IP Library Granted Patent US 11,471,662
Granted Patent B2
US 11,471,662 · App. 16/800,273 · Granted Oct 18, 2022

High efficiency blood pump

Inventors: Neil H. Akkerman (Houston, TX); Greg S. Aber (Houston, TX)
Assignee: CORVION, INC.
A61M60/148A61M60/216A61M60/806A61M60/824A61M60/205A61M60/419A61M60/82A61M2205/8206A61M2207/00
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Quick Facts
Patent No.
US 11,471,662
App. No.
16/800,273
Granted
Oct 18, 2022
Kind
B2
Abstract

A blood pump can include a pump housing, an impeller, and a hub. The pump housing can be configured to move blood from an inlet to an outlet thereof. The impeller can be housed in the pump housing, have a plurality of blades joined by a central ring, and be radially supported at the central ring by a bearing. The hub can transmit torque to the impeller using a radial magnetic coupling.

Claims (23)

1. A blood pump comprising:

a pump housing, wherein the pump housing provides an inlet, an outlet, and a bearing surface, wherein the pump is configured to move blood from the inlet to the outlet;

an impeller housed in the pump housing and having a plurality of blades joined by a central ring having an internal surface, wherein the impeller is radially supported by a hydrodynamic bearing formed by the internal surface and the bearing surface; and

a hub configured to rotate about an axis and comprising a first permanent magnet, wherein the impeller comprises a second permanent magnet located within the central ring, the first permanent magnet and the second permanent magnet (i) being arranged to attract to each other in a radial direction perpendicular to the axis, and (ii) forming a radial magnetic coupling to transmit torque from the hub to the impeller;

wherein each of the plurality of blades defines a radially innermost edge that extends parallel relative to the axis, and wherein a maximum cross-sectional dimension, normal to the axis, of a shape inscribed by the innermost edges of the plurality of blades is greater than a maximum cross-sectional dimension, normal to the axis, of the internal surface;

wherein a topmost extent of the plurality of blades is axially closer to the inlet than is (a) a topmost extent of the internal surface and (b) a bottom of the plurality of blades.

2. The blood pump of claim 1 , wherein the blades are provided as an array of arc shaped segments.

3. The blood pump of claim 1 , wherein the impeller provides flow channels between circumferentially adjacent pairs of the plurality of blades.

4. The blood pump of claim 3 , wherein the flow channels have a maximum height that is substantially equal to the maximum height of the plurality of blades.

5. The blood pump of claim 1 , wherein the internal surface or the bearing surface provides at least one row of pattern grooves.

6. The blood pump of claim 1 , wherein the internal surface is substantially parallel to the bearing surface.

7. The blood pump of claim 1 , wherein the internal surface is provided by an internal bore and the bearing surface is received within the internal bore.

8. The blood pump of claim 1 , wherein the internal surface or the bearing surface provides a multilobe shape.

9. The blood pump of claim 1 , wherein the pump housing comprises a non-ferromagnetic diaphragm that houses the hub.

10. The blood pump of claim 1 , further comprising a row of herringbone grooves on the internal surface or the bearing surface.

11. The blood pump of claim 1 , wherein the impeller is axially supported by a magnetic thrust bearing comprising a third permanent magnet positioned in the pump housing and a fourth permanent magnet positioned in the impeller.

12. The blood pump of claim 11 , wherein the third permanent magnet positioned in the pump housing is ring shaped.

13. The blood pump of claim 11 , wherein the fourth permanent magnet positioned in the impeller is located within at least one of the plurality of blades.

14. The blood pump of claim 1 , wherein each of the first permanent magnet and the second permanent magnet has a height in an axial direction parallel to the axis, and the heights of the first permanent magnet and the second permanent magnet overlap each other.

15. The blood pump of claim 1 , wherein the impeller is an open type impeller or semi-open type impeller.

16. The blood pump of claim 1 , wherein top surfaces of the impeller provide a second hydrodynamic bearing for axial support of the impeller.

17. The blood pump of claim 16 , wherein the top surfaces of the impeller provide at least one row of pattern grooves.

18. The blood pump of claim 16 , further comprising spiral grooves or spiral herringbone grooves on the top surfaces of the impeller.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 9, 2021
From: AKKERMAN, NEIL H.; ABER, GREG S.
To: EVERHEART SYSTEMS LLC
Reel/Frame 054867/0541 →
CHANGE OF NAME Recorded Jan 9, 2021
From: EVERHEART SYSTEMS, LLC
To: EVERHEART SYSTEMS INC.
Reel/Frame 054943/0308 →
CHANGE OF NAME Recorded Jul 30, 2020
From: EVERHEART SYSTEMS INC.
To: CORVION, INC.
Reel/Frame 053366/0297 →
Continuity (4)
Continuation 15237508 · Aug 15, 2016
Continuation 14973593 · Dec 17, 2015
Continuation 12899748 · Oct 7, 2010
Related Publication 20200261634A1 · Aug 20, 2020
Cited By (14)
US 12,194,287 US 12,201,823 US 12,263,333 US 12,383,727 US 12,390,633 US 12,447,327 US 12,465,744 US 12,478,775 US 12,478,776 US 12,515,036 US 12,523,228 US 12,589,237 US 12,589,238 US 12,667,714