Blood pump

The compact blood pump design with a blood-purged radial plain bearing and ceramic materials addresses bulkiness and clotting issues, ensuring efficient heat conduction and flow in intravascular applications.

JP2025159199APending Publication Date: 2025-10-17ABIOMED EUROPE GMBH
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Patent Information

Application Number
JP2025137444
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-03-27
Filing Date
2025-08-21
Publication Date
2025-10-17

AI Technical Summary

Technical Problem

Existing intravascular blood pumps are bulky and difficult to advance through blood vessels due to the need for a large axial configuration space, leading to issues with friction, heat, and blood clotting.

Method used

A compact blood pump design with an auxiliary impeller that creates an axial gap between the stator and rotor, utilizing a blood-purged radial plain bearing supported by the auxiliary impeller, which is located radially outward and cooled by the surrounding blood stream, and features ceramic materials for reduced friction and clotting.

Benefits of technology

The design allows for a compact, reliable blood pump that efficiently conducts heat away and reduces the risk of blood clotting, while maintaining optimal pressure and flow efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an intravascular blood pump which supports or replaces a heart function by creating an extra blood flow in a patient's blood vessel.SOLUTION: A pump section 3 is provided with a pump casing 2. A drive section 4 includes a stator 40, and a rotor 41 configured to rotate a primary impeller 31. The primary impeller 31 is configured to convey a primary blood flow from a primary blood flow inlet 211 of the pump casing 2 to a primary blood flow outlet 22. The drive section 4 is provided with: an ancillary blood flow inlet 23 and an ancillary blood flow outlet 24; and an ancillary impeller 42 rotatable with the rotor 41. The ancillary impeller 42 is provided with one or more ancillary impeller vanes 421 configured to convey an ancillary blood flow ABF from the ancillary blood flow inlet 23 to the ancillary blood flow outlet 24. The rotor 41 is mounted in a radial sliding rotor bearing 47. The ancillary impeller 42 forms an inner rotor bearing surface 4211 of the radial sliding rotor bearing 47.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an intravascular blood pump that assists or replaces the function of the heart by creating additional blood flow in a patient's blood vessels. [Background technology]

[0002] Various types of blood pumps are known, such as axial flow blood pumps, centrifugal blood pumps, or mixed or diagonal blood pumps in which blood flow is provided by both axial and radial forces. Intravascular blood pumps are typically inserted percutaneously, such as through the femoral artery into the left ventricle to bridge the aortic valve, or through the femoral vein into the right ventricle.

[0003] A rotary blood pump has a rotating shaft. In this patent application, the terms "radial" and "axial" refer to the axis of rotation and mean "radially relative to the axis of rotation" and "along the axis of rotation," respectively. The term "inner" means radially toward the axis of rotation, and the term "outer" means radially away from the axis of rotation.

[0004] Intravascular blood pumps typically include a pumping device as a main component, which has a pump section including a primary impeller for pumping blood from a blood inlet to a blood outlet, and a drive section including a motor for driving the primary impeller. The pump section may include a flexibly bendable cannula between the blood inlet and the blood outlet.

[0005] The pumping device includes a pump section end located on the pump side of the pumping device. The pumping device further includes a drive section end located on the drive side of the pumping device. The blood pump may further include a catheter connected to the pumping device to supply, for example, energy and / or a purge fluid to the pumping device. The catheter may be connected to the pump section end, but is more often connected to the drive section end of the pumping device. It is also conceivable to rotate the impeller in both forward and reverse directions. In this case, the blood inlet and blood outlet of the pump section may be interchanged.

[0006] Typically, the impeller is supported in the pumping device by at least one impeller bearing. Various types of rotor bearings are known, such as plain bearings, especially fluid plain bearings, pivot bearings, hydrostatic bearings, ball bearings, etc., and combinations thereof. In particular, contact-type bearings can be realized as "blood-immersed bearings" in which the bearing surface is in contact with the blood. Problems during operation can include friction and heat. In the case of blood-immersed bearings, a further problem can be blood clotting due to heat or insufficient cleaning procedures.

[0007] An example of a blood-purged radial plain bearing is disclosed in International Publication No. 2017 / 021465. Figure 33 of this document discloses an impeller device including a generally cylindrical primary impeller. Primary impeller vanes of the primary impeller extend toward the primary impeller's rotation axis. The tips of the primary impeller vanes form the outer rotor bearing surface of the plain bearing. The cylindrical surface of a pin located in the center of the primary impeller forms the inner rotor bearing surface of the plain bearing. To cool the rotor and stator of the drive unit, an auxiliary impeller is provided on the side of the drive unit opposite the primary impeller and is rotatable with the rotor. The auxiliary impeller pumps blood into the axial gap between the stator and the rotor. At the axial end of the auxiliary impeller, a plain bearing is disposed between the inner end of the auxiliary impeller and the bearing pin. This configuration requires a large axial configuration space and therefore results in a bulky blood pump that is difficult to advance through a blood vessel. Summary of the Invention [Problem to be solved by the invention]

[0008] SUMMARY OF THE INVENTION It is an object of the present invention to provide a compact blood pump with blood flow through an axial gap between the stator and rotor. [Means for solving the problem]

[0009] According to the invention, this object is achieved by a blood pump having the features of independent claim 1. Preferred embodiments and further developments of the invention are specified in the claims dependent on independent claim 1.

