BLOOD PUMP
20230218885 · 2023-07-13
Inventors
Cpc classification
F04D29/688
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/422
HUMAN NECESSITIES
A61M60/825
HUMAN NECESSITIES
A61M60/419
HUMAN NECESSITIES
F04D29/2266
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2272
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/178
HUMAN NECESSITIES
International classification
A61M60/419
HUMAN NECESSITIES
Abstract
The invention includes three flushing channels each having a flushing channel longitudinal axis oriented parallel to the rotary shaft, which are distributed evenly around a rotary shaft with each flushing channels including a flushing channel cross-section oriented orthogonally to the rotary shaft. The cross-sections are each kidney-shaped and surround the rotary shaft in sectors.
Claims
1-10. (canceled)
11. A pump housing for a blood pump comprising: a bottleneck-shaped flow inlet region, including a blade assembly mounted for rotation on a rotatable shaft, enclosing a main flow channel together with the pump housing, including blades oriented radially to the rotary shaft, each blade being flat and disposed equidistantly around the rotary shaft, and a hollow-cylindrical portion adjoining the bottleneck-shaped flow inlet region downstream thereof in which a rotary motor is located within an inner housing, the rotary motor being rotatably connected by a magnetic coupling to the blade assembly to rotate the blade assembly, and the inner housing in conjunction with the pump housing encloses a flow channel, which continues the main flow channel, and together with the blade assembly encloses a secondary channel, fluidically communicating with the main flow channel, the secondary channel being fluidically connected to at least one flushing channel passing through the blade assembly and opening into the bottleneck-shaped flow inlet region, the inner housing including a lower bearing facing the blade assembly for rotatably receiving a lower end of the rotary shaft, the upper end of the rotary shaft being mounted in a bearing sleeve located in the bottleneck-shaped flow inlet region which is indirectly secured to the pump housing; and three flushing channels with each flushing channel including longitudinal axis oriented parallel to the rotary shaft and being distributed evenly around the rotary shaft and each flushing channel including a kidney-shaped cross-section in each section that surrounds the rotary shaft.
12. The blood pump according to claim 11, wherein: Each cross-section is enclosed by a peripheral edge, a radially outer convex peripheral edge contour facing away from the rotary shaft and a radially inner concave peripheral edge contour facing towards the rotary shaft; the concave peripheral edge contours are disposed on a first virtual circular line centric to the rotary shaft; and the convex peripheral edge contours are located on a second virtual circular line centric to the rotary shaft.
13. The blood pump according to claim 11, wherein: the number n of blades is 6.
14. The blood pump according to claim 12, wherein: the number n of blades is 6.
15. The blood pump according to claim 12, wherein: each blade has a radial extension which, in an axial projection onto the blade assembly, extends along the rotary shaft from the second virtual circular line to a third virtual circular line disposed centric to the rotary shaft; and a radius of the second virtual circular line is smaller than a radius of the third virtual circular line.
16. The blood pump according to claim 13, wherein: each blade has a radial extension which, in an axial projection onto the blade assembly, extends along the rotary shaft from the second virtual circular line to a third virtual circular line disposed centric to the rotary shaft; and a radius of the second virtual circular line is smaller than a radius of the third virtual circular line.
17. The blood pump according to claim 12, comprising: a first group of n/2 blades which each has a radial extension in an axial projection onto the blade assembly extending along the rotary shaft from the second virtual circular line to a third virtual circular line centric to the rotary shaft with a radius of the third circular line being greater than a radius of the second circular line; a second group of n/2 blades which each has a radial extension in an axial projection onto the blade assembly extending along the rotary shaft from the first virtual circular line to the third virtual circular line disposed centric to the rotary shaft; and the blades of the first and second groups are each disposed in an alternating order around the rotary shaft.
18. The blood pump according to claim 13, wherein: a first group of n/2 blades which each has a radial extension in an axial projection onto the blade assembly extending along the rotary shaft from the second virtual circular line to a third virtual circular line centric to the rotary shaft with a radius of the third circular line being greater than a radius of the second circular line; a second group of n/2 blades which each has a radial extension in an axial projection onto the blade assembly extending along the rotary shaft from the first virtual circular line to the third virtual circular line disposed centric to the rotary shaft; and the blades of the first and second groups are each disposed in an alternating order around the rotary shaft.
