Fluid pump changeable in diameter, in particular for medical application
10265448 ยท 2019-04-23
Assignee
Inventors
Cpc classification
A61M60/405
HUMAN NECESSITIES
A61M60/237
HUMAN NECESSITIES
A61M60/825
HUMAN NECESSITIES
F04D29/242
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/13
HUMAN NECESSITIES
Y10S415/90
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F04D29/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/808
HUMAN NECESSITIES
A61M60/422
HUMAN NECESSITIES
A61M60/419
HUMAN NECESSITIES
F04D29/528
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/414
HUMAN NECESSITIES
A61M60/148
HUMAN NECESSITIES
International classification
F04D29/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid pump device changeable in diameter is provided. The device has a pump housing which is changeable in diameter and with a rotor which is changeable in diameter. The device has at least one delivery element for fluid, as well as a drive shaft on which the rotor is rotatably mounted. A bearing arrangement is arranged on the drive shaft or its extension, at the distal end of the drive shaft behind the rotor seen from the proximal end of the drive shaft. The bearing arrangement has struts, which elastically brace between a hub of the bearing arrangement and the pump housing.
Claims
1. An expandable intracardiac blood pump system comprising: an expandable tubular pump housing having an open distal inflow end and being configured to be compressed into a compressed state and self-expanded into an expanded state, and sized for percutaneous insertion through a vascular system of a patient when in the compressed state; a catheter having a proximal portion and a distal portion coupled to the expandable tubular pump housing; a radially compressible rotor disposed within the expandable tubular pump housing, wherein the radially compressible rotor includes a proximal rotor portion, a distal rotor portion, and a central bore extending from the proximal rotor portion through the distal rotor portion, and the radially compressible rotor is configured to be compressed into the compressed state and self-expands into the expanded state; a drive shaft having a proximal drive shaft portion and a distal drive shaft portion, wherein the proximal drive shaft portion is coupled to a motor, and wherein the distal drive shaft portion is coupled to the radially compressible rotor, the drive shaft extending through the central bore past the radially compressible rotor and configured to rotate the radially compressible rotor relative to the catheter; a distal bearing assembly located on the distal drive shaft portion at a position distal to the radially compressible rotor, the distal bearing assembly comprising a hub having a central bore that receives the drive shaft, and a plurality of struts extending from the hub, wherein the plurality of struts does not rotate relative to the catheter, and wherein the plurality of struts is configured to self-expand from a compressed state into an expanded state when the expandable tubular pump housing self-expands into the expanded state.
2. The system of claim 1, wherein in the compressed state of the plurality of struts, the plurality of struts extends parallel to the distal drive shaft portion.
3. The system of claim 1, wherein the expandable tubular pump housing, radially compressible rotor and plurality of struts are in the expanded state, and the plurality of struts contacts multiple locations along an interior tubular surface of the expandable tubular pump housing and supports a tubular opening in a distal portion of the expandable tubular pump housing.
4. The system of claim 3, wherein each strut of the plurality of struts comprises a first end section and a second end section, the first end sections are attached to the hub, and the second end sections comprise respective distal tips that extend radially away from the hub and axially away from the hub.
5. The system of claim 4, wherein the plurality of struts and the radially compressible rotor have respective expanded outer diameters, and an expanded outer diameter of the plurality of struts at the second end sections is greater than an expanded outer diameter of the radially compressible rotor.
6. The system of claim 5, wherein in the compressed state the hub and the plurality of struts are positioned coaxial to the drive shaft inside the expandable tubular pump housing.
7. The system of claim 6, wherein when the expandable tubular pump housing is in the expanded state, the distal bearing assembly centers the drive shaft radially relative to the expandable tubular pump housing.
8. The system of claim 7, wherein when the expandable tubular pump housing is in the expanded state each strut of the plurality of struts extends obliquely relative to the distal drive shaft portion.
9. The system of claim 8, wherein the plurality of struts and the radially compressible rotor expand from the compressed state to the expanded state independently of each other.
10. The system of claim 9, further comprising a knob positioned inside the expandable tubular pump housing and distal to the hub, the knob encapsulating a distal portion of the distal drive shaft portion.
