Blood pump
10702642 ยท 2020-07-07
Assignee
Inventors
Cpc classification
F04D13/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M60/422
HUMAN NECESSITIES
A61M60/419
HUMAN NECESSITIES
A61M60/104
HUMAN NECESSITIES
A61M60/178
HUMAN NECESSITIES
F04D13/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a blood pump. The blood pump according to the present invention includes: a housing including an inlet, through which blood flows, at an upper part of the housing and an outlet, through which the blood is discharged, along an edge of the housing; an impeller part, which is rotatable and disposed inside the housing, including a plurality of blades on the surface thereof so as to move the blood flowing in through the inlet toward the outlet by using a centrifugal force; a rotary shaft member disposed to penetrate the center part of the impeller part so as to support the impeller part to be rotatable which moves the blood to the lower part thereof; and a magnetic body disposed on the impeller part for rotating the impeller part in a predetermined direction according to a change in a magnetic field outside the housing.
Claims
1. A blood pump comprising: a housing including an inlet, through which blood flows, at an upper part of the housing and an outlet, through which the blood is discharged, at an edge of the housing; an impeller rotatably disposed inside the housing, the impeller including a plurality of blades on a surface thereof so as to move the blood flowing in through the inlet toward the outlet by using a centrifugal force; a rotary shaft member disposed to penetrate a center part of the impeller so as to support the impeller to be rotatable, the rotary shaft member configured to move the blood toward to a lower part of the housing; and a magnetic body provided to the impeller for rotating the impeller in a predetermined direction according to a change in a magnetic field outside the housing wherein the rotary shaft member includes: a rotary shaft supporting the impeller to rotate; a tube enclosing at least a part of the rotary shaft and providing a flow path, through which the blood moves along an inside thereof, the tube being inserted into a through hole which is formed at the center part of the impeller; and a screw connecting the tube and the rotary shaft, the screw being configured to move the blood to the lower part of the housing along the flow path while rotating along with the rotary shaft, and wherein the rotary shaft includes a first end and a second end located opposite to the first end, and the first and second ends of the rotary shaft are rotatably supported by the upper and lower parts of the housing, respectively.
2. The blood pump of claim 1, wherein the impeller comprises upper and lower blades on both upper and lower surfaces thereof.
3. The blood pump of claim 2, wherein the upper blade formed on the upper surface of the impeller and the lower blade formed on the lower surface of the impeller are disposed alternately.
4. The blood pump of claim 2, wherein the impeller includes an upper impeller and a lower impeller, and the magnetic body is disposed between the upper impeller and the lower impeller.
5. The blood pump of claim 1, wherein the housing includes first and second recesses formed at the upper and lower parts thereof, respectively, and the first and second ends of the rotary shaft are inserted into the first and second recesses, respectively.
6. The blood pump of claim 5, wherein the housing includes first and second bearings accommodated within the first and second recesses, respectively to rotatably support the first and second ends of the rotary shaft, respectively.
7. The blood pump of claim 1, wherein the screw is configured to feed the blood to a space between a lower part of the impeller and the lower part of the housing.
8. The blood pump of claim 1, wherein the housing includes a guide path formed at the lower part thereof, the guide path being configured to guide the blood between a lower part of the impeller and the lower part of the housing to flow toward the outlet.
9. The blood pump of claim 8, wherein the guide path comprises a recess formed on a surface of the lower part of the housing which faces the lower part of the impeller, the recess extending along a circumference of the lower part of the housing and connected to the outlet.
10. The blood pump of claim 1, wherein the magnetic body is disposed within the impeller so as not to be exposed outside the impeller.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
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BEST MODE
(7) Hereinafter, a blood pump according to an embodiment of the present invention will be described in more detail with reference to the accompanying drawings.
(8)
(9) Referring to
(10) The housing 10 is the exterior of the blood pump 100 and includes an accommodation space 13 (refer to
(11) The inlet 12, through which blood flows, is disposed at the upper part of the housing 10 and the outlet 20 is disposed along a side edge of the housing 10. When blood flows in through the inlet 12, the inlet 12 is disposed at the upper part of the housing 10 and thereby, the inlet 12 makes the blood moving toward the impeller part 50 disposed inside the housing 10. Also, when the impeller part 50 rotates, the outlet 20 is disposed along a side edge of the housing 10 and the blood is discharged through the outlet 20 outside the housing 10 by a centrifugal force.
(12) More specifically, the housing 10 includes a projecting part 16 at the upper part thereof and a first connecting part 14 extended in a fixed length from the projecting part 16. In this case, an end part of the first connecting part 14 performs the role of the inlet 12. The first connecting part 14 may be connected to a tube so that blood may be provided. Also, the housing 10 includes an extended part 18 along the side thereof and a second connecting part 19 projected in a fixed length from the extended part 18. Here, an end part of the second connecting part 19 performs the role of the outlet 20 and the second connecting part 19 may be connected to a tube, through which the blood discharged through the outlet 20 may move.
