Auto-injector release mechanism
Patent Information
- Application Number
- JP2024525071
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-01-28
- Filing Date
- 2022-10-26
- Publication Date
- 2025-11-04
AI Technical Summary
Existing auto-injectors are complex, costly, and environmentally impactful due to their disposable nature, requiring a large number of components and intricate assembly processes, which complicates manufacturing and increases material usage.
A simplified auto-injector design featuring a prefilled syringe housed within a drive chassis, secured by a drive spring, with a trigger arm and stop mechanism that allows for reliable actuation using a minimal number of components, including a release mechanism that disengages upon actuation, reducing complexity and size.
The design minimizes component count, reduces material usage, lowers manufacturing costs, and decreases environmental impact by simplifying assembly while maintaining reliable and rapid actuation, allowing for compact packaging and efficient drug delivery.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to an automatic injector comprising a housing in which a prefilled syringe is placed, and a drive chassis mounted in said housing, said drive chassis being biased against said housing by a drive spring and being fixed relative to the housing and fixed against movement relative to the housing during a retraction phase of the automatic injector, said automatic injector comprising a release mechanism, said release mechanism comprising a trigger arm which engages with a stop mechanism present in the housing during a retraction phase of the automatic injector, said trigger arm being adapted to be disengaged from said stop mechanism when the automatic injector is actuated.
[0002] An auto-injector is generally a disposable device configured to administer a medication from a pre-filled syringe. Such devices are intended for single use and administration by a patient or a caregiver. At the time of use, a user removes a protective cap from the proximal end of the auto-injector, positions the auto-injector at an injection site, and pushes the auto-injector axially proximally to achieve needle insertion of the pre-filled syringe needle into the skin and initiate administration.
[0003] One object of the invention is to enable reliable and rapid activation of the autoinjector before use.A further object of the invention is to make available an autoinjector that is made in a very simple process from a very small number of low-cost components compared to the state of the art.A further object of the invention is to make available a design that is as compact as possible.
[0004] This object is met by an automatic injector comprising the subject matter of claim 1.
[0005] Such an automatic injector comprises a housing in which a prefilled syringe is disposed, and a drive chassis mounted within the housing, the drive chassis being biased against the housing by a drive spring and being fixed relative to the housing and fixed against movement relative to the housing during a retraction phase of the automatic injector, the automatic injector further comprising a release mechanism comprising a trigger arm that engages with a stop mechanism present in the housing during a retraction phase of the automatic injector to fix the drive chassis relative to the housing, the drive chassis further comprising a trigger rim adapted to accommodate at least a portion of the drive spring, the trigger arm being arranged to extend proximally from the trigger rim, the trigger arm being configured to be disengaged from the stop mechanism upon actuation of the automatic injector.
[0006] Due to the disposable nature of single use auto-injectors, it is considered advantageous to thus minimize the complexity, material usage, package size and assembly complexity of the auto-injector (as all this tends to reduce cost and environmental impact), and this is achieved by the auto-injector presented herein, specifically by providing a release mechanism in the form of a trigger arm on the drive chassis, i.e. a part that is movable relative to the housing, and a stop mechanism on the housing, such that the two components are locked relative to each other in the retraction phase, are movable relative to each other during the administration phase and are locked relative to each other by the release mechanism in the retraction phase, thereby minimizing the number of components required for such an auto-injector.
[0007] Such an apparatus also leads to a reduction in the size of the device and therefore a reduction in the amount of raw materials used.
[0008] Additionally, fewer parts are used, reducing the cost of manufacturing the device and simplifying the assembly process.
[0009] Smaller devices also translate into less volume required for shipping and storage, which can be expensive especially when low temperatures are required, and this also reduces the carbon footprint associated with such auto-injectors.
[0010] In this regard, it should be noted that the drive chassis may be a component arranged within the housing that moves linearly for the purpose of administering the medicament from the pre-filled syringe, i.e. that comprises a mechanism that respectively acts within the pre-filled syringe for administration.
