CONTAINER FOR A HEART PUMP DEVICE AND METHOD FOR OPERATING A HEART PUMP DEVICE
20240253886 ยท 2024-08-01
Assignee
Inventors
Cpc classification
A61M60/422
HUMAN NECESSITIES
B65B69/00
PERFORMING OPERATIONS; TRANSPORTING
A61M60/268
HUMAN NECESSITIES
A61M60/414
HUMAN NECESSITIES
A61M60/148
HUMAN NECESSITIES
International classification
A61M60/148
HUMAN NECESSITIES
A61M60/414
HUMAN NECESSITIES
A61M60/422
HUMAN NECESSITIES
A61M60/268
HUMAN NECESSITIES
B65B69/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a container for a heart pump device with a first receiving space for a compressible and expandable heart pump, wherein the first receiving space is delimited on several sides, in particular on all sides, by one or more closure elements and is closed off to the outside for preventing a contacting of the heart pump, wherein the closure elements) leave free an opening for the passage of a catheter from the outside into the first receiving space, wherein the diameter of the opening is dimensioned such that the heart pump can pass this exclusively in a condition which is at least partly compressed compared to the expanded condition. For implantation, the heart pump in the container can firstly be operated by trial in the container whilst feeding a rinsing fluid and can then be pulled through the opening amid simultaneous compression, into a sheath element.
Claims
1-20. (canceled)
21. A container for a compressible and expandable heart pump, the container comprising: a first receiving space for the compressible and expandable heart pump, wherein the first receiving space is delimited by one or more closure elements, wherein the one or more closure elements leave free an opening sized for passage of a catheter coupled to the compressible and expandable heart pump into the first receiving space, wherein the opening is sized such that the heart pump is radially compressed during extraction of the heart pump from the first receiving space through the opening.
22. The container of claim 21, wherein the first receiving space is sized to contain the heart pump within the first receiving space with the heart pump in a radially expanded state, wherein in the radially expanded state, a diameter of the heart pump is larger than a width of the opening.
23. The container of claim 21, the one or more closure elements are made of a plastic material.
24. The container of claim 23, wherein the plastic material is a plastic foil.
25. The container of claim 21, wherein the one or more closure elements comprise two half-shell-shaped closure elements that are joined together.
26. The container of claim 21, wherein the one or more closure elements comprise first and second closure elements that are undetachably connected to one another.
27. The container of claim 21, wherein the one or more closure elements comprise first and second closure elements and the opening is formed between the first and second closure elements.
28. The container of claim 21, wherein the one or more closure elements comprises a first closure element that is configured as part of a blister, wherein the blister receives at least the catheter.
29. The container of claim 28, wherein the first closure element forms a capture shell for fluid in a region of the first receiving space.
30. The container of claim 21, wherein the opening at least partly consists of a cylinder-symmetrical channel.
31. The container of claim 30, the cylinder-symmetrical channel narrows outwardly from inside of the first receiving space.
32. The container of claim 31, wherein the opening comprises an edge configured to support a hollow-cylindrical sheath element in an axial direction of the channel, wherein the hollow-cylindrical sheath element is displaceable along the catheter.
33. The container of claim 21, further comprising the compressible and expandable heart pump and the catheter, wherein the compressible and expandable heart pump is located in the first receiving space and wherein the catheter, which is coupled to the compressible and expandable heart pump, projects through the opening out of the first receiving space.
34. The container of claim 33, further comprising a sheath element through which the catheter passes, wherein the sheath element is provided on the catheter in a freely displaceable manner.
35. The container of claim 21, wherein the first receiving space is delimited by at least two closure elements which are joined along a joining line, wherein the joining line runs essentially perpendicularly to a passing direction of the compressible and expandable heart pump.
36. The container of claim 21, wherein the first receiving space is delimited by at least two closure elements which are joined along a joining line, wherein the joining line runs in a cross section of the first receiving space which is larger than the cross section of the opening for the passage of the catheter on removal of the compressible and expandable heart pump.
37. The container of claim 21, wherein the first receiving space comprises a second opening.
38. The container of claim 37, wherein the second opening is sized such that the compressible and expandable heart pump is introducible into the first receiving space through the second opening without radially compressing the heart pump.
