Claims
- 1. A pump for pumping blood, comprising:
a housing; a stator disposed within the housing and coupled to the housing; a rotor disposed within the housing and suspended around the stator; the rotor and stator defining a primary blood flow path between the rotor and the housing and a secondary blood flow path between the rotor and the stator; at least two radial magnetic bearings for suspending the rotor between the stator and the housing, said radial magnetic bearings each comprising at least one stator suspension magnet disposed within the stator and at least one rotor suspension magnet disposed within the rotor, the stator and rotor suspension magnets communicating across the secondary flow path; and a motor for rotating the rotor with respect to the stator, said motor comprising at least one electromagnetic coil within the housing, said electromagnetic coil communicating with at least one rotor motor magnet in the rotor, said communication being across the primary flow path to rotate the rotor with respect to the stator and thereby pump blood through the pump.
- 2. The blood pump of claim 1, wherein the stator further comprises a first end disposed at an inlet of the pump, a second end disposed at an outlet of the pump and a fixed hub that connects the first end to the second end.
- 3. The blood pump of claim 2, wherein the stator further comprises a plurality of stator blades extending from the first end of the stator and a plurality of stator blades extending from the second end of the stator.
- 4. The blood pump of claim 1, wherein the motor comprises an unslotted motor stator, disposed in the housing.
- 5. The blood pump of claim 1, wherein the housing comprises a material of relatively low electro-thermal conductivity.
- 6. The blood pump of claim 1, wherein the housing comprises a ceramic material
- 7. The blood pump of claim 1, wherein the housing comprises non-magnetic stainless steel.
- 8. The blood pump of claim 1, wherein the rotor motor magnet comprises a permanent magnet for interacting with the electromagnetic coil.
- 9. The blood pump of claim 1, wherein one of the stator suspension magnets has a thickness that reduces the magnetic interaction between the respective stator suspension magnet and the motor magnet to reduce a moment, created by the interaction of the motor magnet and the stator suspension magnet, that biases the rotor from a preferred suspended position.
- 10. The blood pump of claim 1, wherein the rotor magnet comprises a plurality of ring shaped magnets of alternating polarities and the stator magnet comprises a plurality of ring shaped magnets of alternating polarities.
- 11. The blood pump of claim 1, further comprising thrust coils, disposed within the housing and thrust poles, disposed within the rotor, one of the thrust coils interacting with one of the thrust poles and the other of the thrust coils interacting with the other of the thrust poles to position the rotor axially within the housing.
- 12. The blood pump of claim 11, further comprising at least one sensing coil, disposed within the stator, that senses the axial position of the rotor.
- 13. The blood pump of claim 12, further comprising a controller, that interacts with the thrust coils to control an electrical current through the thrust coils in response to the at least one sensing coil so that the thrust coils apply an axial force on the rotor to position the rotor axially within the housing.
- 14. A system for pumping blood, comprising:
(i) a pump, comprising:
a housing that has an inlet and an outlet; a stator disposed within the housing and having a first end, disposed at the inlet, about which a plurality of stator blades are disposed, a second end, disposed at the outlet, about which a plurality of stator blades are disposed and a stationary hub that connects the first end to the second end; a rotor, suspended between the stationary hub and the housing; a first radial magnet bearing defined by a first set of magnets of alternating polarity, disposed within the rotor, that define an outer race and a second set of magnets of alternating polarity, disposed within the stator stationary hub, that define an inner race, the inner race and the outer race communicating across a gap between the stationary hub and the rotor to suspend the rotor about the stationary hub; a thrust bearing defined by a pair of thrust coils, disposed within the housing, and a pair of magnetic poles, disposed within the rotor, each of the thrust coils interacting with one of the magnetic poles to produce an axial force on the rotor to position the rotor axially within the housing; a sensing coil, disposed within the stator, that senses the axial position of the rotor; and (ii) a controller, coupled to the sensing coil of the pump that controls an electrical current flowing through the thrust coils to produce a correcting force that positions the rotor axially in response to the position sensed by the sensing coil.
- 15. The system pump of claim 14, wherein the pump further comprises a second radial magnetic bearing that further comprises a third set of magnets of alternating polarity. disposed within the rotor, and a fourth set of magnets of alternative polarity, disposed within the stator, the third set of alternating magnets and the fourth set of alternating magnets interacting across the gap to define a second radial bearing.
- 16. The system of claim 14, wherein the pump further comprises a motor, disposed within the housing that communicates with a motor magnet, disposed within the rotor, to rotate the rotor.
- 17. The system of claim 16, wherein a thickness of the first set of alternating magnets is such that the magnetic interface between the motor magnet and the first set of alternating magnets does not produce an undesirable bending moment on the rotor
- 18. The system of claim 14, wherein the controller comprises a virtual zero power controller.