[0011] In this regard, it should be noted that the release mechanism is a mechanism configured to release, i.e., allow relative movement of, the components of the automatic injector to effect a dosing action when the release mechanism is respectively triggered and actuated by movement of the trigger arm relative to the housing.
[0012] In this regard, it should further be noted that the stop mechanism may act as a rest to hold the trigger arm against an abutment in the housing during the retraction phase of the automatic injector, i.e. to stop the trigger arm from moving relative to the housing during the retraction phase.
[0013] In this regard, it should be further noted that the trigger limb is part of the drive chassis, which is adapted to house at least a portion of the drive spring, i.e. may be internally configured to receive and possibly interact with components of the drive spring, such as several windings of the spring if configured as a coil spring or the like.
[0014] In this regard, it should further be noted that the trigger arm may extend in a direction away from the trigger arm in the direction that the drive chassis moves when administering the medication contained in the prefilled syringe.
[0015] It should further be noted that the trigger arm may be configured to be disengaged from the stop mechanism upon actuation of the automatic injector, i.e. released from its retention function during the retraction phase, thereby allowing the trigger arm to move relative to the housing together with the drive chassis during the administration phase.
[0016] The stop mechanism may include a surface and the trigger arm may be configured to cooperate with said surface of said stop mechanism In this way, an easy to implement retention mechanism can be achieved that stops relative movement between the two components during the retraction phase.
[0017] The surface may be a convex surface, which may provide an even more efficient and reliable release mechanism. Such a convex surface may have two surfaces that are inclined relative to each other and connected to each other via an apex. Such a convex surface may act as a resistance to axial movement in one direction and may allow axial movement in the opposite direction.
[0018] The trigger arm may include a protrusion that engages the stop mechanism, which may cooperate with the stop mechanism in a simple manner for retention purposes and may be simply disengaged from engagement by corresponding displacement of the trigger arm relative to the stop mechanism, for example upon actuation of the auto-injector.
[0019] The protrusions may be configured to cooperate with said surface. In this way, relatively small components can cooperate with the surface, minimizing the design size of the device.
[0020] The trigger arm may include a web protruding therefrom, such that the trigger arm may have several portions configured to perform different functions making the trigger arm more versatile.
[0021] The web may be located on a different surface than the surface on which the protrusion is located, allowing the trigger arm to have different functions acting in different spatial orientations leading to a more compact and versatile design of the auto-injector.
[0022] The auto-injector may further include a needle guard that may be axially moved toward the drive chassis to engage a release mechanism to potentially release the drive chassis from the housing upon actuation of the auto-injector. The needle guard may be used to protect a user from accidental needle sticks before and / or after use of the auto-injector. Additionally, the needle guard may be used as part of the release mechanism to reduce the number of components required to form the auto-injector.
[0023] The needle guard may engage with the trigger arm as it moves axially towards the drive chassis In this way, the most compact possible design can be achieved.
[0024] The axial movement of the needle guard may be configured to deflect a trigger arm of the release mechanism in a direction transverse to the axial movement, resulting in a different movement of the trigger arm than the axial movement the drive chassis is configured to perform for drug administration.
[0025] The needle guard may include a plunger arm with a blocking rib. In this manner, the needle guard can be used to perform multiple functions that reduce the total number of components in the auto-injector.
[0026] A blocking rib may prevent radial movement of the trigger arm during the retraction stage. Providing a component which acts to prevent movement of the trigger arm during the retraction stage means that false triggering of the release mechanism can be avoided.
[0027] The plunger arm may include a cam having an engagement surface configured to engage the trigger arm. In this manner, a portion of the needle guard may be dedicated to engaging the trigger arm for rapid and reliable release of the release mechanism.
[0028] The cam of the plunger arm may project radially from the plunger arm directly adjacent the blocking rib, such that in the retraction phase the cam faces the trigger arm. In this way a compact assembly of the release mechanism can be achieved.
[0029] The needle guard may include an engagement surface configured to engage a web of the trigger arm. In this manner, a portion of the needle guard may be dedicated to engaging the trigger arm for rapid and reliable release of the release mechanism.
