Device for Checking the Function of an Aortic Valve
20210052388 ยท 2021-02-25
Inventors
Cpc classification
G01L2019/0053
PHYSICS
G01L19/08
PHYSICS
International classification
A61F2/24
HUMAN NECESSITIES
G01L19/00
PHYSICS
G01L19/08
PHYSICS
Abstract
The invention relates to a device for testing the functioning of an aortic valve by placing the device on the free end of a cylindrical tubular prosthesis inserted into the aorta, said tubular prosthesis being connected, with its other end, to the aortic wall in the region of the aortic valve. According to the invention, the device consists of a multi-part housing provided with at least one through-flow channel for a control liquid, the housing being provided, on its lower side facing the free end of the tubular prosthesis, with a peripheral sealing device that can be placed around the edge of the tubular prosthesis, and at least one pressure-measuring sensor and at least one optical sensor element for video recording being arranged on the lower side.
Claims
1. A device for checking the function of aortic valve by mounting the device on the free end of a cylindrical tubular prosthesis inserted into the aorta, the other end of which is connected to the aortic wall in the region of the aortic valve, characterized in that the device consists of a multipart housing (1) provided with at least one flow channel (4) for inspection fluid, wherein the housing (1) is provided on its underside (8) facing the free end of the tubular prosthesis (10) with a peripheral sealing device (7) that can be mounted on the edge of the tubular prosthesis (10), and wherein at least one pressure measuring sensor (13) and at least one optical sensor element (12) are provided on the underside (8) for recording video.
2. The device according to claim 1, characterized in that the flow channel (4) has an inlet opening (5) arranged in the top side (9) of the housing (1) facing away from the free end of the tubular prosthesis (10) and branches within the housing (1) to a ring channel that terminates in an annular outlet opening (6) in the underside of the housing (1) within the peripheral sealing device (7).
3. The device according to claim 2, characterized in that the inside of the ring channel is formed by a central inner molded part (2) as a component of the housing (1) in which the pressure measuring sensor (13) and the optical sensor element (12) are accommodated, wherein the measuring surface (15) of the pressure measuring sensor (13) and the seating opening (14) of the optical sensor element (12) in the underside are exposed.
4. The device according to one of claim 2 or 3, characterized in that the outside of the flow channel (4) is formed by a bell-shaped outer molded part (3) that surrounds the central inner molded part (2) at a distance and in which the inlet opening (5) of the ring channel (4) is arranged.
5. The device according to claim 4, characterized in that the sealing device (7) is removably affixed on the outer molded part (3) by means of a fixing device.
6. The device according to one of claims 1 to 5, characterized in that the sealing device (7) has an annular housing body (16) which possesses a rectangular cross-section, and in which a recess (24) is arranged for accommodating a projection (27) of the outer molded part (3) in one of the opposing narrow sides (17) of the cross-section, and in which a U-shaped recess (28) is located in the opposing narrow side for accommodating the annular upper end of the tubular prosthesis (10).
7. The device according to claim 6, characterized in that the outer leg (29) of the U-shaped recess (28) has at least one elastic sealing membrane (33) for accommodating the tubular prosthesis (10) and which is pretensioned in the direction of the opposing leg (31) of the U-shaped recess (28).
8. The device according to claim 7, characterized in that the elastic sealing membrane (33) is designed double-walled, and a gap (36) is located between the parallel spaced walls (34, 35) in which a plurality of spring rods (37) are arranged distributed over the perimeter of the peripheral gap (36) which cause the pretension of the sealing membrane (33).
9. The device according to claim 8, characterized in that the spring rods (37) each have a swivel joint (38) that enables an angled position of the part of the sealing membrane (33) toward the housing (1) above the swivel joint (38) relative to the part of the sealing membrane (33) below the swivel joint (38).
10. The device according to one of claims 7 to 9, characterized in that the inner surface of the peripheral sealing membrane (33) facing the opposing leg (31) of the U-shaped recess (28) for accommodating the tubular prosthesis (10) has a peripheral press bead (40) projecting above the inner surface that, when the device is in a mounted state on the free end of the tubular prosthesis (10), engages in a corresponding recess (41) in the inner side of the opposing leg (31).
