Injection device and injection solution transferring system
11554215 · 2023-01-17
Assignee
Inventors
- Nicholas Lee Hawson (Cambridge, GB)
- Martin Murphy (Cambridge, GB)
- Frederick William Hamlin (Cambridge, GB)
- Christophe Royer (Basel, CH)
- Dominic LLOYD-LUCAS (Cambridge, GB)
- Tony Bedford (Cambridge, GB)
- Andrew Gow (Cambridge, GB)
- Dave Harris (Cambridge, GB)
- Duncan Aleck Bishop (Cambridge, GB)
- Matthew Garwood (Cambridge, GB)
- Matthew Murchie (Cambridge, GB)
- Lasse Mogensen (Cambridge, GB)
Cpc classification
A61M5/3146
HUMAN NECESSITIES
A61M5/20
HUMAN NECESSITIES
A61M5/31501
HUMAN NECESSITIES
A61M5/24
HUMAN NECESSITIES
A61M5/31511
HUMAN NECESSITIES
B65B39/06
PERFORMING OPERATIONS; TRANSPORTING
A61M5/31551
HUMAN NECESSITIES
A61M5/31591
HUMAN NECESSITIES
A61J1/20
HUMAN NECESSITIES
A61M2207/00
HUMAN NECESSITIES
B65B3/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
A61M5/24
HUMAN NECESSITIES
Abstract
An injection device (10) comprises an injection solution receptacle (30) and a plunger (70) at least a portion of which is slidably received in the injection solution receptacle (30), wherein the plunger (70) is displaceable relative to the injection solution receptacle (30) in a distal direction in order to expel an injection solution contained in the injection solution receptacle (30) from the injection solution receptacle (30). A first plunger stop mechanism (140) is adapted to stop a displacement of the plunger (70) relative to the injection solution receptacle (30) in the distal direction at a first dosing position (P1). A second plunger stop mechanism (140) is adapted to stop a displacement of the plunger (70) relative to the injection solution receptacle (30) from the first dosing position (P1) in the distal direction at a second dosing position (P2), wherein the first and the second dosing position (P2) of the plunger (70) are selected in such a manner that the plunger (70), upon being displaced relative to the injection solution receptacle (30) between the first and the second dosing position (P2) is adapted to expel a desired dose of the injection solution contained in the injection solution receptacle (30) from the injection solution receptacle (30).
Claims
1. An injection device, comprising: an injection solution receptacle; a plunger at least a portion of which is slidably received in the injection solution receptacle, wherein the plunger is displaceable relative to the injection solution receptacle in a distal direction in order to expel an injection solution contained in the injection solution receptacle from the injection solution receptacle; a first housing element, wherein: a first dosing surface, a first limiting element and a second dosing surface are formed on the first housing element; a first plunger stop mechanism which is adapted to stop a displacement of the plunger relative to the injection solution receptacle in the distal direction at a first dosing position, wherein the first plunger stop mechanism includes a dosing element which is attached to the plunger and which is adapted to abut against the first dosing surface; and a second plunger stop mechanism which is adapted to stop a displacement of the plunger relative to the injection solution receptacle from the first dosing position in the distal direction at a second dosing position, wherein: the second plunger stop mechanism includes the dosing element which is attached to the plunger and which is adapted to abut against the second dosing surface, the first housing element is rotatable relative to the plunger to a position that disengages the dosing element of the first plunger stop mechanism from the first dosing surface and aligns the second dosing surface with the dosing element, the first limiting element prevents rotation of the dosing element past the second dosing surface, and the first and the second dosing position of the plunger are selected in such a manner that the plunger, upon being displaced relative to the injection solution receptacle between the first and the second dosing position is adapted to expel a desired dose of the injection solution contained in the injection solution receptacle from the injection solution receptacle.
2. The injection device of claim 1, wherein rotation of the first housing element relative to the plunger moves at least one of the dosing element and the first dosing surface in order to disengage the dosing element from the first dosing surface.
3. The injection device of claim 1, wherein the first and the second dosing surface are arranged offset relative to each other in a circumferential direction of the plunger, and wherein rotation of the first housing element displaces the first and the second dosing surface in the circumferential direction of the plunger, in order to disengage the dosing element from the first dosing surface and to simultaneously align the second dosing surface with the dosing element such that the dosing element abuts against the second dosing surface, when the plunger, upon being displaced relative to the injection solution receptacle from the first dosing position in the distal direction, reaches the second dosing position.