19. The blood pump according to claim 14, wherein: a first group of n/2 blades which each has a radial extension in an axial projection onto the blade assembly extending along the rotary shaft from the second virtual circular line to a third virtual circular line centric to the rotary shaft with a radius of the third circular line being greater than a radius of the second circular line; a second group of n/2 blades which each has a radial extension in an axial projection onto the blade assembly extending along the rotary shaft from the first virtual circular line to the third virtual circular line disposed centric to the rotary shaft; and the blades of the first and second groups are each disposed in an alternating order around the rotary shaft.
20. The blood pump according to claim 11, wherein: the lower bearing includes a pot-shaped inlay element fixed to the inner housing into which the lower end of the rotary shaft is rotatable and axially fixed and is made of a different material than that of the inner housing.
21. The blood pump according to claim 12, wherein: the lower bearing includes a pot-shaped inlay element fixed to the inner housing into which the lower end of the rotary shaft is rotatable and axially fixed and is made of a different material than that of the inner housing.
22. The blood pump according to claim 13, wherein: the lower bearing includes a pot-shaped inlay element fixed to the inner housing into which the lower end of the rotary shaft is rotatable and axially fixed and is made of a different material than that of the inner housing.
23. The blood pump according to claim 14, wherein: the lower bearing includes a pot-shaped inlay element fixed to the inner housing into which the lower end of the rotary shaft is rotatable and axially fixed and is made of a different material than that of the inner housing.
24. The blood pump according to claim 15, wherein: the lower bearing includes a pot-shaped inlay element fixedly joined to the inner housing into which the lower end of the rotary shaft is rotatable and axially fixed and is made of a different material than that of the inner housing.
25. The blood pump according to claim 16, wherein: the lower bearing includes a pot-shaped inlay element fixedly joined to the inner housing into which the lower end of the rotary shaft is rotatable and axially fixed and is made of a different material than that of the inner housing.
26. The blood pump according to claim 20, wherein: the inlay element comprises either a ceramic or of a UHM plastic.
27. The blood pump according to claim 26, wherein: the bearing sleeve and the inlay element are made from the same material.
28. The blood pump according to claim 11, wherein: the blade assembly includes a cover disc which delimits the main flow channel in the pump housing.
29. The blood pump according to claim 28, wherein: the cover disc includes a straight frustoconical surface facing towards the pump housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Without limiting the general concept of the invention, the invention is described below by way of example on the basis of preferred exemplary embodiments with reference to the drawings, in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027]
[0028] In order to keep the wall thickness of the pump housing 1 of the blood pump as low as possible for reasons of cost and weight, among other things, four stability struts 1″ are attached to the outside of the pump housing 1 in the region of the bottleneck-shaped flow inlet region 2.
[0029] Immediately downstream from the flow inlet 1′, four support struts 1st are connected on one side to the inner wall of the pump housing 1 and converge orthogonally to form a kind of inlet star and together form the spatial attachment for the upper rotary shaft bearing, which will be discussed below. The support struts 1st are optimised in terms of flow dynamics in order to form the lowest possible flow resistance for a blood flow entering through the flow inlet 1′.
[0030] The blood pump represents a diagonal pump, in which the blood flow entering through the flow inlet 1′ in the longitudinal extent of the pump housing 1 diverts orthogonally to the inflow direction into a blood flow exiting tangentially from the pump housing 1 through the flow outlet 1″.
[0031]
[0032]
[0033] The pump housing 1 comprises a rotary shaft 3. The upper rotary shaft end 3o leads into the bearing sleeve 15 in an axially fixed and rotatable manner. A blade assembly 4 is connected to the rotary shaft 3 for conjoint rotation, and at an inner housing 8, on the upper side of a lower bearing 14 with an inlay element 21, in which the lower rotary shaft end 3u is mounted in an axially fixed and rotatable manner.
