Pump housing with an interior for accommodating a pump rotor
11703064 · 2023-07-18
Assignee
Inventors
Cpc classification
F05D2300/505
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/174
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D15/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/237
HUMAN NECESSITIES
A61M60/13
HUMAN NECESSITIES
F04D29/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/896
HUMAN NECESSITIES
F04D29/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/528
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/247
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/6034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/414
HUMAN NECESSITIES
International classification
F04D29/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/13
HUMAN NECESSITIES
A61M60/148
HUMAN NECESSITIES
A61M60/237
HUMAN NECESSITIES
A61M60/414
HUMAN NECESSITIES
A61M60/896
HUMAN NECESSITIES
F04D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In a pump housing having an interior for accommodating a pump rotor, which may be transferred from a radially compressed state into a radially expanded state, and comprises a housing skin revolving in circumferential direction, as well as at least one reinforcement element, a stretch-resistant element revolving in circumferential direction is provided, which is stretched less than 5% in the expanded state as opposed to the force-free state in circumferential direction, and which limits any further expansion of the pump housing in radial direction.
Claims
1. A blood pump comprising: a rotor, wherein the rotor is a compressible and expandable rotor; a pump housing having an interior for accommodating the rotor; and a valve within the pump housing at an axial distance to the rotor for changing a flow resistance for a fluid flow passing through the interior of the pump housing, wherein the pump housing comprises: a housing skin, wherein the housing skin is stretch-resistant, radially compressible and expandable, revolving in a circumferential direction, the housing skin formed of a stretch-resistant material which is configured to stretch less than 5% when the housing skin is fully expanded compared to when the housing skin is in an unstressed state, wherein the housing skin limits expansion of the pump housing; at least one reinforcement, the at least one reinforcement being configured to expand in the circumferential direction with expansion of the housing skin; and a ring revolving in the circumferential direction of the pump housing and surrounding the at least one reinforcement at least in sections, and wherein the valve comprises at least one baffle that is pivotable, elastically deformable, or pivotable and elastically deformable.
2. A blood pump comprising: a rotor, wherein the rotor is a compressible and expandable rotor; a pump housing having an interior for accommodating the rotor; and a catheter attached to the pump housing, wherein the pump housing comprises: a housing skin, wherein the housing skin is stretch-resistant, radially compressible and expandable, revolving in a circumferential direction, the housing skin formed of a stretch-resistant material which is configured to stretch less than 5% when the housing skin is fully expanded compared to when the housing skin is in an unstressed state, wherein the housing skin limits expansion of the pump housing; at least one reinforcement, the at least one reinforcement being configured to expand in the circumferential direction with expansion of the housing skin; and a ring revolving in the circumferential direction of the pump housing and surrounding the at least one reinforcement at least in sections, wherein the catheter is coaxially and concentrically connected to the pump housing, and wherein the catheter is connected to the pump housing by the at least one reinforcement of the pump housing.
3. The blood pump of claim 2, wherein the at least one reinforcement of the pump housing retains and centers the catheter in the pump housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is shown based on an exemplary embodiment in a drawing, described in further detail below. They show:
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DETAILED DESCRIPTION OF THE DRAWINGS
(20)
(21) The heart pump 8 has a rotor inside, which may be driven by a drive shaft 6 at several thousand, typically between 10,000 and 50,000, revolutions per minute, and transports blood in axial direction. The rotor is surrounded by a pump housing having a distal suction opening, via which the blood in the heart chamber 3 may be suctioned off.
(22) Such blood pumps are utilized for the replacement or supplementation of the natural heart function, either temporarily, or also permanently. Especially with the supplemental use of such a heart pump it is of advantage, if the natural activity of the heart remains uninfluenced such that the heart itself may also contribute to the pump function via the heart valve. For this purpose, the heart may either provide supplementary pumping action through the pump, or bypassing the same, transport blood to the heart pump through the heart valve.
(23)
(24) The pump housing 9 has a suction cage 12 at the distal end thereof, which is formed by several bracers simultaneously forming the reinforcement elements of the pump housing 9, which are embedded into the material of the pump housing, and axially project beyond the same in a distal direction.
(25) An atraumatic syringe 13 is disposed at the distal end of the suction cage 12, which has the shape of a ball 14 in the example, ensuring that the pump will not damage any vessel walls or heart walls while it is being inserted into the blood vessel and into the heart chamber, and that the suction end with the suction opening 12 of the pump housing 9 will not latch onto the vessel wall during the transport of blood.
(26) A film-like discharge jacket 16 is connected to the pump housing in a fluid tight manner in an axial area 15 of the pump housing. The discharge jacket 16 consists of a flexible, pliable, very thin film covering the discharge openings 17 of the pump housing 9, which are disposed on the side of the jacket, and reaches beyond these a little further in proximal direction of the pump, i.e., in the direction of the lock 5. The heart valve, schematically indicated by reference numeral 18, pushes the discharge jacket 16 against the expansion of the pump housing 9, and thereby closes the heart chamber opposite the blood vessel 1. When the pump is operated it will generate excess pressure and propels blood from the discharge openings 17 in radial and axial direction, which results in the discharge jacket 16 lifting up radially, and the opening of the heart valve 18 with sufficient pressure in order to allow blood into the blood vessel 1 past the proximal expansion of the pump housing 9 via the discharge jacket 16. This is the case particularly in that phase, in which the residual function of the heat being supported by the pump brings about an additional pressure increase in the inflow area of the pump. In this manner it is ensured that the blood flow from the heart chamber into the blood vessel is modulated with the chronological structure of the natural heart function.