[0010] According to a first aspect of the present invention, an intravascular blood pump includes a pumping device having a pump section and a drive section. The pump section includes a pump housing having a primary blood inlet and a primary blood outlet fluidically connected by a primary flow path. The drive section includes a stator and a rotor rotatable about a rotation axis and configured to rotate a primary impeller. The primary impeller is configured to convey a primary blood flow from the primary blood inlet to the primary blood outlet along the primary flow path. The drive section further includes an auxiliary blood inlet and an auxiliary blood outlet fluidically connected by an auxiliary flow path such that an auxiliary blood flow can be conveyed from the auxiliary blood inlet to the auxiliary blood outlet along the auxiliary flow path. The auxiliary flow path includes an axial gap extending between the rotor and the stator. The axial gap is preferably also a magnetic gap of an electric motor including the stator and the rotor. An auxiliary impeller disposed at the drive section end of the rotor is further included, rotatable together with the primary impeller about the rotation axis and including one or more auxiliary impeller vanes configured to convey the auxiliary blood flow through the auxiliary flow path. The blood pump further includes a blood-purged radial plain bearing for supporting the rotor. The radial plain rotor bearing includes an inner rotor bearing surface and an outer rotor bearing surface. The auxiliary impeller forms the inner rotor bearing surface of the radial plain rotor bearing. Thus, the blood-purged plain bearing of the auxiliary impeller is disposed radially outward of the auxiliary impeller. In this manner, an axially compact blood pump can be constructed.

[0011] Preferably, the blood-purged radial plain rotor bearing is located near the outer periphery of the pump housing so that heat conduction can occur from the outer rotor bearing surface outward through the pump housing into the surrounding general blood stream. This can further aid in building a compact and reliable blood pump where heat is carried away efficiently. This can also aid in delivering cooler blood to the axial gap.

[0012] Preferably, the auxiliary impeller is a radial or radial-axial delivery impeller, thus generating centrifugal force in the auxiliary blood flow to generate pressure.

[0013] Preferably, the inner rotor bearing surface formed by the auxiliary impeller and the rotor have a common outer diameter. In this case, the auxiliary blood flow can enter the axial gap without significant deflection. Furthermore, in view of the fact that an intravascular blood pump must have a small outer diameter since it must advance through the blood vessels to the heart, the feature of a common outer diameter of the inner rotor bearing surface and the rotor allows optimal utilization of the radial construction space. That is, the pressure in the blood entering the axial gap is increased to a limit by the auxiliary impeller, which is limited only by the radial construction space at the end of the drive section of the blood pump.

[0014] Preferably, at least two, and more preferably at least three, auxiliary impeller vanes extend to the outer rotor bearing surface. The surfaces of the auxiliary impeller vanes closest to the outer rotor bearing surface together form the inner rotor bearing surface. This is the surface of the auxiliary impeller that mounts the rotor to the outer rotor bearing surface. Thus, the inner rotor bearing surface is discontinuous, comprising at least two, and preferably at least three, separate sections defined by the tips of the impeller vanes. In this way, the tips of the auxiliary impeller vanes can form part of a radially sliding rotor bearing. The outer rotor bearing surface can be a single continuous surface. Additionally, in an alternative embodiment, the outer rotor bearing surface can have grooves and / or slots.

[0015] Preferably, at least one auxiliary impeller vane projects axially from the auxiliary impeller relative to the axis of rotation, such that the vane forms an axial end of the rotating part of the blood pump, which axial end can be opened to allow blood flow into the auxiliary impeller.

[0016] Preferably, the radially outer edge of at least one auxiliary impeller vane is chamfered. A corresponding chamfer may be arranged between the section of the auxiliary impeller vane that extends axially relative to the rotation axis and the section of the auxiliary impeller vane that extends radially. In particular, the blood pump may comprise a tapered section axially between the supply catheter and the pump housing, which has a larger diameter. The tapered section facilitates the advancement of the pump through the blood vessels. Preferably, the chamfer of the auxiliary impeller is arranged below the tapered section. In this way, the chamfer allows for the construction of a more compact blood pump.

[0017] Preferably, at least one auxiliary vane forms an auxiliary pump gap with the inner wall of the pump housing or with a further portion disposed therein. The auxiliary pump gap preferably has a radially outer boundary extending axially and forming part of a radially sliding rotor bearing. The auxiliary pump gap preferably further has a radially extending axial end portion between the at least one auxiliary impeller vane and the inner wall of the pump housing, preferably located at a chamfered end of the vane's radially extending end face. The radially extending portion of the pump gap maintains the pressure increased by the auxiliary impeller vane. Forming this gap in the axial-radial direction, such as along the chamfer, allows for a compact construction of the blood pump. In particular, the pump housing may be tapered at the location of the chamfer.

[0018] Preferably, at least one, and most preferably all, of the auxiliary impeller vanes are straight in the direction of their radial extension. Preferably, at least one, and most preferably all, of the auxiliary impeller vanes extend approximately or strictly radially relative to the axis of rotation, or at an angle to this direction. The pumping effect of radially extending auxiliary impeller vanes is independent of the rotational sense of the auxiliary impeller. Straight auxiliary impeller vanes of the auxiliary impeller tend to be less likely to cause blood clotting.

[0019] The outer peripheral surfaces of at least two, preferably at least three, auxiliary impeller vanes preferably have slopes that rise radially relative to the axis of rotation along the circumferential direction of the auxiliary impeller. In this way, the tips of the vanes combined with the generally ring-shaped outer rotor bearing surface form a fluid-slip rotor bearing. The slopes are configured so that a pressure increase in the bearing gap of the fluid-slip rotor bearing is achieved in the direction of rotation. The slopes slope along the entire width of the auxiliary impeller vanes along their circumferential direction. Alternatively, two slopes can be provided in opposite directions along the periphery of the auxiliary impeller, starting from opposite ends of the auxiliary impeller vane tips, so that the maximum radial rise of the auxiliary impeller vanes is achieved in some intermediate section of the auxiliary impeller vane tips. Such an impeller can operate in two opposite rotational directions. Equivalent structural details can additionally or alternatively be provided on the outer impeller bearing surface.