[0030] The web may protrude from the trigger arm in a transverse direction facing the cam of the plunger arm. In this way, a design of the trigger arm that is as compact as possible can be achieved.
[0031] The engagement surface may be angled relative to the direction of movement of the drive chassis, thus allowing the engagement surface of the needle guard to be gradually engaged with the trigger arm.
[0032] The engagement surface may in particular be gradually sloped to deflect said trigger arm in a direction different from the axis of movement of the needle guard, which facilitates a particularly simple and smooth way of releasing the release mechanism that moves the auto-injector from the retraction stage to the administration stage.
[0033] The drive spring may be configured to lock the trigger arm relative to the stop mechanism during a retraction phase to prevent transverse and / or radial movement thereof, such that the inherent spring force of the drive spring can be used to urge the trigger arm into engagement with the stop mechanism.
[0034] The drive spring may be further configured to move the trigger arm out of engagement with the stop mechanism following an initial distal and lateral movement of the trigger arm upon actuation of the auto-injector. In this manner, an inherent spring force may be used to facilitate part of the triggering sequence when moving the auto-injector from the retraction stage to the administration stage.
[0035] The drive spring may be configured to drive the drive chassis toward the needle guard after actuation of the auto-injector. In this manner, medication stored within the auto-injector can be expelled from the pre-filled syringe by movement of the drive chassis in a fast and efficient manner using the spring force stored in the drive spring.
[0036] A surface of the stop mechanism may be configured to cooperate with the trigger arm to prevent transverse and / or radial movement thereof, in this manner the trigger arm may be blocked from such movement when engaged with the stop mechanism.
[0037] The drive chassis may be configured to be urged towards the drive spring to overcome the stop mechanism. In this manner, relative movement between the drive chassis and the housing can be effected in two directions of movement, and the user must apply a certain force to the auto-injector to trigger the release mechanism, thereby reducing the likelihood of accidental triggering of the auto-injector and the medication stored therein.
[0038] The surface may include at least a portion of the surface that is inclined relative to the axial direction, such that a portion of the surface must be overcome by the trigger arm when triggering the release mechanism of the auto-injector.
[0039] The surface may include a two-part surface that is inclined relative to each other and relative to the axial direction, such that the other part surface may facilitate proximal movement when inclined in such a direction, thereby aiding in the transition from the retraction phase to the administration phase when the auto-injector is actuated.
[0040] The stop mechanism may be formed by an opening in the housing, preferably an outer wall of the housing. In this way, the release mechanism can be made as compact and as simple as possible, which leads to a reduction in the size and complexity of the auto-injector.
[0041] The stop mechanism may be formed by an opening in the outer body of the housing, which is particularly beneficial where the housing is formed as a two-part housing comprising an inner body and an outer body, for reasons of manufacturing simplicity and efficiency.
[0042] In this connection, it should be noted that the openings in the housing are shown as through openings, i.e. open both to the outer wall of the housing as well as to the inner wall of the housing, but may also be formed as recesses in the inner wall of the housing so as not to penetrate the wall of the housing.