4. The injection device of claim 1, further comprising a marker system that is adapted to indicate an alignment of the dosing element with the second plunger stop mechanism, wherein a first marker element of the marker system is positioned on the first housing element.
5. The injection device of claim 1, further comprising: an activation mechanism which is adapted to prevent rotation of the first housing element relative to the plunger unless the plunger is arranged at the first dosing position and which is adapted to allow rotation of the first housing element relative to the plunger when the plunger is arranged at the first dosing position.
6. The injection device of claim 5, wherein the activation mechanism comprises a guiding channel which is provided on a circumferential surface of the plunger, which extends along a longitudinal axis of the plunger and which receives a guiding element provided on the first housing element in such a manner that the guiding channel, upon displacement of the plunger relative to the injection solution receptacle, is displaced relative to the guiding element, and wherein an interaction between the guiding element and opposing side faces of the guiding channel prevents a rotation of the plunger and the first housing element relative to each other.
7. The injection device of claim 6, wherein the activation mechanism further comprises an activation channel which branches off from the guiding channel and which is adapted to receive the guiding element when the plunger is arranged at the first dosing position and the first housing element which carries the guiding element is rotated relative to the plunger.
8. The injection device of claim 1, further comprising a locking arrangement which is adapted to lock the first dosing surface in its position relative to the dosing element after the first dosing surface has been moved relative to the dosing element in order to become disengaged from the dosing element.
9. The injection device of claim 8, wherein the locking arrangement comprises a resilient locking clip which is adapted to be resiliently urged out of a rest position by the interaction with a locking element when the first dosing surface is moved relative to the dosing element so as to become disengaged from the dosing element, and which further is adapted to deform back into its rest position after completion of the movement of the first dosing surface and to interact with the locking element so as to lock the first dosing surface in its position relative to the dosing element.
10. The injection device of claim 1, wherein the first limiting element is adapted to abut against a second limiting element when the dosing element is disengaged from the first dosing surface and aligned with the second dosing surface and wherein the second limiting element is configured to remain stationary during rotation of the first housing element relative to the plunger.
11. The injection device of claim 1, further comprising at least one of: a first drag mechanism adapted exert a retaining force which retains the plunger in its current position, the first drag mechanism in particular comprising a resilient drag element which is adapted to exert a resilient retaining force on the plunger; and a second drag mechanism adapted to exert a retaining force which retains the first housing element in its current position, the second drag mechanism in particular comprising a friction element which is provided on the first limiting element of the limiting mechanism and which is adapted to interact with a retaining element of the second housing element.
12. The injection device of claim 1, further comprising: a plunger positioning mechanism comprising a distal end of a guiding channel provided in a circumferential surface of the plunger, which is adapted to prevent a displacement of the plunger relative to the injection solution receptacle from a proximal end position in a proximal direction.
13. An injection solution transferring system, comprising: an injection device according to claim 1; and a filling adapter for connecting a syringe containing an injection solution to the injection device and for filling an injection solution receptacle of the injection device with the injection solution from the syringe.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
(1) A preferred embodiment of the invention now will be described in greater detail with reference to the appended schematic drawings, wherein:
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DETAILED DESCRIPTION OF THE INVENTION
(29)
(30) The filling adapter 12 comprises a hollow sleeve 16 which is shown in greater detail in
(31) The filling adapter 12 further comprises an adapter element 18 which is accommodated within the hollow sleeve 16 and which comprises a first connecting port 20 and a second connecting port 22. The adapter element 18 may, for example, be made of polycarbonate and is shown in greater detail in
(32) The first connecting port 20 of the adapter element 18 is adapted to be connected to the syringe 14, i.e. a distal end of the syringe 14, when the filling adapter 12 is connected to the syringe 14 as shown in
(33) The adapter element 18 is provided with a through-opening 26 extending therethrough in a direction substantially parallel to a longitudinal axis L1 of the filling adapter 12, see in particular
(34) The adapter element 18 serves to establish a fluid connection between the syringe 14 and the injection device 10, i.e. when the syringe 14 is connected to the first connecting port 20 of the adapter element 18 and the injection device 10 is connected to the second connecting port 22 of the adapter element 18 as shown in
(35) As becomes apparent in particular from
(36) When the syringe 14 is brought into engagement with the first connecting port 20, due to the interaction with the collar 34 of the syringe 14, the resilient clip 32 is bent outwards. However, as soon as the syringe 14 has reached its final position with respect to the adapter element 18, i.e. when the distal tip of the syringe 14 is connected to the first connecting port 20 of the adapter element 18 and the syringe 14 assumes the position relative to the hollow sleeve 16 which is shown in
(37) In the region of its first end, the hollow sleeve 16 at its outer circumferential surface is provided with two first gripping structures 42 each of which is designed in the form of a nub array. The first gripping structure simplifies the handling of the filling adapter 12 during connecting the syringe 14 to the filling adapter 12. Further, the hollow sleeve 16, in the region of its first end and the region of a second end which faces the injection device 10 when the injection device 10 is brought into engagement with the second connecting port 22 of the adapter element 18, has an outer diameter which is larger than an outer diameter of the hollow sleeve 16 in an intermediate section arranged between the first and the second end. Such a design of the hollow sleeve 16 further simplifies the gripping and thus the handling of the filling adapter 12.