[0020] It is preferable to apply the aforementioned specifications of the outer peripheral surface to the axial or radial-axial end face of the auxiliary impeller vane. The end face of the auxiliary impeller vane may extend radially with respect to the rotation axis or may extend along a chamfer arranged on the edge of the auxiliary impeller vane. The aforementioned type of fluid end face of the auxiliary impeller vane may be realized on the bearing surface of an inner axial plain rotor bearing or an axial-radial plain rotor bearing between the auxiliary impeller and a non-rotating part of the blood pump, such as the pump housing. The outer axial or axial-radial rotor bearing surface of the axial plain rotor bearing may be arranged, for example, on the pump housing. The axial or axial-radial rotor bearing may transmit the axial force of the impeller.

[0021] Preferably, the axial or axial-radial rotor bearing surfaces are made of a ceramic material. For example, the ceramic material may be provided as a ceramic coating. Alternatively, the impeller and / or corresponding sections of the pump housing may be made entirely of a ceramic material.

[0022] Preferably, a radially protruding bulge is disposed on the outer and / or inner rotor bearing surface, with the apex of the bulge extending circumferentially. The bulge may extend to either the outer or inner rotor bearing surface. Preferably, the radius of the apex is greater than one-tenth the diameter of the auxiliary impeller. Such a protruding bulge has the advantage that when the rotating part of the blood pump rotates transversely to the main rotation direction, the sharp edge of the rotating part's end does not contact the surrounding non-rotating part, which would otherwise damage the pump surface. Instead, only the protruding bulge contacts the opposite non-rotating surface. This reduces the risk of damaging the rotor bearing due to the rotating shaft.

[0023] Preferably, the inner rotor bearing surface is made of a ceramic material. For example, the inner rotor bearing surface may be provided as a ceramic coating. The hardness of the ceramic material improves the wear resistance of the inner rotor bearing surface. Preferably, the ceramic material is inert with respect to reaction with blood.

[0024] Preferably, the auxiliary impeller is an integral part of ceramic material. It is also possible for the auxiliary impeller to be made of a non-ceramic material coated with a ceramic material.

[0025] Preferably, the outer rotor bearing surface is also made of a ceramic material, for example the outer rotor bearing surface may be provided as a ceramic coating.

[0026] Preferably, the pumping device comprises a specific component forming the outer rotor bearing surface of ceramic material, such as a rotor bearing ring, which provides good dimensional stability of the outer rotor bearing surface, which is particularly important due to the small inner rotor bearing surface and the increased surface pressure at the tips of the auxiliary impeller blades.

[0027] Preferably, the ceramic material is silicon carbide. Silicon carbide has the advantage of being a high thermal conductor compared to many other ceramic materials. Heat can therefore be effectively removed from the plain rotor bearing. Heat conduction can occur through the rotor towards the impeller or through the pump housing, for example, particularly through the rotor bearing ring.

[0028] Preferably, the axial length of the auxiliary impeller is smaller than the maximum outer diameter of the auxiliary impeller. In this way, the auxiliary impeller does not extend excessively along the rotation axis and becomes a slender component of the blood pump. In this case, the pumping effect is mainly generated in the radial direction, which is more effective than the axial direction. This is advantageous for building a compact blood pump.

[0029] Preferably, the primary impeller is arranged on the side of the rotor opposite to the side of the rotor on which the auxiliary impeller is arranged, this arrangement having the advantage that the bearings at the ends of the rotor of the blood pump, such as radial plain bearings in the auxiliary impeller, optimally mount the rotor against rotational axis in terms of stiffness.

[0030] Preferably, the auxiliary blood flow outlet is located outside the primary flow path of the primary impeller. Therefore, the auxiliary blood flow is separated from the primary blood flow. In this case, blood transported through the auxiliary flow path mixes with blood from the primary flow path only outside the primary flow path. This reduces hydrodynamic losses because the blood flows in opposite directions, and makes the auxiliary blood flow, which depends on preload and afterload conditions, independent of the primary blood flow. In other words, by separating the primary blood flow from the auxiliary blood flow, the auxiliary blood flow simply follows the rotation of the pump.

[0031] Preferably, the auxiliary blood flow outlet is positioned obliquely or perpendicular to the direction of the primary blood flow delivered by the pump section. When the primary blood flow flows adjacent to the auxiliary blood flow outlet, blood is drawn through the auxiliary blood flow outlet by the Venturi effect, which assists the auxiliary blood flow.

[0032] Preferably, the auxiliary blood inlet comprises a plurality of inlet holes. The inlet holes are preferably arranged circumferentially around the axis of rotation. Preferably, the inlet holes are arranged in a circular pattern. It is further preferred that a wire channel is arranged in the space between two adjacent inlet holes. For example, the wire channel may be used to accommodate at least one electrical supply wire for the drive unit. Such an arrangement of the inlet holes and the wire channel creates a compact design for the blood pump.

[0033] The axial gap between the rotor and the stator is located downstream of the auxiliary impeller. The auxiliary impeller may be located in a cavity between the auxiliary blood flow inlet and the axial gap. In particular, the auxiliary impeller transports blood radially or radially-axially. An auxiliary inlet through-hole is located in the wall of the pump housing downstream of the auxiliary blood flow inlet along the auxiliary blood flow path. From the auxiliary inlet through-hole, blood can enter the cavity at the inner end of the auxiliary inlet through-hole. The inner end of the auxiliary inlet through-hole is preferably located radially inward from the axial gap. Centrifugal force acting between the inner region of the auxiliary impeller and the outer region of the auxiliary impeller generates pressure to transport blood through the axial gap. In particular, the radially outermost section of the auxiliary blood flow inlet may be located radially inward from the radially innermost section of the inlet into the axial gap.

