NEEDLELESS INJECTION DEVICE EQUIPPED WITH A COMPRESSION SPRING
20180110929 ยท 2018-04-26
Assignee
Inventors
Cpc classification
A61M5/2033
HUMAN NECESSITIES
A61M5/20
HUMAN NECESSITIES
A61M5/3007
HUMAN NECESSITIES
A61M2005/2013
HUMAN NECESSITIES
International classification
A61M5/30
HUMAN NECESSITIES
Abstract
The present disclosure relates to a needleless injector including a cap, an injection system, a body, and a compression spring. The body is mounted to slide upwards in relation to the cap along an injection axis between a rest position and an injection position. The compression spring is axially intercalated along the injection axis between the body and the cap to compress the skin tissue of the user when the nozzle is applied to the skin. The compression spring is a frustroconical helical spring that extends along the injection axis and includes a plurality of turns designed to nest axially one inside the other.
Claims
1. A needleless injection device including: a cover; an injection system that comprises a plunger, a reservoir that is configured to hold an active ingredient, and an injection nozzle defining at least one injection channel; a body that is enveloped by the cover and that is slidably mounted relative to the cover from bottom to top along an injection axis between a rest position and an injection position; a compression spring that is axially interposed along the injection axis between the body and the cover to compress the tissues of the skin of the user during the application of the nozzle on the skin, wherein the compression spring is a frustoconical-shaped helical spring that extends along the injection axis and includes a plurality of turns designed to axially nest into each other; a gas generator; and a striking device that is designed to strike the gas generator.
2. The needleless injection device according to claim 1, wherein the compression spring extends axially from a high turn that bears on the cover to a low turn that bears on the body, the high turn having a diameter greater than the diameter of the low turn.
3. The needleless injection device according to claim 2, wherein the cover defines a housing that receives the high turn of the spring to laterally bock in translation the high turn.
4. The needleless injection device according to claim 2, wherein the body forms a boss that protrudes vertically upwards along the injection axis, the low turn of the spring is mounted around the boss, such that the low turn is blocked laterally.
5. The needleless injection device according to claim 1, wherein the compression spring is calibrated such that the force desired to drive the body from its rest position to its triggering position is between five and forty-five Newtons.
6. The needleless injection device according to claim 1, wherein the active ingredient contained in the reservoir is selected from the group consisting of: Methodtrexate, Adrenaline, Sumatriptan, Hydrocortisone, Naloxone, Midazolam, Apomorphine, Ethylnatrexone bromide, Phytomenadione, Chlorpromazine hydrochloride, Zuclopenthixol acetate, Danaparoid sodium, Enoxaparin sodium, Estradiol cypionate, Medroxyprogesterone acetate, Medroparin calcium, Methylprednisolone acetate, Heparin calcium, Terbutaline.
Description
DRAWINGS
[0029] In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
[0030]
[0031]
[0032]
[0033] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
[0034] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0035] In the description and claims, in order to clarify the description and claims, the longitudinal, vertical and transverse terminology will be adopted by way of non-limiting example with reference to the trihedron L, V, T indicated in the figures.
[0036] Furthermore, in the present application, the terms upper, lower, horizontal, vertical, and the derivatives thereof refer to the position or orientation of an element or a component, this position or orientation being considered with reference to the orientation of the device in the figures and to the trihedron L, V, T, without reference to the earth's gravity.
[0037]
[0038] The injection nozzle 28 defines one or more injection channels (e.g. three injection channels (not represented)) and is screwed onto a lower free end of the body 12.
[0039] The striking device 14 and the gas generator 16 forms a first linear subassembly of the body 12 that extends axially along a vertical sliding axis A, and the reservoir 24 containing the active ingredient 26 and the injection nozzle 28 form a second linear subassembly of the body 12 that extends axially along a second vertical injection axis B.
[0040] These two subassemblies are linked to one another by the expansion chamber 22 that has an axis perpendicular to the axes A, B of the subassemblies.
[0041] The reservoir 24 is formed by a glass tube 30 obstructed by an upstream plunger 32 and a downstream plunger 34 between which the active ingredient 26 is contained, the plungers being made of an elastically deformable elastomer-based material.
[0042] The reservoir 24 extends axially from a lower collar 36 and has an annular lower face 38 arranged opposite the injection nozzle 28, to an upper collar 40 having an annular upper face 42.
[0043] Also, according to
[0044] The body 48 of the diaphragm 44 is designed to extend axially, under the effect of the pressure of the gas generated by the gas generator 16, in order to push the upstream plunger 32.
[0045] Referring to
[0046] The base plate 52 defines a circular passage 54 about the injection axis B which is adapted for the passage and the sliding of the injection nozzle 28 and the downstream end of the body 12, so that the injection nozzle 28 includes a lower section projecting vertically downwards out of the cover 50.
[0047] Also, the injection device 10 is equipped with a stopper 58, represented in
[0048] As shown in
[0049] The displacement of the body 12 inside the cover 50 allows the gas generator 16 to be triggered, generating a pressurized gas that drives in displacement the plungers 32, 34 in order to inject the active ingredient 26 through the user's skin, via the injection nozzle 28.
[0050] Also, the injection device 10 includes a compression spring 60 that is axially interposed, along the injection axis B, between the body 12 and the cover 50, in order to compress the tissues of the skin of the user during the application of the nozzle 28 on the skin, the nozzle 28 being secured in displacement to the body 12.
[0051] The compression spring 60 is a frustoconical-shaped helical spring that extends along the injection axis B, and which includes a plurality of turns, here four turns, which are designed to axially nest into each other.
[0052] The term frustoconical-shaped helical spring means a spring whose turns are adapted to axially nest into each other along the central axis of the spring.
[0053] More particularly, the compression spring 60 extends axially from a high turn 62 that is bearing on an inner face 64 of the cover 50, to a low turn 66 that is bearing on an upper face 68 of the body 12. The high turn 62 having a diameter greater than the diameter of the low turn 66.
[0054] The cover 50 defines or in other words, defines a housing 70 which receives the high turn 62 of the spring 60, in order to block in translation the high turn 62 in a horizontal plane.
[0055] Furthermore, the upper portion of the body 12 forms a boss 72 which protrudes vertically upwards along the injection axis B, from the upper face 68 of the body 12.
[0056] The low turn 66 of the spring 60 is mounted around the boss 72, so that the low turn 66 is blocked in translation in a horizontal plane.
[0057] According to a preferred variation, the compression spring 60 is calibrated so that the force desired to drive the body 12 from its rest position to its triggering position is comprised between five and forty-five Newtons.
[0058] The compression spring 60 according to the disclosure allows reducing the vertical space between the body 12 and the inner face 64 of the cover 50 to a turn thickness of the spring 60, when the body 12 occupies its triggering position, as shown in
[0059] Thus, the spring 60 allows varying the calibration of the spring by acting on the section of the wire forming the turns, without reducing the triggering travel of the body 12.
[0060] Furthermore, due to the frustoconical shape of the spring 60 and to its turns which fit together without any axial clearance, the addition of turns does not affect the triggering travel.
[0061] Also, in one form, the turns of the spring 60 are contactless with each other during the sliding of the body 12 to inhibit the spring 60 from emitting noise caused by friction.
[0062] Furthermore, the larger diameter of the high turn 62 of the spring 60 may improve stability of the spring 60.
[0063] The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.