[0034] The blade assembly 4, which is connected to the rotary shaft 3 for conjoint rotation, has six flat blades 5, in which in the exemplary embodiment shown in
[0035] In addition, reference is made to
[0036] The concave peripheral contours 17″ of the three flushing channel cross-sections 17 lie on a first virtual circular line 18 arranged centrically to the rotary shaft 3. The convex peripheral contours 17′ of the three flushing channel cross-sections 17, on the other hand, lie on a second virtual circular line 19 and are arranged centrically to the rotary shaft.
[0037] In the exemplary embodiment as shown, all the blades 5 each have radial extents with the blade ends 5′ facing radially towards the rotary shaft 3 which all lie on the virtual second circular line 19 in axial projection onto the blade assembly 4. The radially outer ends 5″ of the blades 5, on the other hand, lie on a third virtual circular line 20, corresponding to the circumferential edge of the blade assembly 4 or is spaced from it by a small distance Δx, with 0.1 mm<=δx<=2 mm.
[0038] The three flushing channels 13 extend parallel to the axis of rotation 3 and each have a lower flushing channel opening 13u and an upper flushing channel opening 13o which are optimised in terms of flow dynamics.
[0039] Each upper flushing channel opening 13o opens into two flow regions S1, S2. Each flow region is bounded by two blades 5. The upper flushing channel openings 13o, which are each shaped like orchids, offer the lowest possible flow resistance in the case of a flushing channel flow SR oriented retrogradely to the main flow HR flowing through along the main flow channel 6, whereby the retrograde flushing flow SR is able to lead into the main flow HR in the bottleneck-shaped flow inlet region 2 largely without turbulence, but at least with a low turbulence.
[0040] The lower flushing channel opening 13u of each flushing channel 13 is also flow-optimised for the lowest possible flow resistance. For this purpose, the lower bearing 14 attached to the inner housing 8 provides flow gate oriented flow-dynamically in the direction of the lower flushing channel opening 13u and forms a lowest possible entry resistance into the various flushing channels 13 for a retrograde flushing channel flow SR.
[0041] The blade assembly 4 additionally has a magnetic coupling 10 which is in magnetically coupled with a rotary motor 9 mounted inside the inner housing 8. The permanent magnets or magnetic units required for the magnetic coupling 10 are completely incorporated within the blade assembly 4, which is preferably made of a wear-free plastics material. The magnetic units can be fully encapsulated either as part of a casting process or a generative manufacturing process to create the blade assembly 4.
[0042]
[0043]
[0044] Each of the three primary blades 5P terminate directly or indirectly at the rotary shaft 3 at their ends facing radially towards the rotary shaft 3. With the exception of their shortened radial extent, the secondary blades 5S otherwise have a planar extent of the same shape and dimensions as the primary blades 5P.
[0045]
[0046] Of course, it is also possible to provide the cover plate 22 on the blade assembly 4 according to the exemplary embodiments shown in
LIST OF REFERENCE SIGNS
[0047] 1 pump housing [0048] 1′ flow inlet [0049] 1″ flow outlet [0050] 1″ stability struts [0051] 1st support struts [0052] 1L bearing structure [0053] 2 bottleneck-shaped flow inlet region [0054] 3 rotary shaft [0055] 3o upper rotary shaft end [0056] 3u lower rotary shaft end [0057] 4 blade assembly [0058] 5 blades [0059] 5P primary blades [0060] 5S secondary blades [0061] 5′ radially inner blade edge [0062] 5″ radially outer blade edge [0063] 5K side edge [0064] 6 main flow channel [0065] 7 hollow-cylindrical pump housing portion [0066] 8 inner housing [0067] 9 rotary motor [0068] 10 magnetic coupling [0069] 11 continuing flow channel [0070] 12 secondary channel [0071] 13 flushing channel [0072] 13u lower flushing channel opening [0073] 13o upper flushing channel opening [0074] 14 lower bearing [0075] 15 bearing sleeve [0076] 16 flushing channel longitudinal axis [0077] 17 flushing channel cross-section [0078] 17′ convex peripheral contour [0079] 17″ concave peripheral contour [0080] 18 first circular line [0081] 19 second circular line [0082] 20 third circular line [0083] 21 inlay element [0084] 22 cover disc [0085] SR secondary flow, flushing flow [0086] HR main flow [0087] S1, S2 flow regions [0088] R1, R2, R3 radii