11. The system of claim 10, wherein the knob abuts a distal face of the hub.
12. The system of claim 11, wherein the knob is a catch.
13. The system of claim 6, wherein the hub has a first section that extends axially in a direction distal to the struts.
14. The system of claim 13, wherein the hub has a second section that extends axially in a direction proximal to the struts.
15. The system of claim 6, wherein the plurality of struts expands pivotably about the hub.
16. The system of claim 15, wherein the plurality of struts expands pivotably about the hub by way of flexibility.
17. The system of claim 6, wherein the expandable tubular pump housing comprises a membrane covering a framework.
18. The system of claim 6, wherein the distal bearing assembly and the expandable tubular pump housing are spaced axially apart along the drive shaft, and an axial spacing between the distal bearing assembly and the expandable tubular pump housing varies during the self-expansion of the expandable tubular pump housing into the expanded state.
19. An expandable intracardiac blood pump system comprising: an expandable tubular pump housing comprising a self-expanding tube having an open distal inflow end, the expandable tubular pump housing sized for percutaneous insertion through a vascular system of a patient; a catheter having a proximal portion and a distal portion coupled to the expandable tubular pump housing; a radially compressible rotor disposed within the self-expanding tube, wherein the radially compressible rotor includes a proximal rotor portion, a distal rotor portion, and a central bore extending from the proximal rotor portion through the distal rotor portion; a motor; a drive shaft having a proximal drive shaft portion and a distal drive shaft portion, wherein the proximal drive shaft portion is coupled to the motor, and wherein the distal drive shaft portion is coupled to the radially compressible rotor, the drive shaft extending through the central bore past the radially compressible rotor and configured to rotate the radially compressible rotor relative to the catheter; a distal bearing assembly located on the distal drive shaft portion at a position distal to the radially compressible rotor; and a plurality of self-expanding struts extending radially from the distal bearing assembly, wherein when the expandable tubular pump housing expands the plurality of self-expanding struts self-expands such that distal ends of the struts are located radially away from the drive shaft and brace open the self-expanding tube of the expandable tubular pump housing.
20. An expandable intracardiac blood pump comprising: a self-expandable pump housing having an open distal inflow end; a radially compressible rotor disposed within the expandable pump housing and sized for percutaneous insertion through a vascular system of a patient, wherein the radially compressible rotor includes a proximal rotor portion, a distal rotor portion, and a central bore extending from the proximal rotor portion through the distal rotor portion, and wherein a drive shaft extends through the central bore past the radially compressible rotor and is configured to rotate the radially compressible rotor relative to the expandable pump housing; a distal bearing assembly located on the drive shaft at a position distal to the radially compressible rotor; and a plurality of self-expanding struts extending from the distal bearing assembly, wherein the plurality of struts does not rotate relative to the self-expandable pump housing, and wherein the plurality of struts self-expands when the self-expandable pump housing expands.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is hereinafter shown and described hereinafter by way of one embodiment example in a drawing. Thereby, there are shown in:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
DETAILED DESCRIPTION OF THE INVENTION
(17)
(18) A catheter 4 is introduced through a lock 5 into the blood vessel 2, through which lock the catheter may also be pulled out again. The catheter 4 at its distal end carries the pump 3 in the form of a pump housing 6 connected to the catheter, and a rotor 7. The rotor 7 is rotatably mounted on a drive shaft 8 and comprises delivery elements, which on rotation suck the blood in the direction of the arrows 9 or eject it in the direction of the arrows 10 into the blood vessel 2. For this, the delivery elements in the shown representation, which shows the explained position of the fluid pump, have a helically arranged delivery blade surface.
(19) The construction of the pump housing and the rotor will be dealt with in more detail further below.
(20) The drive shaft 8 runs within the catheter, which forms a sleeve in the context of the invention and is driven by the drive 11, which is accommodated in a housing 12. The drive shaft thereby may form an actuation means. The drive elements are only schematically shown in
(21)
(22) However, it is also conceivable to automatically erect the pump rotor by way of a rotation drive in the operation direction, by way of the fluid to be delivered, thus blood in this example, catching in the delivery blades and leading to an erection of the delivery blades by way of the counter pressure of the fluid.
