial or radial direction, and the rotor is able to be deformed in the radial direction between a first, radially compressed state and a second, radially expanded state. At a maximum speed of rotation of the rotor at which the power of the pump is at a maximum, the blade is essentially radially oriented, and/or the rotor has its maximum diameter.

Claims (46)

1. A blood pump comprising:

a helical rotor blade configured to be rotated to convey a fluid through the blood pump, the helical rotor blade having a compressed state, a deployed state, and an operational state, and wherein the helical rotor blade is radially expanded in the operational state; and

a housing surrounding the helical rotor blade, the housing including an expandable suction cage at a distal end of the housing and apertures at a proximal end of the housing, the apertures being proximal of the helical rotor blade,

wherein the helical rotor blade is configured to expand from the deployed state to the operational state when rotated, such that the helical rotor blade has its maximum diameter in the operational state, and

wherein the helical rotor blade expands from the deployed state to the operational state due to fluid counterpressure.

2. A blood pump comprising:

a helical rotor blade configured to be rotated to convey a fluid through the blood pump, the helical rotor blade having a compressed state, a deployed state, and an operational state, and wherein the helical rotor blade is radially expanded in the operational state;

a housing surrounding the helical rotor blade, the housing including an expandable suction cage at a distal end of the housing and apertures at a proximal end of the housing, the apertures being proximal of the helical rotor blade,

wherein the helical rotor blade is configured to expand from the deployed state to the operational state when rotated, such that the helical rotor blade has its maximum diameter in the operational state; and

a rotor hub to which the helical rotor blade is coupled,

wherein the helical rotor blade extends continuously at a blade root along the rotor hub, and

wherein the helical rotor blade is folded against the rotor hub in the compressed state.

3. A blood pump comprising:

a helical rotor blade configured to be rotated to convey a fluid through the blood pump, the helical rotor blade having a compressed state, a deployed state, and an operational state, and wherein the helical rotor blade is radially expanded in the operational state;

a housing surrounding the helical rotor blade, the housing including an expandable suction cage at a distal end of the housing and apertures at a proximal end of the housing, the apertures being proximal of the helical rotor blade,

wherein the helical rotor blade is configured to expand from the deployed state to the operational state when rotated, such that the helical rotor blade has its maximum diameter in the operational state; and

a rotor hub to which the helical rotor blade is coupled, wherein the rotor hub comprises a thermoplastic elastomer.

4. The blood pump of claim 3 , wherein the helical rotor blade comprises the thermoplastic elastomer.

5. The blood pump of claim 4 , wherein the rotor hub and the helical rotor blade comprise a single unit formed from the thermoplastic elastomer.

6. A blood pump comprising:

a helical rotor blade configured to be rotated to convey a fluid through the blood pump, the helical rotor blade having a compressed state, a deployed state, and an operational state, and wherein the helical rotor blade is radially expanded in the operational state;

a housing surrounding the helical rotor blade, the housing including an expandable suction cage at a distal end of the housing and apertures at a proximal end of the housing, the apertures being proximal of the helical rotor blade,

wherein the helical rotor blade is configured to expand from the deployed state to the operational state when rotated, such that the helical rotor blade has its maximum diameter in the operational state;

a rotor hub to which the helical rotor blade is coupled; and

a proximal rotor bearing proximal of the helical rotor blade.

7. The blood pump of claim 6 , further comprising a distal rotor bearing distal of the helical rotor blade.

8. A blood pump comprising:

a helical rotor blade configured to be rotated to convey a fluid through the blood pump, the helical rotor blade having a compressed state, a deployed state, and an operational state, and wherein the helical rotor blade is radially expanded in the operational state;

a housing surrounding the helical rotor blade, the housing including an expandable suction cage at a distal end of the housing and apertures at a proximal end of the housing, the apertures being proximal of the helical rotor blade,

wherein the helical rotor blade is configured to expand from the deployed state to the operational state when rotated, such that the helical rotor blade has its maximum diameter in the operational state; and

a discharge hose coupled to the housing.

9. The blood pump of claim 8 , wherein the discharge hose is tapered at a distal end and is coupled to the housing at the tapered distal end.

10. The blood pump of claim 8 , wherein the discharge hose is configured to cover the apertures of the housing, such that fluid flowing out of the apertures flows into the discharge hose.

11. The blood pump of claim 8 , wherein the discharge hose is tapered at a proximal end.

12. A blood pump comprising:

a helical rotor blade configured to be rotated to convey a fluid through the blood pump, the helical rotor blade having a compressed state, a deployed state, and an operational state, and wherein the helical rotor blade is radially expanded in the operational state; and

a housing surrounding the helical rotor blade, the housing including an expandable suction cage at a distal end of the housing and apertures at a proximal end of the housing, the apertures being proximal of the helical rotor blade,

wherein the helical rotor blade is configured to expand from the deployed state to the operational state when rotated, such that the helical rotor blade has its maximum diameter in the operational state, and

wherein the housing comprises a self-expanding material.

13. The blood pump of claim 12 , wherein the housing comprises a self-expanding mesh.

14. The blood pump of claim 13 , wherein the housing further comprises a membrane covering openings of the self-expanding mesh in at least a portion of the housing.

15. A blood pump comprising:

a helical rotor blade configured to be rotated to convey a fluid through the blood pump, the helical rotor blade having a compressed state, a deployed state, and an operational state, and wherein the helical rotor blade is radially expanded in the operational state;

a housing surrounding the helical rotor blade, the housing including an expandable suction cage at a distal end of the housing and apertures at a proximal end of the housing, the apertures being proximal of the helical rotor blade,

wherein the helical rotor blade is configured to expand from the deployed state to the operational state when rotated, such that the helical rotor blade has its maximum diameter in the operational state; and

a flexible protection coupled to the distal end of the housing.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2020
From: SCHUMACHER, JOERG; SCHECKEL, MARIO
To: ECP ENTWICKLUNGSGESELLSCHAFT MBH
Reel/Frame 052170/0619 →
Priority Claims (1)
EP 10075303 · Jul 15, 2010 · regional
Continuity (4)
Continuation 15671326 · Aug 8, 2017
Continuation 13261565
Provisional Application 61364578 · Jul 15, 2010
Related Publication 20200200012A1 · Jun 25, 2020
Cited By (33)
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