(38) As shown in in
(39) As further becomes apparent from
(40) In order to simplify the handling of the filling adapter 12 during bringing the injection device 10 into engagement with the second connecting port 22 of the adapter element 18, the hollow sleeve 18, in the region of a second end which faces the injection device 10 when the injection device 10 is brought into engagement with the second connecting port 22 of the adapter element 18, at its outer circumferential surface is provided with a second gripping structure 56. The second gripping structure 56 is designed in the form of two gripping rib arrays with individual gripping ribs extending substantially parallel to the longitudinal axis L1 of the filling adapter 12.
(41) Further, as shown in
(42) Turning back to
(43) As further becomes apparent from
(44) As shown in particular in
(45) When the filling adapter 12 is connected to the injection device 10, the cannula 27 extends into the injection solution receptacle 30 of the injection device 10, i.e. a distal tip of the cannula 27 is arranged at a distance from the distal end of the injection solution receptacle 30 within the interior of the injection solution receptacle 30, see in particular
(46) By simply holding the filling adapter 12 and the injection device 10 in an upright position with the longitudinal axis L1 of the filling adapter 12 and a longitudinal axis L2 of the injection device 10 being oriented substantially vertically and with the distal end of the injection device 10 facing downwards as shown in
(47) Finally, the adapter element 18 is provided with a venting device 64 which is adapted to vent gas introduced from the syringe 14 into the injection device 10, i.e. the injection solution receptacle 30 of the injection device 10, via the through-opening 26 and the cannula 27 into the ambient. The venting device thus allows entrapped gas bubbles, in particular air bubbles, that are conveyed from the distal tip of the cannula 27 back to the adapter element 18 by the above described gravity-driven flow of the injection solution to be expelled into the ambient. The filling adapter 12 thus allows a gas free filling of the injection device 10 with the injection solution. As a result, manually expelling entrapped gas from the syringe 14 prior to connecting the syringe 14 to the filling adapter 12 can be dispensed with. Furthermore, an accurate and reliable preparation of a desired dose of the injection solution within the injection device 10 is made possible.
(48) The venting device 64 comprises two radial bores 66 connecting the through-opening 26 extending through the adapter element 18 to the ambient. In particular, the radial bores 66 connect the receiving section 26c of the through-opening 26 to an outer circumferential surface of the adapter element 18 and hence to the ambient. In the embodiment of a filling adapter 18 shown in the drawings, the radial bores 66 of the venting device 64 extend coaxially from an outer circumferential surface of the adapter element 18 to the receiving section 26c of the through-opening 26 so as to connect the receiving section 26c of the through-opening 26 to the ambient. In order to ensure that gas bubbles entrapped in the injection solution can be vented to the ambient as desired without expelling a substantial amount of the liquid phase of the injection solution to the ambient, the flow cross-section, i.e. the diameter of the radial bores 66 is be selected in dependence on the physical properties, in particular the specific density, the viscosity and the surface tension of the injection solution to be transferred from the syringe 14 to the injection device 10.