(23) The constructional shape of the rotor may also differ from that which has been described above, by way of using collapsible or pivotable elements, in order to form a delivery blade surface. The pivotable parts may then usefully be folded onto the drive shaft in the compressed condition.
(24) The struts 13a, 13b as well as the frame 13c of the pump housing are usefully tautened, but the frame 13c runs in the direction of the pump housing somewhat beyond the tautening and forms a run-in chamfer there, which serves for a simpler displacement of the rotor into the pump housing.
(25)
(26) Thereafter, the drive shaft 8 which forms an actuation means, may be retracted in the direction of the arrow 15, in order to form a functioning construction unit of a fluid pump by way of a relative displacement of the rotor, pump housing and bearing arrangement.
(27) On pulling-back the drive shaft 8, firstly the catch 17 abuts the hub 18 of the bearing arrangement 15. With a continued pulling-back of the shaft, the bearing arrangement is carried along and is pressed against the rotor 7. This is likewise carried along and, with the continued pulling back of the drive shaft 8, is pulled into the inside of the pump housing 6. Thereby, the rotor 7 moves so far into the pump housing, until it is completely covered by this.
(28) The pump housing 6 at its open end carries a fixation ring 19, in which the struts of the bearing arrangement 15 may clamp.
(29)
(30) If the bearing arrangement is displaced with respect to the pump housing by way of pulling back the drive shaft, then the ends of the struts 20, 21 are applied elastically into the compartments between the bars 19c, 19d of the ring 19. There, the bearing arrangement braces automatically and centres the drive shaft mounted in its hub, with respect to the pump housing 6.
(31)
(32)
(33)
(34) On introducing the fluid pump device through a blood vessel into a human body, the struts 20, 21 firstly bear snugly on the hub body, as long as the bearing arrangement is still located within the vessel, and is then elastically expanded. This elasticity after the expansion and the axial contraction of the pump elements ensures that the bearing arrangement remains fixed in the ring 19 of the pump housing.
(35)
(36)
(37)
(38) A bolt 30 is fastened on the base 29 of the housing 24 and carries a thread 31 which is stationary in the axial direction.
(39) The rotor 25 carries a ring 32 with an inner thread which runs on the thread 31.
(40) With a rotation of the drive body 25 in the operating direction, by way of the cooperation of inner and outer thread, the drive body 25 is moved in the direction of the arrow 33, by which means the drive shaft 8 is pulled back. The inner ring 32 after completion of the retraction movement of the shaft runs away from the thread 31, and as a result the drive body 25 may rotate axially in a stationary manner. The fluid pump is thus axially pushed together and set into operation.
(41)
(42) The drive shaft 8 is connected in a rotationally fixed manner in its end region 37 to a bush 38. An armature 39 is rotatably received in the bush 38 with an undercut, and the armature does not rotate with the bush 38, but axially fixed this. The armature 39 is provided with a ring 40 through which a pull tape 41 is pulled. If the armature 39 is pulled back manually in the direction of the arrow 42 by way of the pull tape 41, then the armature pulls the bush 38, which may rotate with respect to the armature, in the direction of the arrow 42 a little out of the catheter 4, so that the necessary displacements may take place in the region of the fluid pump. The drive body 25 may be driven during this without upsetting the pulling movement.
(43) The armature 39 may be fastened in a fluid-tight manner to the housing 34 by way of a bellows or a sealingly connected membrane 43, in order to ensure the sealedness of the housing 34.
(44)
(45) Instead of two separate bearings, one may also select an individual stable and preferably long bearing on the proximal side of the rotor. A simplified assembly and improved displacement ability with a greater running stability is realised by way of this.
(46)
(47) With longer flexible shafts, it makes sense to pull the rotor with locked bearings into the housing. In
(48) Thus in all designs, an efficient manner of the drive with a displacement ability of the drive shaft is provided by way of the invention, wherein the displacement of the drive shaft, for completing the fluid pump after introduction to the place of operation, is used in an optimal manner by way of an axial relative displacement of the rotor, bearing arrangement and pump housing.