[0034] Preferably, the pumping device further comprises a tertiary impeller, preferably located downstream of the axial gap, preferably configured to draw blood from the axial gap, thereby increasing the flow rate of blood through the secondary flow path.

[0035] Preferably, the tertiary impeller is rotatable about the axis of rotation. The tertiary impeller may be rotatable with the rotor.

[0036] Preferably, the auxiliary blood outlet is located in the radial gap formed between the primary impeller and the stator. Preferably, blood can exit the radial gap over the entire circumferential cross section of the radial gap. Such a large exit cross section reduces the hydrodynamic resistance of the auxiliary blood flow path.

[0037] In particular, the rotatable wall of the radial gap is rotatable with the rotor, thus creating a swirling motive flow of blood, which, due to its rotation inside the gap, increases the blood flow through the auxiliary flow channel due to centrifugal force on the blood in the swirling motive flow.

[0038] Preferably, a stationary wall of the radial gap is arranged opposite the rotatable wall of the radial gap, the stationary wall preferably being mechanically connected to the stator.

[0039] Preferably, the tertiary impeller is disposed inside the radial gap. Preferably, the tertiary impeller forms a part of the rotatable wall of the radial gap. Preferably, the tertiary impeller comprises at least one tertiary impeller vane. The tertiary impeller vane is preferably configured to transport blood radially. The tertiary impeller vane may extend approximately or strictly radially with respect to the axis of rotation. In this case, the effect of the tertiary impeller is independent of the sense of rotation of the tertiary impeller.

[0040] Preferably, the inlet into the tertiary impeller is located at the outlet end of the axial gap, so that the tertiary impeller advantageously draws blood directly from the axial gap, and the short connection between the axial and radial gaps reduces hydrodynamic resistance along the auxiliary blood flow path.

[0041] The foregoing summary, as well as the following detailed description of the preferred embodiments, will be better understood when read in conjunction with the appended drawings. However, the scope of the present disclosure is not limited to the specific embodiments disclosed in the drawings. [Brief explanation of the drawings]

[0042] [Figure 1] 1 is a cross-sectional view of a first embodiment of a blood pump according to the present invention. [Figure 2] FIG. 2 shows a portion of FIG. 1 with an enlarged view of the pump section. [Figure 3] FIG. 2 shows a portion of FIG. 1 with an enlarged view of the drive section. [Figure 4] 1 is a perspective view toward the pump section end of a first embodiment of a blood pump. FIG. [Figure 5] 5 is essentially the same as FIG. 4, but with a transparent pump housing. [Figure 6] FIG. 6 is essentially the same view as FIG. 5, but showing a second embodiment of the blood pump. [Figure 7] FIG. 10 is a perspective view of an embodiment of a secondary impeller. [Figure 8] FIG. 2 is a perspective view of a separator ring of the first embodiment of the blood pump. [Figure 9] FIG. 10 is a perspective view of a separator ring of a second embodiment of a blood pump. [Figure 10] FIG. 10 shows a cross section of the drive section end of the blood pump in a perspective view showing the auxiliary impeller. [Figure 11A] FIG. 10 is a perspective view of an auxiliary impeller and rotor bearing ring. [Figure 11B] FIG. 1 is a perspective view of a rotor bearing ring having a cutout portion. [Figure 12] FIG. 1 is a perspective view of a tertiary impeller of the first or second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0043] In Figure 1, a cross-sectional view of a first embodiment of an intravascular blood pump is shown. Rotating parts are omitted and not shown. The intravascular blood pump 1 comprises a pumping device 11 and a supply line in the form of a catheter 5 attached thereto.

[0044] The pumping device 11 comprises a pump housing 2 that is generally cylindrical in shape at least in its middle portion. The pump housing 2 comprises a blood inlet 21 and a blood outlet 22. In Figure 1, the pump housing 2 appears to comprise two separate sections, but these sections are integral or connected to form a single piece.

[0045] As can be better seen in the enlarged view of the pump section shown in FIG. 2 and the front perspective views shown in FIGS. 4 and 5, the blood inlet 21 includes a primary blood inlet 211 and a secondary blood inlet 212. The primary blood inlet 211 surrounds the secondary blood inlet 212. The primary blood inlet 211 and the secondary blood inlet 212 are separated by an inlet separator 26. Inside the inlet separator 26, the inlet separator 26 includes an impeller bearing ring 27, which is shown separately in FIG. 8. Furthermore, the pumping device 11 includes a primary impeller 31 having a secondary impeller 32 integrated therein. The primary and secondary impellers 31, 32 are rotatable together about the rotation axis 10. The secondary impeller 32 may have the form of an inlay and may be disposed inside a secondary impeller cavity 312 of the primary impeller 31, as shown in FIG. 7. The secondary impeller cavity 312 is open towards the pump section end PSE of the pumping device 11. Alternatively, the primary and secondary impellers 31, 32 are integrally formed.

[0046] Primary blood flow 1BF flows from primary blood inlet 211 to primary impeller 31 outside inlet separator 26, and is further conveyed by primary impeller 31 through primary blood flow channel 30 to primary blood outlet 22. Secondary blood flow 2BF flows from secondary blood inlet 212 through inlet separator 26 to secondary impeller 32, and is further conveyed by secondary impeller 32 through multiple secondary blood flow channels 321 to primary blood flow channel 30.

[0047] Thus, the blood stream arriving at the pumping device 11 at the pump section end, preferably over almost the entire cross section of the pumping device 11, can flow into the primary and secondary blood inlet ports 211, 212 without significant deflection. The central location of the secondary blood inlet port 212 also allows blood from the center of the blood stream to enter the pumping device 11 without deflection. This is advantageous because blood streams are typically laminar flows with the highest flow velocity in the center.

