CRENELLATED INFLOW CANNULA
20170281841 · 2017-10-05
Inventors
- Jeffrey A. LAROSE (Sunrise, FL, US)
- Charles R. SHAMBAUGH (Coral Gables, FL, US)
- Mustafa E. Taskin (Cooper City, FL, US)
Cpc classification
A61M60/237
HUMAN NECESSITIES
A61M60/422
HUMAN NECESSITIES
A61M60/419
HUMAN NECESSITIES
A61M60/178
HUMAN NECESSITIES
International classification
Abstract
A blood pump including a housing defining a fluid flow path, an upstream end, a downstream end, and an outlet at the downstream end. A rotor is disposed within the housing and within the fluid flow path, the rotor being rotatable independent of the housing in a first direction and configured to pump blood downstream toward the outlet. The housing defines an inflow cannula at the upstream end, the inflow cannula defining a proximal end proximate the rotor and an opposite distal end. The inflow cannula defines a major longitudinal axis and minor longitudinal axis, the distal end of inflow cannula defines a plurality of slots radially disposed about the distal end, the plurality of slots being at least one from the group consisting of sloped in the first direction with respect to the major longitudinal axis and angled in the first direction with respect to the minor longitudinal axis.
Claims
1. A blood pump, comprising: a housing defining a fluid flow path, the housing defining an upstream end, a downstream end, and an outlet at the downstream end; a rotor disposed within the housing and within the fluid flow path, the rotor being rotatable independent of the housing in a first direction and configured to pump blood downstream toward the outlet; and the housing defining an inflow cannula at the upstream end, the inflow cannula defining a proximal end proximate the rotor and an opposite distal end, the inflow cannula further defining a major longitudinal axis and minor longitudinal axis, the distal end of inflow cannula defining a plurality of slots radially disposed about the distal end, the plurality of slots being at least one from the group consisting of sloped in the first direction with respect to the major longitudinal axis and angled in the first direction with respect to the minor longitudinal axis.
2. The blood pump of claim 1, wherein the housing defines a rotor space, and wherein the rotor is disposed within the rotor space, and wherein the inflow cannula is mounted in fixed spatial relationship with the rotor space.
3. The blood pump of claim 1, wherein the rotor defines a plurality of fluid flow slots, and wherein the number of slots in the plurality of fluid flow slots is different than the number of slots in the plurality of slots.
4. The blood pump of claim 1, wherein the plurality of slots are open-ended on the distal most end of the inflow cannula.
5. The blood pump of claim 1, wherein the rotor is an impeller configured to impel fluid along the major longitudinal axis.
6. The blood pump of claim 1, wherein the rotor is an impeller configured to impel fluid perpendicular to the major longitudinal axis.
7. The blood pump of claim 1, wherein each of the plurality of slots has a cross-sectional area which increases in an inward direction from the exterior of the inflow cannula.
8. The blood pump of claim 7, wherein the inflow cannula defines a lumen there through, and wherein total cross-sectional area of the plurality of slots is greater than a cross-sectional area of the lumen.
9. The blood pump of claim 8, wherein each of the plurality of slots defines a width transverse to the inward direction and the width of each of the plurality of slots increases toward the upstream end.
10. The blood pump of claim 1, wherein the plurality of slots are equally spaced about the distal end of the inflow cannula.
11. The blood pump of claim 1, wherein the inflow cannula is sized to be implanted within a heart of a patient.
12. The blood pump of claim 1, wherein the aspect ratio of each of the plurality of slots is between 1:1 and 2:1.
13. A blood pump, comprising: a housing defining a fluid flow path, the housing defining an upstream end, a downstream end, and an outlet at the downstream end; a rotor disposed within the housing and within the fluid flow path, the rotor being rotatable independent of the housing in a first direction and configured to pump blood downstream toward the outlet; and the housing defining an inflow cannula at the upstream end, the inflow cannula defining a lumen there through in fluid communication with the outlet end and defining a cross-sectional area, the inflow cannula defining a proximal end proximate the rotor and an opposite distal end, the distal end of inflow cannula defining a plurality of open-ended slots radially disposed about the distal end, the plurality of open-ended slots being angled in the first direction and defining a cross-sectional area greater than the cross-sectional area of the lumen.
14. The blood pump of claim 13, further including a stator disposed within the housing and having a plurality of electromagnetic coils, the stator being configured to generate an electromagnetic field to rotate the rotor.
15. The blood pump of claim 13, wherein the rotor defines a plurality of fluid flow slots, and wherein the number of slots in the plurality of fluid flow slots is different than the number of slots in the plurality of slots.
16. The blood pump of claim 13, wherein the rotor is an impeller configured to impel fluid along the major longitudinal axis.
17. The blood pump of claim 13, wherein the rotor is an impeller configured to impel fluid perpendicular to the major longitudinal axis.
18. The blood pump of claim 13, wherein each of the plurality of slots has a cross-sectional area which increases in an inward direction from the exterior of the inflow cannula.
19. The blood pump of claim 13, wherein a total cross-sectional area of the plurality of slots is greater than a cross-sectional area of the lumen.