(13) The rotary shaft member 30 is disposed inside the housing 10 and is rotatable. When the impeller part 50 rotates, the rotary shaft member 30 becomes an axis. That is, when the rotary shaft member 30 rotates inside the housing 10, the impeller part 50 is connected to the outer circumference of the rotary shaft member 30 and rotates.
(14) In order to rotate the rotary shaft member 30, an upper bearing 42 and a lower bearing 44 are respectively disposed at the upper part and the lower part of the rotary shaft member 30. Here, the upper bearing 42 and the lower bearing 44 may be each inserted into groove parts 28 respectively formed on the inner sides of the upper housing 11A and the lower housing 11B.
(15)
(16) Referring to
(17) The rotary shaft 31 is extended in a fixed length and is connected to each of the upper bearing 42 and lower bearing 44 so as to be rotatable. The exterior part 33 is spaced apart from the rotary shaft 31 by a fixed interval and covers at least a part of the rotary shaft 31. Here, the flow path 37, through which the blood moves, is formed inside the exterior part 33.
(18) The rotary shaft 31 and the exterior part 33 are connected with each other by the screw 35 and the number of the screw may be the plural. The screw 35 connects the rotary shaft 31 with the exterior part 33. Also, when the rotary shaft 31 rotates, the screw 35 moves the blood flowing in the flow path 37 through the upper part of the flow path 37 to the lower part along the flow path 37. Accordingly, when the blood pump 100 according to the present invention includes the rotary shaft member 30, which performs a role of the center axis of rotation through penetration holes 54A and 54B (refer to
(19) The blood moved to the lower part through the flow path 37 of the rotary shaft member 30 moves toward the outlet 20 by rotation of the impeller part 50 and this will be described in more detail below.
(20) Referring back to
(21) The impeller part 50 includes the plurality of blades 53 and 58 on the surface thereof. When the blood is provided through the inlet 12, the impeller part 50 rotates in a predetermined direction and the blood moves toward the outlet 20 by a centrifugal force generated by the blades 53 and 58 of the impeller part 50.
(22)
(23) Referring to
(24) The lower blade 58 formed on the lower surface of the impeller part 50 moves the blood moved to the lower part of the accommodation space 13 of the housing 10 by the rotary shaft member 30 toward the outlet 20. In this case, in order to smoothly move the blood by the lower blade 58 formed on the lower surface of the impeller part 50, a guide flow path 22 (Refer to
(25) Accordingly, since the blades 53 and 58 are both formed on the upper surface and the lower surface of the impeller part 50 inside the blood pump 100 according to the present invention, the blood does not remain inside the housing 10 and furthermore, the blood may be efficiently provided.
(26) In a centrifugal pump including conventional blades, when the blades rotate, waves may occur in an outlet by rotation of the blades and thus, blood may not be smoothly provided.
(27) In the blood pump 100 according to the present invention, the upper blade 53 formed on the upper surface of the impeller part 50 and the lower blade 58 formed on the lower surface of the impeller part 50 may be disposed alternately. That is, when the blades 53 and 58 are disposed by placing the penetration holes 54A and 54B at the center, the upper blade 53 formed on the upper surface of the impeller part 50 and the lower blade 58 formed on the lower surface of the impeller part 50 may be disposed alternately. As described above, since the blades 53 and 58 respectively disposed on the upper and lower surfaces of the impeller part 50 are alternately disposed, a wavelength occurring due to the blades 53 and 58 may be significantly decreased.
(28) Referring back to
(29) The impeller part 50 may include a plurality of magnetic bodies 60 and the magnetic bodies 60 rotate the impeller part 50 in a predetermined direction according to a change in a magnetic field outside the housing 10. That is, when a change in a magnetic field is generated outside the housing 10, a force acts to the magnetic bodies 60 in a particular direction and thereby, the impeller part 50 rotates.
(30) The magnetic bodies 60 may be embedded inside the impeller part 50. When the impeller part 50 includes the upper impeller 52 and the lower impeller 56, the magnetic bodies 60 may be disposed between the upper impeller 52 and the lower impeller 56. Accordingly, when the upper impeller 52 and the lower impeller 56 are assembled, the magnetic bodies 60 are disposed between the upper impeller 52 and the lower impeller 56 and thus, the magnetic bodies 60 may be easily installed to the inside of the impeller part 50.
(31) Hereinafter, the operation of the blood pump 100 according to the present invention will be described with reference to
(32) Referring to
(33) A part of the blood from among the blood provided to the inside of the housing 10 is provided to the inside of the rotary shaft member 30, which performs a role of the center axis of rotation of the impeller part 50. Here, the blood provided to the inside of the rotary shaft member 30 rapidly moves to the lower part by the screw 35 of the rotary shaft member 30. The blood moved to the accommodation space 13 inside the housing 10 moves toward the outlet 20 by the lower blade 58 formed on the lower surface of the impeller part 50.
(34) While the present invention has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by those of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present invention as defined by the following claims.