[0048] The primary impeller 31 comprises primary impeller vanes 313 extending into the primary blood flow path 30, with a primary impeller channel 311 disposed therebetween. The primary impeller channel 311 has a primary pitch at a primary channel inlet 314 at each end of the primary impeller channel 311 toward the pump section end PSE. The secondary impeller 32 comprises at least one, and in particular exactly two, secondary blood flow paths 321 in the form of channels, and is therefore also referred to hereinafter as secondary impeller channel 321 (see also FIG. 7 ). The secondary impeller channel 321 has a secondary pitch at a secondary channel inlet 324 disposed at the upstream end of the secondary impeller channel 321. The secondary pitch is preferably the same as the primary pitch, or may differ to some extent, as long as undesired flow conditions, such as turbulence, are prevented. At the end of the secondary impeller 32 toward the drive section end DSE, a connecting through-hole 315 is disposed between the secondary impeller cavity 312 and one of the primary blood flow channels 311. The end of this connecting through-hole 315 in the direction of blood flow defines a secondary blood flow outlet 213. The secondary blood flow outlet 213 is disposed further radially outward with respect to the rotation axis 10. Thus, blood is moved radially outward by centrifugal force generated by the rotation of the secondary impeller 32. In this manner, the secondary blood flow 2BF passes through the secondary blood flow inlet 212 and is conveyed further through the secondary impeller channel 321 of the secondary impeller 32, where it merges with the primary blood flow 1BF flowing through the primary impeller channel 311 of the primary impeller 31. In this manner, a pumped blood flow PBF is formed. The pumped blood flow PBF exits the pumping device 11 at the blood flow outlet 22.

[0049] The primary and secondary impellers 31, 32 are mounted together in an impeller bearing 37. They are connected via a secondary impeller cavity 312 or are integrally formed as a single part. The inlet separator 26 includes an impeller bearing ring 27 disposed inside the inlet separator 26. An outer impeller bearing surface 277 of the impeller bearing 37 is disposed inside the impeller bearing ring 27. The impeller bearing 37 further includes an inner impeller bearing surface 327 disposed on the outer periphery of the secondary impeller 32.

[0050] The primary impeller 31 is fixedly connected to a tapered section 314 that leads to the blood flow outlet 22. The tapered section 314 directs the pumped blood flow PBF in a radially outward direction relative to the rotation axis 10. The blood then reaches the blood flow outlet 22.

[0051] From the tapered section 314 in the direction toward the pump section end PSE, the drive section 4 is arranged inside the pump housing 2 of the pumping device 11 and includes a stator 40 and a rotor 41. An axial gap 401 is arranged between the stator 40 and the rotor 41. To cool the stator 40 and the rotor 41, the axial gap 401 is blood-purged. For this purpose, the auxiliary blood flow ABF enters the drive section 4 through an auxiliary blood inlet 23 arranged at the drive section end DSE. The blood is then conveyed by the auxiliary impeller 42 through an auxiliary pump gap 423 arranged between the auxiliary impeller 42 and the inner wall of the pump housing 2. From here, the blood continues to flow into the axial gap 401. From the axial gap 401, the auxiliary blood flow ABF enters a radial gap 241. An auxiliary blood outlet 24 is arranged at the radially outer end of the radial gap 241. The auxiliary blood flow ABF flows in the axial gap 401 in a direction opposite to the pumping direction of the primary and secondary impellers 31, 32. The auxiliary blood flow ABF inside the drive section 4 also flows in a direction substantially opposite to the overall blood flow GBF flowing around the blood pump 1.

[0052] As can be better seen with reference to the enlarged view shown in FIG. 3 , the rotor bearing ring 43 surrounds the auxiliary impeller 42. The auxiliary impeller 42 includes auxiliary impeller vanes 421 that protrude toward the drive section end DSE of the pumping device 11 in the direction of the rotation axis 10. A radial rotor bearing 47 is disposed at the drive section end DSE and includes an outer rotor bearing surface 4211 and an inner rotor bearing surface 4311, with an axially extending bearing gap disposed therebetween. The outer rotor bearing surface 4311 is disposed on the rotor bearing ring 43. Blood conveyed by the auxiliary impeller 42 flows through the bearing gap and further into the axial gap 401 between the rotor 41 and the stator 40. From the axial gap 401, the blood flows into the radial gap 241. The radial gap 241 extends between the tapered section 314 of the primary impeller 31 and the stator 40. The auxiliary blood flow outlet 24 is located at the transition between the radial gap 241 and the periphery of the pumping device 11. The auxiliary blood flow outlet 24 is positioned perpendicular to the axis of rotation 10. Here, blood from the auxiliary blood flow ABF merges with the pumping blood flow PBF from the pump section 2 and the surrounding global blood flow GBF. As shown, when the auxiliary blood flow outlet 24 is located near the outer diameter of the pump housing 2 and near the primary blood flow outlet 22, the pumping blood flow PBF and the global blood flow GBF assist in drawing blood from the radial gap 241 due to their flow velocities. This increases the auxiliary blood flow ABF through the axial gap 401.

[0053] A bump 422 is arranged in the center of the auxiliary impeller 42, through which the rotation axis 10 extends, and on the side of the auxiliary impeller 42 opposite the rotor 41. A bearing pin 44 is arranged adjacent to the bump 422, toward the drive section end DSE in the direction of the rotation axis 10. The bearing pin 44 is connected to the pump housing 2. The axial bearing surface of the bearing pin 44 facing the auxiliary impeller 42 has a convex shape. The rotation axis 10 extends through the top of the axial bearing surface of the bearing pin 44 and the top of the axial bearing surface of the bump 422. In this way, the bearing pin 44 interacts with the bump 422 to form a thrust bearing for transmitting axial forces with respect to the rotation axis between the bump 422 and the bearing pin 44, and the aforementioned parts can rotate relative to each other. Obviously, the contact surface is small and the rotational friction is low.

