Device for limiting the injection pressure of a medical instrument for introducing a fluid
10695488 ยท 2020-06-30
Assignee
Inventors
- Xavier Capdevila (Montferrier sur Lez, FR)
- Olivier Choquet (Castelnau le Lez, FR)
- Siddharth Desai (Ladera Ranch, CA, US)
Cpc classification
A61M2005/3128
HUMAN NECESSITIES
A61M2039/242
HUMAN NECESSITIES
A61M5/158
HUMAN NECESSITIES
A61M2005/3125
HUMAN NECESSITIES
A61M5/16813
HUMAN NECESSITIES
A61M2039/2473
HUMAN NECESSITIES
International classification
A61M5/168
HUMAN NECESSITIES
Abstract
A device for limitation of the injection pressure of a medical instrument for introduction of a fluid, having a housing, with an entrance of the housing for introducing the fluid at an inlet pressure, with an outlet of the housing for introducing the fluid to the instrument, with a flow-through channel of the housing connecting the entrance and the outlet and with a plunger guided in the housing which is impinged on by the pressure of the fluid and through this pressure is movable against a resetting force. On the plunger a blocking element is arranged, which is located in the flow cross section of the flow-through channel, and that the blocking element releases the flow cross section, when the pressure of the fluid impinging on the plunger lies beneath a value preset by the resetting force, and blocks the flow cross section when the pressure of the fluid impinging on the plunger exceeds this preset value and moves the plunger against the resetting force.
Claims
1. A device for limitation of the injection pressure of a medical instrument for introduction of a fluid, comprising: a housing, the housing comprising: an entrance for introducing the fluid at an entry pressure; an outlet for introducing the fluid to the instrument; a flow-through channel connecting the entrance and the outlet; a plunger guided in the housing and which is impinged on by pressure of the fluid and through the pressure is movable against a resetting force; a blocking element arranged on the plunger and located in a flow cross section of the flow-through channel, wherein the blocking element releases the flow cross section, when the pressure of the fluid impinging on the plunger is less than a value preset by the resetting force, and blocks the flow cross section when the pressure of the fluid impinging on the plunger exceeds the value preset by the resetting force and moves the plunger against the resetting force.
2. The device of claim 1, characterized in that wherein the resetting force is adjustable.
3. The device of claim 2, wherein for adjustment of the resetting force, the support piece is axially adjustable in the housing.
4. The device of claim 1, wherein the housing further comprises a stroke space, in which the plunger is axially guided in sealed fashion, and that the resetting force acts coaxially to a plunger motion direction and engages on one side on the plunger and on another side on a support piece of the housing.
5. The device of claim 4, wherein the entrance and the outlet are arranged on a common longitudinal axis line and that the stroke space is configured in the housing to be coaxial to a longitudinal axis line of the housing.
6. The device of claim 5, wherein the outlet is configured as an interior tube projecting coaxially into the housing, which empties into the stroke space with one open end lying upstream, that the plunger is guided on the interior tube and that the blocking element is a valve disk that is axially attached to the plunger, which sits the valve disk sitting in sealing fashion axially on an open end of the interior tube, to block the flow cross section, and which is axially displaced from the open end of the interior tube to release the flow cross section.
7. The device of claim 4, wherein the entrance and the outlet are arranged in a longitudinal axis line and that the stroke space is configured in the housing with an axis perpendicular to the longitudinal axis line.
8. The device of claim 7, wherein the blocking element is a valve shifter attached on a side of the plunger facing the flow-through channel, which is moved on the longitudinal axis line and closes the entrance to block the flow cross section and is moved out perpendicular from the longitudinal axis line to release the flow cross section.
9. The device of claim 1, wherein the resetting force is affected by a helical compression spring coaxial to a direction of plunger motion, wherein the spring is braced on the one side on the plunger and on the other side on the support piece of the housing.
10. The device of claim 1, wherein the resetting force is affected by an elastically compressible element in the direction of plunger motion, which is braced on the one side on the plunger and on the other side on the support piece of the housing.
11. The device of claim 1, wherein the resetting force is affected by repelling permanent magnets, of which one is arranged on the plunger and the other on a support piece of the housing.