(49) In order to ensure proper functioning of the venting device 64, the retention shoulders 23 protrude from the outer circumferential surface of the adapter element 18 in the region of the inlet section 26a and the intermediate section 26b of the through-opening 26 extending through the adapter element 18. Such a configuration ensures that, in the region of the receiving section 26c of the through-opening 26, an air gap 68 is present between the outer circumferential surface of the adapter element 18 and the inner circumferential surface of the hollow sleeve 16 which allows an unhindered exit of gas from receiving section 26c via the radial bores 66 of the venting device 64.
(50) The injection device 10 of the injection solution transferring system 100 further comprises a plunger 70 which is depicted in greater detail in
(51) At its distal end, the plunger 70 is provided with a tip element 74 which is attached to a plunger rod 76, see
(52) The plunger 70 of the injection device 10 can be arranged in a filling position as shown in
(53) Finally, the hollow sleeve 16 is provided with two observing windows 83 for observing the filling of the injection device 10 with the injection solution from the syringe 14. The observing windows 83 allow an unhindered view of interior of the injection device 10 and the distal tip of the cannula 27.
(54) The plunger 70 is displaceably received in a housing 84 of the injection device 10 which comprises a first housing element 86 depicted in greater detail in
(55) For assembling the plunger 70 to the first housing element 86, assembly channels 96 are provided in the outer circumferential surface of the plunger rod 76 which branch of from the guiding channels 94 in a distal region thereof and extend substantially perpendicular to the guiding channels 94 in a circumferential direction of the plunger rod 76. Upon assembling the plunger 70 to the first housing element 86, the guiding elements 92 are brought into engagement with the assembly channels 96. Thereafter, the plunger 70 is rotated until the guiding elements 92 are received in the guiding channels 94 in a guiding manner, see
(56) In order to simplify the handling of the injection solution transferring system 100, the injection device 10 is delivered with the plunger 70 being arranged in its filling position which corresponds to a proximal end position of the plunger 70. A plunger positioning mechanism 98 prevents that the plunger 70 can be moved further in a proximal direction relative to the injection solution receptacle 30 than into its proximal end position, i.e. its filling position. The plunger positioning mechanism 98, however, allows a movement of the plunger 70 relative to the injection solution receptacle 30 from its filling position in a distal direction. Specifically, the plunger positioning mechanism 98 is defined by a distal end face 102 of the guiding channels 94 which are provided in the circumferential surface of the plunger rod 78 and the guiding elements 92 provided on the first housing element 86. When the plunger 70 is arranged in its proximal end position which corresponds to its filling position, the guiding elements 90 abut against the distal end faces 102 of the guiding channels 94. The interaction between the distal end faces 102 of the guiding channels 94 and the guiding elements 92 then prevents a further movement of the plunger 70 in the proximal direction and hence define the proximal end position, i.e. the filling position of the plunger 70.
(57) The second housing element 88 comprises two identical parts, see
(58) As shown in particular in
(59) The injection device 10 further comprises a plunger locking mechanism 122 which interacts with the filling adapter 12, i.e. the hollow sleeve 16 of the filling adapter 12, so as to prevent the plunger 70 of the injection device 10 from being moved from its filling position relative to the injection solution receptacle 30 in a distal direction, i.e. in the direction of the distal tip of the cannula 27, when the injection device 10 is connected to the filling adapter 12. The plunger locking mechanism 122 serves to prevent an inadvertent contact between the plunger 70, i.e. the distal tip of the plunger 70, and the distal tip of the cannula 27. The functioning of the plunger locking mechanism 122 now will be described in greater detail with reference to
(60) Specifically, the plunger locking mechanism 122 comprises a lever element 124, see
(61) The lever element 124 further comprises a pair of foot elements 130 which extend substantially parallel to each other and which are contacted by the filling adapter 12 when the injection device 10 is connected to the filling adapter 12, in order to maintain the lever element 124 in its active position. In particular, as shown in
(62) The lever element 124 comprises a stop device 134 which comprises two tabs extending from a proximal end face of the lever element 124. Further, a proximal portion of the plunger 70 extends further in a direction substantially perpendicular to the longitudinal axis of the plunger 70 than a distal portion of the plunger 70. As a result, a shoulder which defines an abutment surface 136 is formed in a transition region between the distal portion and the proximal portion of the plunger 70. Specifically, the abutment surface 136 is defined by an outer portion of a distal end face of the proximal plunger portion which protrudes from an outer circumferential surface of the distal plunger portion. When the lever element 124 is arranged in its active position as shown in
