DEVICE TO ASSIST THE PERFORMANCE OF A HEART
20250207595 ยท 2025-06-26
Inventors
Cpc classification
A61M60/405
HUMAN NECESSITIES
F04D13/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/237
HUMAN NECESSITIES
A61M60/422
HUMAN NECESSITIES
A61M60/17
HUMAN NECESSITIES
A61M60/419
HUMAN NECESSITIES
A61M60/13
HUMAN NECESSITIES
A61M60/414
HUMAN NECESSITIES
A61M60/148
HUMAN NECESSITIES
A61M60/523
HUMAN NECESSITIES
International classification
F04D13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/237
HUMAN NECESSITIES
A61M60/405
HUMAN NECESSITIES
A61M60/861
HUMAN NECESSITIES
A61M60/419
HUMAN NECESSITIES
A61M60/13
HUMAN NECESSITIES
A61M60/148
HUMAN NECESSITIES
A61M60/523
HUMAN NECESSITIES
A61M60/422
HUMAN NECESSITIES
Abstract
A device to assist the performance of a heart with at least one pump that is formed as a rotary pump and magnetically driven.
Claims
1. A heart assist pump device configured to be positioned within a body of a patient, comprising: a blood flow path comprising: an inflow tube with a distal suction end configured to be inserted into a ventricle of a heart, wherein the inflow tube is substantially linear and comprises a central axis, wherein the distal suction end is aligned with the central axis; a first chamber comprising one or more side walls and further comprising a substantially planar bottom wall having an inner surface that is located at a position that is axially opposite of the distal suction end, wherein the inner surface is substantially perpendicular to the central axis, wherein the substantially planar bottom wall is immediately adjacent to the one or more side walls, wherein the one or more side walls extend away from the inner surface of the substantially planar bottom wall in an upstream direction, wherein the first chamber is axially adjacent to, and in fluid communication with, the inflow tube, and wherein the first chamber is axially aligned with the distal suction end and with the central axis; and a blood outflow path comprising a blood outflow port that is located downstream of the inflow tube and configured to convey blood out of the first chamber, the blood outflow path in fluid communication with the first chamber and with a blood vessel of the body, wherein the blood outflow port is positioned immediately axially adjacent to the inner surface of the substantially planar bottom of the first chamber, and wherein the blood outflow path is configured to direct blood from the first chamber in at least one direction that is not axially aligned with the central axis; a magnetically driven rotor assembly comprising a rotor and a first magnetic device, wherein the entire magnetically driven rotor assembly is located within the first chamber, wherein the first magnetic device is a single magnetic device that is coupled to the rotor, and wherein the entire magnetically driven rotor assembly is positioned along the central axis in a position that is downstream of the inflow tube and upstream of the inner surface of the substantially planar bottom wall of the first chamber; a second magnetic device associated with, and sealed from, the magnetically driven rotor assembly and wherein the second magnetic device is configured to interact magnetically with the first magnetic device to rotate the magnetically driven rotor assembly, wherein the second magnetic device is a single magnetic device, wherein the magnetically driven rotor assembly and the second magnetic device are axially aligned with the central axis and with the distal suction end of the inflow tube, wherein the magnetically driven rotor assembly and the second magnetic device are positioned within the body of the patient and entirely outside of the ventricle, wherein the magnetic interaction between the first and second magnetic devices is configured to orient the magnetically driven rotor assembly within the first chamber such that the magnetically driven rotor assembly is entirely spaced away from the one or more side walls of the first chamber by the magnetic interaction between the first and second magnetic devices to define a gap between the one or more side walls of the first chamber and the magnetically driven rotor assembly, wherein the gap is configured for blood through therethrough, wherein the magnetically driven rotor assembly further comprises guide surfaces in fluid communication with the blood flowing through the blood flow path and the blood outflow path, the guide surfaces configured to produce centrifugal components within the blood within the first chamber during a rotation of the magnetically driven rotor assembly, wherein the first magnetic device is axially adjacent to the guide surfaces, and wherein at least the guide surfaces of the magnetically driven rotor assembly are configured to drive the blood flow along the blood outflow path.
2. The heart assist pump device of claim 1, wherein the magnetic interaction between the first and second magnetic devices is further configured to rotate and to orient the magnetically driven rotor assembly within the first chamber such that the magnetically driven rotor assembly is entirely spaced away from the one or more side walls of the first chamber by the magnetic interaction.
3. The heart assist pump device of claim 2, wherein the magnetically driven rotor assembly is positioned within the blood flow path.
4. The heart assist pump device of claim 1, further comprising a second chamber that surrounds the second magnetic device and comprises one or more walls that seal the second magnetic device from the magnetically driven rotor assembly.
5. The heart assist pump device of claim 1, wherein the guide surfaces are spaced axially away from the inner surface of the substantially planar bottom wall.
6. The heart assist pump device of claim 1, wherein the second magnetic device radially overlaps at least part of the first magnetic device and wherein the second magnetic device is axially closer to the first magnetic device than to the guide surfaces of the rotor.