39. The container of claim 37, further comprising a cover configured to close the second opening.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] The invention is hereinafter represented by way of an embodiment example in the figures of a drawing and described hereinafter. Thereby are shown in:
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
DETAILED DESCRIPTION
[0045]
[0046] The first closure element 5 should form a fluid-tight capture basin 14, into which a heart pump can be inserted and which can capture fluid for a test operation.
[0047] The second closure element 6 is preferably non-releasably connected and sealingly connected to the first closure element 5 in the region of the joining location 9, wherein the connection can advantageously be designed also in a fluid tight manner with the exception of the opening 7, but not in an airtight manner (since the air here should escape from the catheter). The joining location 9 with this example forms a joining line or an annular joining surface which as a whole lies in a plane here.
[0048] The second closure element 6 can be designed in a fluid-tight manner as a bent, flat plastic part, preferably as a stiff foil, but it can also comprise openings and/or one or more optical windows, in order to permit the viewing into the first receiving space 3. What is decisive for the second closure element 6 is that it protects the heart pump which is to be kept in the first receiving space 3, from contact.
[0049] A container 1 with which the first closure element 5 just as the second closure element 6 is designed as a stiff foil in the form of a blister is shown in
[0050] The heart pump 4 is represented in the non-compressed condition, in which its radial extension perpendicular to the axial direction indicated by the hub 4c is larger than the extension of the opening 7.
[0051] A section which is already indicated and represented at III in
[0052]
[0053] The container 17 moreover serves as a rinsing device with several rinsing openings 18, 19, wherein a rinsing fluid, for example saline solution, is introduced through the opening 18 into the container 17 and excess rising fluid is removed through the second rinsing opening 19. The rinsing fluid moreover moves along the catheter 8 in the direction of the pump 4 and in particular on operation of the rotor, i.e. with a rotation of the drive shaft 12, is delivered by way of the spiral-like outer contour of the drive shaft 12, in the direction of the pump 4. Thus, for trial operation, rinsing fluid can be fed through the first rinsing opening 18 and be moved through the catheter 8 to the pump 4, whilst this is located in the first receiving space 3, and the pump can then be operated for testing at least with a reduced speed whilst being wetted by the rinsing fluid.
[0054]
[0055] The sheath elements 11 can be applied from the outside onto the edge of the opening 7 on the closure elements 5, 6 of the first receiving space 3, and on this, the pump 4 can be pulled out of the receiving space 3 in the direction of the arrow 20 by way of the catheter. The pump 4 is radially compressed on pulling into the opening 7 in the direction of the arrows 21, 22 due to the given diameter of the opening 7 which is smaller than the pump diameter in the expanded condition and in the compressed or at least partly compressed condition is pulled into the sheath element 11. There, it is again protected from contact and contamination and can be removed from the container 1 and be moved to an introduction sheath on the body of a patient.
[0056]
[0057]
[0058]
[0059] A heart pump 4 as well as the grip part 26 is represented within the container 1 or the closure element 5. Usually however, a closure element is provided on the first trough 24 as well as on the second trough 25, in order to cover the respective troughs and the components which are located therein, and to protect these from contact as well as to fix the components in a vibration-secure manner and this completes the container 1. For this reason, the atraumatic tip of the catheter (co-called pigtail tip) is also fixed, such that it does not permit excessive movements of the pump head, but on the other hand a withdrawal in the direction of the sheath element 11 is not inhibited.
[0060] A cross section through the trough 24 is represented by way of example in
[0061] The cover shape of the closure element covering the second trough 25 can be designed similarly to the shape of the second closure element 6.
[0062] On preparing an implantation of a heart pump, as is represented in
[0063] The pump 4 can be operated on a trial basis before withdrawing out of the first receiving space, by way of a rinsing fluid being moved from a rinsing system located in the grip region, through rinsing openings, via the catheter 8 to the pump and this pump thereafter being driven by way of the flexible drive shaft, at a speed which is significantly reduced compared to operational speeds.
[0064] An arrangement as is represented in
[0065] The container 1, 1, 1 (or 11, see
[0066]
[0067]
[0068] In some cases, it is then possible for the grip part 26 not to be assembled until after the heart pump has been brought into the receiving space 3, 3, 3, 3. The removal of the pump is possible without destruction only in the described manner, after assembly of the grip.