(63) The plunger locking mechanism 122 also comprises a retention device 138 which interacts with the foot elements 130 of the lever element 124, in order to prevent that the foot elements 130 disengage from locking rim 132 of the filling adapter 12 when the lever element 124, by the interaction between the locking rim 132 and the foot elements 130, is maintained in its active position, see
(64) After completion of the transfer of the injection solution from the syringe 14 to the injection solution receptacle 30 of the injection device 10 with the plunger 70 being arranged in its filling position as described above and as shown in
(65) As soon as the filling adapter 12 is detached from the injection device 10, the filling adapter 12, i.e. the locking rim 132 of the hollow sleeve 16, no longer contacts the foot elements 130 of the lever element 124. Hence, when a pressing force is applied to the plunger 70 so as to displace the plunger 70 in a distal direction within the injection solution receptacle 30 of the injection device 10, the lever element 124 is displaced into its inactive position shown in
(66) For administering an accurate dose, in particular an accurate micro dose of, for example, 10 μl of the injection solution received within the injection solution receptacle 30 to a patient, in a first step, excess injection solution has to be expelled from the injection solution receptacle 30 by displacing the plunger 70 relative to the injection solution receptacle 30 in the distal direction as shown in
(67) The injection device 10 therefore comprises a first plunger stop mechanism 140 which is adapted to stop a displacement of the plunger 70 relative to the injection solution receptacle 30 in the distal direction at a first dosing position P1, see
(68) Thus, during use of the injection device 10, a user can expel excess injection solution from the injection solution receptacle 30 by displacing the plunger 70 relative to the injection solution receptacle 30 in the distal direction until the plunger 70 reaches the first dosing position P1. Upon reaching the first dosing position P1, the first plunger stop mechanism stops 140 further displacement of the plunger 70 in the distal direction. Consequently, the user is prevented from expelling too much injection solution from the injection solution receptacle. The residual injection solution contained in the injection solution receptacle can then be administered to a patient by further displacing the plunger 70 in the distal direction until the plunger 70 reaches the second dosing position P2. Upon reaching the second dosing position P2, the second plunger stop mechanism 142 stops further displacement of the plunger 70 in the distal direction and hence prevents that too much injection solution is administered to the patient.
(69) As shown in particular in
(70) The first and the second dosing surface 146, 148 extend substantially parallel to each other and parallel to an abutting surface 150 of the dosing element 144 substantially perpendicular to the longitudinal axis of the plunger 70, wherein the second dosing surface 148 is arranged parallel offset relative to the first dosing surface 146 in the distal direction. A distance S between the first and the second dosing surface 146, 148 in the distal direction corresponds to a desired travel distance of the plunger 70 in the distal direction between the first and the second dosing position P1, P2, see in particular
(71) Further, the first and the second dosing surface 146, 148 are arranged offset relative to each other in a circumferential direction of the plunger 70. Specifically, the second dosing surface 148 is defined by a bottom surface of a recess 152 formed in the first dosing surface 146 provided on the first housing element 86.
(72) When the plunger 70, during use of the injection device 10, is moved from its filling position shown in
(73) The plunger releasing mechanism 154 is adapted to allow a movement of the first dosing surface 146 relative to the dosing element 144, i.e. relative to the plunger 70, in order to disengage the dosing element 144 from the first dosing surface 146. Specifically, the plunger releasing mechanism 154 is adapted to allow a rotational movement of the first dosing surface 146 relative to the dosing element 144, i.e. relative to the plunger 70, in order to disengage the dosing element 144 from the first dosing surface 146. In order to effect the rotational movement of the first dosing surface 146 relative to the dosing element 144, the first housing element 86 which carries the first and the second dosing surface 146, 148 is designed so as to be manually rotatable relative to the second housing element 88, see
(74) In order to be rotatable relative to the second housing element 88 in a guided manner, the first housing element 86 is provided with a retaining recess 156, see
(75) The rotation amount of the first housing element 86 relative to the second housing element 88 and hence relative to the plunger 70 is set such that the recess 152 formed in the first dosing surface 146 is brought into alignment with the dosing element 144 protruding from the activation button 72 of the plunger 70. The plunger releasing mechanism 154 thus is adapted to displace the first and the second dosing surface 146, 148 in the circumferential direction of the plunger 70, in order to disengage the dosing element 144 from the first dosing surface 146 and to simultaneously align the second dosing surface 148 with the dosing element 144.