[0054] The drive section end of the blood pump 1 includes one or more, preferably three, auxiliary inlet through-holes 231. The auxiliary inlet through-holes 231 extend from the auxiliary blood inlet 23 to an auxiliary impeller cavity 232 in which the auxiliary impeller 42 is located. Thus, blood flows from the auxiliary blood inlet 23 to the auxiliary impeller 42 via the auxiliary inlet through-holes 231.

[0055] At least one wire through-hole 25 is disposed at the drive section end DSE of the pumping device 11. The wire through-hole 25 may extend from the catheter 5 to the stator 40. Preferably, three wire through-holes 25 are disposed about the rotation axis 10. One wire through-hole 25 may be disposed between two auxiliary inlet through-holes 231. At least one supply line 51, 52, and / or 53 may extend through the wire through-hole 25 and be connected to the stator 40. Preferably, as shown, the supply wires 51, 52, and / or 53 extend through the inside of the catheter 5 to the outside of the patient's body. The supply wires 51, 52, and / or 53 extend from the catheter 5 to the stator 40 without contacting the blood.

[0056] FIG. 4 shows a perspective front view of the pump section end PSE of the pump section 3. As shown, the secondary impeller 32 is disposed inside the impeller bearing ring 27. The impeller bearing ring 27 is disposed inside the inlet separator 26. As an alternative to this embodiment, the additional impeller bearing ring 27 can be omitted, so that the outer impeller bearing surface 277 is formed by the inlet separator 26. Here, the inlet separator 26 is attached between the primary blood flow 1BF and the secondary blood flow 2BF by three struts 28. The secondary blood flow 2BF is shown entering the secondary impeller 32 through a secondary blood flow inlet 212 located at the inlet into the impeller bearing ring 27. In the secondary impeller 32, blood flows along the secondary impeller channel 321 and then through the through opening 315 to the secondary blood flow outlet 213. Here, the secondary blood flow 2BF merges with the primary blood flow 1BF to form the pumping blood flow PBF.

[0057] FIG. 5 shows the pump section end PSE of the pump section 3 in a perspective view, with the pump housing 2 shown transparent. The through opening 315 and the secondary blood outlet 213 are located between the two primary impeller vanes 313. As shown, the struts 28 are connected by an outer strut connecting ring 29. The strut connecting ring 29 is located inside the inner circumferential surface of the pump housing 2 at the pump section end PSE. The impeller bearing ring 27 is supported by the struts 28. It is conceivable to manufacture the strut connecting ring 29 and the struts 28 as one component. Preferably, the impeller bearing ring 27 is also part of this component. This component may be formed integrally with the pump housing 2.

[0058] FIG. 6 shows a perspective view of the pump section end PSE of the pump section 3. Unlike the embodiment shown in FIGS. 3 to 5, the pump housing 2 is shown transparent. The inlet separator 26 has at least one, preferably three, cutouts 261 at its downstream end. The cutouts 261 are located between two struts 28. The impeller bearing ring 27 is part of the inlet separator 26 or is fixedly connected thereto, and the cutouts 261 also extend through the impeller bearing ring 27. Due to the cutouts 261, the secondary impeller channel 321 increases in cross section when aligned with the cutouts 261 during rotation of the secondary impeller. The secondary impeller 32 extends inside the impeller bearing ring 27 in a direction toward the pump section end PSE up to the end of the cutouts 261. This has the effect that during operation, the edges of the cutouts 261 extend above the inner impeller bearing surface 327, removing blood clots as they begin to form, or preferably preventing them from forming, since the mating portion of the rotating axial thrust bearing surface 328 in the cutouts 261 is in direct contact with the blood. This helps to avoid blood pooling in the axial thrust bearing. Also, as can be seen in Figure 7, the inner impeller bearing surface 327 has edges 325, which have the effect of removing blood clots from the outer impeller bearing surface 277 (Figures 8 and 9).

[0059] FIG. 7 shows the secondary impeller 32 in detail in a perspective view. Here, the secondary impeller 32 is configured as an inlay and has a roughly cylindrical shape. It can be made of a different material from the primary impeller 31, for example, a ceramic material. The inlay has a cylindrical section 323 arranged inside the secondary impeller cavity 312 of the primary impeller 21. A circumferential protrusion 329 forms an axial stop for the secondary impeller 32 in the secondary impeller cavity 312. An inner impeller bearing surface 327 is arranged on the outer periphery of the secondary impeller 32. Two secondary impeller channels 321 are arranged at the end of the secondary impeller 32 toward the pump section end PSE. The secondary impeller channels 321 have their largest cross-section at the upstream end of the secondary impeller 32. Thus, the cross-section of the channels 321 decreases with increasing distance from the blood inlet 21. In this way, blood is pumped primarily from an axial to an axial-radial direction as it flows through the secondary impeller channel 321 .

[0060] The secondary impeller channels 321 are arranged asymmetrically with respect to the rotation axis 10 of the secondary impeller 32. At the end of the secondary impeller 32 facing the blood inlet 21, the rotation axis 10 extends through one of the secondary impeller channels 321. In this way, the center of rotation located at the rotation axis 10 does not coincide with a solid part of the secondary impeller 32. This has the advantage that blood clotting can be avoided at the center of rotation where there is no differential speed relative to the adjacent blood flows.