12. The device of claim 1, wherein the device is a separate component, which is able to be connected with an attachment forming the entrance and with an attachment forming the outlet.
13. The device of claim 1, wherein the device is integrated in a proximal attachment of a cannula.
14. A device for limiting fluid injection pressure of a medical instrument, comprising: a housing with a fluid entrance, a fluid outlet, a channel connecting the fluid entrance and fluid outlet, a flow cross section, a stroke space and a resetting force support piece, wherein the fluid entrance and the fluid outlet are arranged along a longitudinal axis of the housing and the stroke space is configured in the housing with an axis perpendicular to the longitudinal axis of the housing; a plunger biased in the housing in an open position with an adjustable resetting force, the plunger being movable from pressure of a fluid against the resetting force to a closed position; a blocking element arranged on the plunger and located in the flow cross section of the channel, wherein the blocking element blocks the flow cross section when the pressure of the fluid against the plunger exceeds the resetting force and moves the plunger against the resetting force, and wherein the blocking element unblocks the flow cross section, when the pressure of the fluid against on the plunger is less than the resetting force.
15. The device according to claim 14, wherein the support piece is axially adjustable in the housing for adjusting the resetting force.
16. The device according to claim 14, further comprising: a helical compression spring coaxial to a direction of plunger motion that provides the resetting force, wherein the spring is braced between the plunger and the resetting force support piece of the housing.
17. The device according to claim 14, further comprising: an elastically compressible element in a direction of plunger motion that provides the resetting force, wherein the elastically compressible element is braced between the plunger and the resetting force support piece of the housing.
18. The device according to claim 14, further comprising: repelling magnets that provide the resetting force, wherein one magnet of the magnets is arranged on the plunger and the other magnet is arranged on the resetting force support piece of the housing.
19. The device according to claim 14, wherein the blocking element is a valve shifter attached on a side of the plunger facing the channel, wherein the valve shifter is moved on the longitudinal axis of the housing to closes the fluid entrance to block the flow cross section and is moved out perpendicular from the longitudinal axis of the housing to unblock the flow cross section.
20. The device according to claim 14, wherein the housing is a proximal attachment of a cannula.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In what follows, the features and structures of the present disclosure are explained in greater detail using the embodiment examples shown in the figures. Shown are:
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DETAILED DESCRIPTION
(31) The first embodiment shown in
(32) Into the distal end of housing 10, an interior tube 14 is inserted. Interior tube 14 runs coaxially in housing 10, with the outer diameter of interior tube 14 being smaller than the inner diameter of housing 10, so that a cylindrical space is formed between interior tube 14 and housing 10. Interior tube 14 on its end that points upstream in housing 10 is open and forms a circular-ring-shaped valve seat 16. The distal, downstream end of interior tube 16 projects out of housing 10 and forms an outlet 18, which is configured as an attachment, with which a cannula not shown can be connected for the injection. Outlet 18 is configured for example as a male Luer-Lok attachment.
(33) The proximal end area of housing 10 forms a stroke space 20 in which a plunger 22 can be moved axially. Plunger 22 is guided so as to be axially movable on interior tube 14. On its outer circumference, plunger 22 is sealed by sealing lips 24 against the inner wall of housing 10. On its inner circumference, plunger 22 is sealed by an inner sealing lip 26 against the outer circumference of interior tube 14.
(34) On the front side of plunger 22 facing entrance 12, a hollow cylindrical stub 28 is shaped, which is closed by a valve disk 30. Valve disk 30 has the shape of a circular disk, the diameter of which projects over the outer diameter of interior tube 14. The wall of stub 28 is interrupted by flow-through openings 32. On the front end of valve disk 30, directed upstream toward entrance 12, spacer tabs 34 are shaped, distributed over the circumference and opposite each other in the circumferential angle.
(35) For generation of a resetting force acting on plunger 22, interior tube 14 is surrounded coaxially by a helical compression spring 36. Helical compression spring 36 is braced with its end facing upstream on plunger 22. The other end, facing downstream, of helical compression spring 36, is braced on a support piece 38, which is configured as an inside collar, which is directed inward into the housing against interior tube 14.
