Needle assembly having slidable collar to control radial engagement of sleeve segments with injection pen threads
09623195 ยท 2017-04-18
Inventors
Cpc classification
A61M5/3243
HUMAN NECESSITIES
A61M5/3205
HUMAN NECESSITIES
A61M5/3245
HUMAN NECESSITIES
A61M2005/3253
HUMAN NECESSITIES
International classification
A61M5/34
HUMAN NECESSITIES
Abstract
A needle assembly for an injection pen (22) has a sleeve (21) supporting internally a double-ended needle having an injection end and a non-injection end (25). The end of the sleeve surrounding the non-injection end (25) of the needle is divided into deformable segments (28) and is internally threaded for interengagement with a threaded boss (23) of the injection pen (22). A collar (29) is mounted on the sleeve (21) for sliding movement between a first position where the collar (29) overlies the segmented end and maintains interengagement of the threads at that end with those of the injection pen boss (23) and a second position where the segments may expand radially to come free of the injection pen boss (23). The needle may be mounted on a carrier (68) slidable with respect to the sleeve (21), the carrier (68) being coupled to the sleeve (21) for movement thereby.
Claims
1. A needle assembly for connection to an injection pen having a boss with external threads for receiving the needle assembly, the needle assembly comprising: a sleeve having internal threads at one end for threaded engagement with the external threads of an injection pen boss, the sleeve defining at least one guide extending along a length thereof; a needle carrier slidably supported within the sleeve and having a lug engaged with the guide of the sleeve and projecting from the outer surface of the sleeve, the needle carrier supporting a double-ended needle extending axially within the sleeve; and a separate shield slidably supported on the sleeve and being engaged with a projecting part of the lug, whereby forward sliding movement of the shield moves the needle carrier forwardly within the sleeve, so moving a non-injection end of the needle further from said one end of the sleeve; wherein said one end of the sleeve is formed into two or more divided segments and the shield is mounted on the sleeve for sliding movement between a first position at which the shield maintains full radial engagement of the two or more divided segments with the external threads of the injection pen boss, and a second position where the shield is displaced from said one end so that radial disengagement of the external threads is possible by radial deformation of the two or more divided segments at said one end.
2. The needle assembly as claimed in claim 1, wherein the shield is provided with a groove extending along the length thereof and in which the projecting part of the lug is engaged whereby the needle carrier moves through a smaller distance than the shield, upon the shield moving from an injection position to a shielding position.
3. The needle assembly as claimed in claim 1, wherein an internal profile is defined by an internally-threaded portion at said one end of the sleeve corresponding to the external threads formed on the boss of the injection pen.
4. The needle assembly as claimed in claim 3, wherein there is at least one generally axially-extending slit in a wall of the sleeve at a deformable end whereby an effective diameter of the deformable end may increase by enlargement of the slit.
5. The needle assembly as claimed in claim 4, wherein there is a plurality of generally axially-extending slits in the wall of the sleeve at said deformable end thereby dividing said deformable end into a plurality of segments.
6. The needle assembly as claimed in claim 5, wherein each of the plurality of segments are provided internally with a respective profile for interengagement with the external threads of the boss of the injection pen.
7. The needle assembly as claimed in claim 1, wherein the needle is mounted on a needle hub and the needle hub is supported internally within the sleeve.
8. The needle assembly as claimed in claim 7, wherein the needle hub is mounted within the sleeve for axial sliding movement with respect thereto.
9. The needle assembly as claimed in claim 1, wherein there is provided the shield mounted on the sleeve for sliding movement between an injection position where the injection end of the needle is exposed and a shielding position where the injection end of the needle is covered by the shield.
Description
(1) By way of example only, several specific embodiments of needle assembly for an injection pen and arranged in accordance with this invention will now be described in detail, reference being made to the accompanying drawings in which:
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(17) The first embodiment of needle assembly for use with an injection pen is shown in
(18) The above features of an injection pen and needle assembly are well known and form no part of this invention; as such they will not be described in further detail here.
(19) The non-injection end region 25 of the sleeve 21 is provided with three slits 26 extending axially from the end face 27 of the sleeve such that the end region is divided into three similar segments 28. Each segment is formed internally with a portion of a thread which corresponds to the thread on the boss 23 of the pen. In its normal condition, the segments all lie on a common cylindrical surface, though each segment may be deformed radially outwardly such that the end region 25 of the sleeve has a greater diameter than when the segments lie on a common cylindrical surface, in the normal condition of the segments.
(20) A collar 29 is slidably mounted on the external surface of the sleeve 21 and may be slid between a first position shown in
(21) The external diameter of the end region 25 of the sleeve is slightly smaller than the main part of the sleeve, a shoulder 31 being formed between the end region and the main part (
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(23) Following completion of the injection, the injection pen is held in one hand while the fingers of a user grip the ribbed part of the collar 29 and the collar is moved axially away from the pen 22, so bringing the abutment surface 34 into engagement with shoulder 31 (
(24) The second embodiment of needle assembly for use with an injection pen is shown in
(25) Internally, the sleeve has a hub 45 which supports a double-ended needle, the injection end of the needle being shown in
(26) The shield 38 has its rearward end 47 to be a close sliding fit on the external surface of the sleeve and the greater part of the internal surface of the shield being a sliding fit on the rib 44 of the sleeve. At its forward end, the shield has a radial end face 48 formed with a central hole 49 for the needle 37.
(27) In use, the needle assembly is fitted to an injection pen 22 with the shield in its rearward position where the rear end of the shield is essentially co-planar with the rear end of the sleeve, by threading the needle assembly on to the boss 23. Though not shown in
(28) The third embodiment of needle assembly for use with an injection pen is shown in
(29) In this embodiment, the sleeve 51 is formed in two pieces, with a rearward section 52 being slidably received within a forward section 53. The rearward section has its forward end portion formed as a continuous ring 54 slidable within the forward section 53 and the rearward end portion as separate segments 55 corresponding to segments 28 of the first embodiment and thus which may be threadingly engaged with the threaded boss 23 of an injection pen 22. The ring 54 has four externally-projecting nibs 56, for a purpose to be described below.
(30) The rear part of the forward section is formed as a collar 57 having external ribs 58 to facilitate gripping of the collar. A double-ended needle (not shown other than the non-injection end of which, in
(31) In use, the needle assembly is initially as shown in
(32) Once the position of
(33) The fourth embodiment of needle assembly for use with an injection pen is shown in
(34) A needle hub 66 supports a double-ended needle 67 the needle hub including an annular carrier 68 provided with three lugs 69 receivable in the slots 64 and when so received, projecting beyond the outer surface of the sleeve.
(35) A shield 71 is slidably carried on the sleeve 60 and has three equi-spaced slots 72 within which the projecting parts of the lugs 69 are received when the shield is assembled to the sleeve. At its forward end, the shield 71 has an end face 73 formed with a central hole 74 through which the injection end 75 of the needle 67 may project when the shield has been moved rearwardly.
(36) The projecting parts of the lugs 69 of the needle hub 66 and the slots 72 of the shield 71 which receive those projecting parts serve as an interconnection means for the shield and needle hub 66. That interconnection means allows relative sliding movement of the shield and hub between limits defined by the configuration of the lugs and slots such that on the projecting parts of the lugs reaching the ends of the slots, continued movement of the shield slides the hub with the shield.
(37) The three components shown in
(38) Following completion of the injection, the shield 71 is slid forwardly until the closed ends of the slots 72 in the shield engage the lugs 69 whereupon those lugs prevent further forward movement of the shield relative to the sleeve 60. When in this position (
(39) Though not shown in