11. The device according to one of claims 1 to 10, characterized in that the inner molded part (2) is made of metal, preferably high-grade steel.
12. The device according to one of claims 1 to 11, characterized in that the outer molded part (3) of the housing (1) and the housing body (16) of the sealing device (7) consist of plastic.
13. The device according to one of claims 1 to 5, characterized in that the sealing device (7) has an annular housing body (16) with a rectangular cross-section in which a recess (24) is arranged in one of the narrow sides of the cross-section for accommodating a projection (27) of the outer molded part (3), and in which a groove (43) filled with a pressure-sensitive molded body (44) is cut out in the outwardly directed longitudinal side of the cross-section.
Description
DESCRIPTION OF THE FIGURES
[0031] Exemplary designs of the embodiment of the invention will be further explained below with reference to the accompanying drawings. In the figures:
[0032]
[0033]
[0034]
[0035]
[0036] The first design variation of the device according to the invention shown in
[0037] Corresponding to a first application, the device according to the invention is mounted on the free end of a tubular prosthesis 10 to check the function of the aortic valve 11. The tubular prosthesis 10 consists of plastic and is sutured to the end of a dissected aorta of a patient at its bottom end facing away from the upper free end. In this bottom region, there are additional vein connections 25 to the cardiovascular system of the patient that are also sutured during the overall operation to the tubular prosthesis 10. Both the vein connections 25 as well as the connection between the tubular prosthesis 10 and the aortic wall 26 must be executed absolutely liquid-tight.
[0038] The device according to the invention serves on the one hand for checking the connection of the tubular prosthesis to the body's own tissue of the patient, and on the other hand for checking the function of the aortic valve 11 arranged in the bottom region of the tubular prosthesis 10.
[0039] The housing 1 of the device according to the invention basically possesses a cylindrical exterior shape and consists of an inner molded part 2 as well as a bell-shaped outer molded part 3 surrounding the inner molded part 2. On its underside 8 facing the aortic valve 11 and the tubular prosthesis 10, the inner molded part 2 possesses a central pressure measuring sensor 13 as well as two optical sensor elements 12 adjacent thereto in the present exemplary design. The seating opening 15 of the pressure measuring sensor 13 as well as the measuring surfaces 14 of the optical sensor elements 12 are exposed to the underside 8 of the inner molded part 2.
[0040] For reasons of clarity, further details of the wiring for transmitting the measured values of the optical sensor elements 12 and the pressure measuring sensor 13 were omitted in
[0041] On the top side facing away from the optical sensor elements 12 and the pressure measuring sensor 13, the inner molded part 2 possesses a conical diffuser surface 18 that comes to a point in the middle. The diffuser surface 18 is a component of a flow channel 4 that is formed between the outside of the inner molded part 2 and the inside of the bell-shaped outer molded part 3. The outer molded part 3 possesses an inlet opening 5 in the top side facing away from the aortic valve 11. The inlet opening 5 is provided with a connecting piece 21 and possesses a peripheral collar 22 to which a supply unit for inspection fluid, not shown in greater detail in the figure, can be connected by means of a connecting part.
[0042] The flow channel 4 branches below the inlet opening 5, wherein the diffuser surface 18 of the inner molded part 2 distributes the inspection fluid stream that is illustrated by the arrows drawn in
[0043] As can be seen from the sectional drawing in
[0044] Toward the aortic valve 11, the flow channel 4 opens in the form of the outlet opening 6 through which the inspection fluid can flow out of the device according to the invention into the area below the inner molded part 2 that results in the interior of the tubular prosthesis 10.
[0045] The connection between the housing 1 and the top edge of the tubular prosthesis 10 is made by means of the sealing device 7.
[0046] With its special structure, the sealing device 7 serves to ensure a liquid-tight blockage of the interior of the tubular prosthesis 10 from the surroundings.