20. A blood pump, comprising: a housing defining a fluid flow path, the housing defining an upstream end, a downstream end, and an outlet at the downstream end; a rotor disposed within the housing and within the fluid flow path, the rotor being rotatable independent of the housing in a first direction and configured to pump blood downstream toward the outlet; and the housing defining an inflow cannula at the upstream end, the inflow cannula defining a lumen there through in fluid communication with the outlet end and defining a cross-sectional area, the inflow cannula defining a proximal end proximate the rotor and an opposite distal end, the distal end of inflow cannula defining a plurality of open-ended slots radially disposed about the distal end, the inflow cannula defining a major longitudinal axis and a minor longitudinal axis, the plurality of slots being: sloped in the first direction with respect to the major longitudinal axis; angled in the first direction with respect to the minor longitudinal axis; defining a total cross-sectional area greater than a cross-sectional area of the lumen; and the rotor defines a plurality of fluid flow slots, the number of slots in the plurality of fluid flow slots is different than the number of slots in the plurality of slots.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] A more complete understanding of the present invention, and the attendant advantages and features thereof, will be more readily understood by reference to the following detailed description when considered in conjunction with the accompanying drawings wherein:
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DETAILED DESCRIPTION
[0034] Referring now to the drawings in which like reference designators refer to like elements there is shown in
[0035] Referring now to
[0036] Continuing to refer to
[0037] In one configuration, the surface area of the slots 42 is equal to or greater than the surface area defined by the interior flow of the inflow cannula 18. That is the sum of all the surface areas of each slot 42, independent of the number of slots 42, is greater than the cross-sectional area of the lumen of the inflow cannula 18. This configuration, combined with the slots 42 being angled and sloped in the direction of rotation CC of the rotor may result in increased washing efficiency around the exterior surface 40 of the inflow cannula 18 when in implanted within the heart, by around 25%, as compared to an un-crenellated design, which further prevents the formation of thrombus. For example, in one configuration, the washing efficiency increases around the exterior surface 40 of the inflow cannula 18 linearly for about 300 microns radially outward from the inflow cannula 18, when the pump is implanted within the left ventricle.
[0038] In a method according to a further aspect of the disclosure, pump 10 is implanted in a mammalian subject, such as a human patient, so that the upstream end 26 of inflow cannula 18 projects into a chamber of the heart, such as the left ventricle (LV), as depicted schematically in
[0039] With the pump mounted in place on the heart, electric power is supplied to the electromagnetic coils of the pump by controller 52. The rotor 32 (
[0040] In this normal operating condition, the pump draws in blood through the inflow cannula 18. Typically, a substantial portion of the blood entering the inflow cannula passes in the downstream direction through upstream end 26 and passes through the flow path of the pump to the outlet. The blood flowing through the slots 42 imparts angular momentum or swirl about axis 22 to the flow as a whole. As discussed above, in this embodiment, the actual direction of swirl is the counter-clockwise direction CC shown in
[0041] Continued operation of the pump may not cause an extreme drop in the pressure prevailing at the inlet to the flow path, just downstream of any partial blockage. This limits the differential pressure applied to the heart wall causing the blockage and thus limits the force tending to engage the heart wall with the inflow cannula. This, in turn, minimizes damage to the tissue of the heart wall that could be caused by forcible engagement with the inflow cannula. Moreover, limiting the force of engagement between the heart wall and the inflow cannula 18 in the event of a suction condition makes it easier to detach the heart wall from the inflow cannula 18 when the suction condition is cleared and the blood reinflates the ventricle. The outward splay of the side surface 28 of the slots 42 and the gentle, rounded curves of the surfaces at the upstream extremity of the inflow cannula 18 also makes it easier to detach the heart wall from the inflow cannula when the suction condition is relieved.
[0042] The controller 52 associated with the pump 10 is configured to detect a suction condition and to vary the operation of the pump 10 so as to relieve the suction condition. For example, controller 52 may detect changes in flow through the pump, power consumption by the pump, pressure prevailing within the pump 10 or within the chamber, flow rate through the pump 10 or other operational parameters. The controller 52 may be configured to temporarily reduce the operating speed of the pump in response to a suction condition. Suction detection and correction may be performed, for example, by a controller as taught in U.S. Published Patent Application No. 2015/0367048, the disclosure of which is hereby incorporated by reference herein. Stated another way, the suction-detecting controller and the inflow cannula 18 cooperate to provide effective relief of suction conditions.
[0043] Numerous variations and combinations of the features discussed above can be utilized. For example, the number of slots and slots can be varied. The inflow cannula 18 can be applied to other pumps. For example, an inflow cannula 18 as described herein can be provided on an axial flow blood pump. Certain axial flow blood pumps are described in U.S. Pat. No. 8,007,254, the disclosure of which is hereby incorporated by reference herein and a copy of which is annexed hereto as a part of this disclosure, have a generally straight, tubular housing, so that one end of the tubular structure forms the inflow cannula 18 whereas the other end forms the outlet. The impeller is arranged to rotate around the axis of the housing and to impel blood in a downstream direction through the flow path defined by the structure. Here again, the inflow cannula 18 may be modified to include slots and slots as described herein. In some cases, axial flow blood pumps are positioned with the inflow cannula inside a heart chamber such as the ventricle and with the outlet end of the pump outside of the heart, so that the outlet structure is connected to an artery such as the aorta via a flexible inlet cannula in much the same manner as described above with reference to
[0044] It will be appreciated by persons skilled in the art that the present invention is not limited to what has been particularly shown and described herein above. In addition, unless mention was made above to the contrary, it should be noted that all of the accompanying drawings are not to scale. A variety of modifications and variations are possible in light of the above teachings without departing from the scope and spirit of the invention, which is limited only by the following claims.