[0061] A lip 325 is located at the transition between the secondary impeller channel 321 and the inner impeller bearing surface 327. As described above, such lip 325 serves to prevent blood clots from forming on the outer impeller bearing surface 277. The inner impeller bearing surface 327 provides the inner surface of a radial bearing at the pump section end PSE. The secondary impeller 32 further includes an axial impeller bearing surface 328, which is located on the circumferential protrusion 329. The axial impeller bearing surface 328 forms part of the axial stop or axial thrust bearing described above. The axial stop may be configured as an axial bearing capable of transmitting force from the secondary impeller 32 to the bearing ring 27 during impeller rotation. The axial bearing is necessary to handle axial forces resulting from the impeller purging action.

[0062] 8 shows an enlarged view of the impeller bearing ring 27. An outer impeller bearing surface 277 is disposed inside the impeller bearing ring 27. The impeller bearing ring 27 includes an axial bearing ring surface 278. As shown, the axial bearing ring surface 278 may be disposed at an axial end of the impeller bearing ring 27.

[0063] Figure 9 shows a perspective view of an impeller bearing ring 27 according to a further embodiment different from that shown in Figure 8, which comprises the previously mentioned cutouts 261, which are arranged at the downstream end of the impeller bearing ring 27. The number of cutouts 261 preferably corresponds to the number of struts 28.

[0064] 10 shows a perspective view of a cross section through the drive section end DSE of the drive section 4. The rotating parts are omitted and not shown. As shown, auxiliary blood flow ABF enters the pump housing 2 at auxiliary blood inlet 23. Auxiliary impeller 42 accelerates the blood, which continues to flow into axial gap 401. As indicated by the arrows ABF inside axial gap 401, the blood has a strong circumferential flow component such that it flows helically along axial gap 401 rather than directly toward the axis of rotation 10.

[0065] FIG. 11 shows a perspective view of the end of the rotor 41 at the drive section end DSE of the pumping device 11. The auxiliary vanes 421 of the auxiliary impeller 42 are clearly visible and extend linearly in the radial direction. The auxiliary impeller vanes 421 provide, at their outer peripheries, inner rotor bearing surfaces 4211 for the radial rotor bearings 47. Furthermore, each of the auxiliary impeller vanes 421 has a chamfer 4212. This chamfer 4212 is advantageous for constructing the tapered drive section end DSE of the pumping device 11 as shown in FIG. 10. Furthermore, the auxiliary impeller vanes 421 have a radially extending end face 4214 at the axial end of the secondary impeller 42. A ridge 422 is formed in the center of the axial end of the secondary impeller 42. As shown in FIG. 10, the ridge 422 interacts with the bearing pin 44.

[0066] 11A further shows a rotor bearing ring 43 disposed about the inner rotor bearing surface 4211 of the secondary impeller 42. The outer rotor bearing surface 4311 of the rotor bearing ring 43 forms a rotor bearing 47 with the inner rotor bearing surface 4211 of the auxiliary impeller 42. The auxiliary impeller 42 has an axial length L and a diameter D. Alternatively, as shown in FIG. 11B, the rotor bearing ring 43 may have a cutout having a form, function, and configuration similar to the cutout 261 of the impeller bearing ring 27 described above.

[0067] FIG. 12 shows a perspective view of the end of the rotor 41 connected to the tapered section 314 of the primary impeller 31. A tertiary impeller 242 is disposed between the tapered section 314 and the pump section end of the rotor 41 and extends radially from the outer diameter of the rotor 41 to the outer diameter of the tapered section 314, forming a shoulder. The axial plane of this shoulder forms a rotatable wall 2411 of the radial gap 24. Tertiary impeller vanes 2412 protrude from the rotatable wall 2411 toward the drive section end DSE of the pumping device 11. Preferably, the tertiary impeller vanes 2412 extend axially along the rotation axis 10. In particular, the tertiary impeller vanes 2412 are straight and extend radially relative to the rotation axis 10. Furthermore, in an alternative embodiment, the tertiary impeller vanes 2412 may be omitted (not shown).

Claims

1. An intravascular blood pump (1) comprising a pumping device (11) having a pump section (3) and a drive section (4), the pump section (3) comprises a pump housing (2) having a primary blood inlet (211) and a primary blood outlet (22) hydrodynamically connected by a primary flow path (30); the drive section (4) comprises a stator (40) and a rotor (41) rotatable about a rotation axis (10) and configured to rotate a primary impeller (31), the primary impeller (31) being configured to convey a primary blood flow along the primary flow path (30) from the primary blood inlet (211) to the primary blood outlet (22); the drive section (4) further comprises an auxiliary blood inlet (23) and an auxiliary blood outlet (24) hydrodynamically connected by an auxiliary flow path extending through an axial gap (401) between the rotor (41) and the stator (40); and an auxiliary impeller (42) disposed at a drive section end (DSE) of the rotor (41) and rotatable together with the rotor (41) about the rotation axis (10), the auxiliary impeller (42) comprising one or more auxiliary impeller vanes (421) configured to convey an auxiliary blood flow from the auxiliary blood inlet (23) to the auxiliary blood outlet (24) along the auxiliary flow path in a direction toward a pump section end (PSE) of the pumping device (11); The rotor (41) is mounted on a blood-purged radial plain rotor bearing (47) having an inner rotor bearing surface (4211) and an outer rotor bearing surface (4311); The intravascular blood pump (1) is characterized in that the auxiliary impeller (42) forms the inner rotor bearing surface (4211) of the radial plain rotor bearing (47).

2. 2. An intravascular blood pump according to claim 1, wherein the inner rotor bearing surface (4211) and the rotor (41) have a common outer diameter.

3. 3. An intravascular blood pump according to claim 1 or 2, characterized in that the auxiliary impeller (42) is a radial or radial-axial delivery impeller.