(76) In order to ensure that a user, upon activating the plunger releasing mechanism 154, rotates the first housing element 86 relative to the second housing element 88 and the correct direction and by the correct rotation amount that is necessary to disengage the dosing element 144 from the first dosing surface 146 and to simultaneously align the second dosing surface 148 with the dosing element 144, the plunger releasing mechanism 154 comprises a marker system 160 which is adapted to indicate an activation of the plunger releasing mechanism 154. The marker system 160 comprises a first marker element 162 which is provided on an outer surface of the first housing element 86. The marker system 160 further comprises a second marker element 164 which is provided on an outer surface of the second housing element 88. The first and the second marker element 162, 164 are arranged on the first and the second housing element 86, 88 in such a position that they are positioned offset relative to each other a circumferential direction of the plunger 70, when the plunger release mechanism 154 is not activated, but positioned in alignment with each other, when the plunger release mechanism 154 is activated, compare
(77) The injection device 10 further comprises a limiting mechanism 166 which is adapted to limit the movement of the first and the second dosing surface 146, 148 for disengaging the dosing element 144 from the first dosing surface 146 and for aligning the dosing element 144 with the second dosing surface 146, see
(78) A second drag mechanism 172 serves to exert a retaining force which retains the first housing element 86 in its current position relative to the second housing element 88. Due to the presence of the second drag mechanism 172, active manual actuation is necessary for rotating the first housing element 86 relative to the second housing element 88. The second drag mechanism 172 thus prevents an unintentional displacement of the first housing element 86 relative to the second housing element 88 and hence an unintentional activation of the plunger releasing mechanism 154. The second drag mechanism 172 comprises a friction element 174 which is provided on the first limiting element 168 of the limiting mechanism 166 and which is adapted to frictionally interact with the retaining element 158 of the second housing element 88.
(79) The injection device 10 further comprises an activation mechanism 176 which is adapted to prevent an activation of the plunger releasing mechanism 154 unless the plunger 70 is arranged at the first dosing position P1 and which is adapted to allow an activation of the plunger releasing mechanism 154 when the plunger 70 is arranged at the first dosing position P1 see
(80) The activation mechanism 176 comprises the guiding channel 94 which is provided on the circumferential surface of the plunger 70, which extends along the longitudinal axis of the plunger 70 and which receives the guiding element 92 provided on the first housing element 86 in such a manner that the guiding channel 94, upon displacement of the plunger 70 relative to the injection solution receptacle 30, is displaced relative to the guiding element 92. An interaction between the guiding element 92 and opposing side surfaces of the guiding channel 94 prevents a rotation of the plunger 70 and the first housing element 86 relative to each other. The activation mechanism 176 thus fulfills the double function to provide for a guided displacement of the plunger 70 in the direction of its longitudinal axis on the one hand and to simultaneously prevent an unintentional deactivation of the first plunger stop mechanism 154 when the plunger 70 is not arranged at the first dosing position.
(81) The activation mechanism 176 further comprises an activation channel 178 which branches off from the guiding channel 94 and extends in a circumferential direction of the plunger 70 substantially perpendicular to the guiding channel 94. The activation channel 178 receives the guiding element 92 when the plunger 70 is arranged at the first dosing position P1 and the first housing element 86 is rotated relative to the plunger 70. Hence, the first dosing position P1 of the plunger 70 is defined by the position of the activation channel 178 along the longitudinal axis of the plunger 70.
(82) Finally, the plunger release mechanism 154 further comprises a locking arrangement 180 which locks the first dosing surface 146 in its position relative to the dosing element 144 after the first dosing surface 146 has been moved relative to the dosing element 144 in order to become disengaged from the dosing element 144, see
(83) The locking clip 182 deforms back into its rest position after completion of the movement of the first dosing surface 146, i.e. after completion of the rotation of the first housing element 86, and interacts with the locking element 184 so as to lock the first housing element 86 relative to the second housing element 88 and the plunger 70. In particular, the locking clip 182 interacts with the locking element 184 so as to prevent a counter rotation of the first housing element 86 relative to the second housing element 88 and the plunger 70, after the first housing element 86 has been rotated once in order to disengage the first dosing surface 146 from the dosing element 144 and to align the second dosing surface 148 with the dosing element 144. Consequently, the first dosing surface 146 is locked in its position relative to the dosing element 144. The locking arrangement 180 allows the plunger release mechanism 154 to be used only once for deactivating the first plunger stop mechanism 140. As a result, reuse of the injection device 10 is prevented.