- 19. A pump for pumping blood, comprising:
a housing that has an inlet and an outlet; a stator, disposed within the housing, and having a first end, that is coupled to the housing proximate to the inlet and a second end, that is coupled to the housing proximate to the outlet; a rotor, magnetically suspended between the stator and the housing; a radial magnetic bearing that includes a rotor magnet, disposed within the rotor, and a stator magnet, disposed within the stator and aligned with the rotor magnet, the interaction of the rotor magnet and the stator magnet suspending the rotor radially between the housing and the stator; a primary flow path defined between the rotor and the housing; a secondary flow path defined between the rotor and the stator, the secondary flow path being large enough to provide adequate flushing of the secondary flow path and small enough so that the rotor magnet and the stator magnet can interface to suspend the rotor radially.
- 20. The pump of claim 19, wherein the flow through the secondary flow path is in a direction that is opposite the flow through the primary flow path.
- 21. The pump of claim 19, wherein the secondary flow path comprises an entrance disposed between the second end of the stator and the rotor, a substantially inward radial flow path defined between the second end of the stator and the rotor, a substantially axial flow path defined between the stator and the rotor and an exit, defined between the stator and the rotor.
- 22. The pump of claim 19, further comprising a magnetic thrust bearing for axially aligning the rotor within the housing.
- 23. The pump of claim 22, wherein the magnetic thrust bearing comprises an active magnetic bearing.
- 24. The pump of claim 23, wherein the active magnetic thrust bearing comprises a pair of thrust coils, disposed within the housing, that each interact with one of a pair of poles, disposed within the rotor, to place an axial force on the rotor.
- 25. The pump of claim 24, wherein the active thrust bearing further comprises a sensor, disposed within the stator, for sensing the axial position of the rotor, and an electromagnetic controller, disposed within the pump, that controls the electrical current flowing through the thrust coils to position the rotor axially within the housing.
- 26. A pump for pumping blood, comprising:
a housing; a stator, disposed within the housing and being coupled to the housing, and comprising:
(i) a first end, disposed at the inlet, about which a plurality of stator blades are disposed and that has a first diameter; (ii) a second end, disposed at the outlet, that is substantially conically shaped and about which a plurality of stator blades are disposed, the second end having a second diameter that is larger than the first diameter; (iii) a stationary hub that connects the first end to the second end and having a third diameter that is smaller than the second diameter; a rotor, disposed within the housing and suspended around the stationary hub, a radial magnetic bearing, defined by a stator magnet disposed within the stator and a rotor magnet disposed within the rotor, that magnetically suspends the rotor between the stator and the housing; a primary blood flow path being defined between the rotor and the housing; a secondary blood flow path being defined between the rotor and the stator, the primary flow path being larger than the secondary flow path and the secondary flow path being sized so that the stator magnet can interact with the rotor magnet and so that shear stresses on the blood flowing through the pump are minimized; and a motor, disposed within the housing, the motor communicating with the rotor across the primary flow path to rotate the rotor and thereby pump blood through the pump
- 27. The pump of claim 26, wherein the flow through the secondary flow path opposes the flow through the primary flow path.
- 28. The pump of claim 26, wherein the secondary flow path comprises an entrance disposed between the second end of the stator and the rotor, a substantially inward radial flow path defined between the second end of the stator and the rotor, a substantially axial flow path defined between the stator stationary hub and the rotor and an exit, defined between the stator stationary hub and the rotor.
- 29. The pump of claim 26, further comprising a magnetic thrust bearing for axially aligning the rotor within the housing.
- 30. The pump of claim 29, wherein the magnetic thrust bearing comprises an active magnetic bearing.
- 31. The pump of claim 30, wherein the active magnetic thrust bearing comprises a pair of thrust coils, disposed within the housing, that each interact with one of a pair of poles disposed within the rotor, to place an axial force on the rotor.
- 32. The pump of claim 31, wherein the active thrust bearing further comprises a sensor, disposed within the stator, for sensing the axial position of the rotor, and an electromagnetic controller, disposed within the pump, that controls the electrical current flowing through the thrust coils to position the rotor axially within the housing.