(36) In an alternative embodiment, helical compression spring 36 can also be inserted coaxially into interior tube 14. Helical compression spring 36 is braced with its upstream-directed end on valve disk 30 of plunger 22. The downstream-directed end of helical compression spring 36 is braced on support piece 38, which in this embodiment is configured as an inside collar in interior tube 14.
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(38) Initially the spring force of helical compression spring 36 presses plunger 22 against the inflow direction, i.e. toward the left in
(39) If the cannula tip encounters greater tissue resistance, for example upon encountering the epineurium or by penetrating into the nerve, then flow through the cannula becomes more difficult and the pressure exerted by the user on the syringe results in an increasing stagnation pressure, which builds up in the cannula, in interior tube 14 and in the inner space of housing 10 upstream of plunger 22. When this stagnation pressure, which corresponds to the injection pressure acting on the cannula tip, exceeds a preset value which is set by the spring force of helical compression spring 36, then this stagnation pressure compresses plunger 22 against the spring force of helical compression spring 36 to the right in the setting shown in
(40) Even if the user does not notice the risky impingement of the cannula and continues to exert pressure on the syringe stamp, a harmful injection is reliably precluded. If the user becomes aware of resistance when operating the syringe and withdraws the cannula from the incorrect position, helical compression spring 36 can again move the plunger into the flow-through setting shown in
(41) The injection pressure at which the device automatically locks, is preset by the spring force of helical compression spring 36. The injection pressure depends on various factors. For example, these are the particular patient's tissue condition, the inner diameter and length of the cannula, and the injection rate. Therefore, it is advantageous for the user if he can adjust the injection pressure at which the device automatically locks for these factors.
(42) This is made possible in advantageous fashion in that the initial tension of helical compression spring 36 and thus the resetting force generated by this helical compression spring 36 is adjustable.
(43) For this, preferably support part 38, on which helical compression spring 36 is braced, is adjustable in the axial direction of helical compression spring 36, so that helical compression spring 36 can be adjustably pretensioned. For this, support part 38 for this is configured as an inside collar of an adjustment sleeve 40. Adjustment sleeve 40 coaxially surrounds interior tube 14 and helical compression spring 36 seated on interior tube 14. Adjustment sleeve 40 is movable coaxially in housing 10 and can be fixed in the desired axial position.
(44) The way spring force is set is perceived in particular in
(45) As is evident from
(46) Adjustment sleeve 40 can be lifted axially out of this setting from flange 42, wherein secant surfaces 52 of adjustment sleeve 40 glide on flat surfaces 48 of interior tube 14. When the secant surfaces 52 projecting inward come to cover notches 50.1, adjustment sleeve 40 can be turned about interior tube 14, as is shown in
(47) For adjustment of adjustment sleeve 40, housing 10 has two diametrically situated windows 54 in its jacket surface, through which adjustment sleeve 40 can be grasped with the fingers and slid and twisted. The particular adjustment position of adjustment sleeve 40, and thus the particular set injection pressure, is indicated by a marking 56 on the outer circumference of adjustment sleeve 40 and a scale 58 on windows 54 of housing 10.
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(49) This embodiment is in accord with the first embodiment in the essential function. In this respect the same reference symbols are used, and reference is made to the previous description. The essential difference from the first embodiment is that in this embodiment, the device for limiting injection pressure is integrated into the proximal addition of a cannula, so that it is not a separate component. Since the device for limiting injection pressure is integrated in the cannula addition, thereby the device is assigned to a specific cannula with specifically preset dimensions. Therefore, as a rule, adjustability of the spring force acting on the plunger for adaptation to the injection pressure is dispensed with.
(50) Since in this embodiment no adjustment of the spring force impinging on the plunger is provided, adjustability of the support piece on which helical compression spring 36 is braced, is dispensed with. The support piece is formed by flange 42, with which interior tube 14 is inserted into housing 10. Additionally, a simple integration can be done in such a way that the proximal end of cannula tube 60 of the cannula provided with the device can be inserted coaxially into housing 10 and injected into interior tube 14. By this means the device is substantially simplified and able to be manufactured in an especially cost-effective way, which promotes integration with the disposable cannula.