(84) After completion of the rotational movement of the first housing element 86 relative to the second housing element 88 with the plunger 70 being arranged in its first dosing position P1, the dosing element 144 is aligned with the recess 152 formed in the first dosing surface 146. Consequently, the abutting surface 150 of the dosing element 144 is arranged parallel to the second dosing surface 148 at the distance S. As a result, the plunger 70 can further be displaced from the first dosing position P1 in the distal direction by the distance S into the second dosing position P2, until the dosing element 144, i.e. its abutting surface 150 abuts against the second dosing surface 148, compare
LIST OF REFERENCE NUMERALS
(85) injection solution transferring system 100
(86) injection device 10
(87) filling adapter 12
(88) syringe 14
(89) hollow sleeve 16
(90) adapter element 18
(91) first connecting port 20
(92) second connecting port 22
(93) retention shoulders 23
(94) crush ribs 24
(95) female Luer taper (of the first connecting port) 25
(96) through-opening 26
(97) inlet section (of the through-opening) 26a
(98) intermediate section (of the through-opening) 26b
(99) receiving section (of the through-opening) 26c
(100) longitudinal axis (of the filling adapter) L1
(101) longitudinal axis (of the injection device) L2
(102) cannula 27
(103) plunger (of the syringe) 28
(104) injection solution receptacle 30
(105) resilient clip 32
(106) collar (of the syringe) 34
(107) arm (of the resilient clip) 36
(108) recess 38
(109) latching nose (of the resilient clip) 40
(110) first gripping structure 42
(111) outer barrel 44
(112) flange element 46
(113) male Luer taper (of the injection solution receptacle) 48
(114) female Luer taper (of the second connecting port) 50
(115) Luer thread (of the outer barrel) 52
(116) Luer thread (of the second connecting port) 54
(117) second gripping structure 56
(118) guiding ribs 58
(119) venting device 64
(120) radial bore 66
(121) air gap 68
(122) plunger 70
(123) actuation button 72
(124) tip element 74
(125) plunger rod 76
(126) tip barb 78
(127) barb receptacle 80
(128) sealing element 82
(129) distance distal tip plunger/distal tip cannula D
(130) observing windows 83
(131) housing 84
(132) first housing element 86
(133) second housing element 88
(134) plunger through-hole 90
(135) guiding element 92
(136) guiding channel 94
(137) assembly channel 96
(138) plunger positioning mechanism 98
(139) distal end face (of the guiding channel) 102
(140) interference pin 104
(141) interference receptacle 106
(142) alignment pin 108
(143) alignment receptacle 110
(144) receptacle (for receiving flange element) 112
(145) plunger guide 114
(146) first drag mechanism 116
(147) resilient drag element 118
(148) drag rib 120
(149) plunger locking mechanism 122
(150) lever element 124
(151) hinge 126
(152) rotational axis 128
(153) foot elements 130
(154) locking rim 132
(155) stop device 134
(156) abutment surface (of the plunger) 136
(157) retention device 138
(158) first plunger stop mechanism 140
(159) second plunger stop mechanism 142
(160) first dosing position P1
(161) second dosing position P2
(162) dosing element 144
(163) first dosing surface 146
(164) second dosing surface 148
(165) distance first dosing surface/second dosing surface S
(166) abutting surface (of the dosing element) 150
(167) recess 152
(168) plunger releasing mechanism 154
(169) retaining recess 156
(170) retaining element 158
(171) gripping structure 159
(172) marker system 160
(173) first marker element 162
(174) second marker element 164
(175) limiting mechanism 166
(176) first limiting element 168
(177) second limiting element 170
(178) second drag mechanism 172
(179) friction element 174
(180) activation mechanism 176
(181) activation channel 178
(182) locking arrangement 180
(183) resilient locking clip 182
(184) locking element 184