7. The heart assist pump device of claim 1, wherein at least part of the blood outflow path is to direct the blood driven by the guide surfaces in a direction that is substantially configured perpendicular to the central axis.
8. The heart assist pump device of claim 1, wherein the guide surfaces are configured to drive the blood within the first chamber into the blood outflow path in a direction that is substantially perpendicular to the inflow tube and to the central axis.
9. The heart assist pump device of claim 1, wherein the second magnetic device is spaced axially from the guide surfaces of the rotor.
10. The heart assist pump device of claim 1, wherein the blood vessel is an artery.
11. The heart assist pump device of claim 1, wherein the blood vessel is an aorta.
12. The heart assist pump device of claim 1, wherein the ventricle is a left ventricle.
13. The heart assist pump device of claim 1, further comprising a control arrangement comprising at least one sensor configured to generate a control signal, and an external controller configured to receive the generated control signal.
14. The heart assist pump device of claim 12, wherein the control arrangement is configured to control the heart assist pump device.
15. The heart assist pump device of claim 1, wherein the magnetic interaction between the first and second magnetic devices is configured to orient an axial position of the magnetically driven rotor assembly within the first chamber such that the magnetically driven rotor assembly is entirely spaced apart from the one or more side walls of the first chamber.
16. The heart assist pump device of claim 1, wherein the magnetic interaction between the first and second magnetic devices is configured to orient a radial position of the magnetically driven rotor assembly within the first chamber such that the magnetically driven rotor assembly is entirely spaced apart from the one or more side walls of the first chamber.
17. The heart assist pump device of claim 2, wherein the magnetic interaction between the first and second magnetic devices is configured to orient an axial position of the magnetically driven rotor assembly within the first chamber such that the magnetically driven rotor assembly is entirely spaced apart from the one or more side walls of the first chamber.
18. The heart assist pump device of claim 2, wherein the magnetic interaction between the first and second magnetic devices is configured to orient a radial position of the magnetically driven rotor assembly within the first chamber such that the magnetically driven rotor assembly is entirely spaced apart from the one or more side walls of the first chamber.
19. The heart assist pump device of claim 1, wherein the magnetic interaction between the first magnetic device and the second magnetic device comprises a magneto coupling between the first magnetic device and the second magnetic device.
20. The heart assist pump device of claim 1, wherein the first magnetic device is axially adjacent to the rotor.
21. The heart assist pump device of claim 19, wherein the first magnetic device comprises a bar magnet and wherein the second magnetic device comprises a bar magnet.
22. The heart assist pump device of claim 1, wherein the heart assist pump device comprises a catheter device.
23. The heart assist pump device of claim 2, wherein at least part of the blood outflow port is positioned downstream of the magnetically driven rotor assembly.
24. The heart assist pump device of claim 1, wherein the magnetically driven rotor assembly is positioned upstream of at least part of the blood outflow port.
25. A method for assisting the blood circulation of a heart in a body, comprising: providing the heart assist pump device of claim 1; orienting the magnetically driven rotor assembly within the first chamber via the magnetic interaction between the first and second magnetic devices such that the magnetically driven rotor assembly remains entirely spaced away from the one or more side walls of the first chamber to define the gap between the one or more side walls of the first chamber and the magnetically driven rotor assembly; positioning the heart assist pump device within the body; inserting the suction end of the inflow tube into the left ventricle; activating the heart assist pump device; rotating the magnetically driven rotor assembly via the magnetic interaction; continue the orienting of the magnetically driven rotor assembly within the first chamber via the magnetic interaction of the first magnetic device and the second magnetic device during the rotating of the magnetically driven rotor assembly such that a gap between the one or more side walls of the first chamber and the magnetically driven rotor assembly is provided; suctioning the blood from the ventricle and into the inflow tube; driving the blood from the first chamber through the blood outflow path; and conveying the blood through the blood outflow path to the blood vessel.
26. The method of claim 23, wherein the orienting of a position of the magnetically driven rotor assembly within the first chamber comprises orienting an axial and a radial position of the magnetically driven rotor assembly within the first chamber.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0010] The invention is explained in further detail below by use of an exemplary embodiment which is illustrated diagrammatically in the drawings, in which
DETAILED DESCRIPTION
[0011] In
[0012] The volumetric measurement in the cardiac chamber allows differences to be reliably detected between the diastolic and systolic volume and allows corresponding correction signals to be made available for the output of the synchronised fluid pump 7. Furthermore, in the control circuit 5, corresponding fixed values can be provided, such as for example a defined cardiac output, which is referred to on deviation of the measured cardiac output to control the pump.
[0013] A retroperfusion can take place via a conventional balloon catheter which is occluded in a correspondingly synchronized manner, so that the directed return is in fact guaranteed during the diastole. Hereby the corresponding measurement values for the heart rate or for the correct moment of the diastole can be obtained from ECG data.
[0014] In
[0015] In