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(52) In this embodiment, housing 10 has an entrance 12 and an outlet 18 aligning with this entrance 12. The entrance 12 and outlet 18 are configured as attachments for connection of a syringe or a cannula. Perpendicular to the longitudinal axis line defined by entrance 12 and outlet 18, housing 10 forms a stroke space 20, in which a plunger 22 is supported, which is movable in the axis of stroke space 20 perpendicular to the longitudinal central axis. Plunger 22 is sealed against the inner wall of housing 10 by means of a sealing lip 24. Housing 10 forms a flow-through channel leading from entrance 12 to outlet 18, which is laterally closed by plunger 22. A spring force acts on plunger 22, which is generated by a helical compression spring 36. Helical compression spring 36 is braced on the one side on plunger 22 and on the other side on a support piece 38. Support piece 38 is inserted into the end of housing 10 that projects out radially and is adjustable axially in the stroke direction of plunger 22 by means of a self-limiting threading 62. For adjustment, a handle 64 projecting out of housing 10 is provided. In the area of the adjustment path of support piece 38, in the wall of housing 10, windows 54 are provided, through which a marking 56 of support piece 38 is visible, and the axial setting of support piece 38 can be read out by means of a scale 58 provided on windows 54. By turning support piece 38, via threading 62, the axial position of support piece 38 and thus the pretensioning of helical compression spring 36 braced on support piece 38 can be adjusted.
(53) On the front surface of plunger 22 that faces the flow-through channel, a valve shifter 66 serving as a blocking element is attached. The valve shifter has the function of releasing entrance 12 into the housing depending on the setting of valve shifter 66, to make possible through-flow to outlet 18, or to close inlet 12, to close off the through-flow. In the embodiment depicted, valve shifter 66 has the form of a circular disk, which is at an axial distance from the front surface of plunger 22, corresponding in outer diameter to the inner diameter of stroke space 20 and having an axial thickness that is greater than the inner diameter of entrance 12. Valve shifter 66 can be moved by means of plunger 22 between a flow-through setting shown in
(54) The manner of functioning of the device in this third embodiment matches the functioning that is described in connection with the first embodiment, so that reference is made thereto.
(55) As long as the injection pressure that forms in the cannula and the flow-through channel is less than the pressure acting by spring force on plunger 22, helical compression spring 36 holds the plunger in the lower setting depicted in
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(57) The embodiment of
(58) In the fourth embodiment, interior tube 14, valve seat 16, plunger 22, stub 28, valve disk 30, flow-through openings 32 and spacer tabs 34 correspond to the first embodiment form, as they are described in particular in connection with this first embodiment form.
(59) Two magnets 72 and 74 generate the resetting force acting on plunger 22, which in particular are configured as permanent magnets. The one magnet 72 is attached on the front surface of plunger 22 directed downstream. The other magnet 74 is attached on the first surface of support piece 38 directed upstream. Magnets 72 and 74 have pole arrangements so that they mutually repel. Magnet 72, together with plunger 22, is guided so as to slide axially on interior tube 14. The other magnet 74 can be attached in fixed fashion on a support piece formed by an inside collar of housing 10. In this case, the magnetic force acting on plunger 22 has a preset fixed value, which limits injection pressure.
(60) If the resetting force, and thus the value limiting the injection pressure is to be adjustable, then support piece 38 is axially adjustable in the housing, as this is depicted in the embodiment of
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LIST OF REFERENCE SYMBOLS
(62) TABLE-US-00001 10 housing 12 entrance 14 Interior tube 16 Valve seat 18 outlet 20 Stroke space 22 plunger 24 Outer sealing lip 26 Inner sealing lip 28 stub 30 Valve disk 32 Flow-through opening 34 Spacer tabs 36 Helical compression spring 38 Support piece 40 Adjustment sleeve 42 flange 44 nose 46 recess 48 Flat surfaces 50 notches 52 Secant surfaces 54 window 56 marking 58 scale 60 Cannula tube 62 threading 64 handle 66 Valve shifter 68 Passage opening 72 magnet 74 magnet 76 Interior threading 78 Exterior threading 80 Compressible element