- 33. A pump for pumping blood, comprising:
a housing defining an inlet and an outlet; a stator, disposed within the housing and being coupled to the housing, and comprising a first end, disposed at the inlet, a second end, disposed at the outlet, and about which a plurality of stator blades are disposed and a stationary hub that connects the first end to the second end; a rotor, disposed within the housing and suspended around the stationary hub of the stator, a primary blood flow path being defined between the rotor and the housing and a secondary blood flow path being defined between the rotor and the stator, the rotor having a substantially conically shaped end disposed proximate to the first end of the stator and a cylindrical portion disposed upstream of the substantially conically shaped end; a plurality of impeller blades being disposed about a periphery of the rotor, each of the impeller blades having a first portion that is substantially helical in shape about the substantially conically shaped end and a second portion extending from the substantially conically shaped end onto the cylindrical portion of the rotor and being curved so as to approach a line that is parallel to a longitudinal axis of the pump, the first portion imparting pressure energy, rotational velocity and axial velocity to blood flowing through the pump when the rotor is rotated and the second portion imparting rotational kinetic energy to the blood and directing the blood to the stator blades; a magnetic bearing, defined by a stator magnet disposed within the stator and a rotor magnet disposed within the rotor, that magnetically suspends the rotor between the stator and the housing, the stator magnet and the rotor magnet communicating across the secondary flow path; and a motor, disposed within the housing, the motor communicating with the rotor across the primary flow path to rotate the rotor and thereby pump blood through the pump
- 34. The blood pump of claim 33, wherein each rotor blade comprises a rounded tip that reduces shear stresses imparted on the blood flowing through the pump.
- 35. The blood pump of claim 33, wherein each rotor blade comprises a fillet that connects the first portion and the second portion of each respective rotor blade to the rotor, such that localized regions of flow stagnation are reduced.
- 36. A blood pump for pumping blood, comprising:
(a) a stator comprising,
(a1) a first end around which a plurality of stator blades are disposed, (a2) a second end around which a plurality of stator blades are disposed and that is substantially conically shaped; (a3) a stationary hub, that connects the first end to the second end; (b) a rotor that is magnetically suspended about the stator, comprising,
(b1) a substantially conically shaped end that is disposed proximate to the first end of the stator; (b2) a substantially cylindrical portion that is connected to the substantially conically shaped end; (b3) a plurality of impeller blades extending from the substantially conically shaped end to the substantially cylindrical portion; (c) a magnetic bearing defined by a magnet disposed within the stationary hub of the stator and a magnet disposed within the substantially cylindrical portion of the rotor that suspends the rotor in a radial direction from the stator; and (d) a housing in which the stator is disposed and in which the rotor is disposed as the rotor is suspended, the housing having an inner surface that extends from the first end of the stator to the second end of the stator and that conforms to the shape of the substantially conically shaped end of the rotor and the substantially cylindrical portion of the rotor to define a smooth passage for blood to flow between the rotor and the housing, and thereby reduce shear stresses on the blood flowing through the pump and that conforms to the second end of the stator to provide a relatively smooth passage for blood to flow between the second end of the stator and the housing to prevent flow stagnation and flow reversal.
- 37. A pump for pumping blood, comprising:
a housing defining an inlet and an outlet; a stator, disposed within the housing and being coupled to the housing, and comprising:
(i) a first end, disposed at the inlet, about which a plurality of stator blades are disposed and that has a first diameter; (ii) a second end, disposed at the outlet, and being substantially conically shaped and having a plurality of stator blades disposed thereabout, the second end being substantially conically shaped and having a second diameter that is larger than the first diameter of the first end of the stator; (iii) a stationary hub that connects the first end to the second end and that has a third diameter that is smaller than the second diameter; a rotor, suspended around the stationary hub of the stator and disposed between the housing and the stator, the rotor comprising:
(i) a substantially conically shaped end disposed proximate to the first end of the stator, to provide a smooth passage of blood flow from the first end of the stator to the rotor; (ii) a cylindrical portion disposed upstream of the substantially conically shaped end and suspended about the stationary hub of the stator, an outer diameter of the cylindrical portion being approximately equal to the second diameter of the second end to provide a smooth passage of blood flow from the cylindrical portion of the rotor to the second end of the stator; a magnetic bearing, defined by a stator magnet disposed within the stator and a rotor magnet disposed within the rotor, the magnetic bearing magnetically suspending the rotor between the stator stationary hub and the housing; and a motor, disposed within the housing, that communicates with the rotor to rotate the rotor and thereby pump blood through the pump.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part application of U.S. patent application Ser. No. 08/673,627, entitled “Magnetically Suspended Miniature Fluid Pump And Method of Making The Same,” filed on Jun. 26, 1996, and claims priority under 35 U. S.C. § 119(e) to provisional patent application Ser. No. 60/142,354, entitled, “An Improved Blood Pump Having A Magnetically Suspended Rotor” filed on Jul. 1, 1999, and hereby claims the benefit of the filing dates of these applications and incorporates by reference these applications in their entireties.
STATEMENT OF GOVERNMENT RIGHTS
[0002] The invention described herein was jointly made by employees of the United States Government and by employees of University of Pittsburgh, and it may be manufactured and used by or for the United States Government for United States Government purposes without payment of royalties thereon or therefor.
Provisional Applications (1)
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Number |
Date |
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60142354 |
Jul 1999 |
US |
Continuations (1)
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Number |
Date |
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Parent |
09356662 |
Jul 1999 |
US |
Child |
09841223 |
Apr 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
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Parent |
08673627 |
Jun 1996 |
US |
Child |
09356662 |
Jul 1999 |
US |