4. 4. An intravascular blood pump according to claim 1, wherein each of the auxiliary impeller vanes (421) has an outer circumferential surface, and the inner rotor bearing surface (4211) is formed by the outer circumferential surfaces of at least two of the auxiliary impeller vanes.

5. 5. An intravascular blood pump according to claim 1, wherein at least one of the auxiliary impeller vanes (421) protrudes axially from the auxiliary impeller (42).

6. 6. An intravascular blood pump according to claim 1, wherein at least one of the auxiliary impeller vanes (421) extends radially from the blood inlet to at least the axial gap (401).

7. 7. An intravascular blood pump according to claim 1, wherein at least one of the auxiliary impeller vanes (421) extends radially relative to the rotation axis (10).

8. 8. An intravascular blood pump according to claim 1, wherein at least one of the auxiliary impeller vanes (421) forms an auxiliary pump gap (423) with the inner wall of the pump housing (2).

9. 9. An intravascular blood pump according to claim 1, wherein the outer circumferential surfaces of at least two of the auxiliary impeller vanes (421) are inclined circumferentially to form a fluid-sliding rotor bearing (47).

10. 10. An intravascular blood pump according to any one of claims 1 to 9, characterized in that the inner rotor bearing surface (4211) has a radially protruding bulge, the apex of which extends circumferentially.

11. 11. An intravascular blood pump according to any one of claims 1 to 10, characterized in that the inner rotor bearing surface (4211) is made of a ceramic material.

12. 12. An intravascular blood pump according to claim 11, characterized in that the auxiliary impeller (42) is an integral part of ceramic material.

13. 13. An intravascular blood pump according to any one of claims 1 to 12, characterized in that the part of the pumping device (11) that forms the outer rotor bearing surface (4311) of the radial sliding rotor (47) is a rotor bearing ring (43).

14. 14. The intravascular blood pump of claim 13, wherein the outer rotor bearing surface (4311) is made of a ceramic material.

15. 15. Intravascular blood pump according to claim 14, characterized in that a part of the pumping device (11) forms the outer rotor bearing surface.

16. 16. An intravascular blood pump according to any one of claims 1 to 15, comprising an axial rotor bearing or an axial-radial rotor bearing having an axial or axial-radial rotor bearing surface, respectively, arranged on the auxiliary impeller (42).

17. 17. An intravascular blood pump according to claim 16, characterized in that at least the axial or axial-radial rotor bearing surface of the auxiliary impeller (42) is made of a ceramic material.

18. 18. An intravascular blood pump according to any one of claims 11, 12, 14, 15 and 17, wherein the ceramic material is silicon carbide.

19. 19. An intravascular blood pump according to any one of claims 1 to 18, wherein the axial length of the auxiliary impeller (42) is smaller than the maximum outer diameter of the auxiliary impeller (42).

20. 20. An intravascular blood pump according to any one of claims 1 to 19, characterized in that the primary impeller (31) and the auxiliary impeller (42) are arranged on opposite sides of the rotor (41).

21. 21. An intravascular blood pump according to any one of claims 1 to 20, characterized in that the radially outer edge of one or more of the auxiliary impeller vanes (421) is chamfered.

22. 22. An intravascular blood pump according to any one of claims 1 to 21, characterized in that the auxiliary blood outlet (24) is arranged outside the primary flow path (30).

23. 23. An intravascular blood pump according to any one of claims 1 to 22, characterized in that the auxiliary blood inlet (23) comprises a plurality of auxiliary inlet through-holes (231) arranged around the rotation axis (10).

24. 24. An intravascular blood pump according to claim 23, characterized in that in the space between two of the auxiliary inlet through-holes (231) a wire channel (25) for electrical supply wires (51), (52), (53) for the drive section (4) is arranged.

25. 25. An intravascular blood pump according to claim 23 or 24, characterized in that the axial gap (401) has an inlet arranged for blood to flow into the axial gap (401), and the inner end (233) of the auxiliary inlet through-hole (231) is arranged radially inward of the radially innermost section of the inlet into the axial gap (401).

26. 26. An intravascular blood pump according to any one of claims 1 to 25, characterized in that the pumping device (11) comprises a tertiary impeller (242) arranged to draw the auxiliary blood flow through the auxiliary flow path.

27. 27. Intravascular blood pump according to claim 26, characterized in that the tertiary impeller (242) is rotatable together with the rotor (41) about the axis of rotation (10).

28. 28. An intravascular blood pump according to any one of claims 1 to 27, characterized in that the auxiliary blood outlet (24) is arranged in a radial gap (241) between the primary impeller (31) and the stator (40).

29. 29. The intravascular blood pump of claim 28, wherein the auxiliary blood outlet (24) is positioned such that, during operation, the pumped blood flow PBF leaving the primary blood outlet (22) passes through the auxiliary blood outlet (24).

30. 30. An intravascular blood pump according to claim 28 or 29, characterized in that the rotatable wall (2411) of the radial gap (241) is rotatable together with the rotor (41).

31. 31. An intravascular blood pump according to claim 30, characterized in that a stationary wall (2410) of the radial gap (241) opposite the rotatable wall (2411) of the radial gap (241) is mechanically connected to the stator (40).

32. 32. An intravascular blood pump according to any one of claims 28 to 31, including claim 27, characterized in that the tertiary impeller (242) is arranged in the radial gap (241).

33. An intravascular blood pump according to claim 32, including claim 30, characterized in that the tertiary impeller (242) comprises at least one tertiary impeller vane (2412) protruding from the rotatable wall (2411) of the radial gap (241).

34. 34. An intravascular blood pump according to claim 32 or 33, characterized in that the inlet to the tertiary impeller (242) is located at the outlet end of the axial gap (401).