[0047] For different applications, various structural options and design configurations of the sealing device 7 are shown in
[0048] The sealing device 7 as shown in
[0049] As can be seen from
[0050] A U-shaped recess 28 surrounding the perimeter is also in the opposite narrow side of the housing body. The upper edge of the tubular prosthesis 10 engages in this recess 28 so that it comes to rest on the inner side against the inner side of the one leg 31 of the U-shaped recess 24 and on the opposite outer side of the other leg 29 of the U-shaped recess 28.
[0051] In order to provide corresponding tightness between the upper edge of the tubular prosthesis 10 and the sealing device 7, this outer leg 29 is produced from an elastic material, at least in a segment 30. In terms of design, this segment 30 is conceptualized such that the material is pretensioned in the direction of the parallel-spaced other leg 29 of the recess 28 so that the upper edge of the tubular prosthesis 10 is clamped between the two legs 29 and 31 once the sealing device 7 is mounted on the upper edge of the tubular prosthesis 10. The pressures in the segment 30 can be additionally supported in that a spring element in the form of a peripheral spring ring 39 is mounted on the outside of the segment 30.
[0052] In the representation in
[0053] In contrast to variation 1, the sealing membrane 33 located on the outer leg 32 is configured double-walled and defines a gap 36 between its parallel-spaced walls 34 and 35. A plurality of spring rods 37 are arranged in this gap 36 that runs over the entire perimeter of the outer leg 32. When the sealing device 7 is in a mounted state, these spring rods 37 exert pressure on the outside of the tubular prosthesis 10 at the outer edge of the tubular prosthesis 10.
[0054] With respect to the configuration of the spring rods 37, the feature can be seen in
[0055] The sealing effect of the sealing device 7 can be enhanced even more by arranging a projecting press bead 40 on the inside of the sealing membrane 33 that, after the bottom part of the sealing membrane 33 is placed, comes to rest against the outside of the tubular prosthesis 10 and presses it into a corresponding recess 41 in the inside of the opposite leg 31.
[0056] In order to balance the fluid pressure within the recess 28, one or more holes 42 are located in the floor region of this recess 28.
[0057] A third variation of the sealing device 7 is portrayed in
[0058] This variation of the sealing device 7 is used when a check of an aortic valve is to be performed, and there is no tubular prosthesis 10 as is the above-described exemplary designs.
[0059] The aortic wall 26 in this exemplary design is placed over the free lower end of the housing body 16 so that it comes to rest against the molded body 44 arranged therein in the region of the groove 43. Once this is done, a spring ring 39 is placed against the outside of the aortic wall 26 as described is the other exemplary designs above that presses the aortic wall 26 against the molded body 44.
[0060] As schematically portrayed in
LIST OF REFERENCE NUMBERS
[0061] 1 Housing
[0062] 2 Inner molded part
[0063] 3 Outer molded part
[0064] 4 Flow channel
[0065] 5 Inlet opening
[0066] 6 Outlet opening
[0067] 7 Sealing device
[0068] 8 Underside
[0069] 9 Top side
[0070] 10 Tubular prosthesis
[0071] 11 Aortic valve
[0072] 12 Optical sensor element
[0073] 13 Pressure measuring sensor
[0074] 14 Seating opening (optical sensor element)
[0075] 15 Measuring surface (pressure measuring sensor)
[0076] 16 Housing body
[0077] 17 Narrow side
[0078] 18 Diffuser surface
[0079] 19 Top side
[0080] 20 Bar
[0081] 21 Connecting piece
[0082] 22 Collar
[0083] 23 Ring channel section
[0084] 24 Recess
[0085] 25 Vein connection
[0086] 26 Aortic wall
[0087] 27 Projection
[0088] 28 Recess
[0089] 29 Outer leg
[0090] 30 Segment
[0091] 31 Leg
[0092] 32 Leg
[0093] 33 Sealing membrane
[0094] 34 Wall
[0095] 35 Wall
[0096] 36 Gap
[0097] 37 Spring rod
[0098] 38 Swivel joint
[0099] 39 Spring ring
[0100] 40 Press bead
[0101] 41 Recess
[0102] 42 Hole
[0103] 43 Groove
[0104] 44 Molded body