(27)
(28) The suction cage 21, 22, 23 further has a so-called pigtail 31 at the distal end thereof, which serves to prevent the latching on of the suction cage on a vessel wall.
(29) At the proximal end thereof, the pump housing 9′ has an ejection opening 32 at the front, from which the flood, indicated by arrow 33, may be ejected into a blood vessel.
(30) The proximal extension of the pump housing 9′ is formed by a catheter 4′, which has a hollow space in the interior thereof for accommodating a drive shaft for the pump.
(31) The pump housing 9′ is constructed with reinforcement elements 20 such that it may be radially well compressed together with the suction cage.
(32) The reinforcement elements 20 may, for example, be integrated into a pliable film, which forms the housing skin and is not stretchable such that it prevents an expansion of the pump housing 9′, after the expansion of the braces 20, beyond a firmly defined state.
(33)
(34) In
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(36) The circular rings may be pivoted against each other about an axis located in the drawing plane such that all are located in the same plane, as illustrated in
(37)
(38) If the rotor 10′ is pulled into the narrowing area of the cone of the pump housing 9′″, for example, by means of the drive shaft (not illustrated), the result is a fit between the exterior contour of the rotor 10′ and the interior wall of the housing 9′″ that is become increasingly narrower. The rotor may be pulled until the optimum pump gap has been achieved.
(39) Contrary to
(40) Such constellation may also be utilized generally in rotor pumps independently of the idea of the main claim, that is to say the use of a stretch-resistant element for limiting the radial expansion of a pump housing.
(41)
(42) The stretch-resistant element 37 may be embodied, for example, as a high-strength plastic film, in particularly also with reinforcement fibers revolving in circumferential direction, e.g., made from or with glass fiber or carbon fiber materials, or also from or with aramide fibers or nylon fibers.
(43) The heart valve of the heart into which the pump is inserted, is indicated in
(44) The length of the housing extension of the housing 39 distally from the end 40 of the rotor up to the suction opening 41 may be between a few millimeters and several centimeters, such as between 0.5 and 10 cm, in particular between 0.5 and 5 cm, or 0.5 and 2 cm.
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(48) At the distal end 51 thereof, the housing skin 43′ has a funnel-shaped extension 52, which facilitates the inflow of blood from the suction opening 53. Simultaneously, in case reinforcement elements are extending in the housing skin 43′ of the housing 39′″, the same may axially run out from the funnel-type extension 52, and form a balloon-type suction cage. The exemplary reinforcement elements integrated in the wall of the housing 39′″, are denoted by 54, 55.
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(55) The constellation illustrated herein may also be generally utilized in rotor pumps, in particular in compressible rotor pumps, as a function of the conditions of the main claim.
(56) Aspects of the invention relate to, among others, the following:
(57) 1. Blood pump with a pump housing, having a conically tapering housing interior and a rotor disposed in the same, wherein the contour of the rotor is embodied cylindrically, or the exterior contour of which also tapers conically in the same direction, as the interior of the housing, and wherein the cone angles of the exterior contour and of the housing interior are approximately the same.
(58) 2. A method for adjusting a blood pump according to a first aspect, wherein the rotor is displaced in the rotation operation axially opposite of the pump housing, until it is ensured by means of determining the load of the drive motor of the pump that the rotor rotates contactless within the pump housing.
(59) 3. A pump housing (9, 9′, 9″, 9′″, 9″″, 39, 39′, 39″, 39″″) having an interior for accommodating a pump rotor (10, 10′, 10″, 10′″), which may be transferred from the radially compressed state into a radially expanded state, wherein at least one element that at an axial distance to the rotor is provided for changing the flow resistance for a fluid flow, in particular a valve, passing through the interior.
(60) 4. A pump housing according to aspect 1, wherein the element, in particular the valve, is embodied in the interior of the housing.
(61) 5. A pump housing according to one of the previous aspects, wherein the at least one element, in particular the valve, may be transferred from a radially compressed state into a radially expanded state.
(62) 6. A pump housing according to one of the previous aspects, wherein the valve function is carried out in the expanded state.
(63) 7. A pump housing according to one of the previous aspects, wherein the element has at least one pivoting and/or deformable surface element, in particular in the form of a sail or a baffle, which opens a flow channel under a flow pressure in a first flow direction, and which closes the same upon a standstill of the pump, or with a flow pressure in opposite direction.
(64) 8. A pump housing according to one of the previous aspects, wherein the element(s) is/are embodied as film-like sails.
(65) 9. A pump housing according to one of the previous aspects, wherein at least one of the elements is attached on the housing.
(66) 10. A pump housing according to one of the previous aspects, wherein the element(s) is/are embodied as one piece together with the housing skin.
(67) 11. A pump housing according to one of the previous aspects, wherein at least one of the elements may abut on the interior of the housing wall and may be pivoted away from the same.
(68) 12. A pump housing according to one of the previous aspects, wherein a fixed body is attached in the interior of the housing, at which the element(s) is/are contact the valve in the closed state.