[0043] The invention will now be described with reference to the drawings and the accompanying drawings, which are given by way of example only. [Brief description of the drawings]
[0044] [Figure 1] FIG. 1A shows a) a side view of the auto-injector in the retracted phase and b) a further side view of the auto-injector of FIG. 1A in the retracted phase. [Diagram 2] FIG. 1B shows a) a side view of the auto-injector of FIG. 1a in the administration phase, and b) a further side view of the auto-injector of FIG. 1a in the administration phase. [Diagram 3] FIG. 1 is a side view of a drive chassis for an auto-injector. [Figure 4]FIG. 1A shows the auto-injector of FIG. 1A in a) storage stage, b) actuation stage immediately preceding administration stage, and c) lockout stage. [Figure 5a] FIG. 2 shows a cap of an auto-injector. [Figure 5b] 5b is a cross-sectional view of the auto-injector in the area where the cap of FIG. 5a is placed at the needle guard end of the auto-injector. FIG. [Figure 6] FIG. 1 is a partial cross-sectional view of the auto-injector showing a cap installed on the needle guard end of the auto-injector. [Figure 7a-c] FIG. 2 is a partial cross-sectional view of the auto-injector with a portion of the housing removed to reveal components of the auto-injector's release mechanism when the auto-injector is actuated. [Figure 8a-c] FIG. 8 is a detailed view showing the release mechanism of the auto-injector of FIG. [Figure 9a-c] 9A to 9C are a front view, a side view, and a top view, respectively, showing the release mechanism of FIG. 8. [Figure 10] FIG. 1 shows a) the position of the needle guard of the auto-injector relative to the housing in the retracted phase and b) the position of the needle guard of the auto-injector relative to the housing in the lockout phase. [Figure 11] FIG. 2 shows a) a partial cross-sectional view of the audible feedback member of the automatic injector in the administration stage at the end of a dose, and b) an enlarged view of the audible feedback member of the automatic injector in the administration stage at the end of a dose. [Figure 12a-f] 1A-1D are various views of an example of a cap for an automatic injector. [Figure 13a-j] 1A-1D are various views of an example of an outer body of an auto-injector. [Figure 14a-j] 1A-1D show various views of an example inner body of an auto-injector. [Figure 15a-j] 1A-1D are various views illustrating an example of a needle guard for an auto-injector. [Figure 16a-k] 1A-1D are various views illustrating an example of a needle shield of an auto-injector. [Figure 17a-l] 1A-1D are various views of an example drive chassis of an auto-injector; DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0045] The following directional references are made with reference to the drawings and may of course vary with different viewing positions. Furthermore, similar parts, or parts having similar functions, are referred to below using the same appearance and / or reference numerals.
[0046] 1a and 1b show a side view of an auto-injector 10. The auto-injector 10 is a medical device that serves the purpose of administering a single dose of a medication M. The auto-injector 10 can be used to administer medication M by medical staff as well as by patients themselves.
[0047] The auto-injector 10 has a housing 12 in which there is a syringe window 14 (see FIG. 1a). A pre-filled syringe 16 is disposed within the housing 12 and is visible through the syringe window 14. The pre-filled syringe 16 is filled with a medication M.
[0048] A needle guard 18 (see, e.g., FIG. 2a) is disposed at the proximal end 28 of the auto-injector 10. The needle guard 18 serves to protect the patient from the needle 34 (see, e.g., FIG. 3b) before and after use of the auto-injector, i.e., during the retraction and lockout phases of the auto-injector 10.
[0049] In this regard, it should be noted that the terms proximal and distal refer to the position of the needle 34 relative to the patient, with proximal meaning closest to the main mass of the patient's body and distal meaning farther from the main mass of the patient's body.
[0050] FIG. 1b shows the status indicator window 20 through which a first portion exterior surface 50 of the drive chassis 24 of the auto-injector 10 is visible.
[0051] The cap 70 is disposed at the proximal end 28 of the auto-injector 10, opposite the distal end 30 of the auto-injector 10. The cap 70 covers both the needle 34 and the needle guard 18 during the retraction phase of the auto-injector 10.
[0052] 2a and 2b show the auto-injector 10 of FIG. 1 with the cap 70 removed and the needle guard 18 moved distally, i.e., away from the proximal end 28, into the auto-injector 10. The distal movement of the needle guard 18 into the auto-injector also engages the release mechanism 40 (see, e.g., FIG. 4).
[0053] Upon engaging the release mechanism 40, the drive chassis 24 (see also FIG. 3) moves proximally, causing its dosing rim 22 to move the plunger 26 through the pre-filled syringe 16 to dispense the medication M via the needle 34.
[0054] In this regard, it should be noted that the plunger 26 may be a separate piece from the dosing rim 22 and may be pre-disposed within the pre-filled syringe and configured to be engaged by the dosing rim 22.
[0055] In other designs of the auto-injector 10 , the plunger 26 may be part of the dosing rim 22 .
[0056] FIG. 2 a shows that after the drive chassis 24 has been moved proximally, ie, during the end-of-dosing phase of the auto-injector 10 , the dosing rim 22 , the drive chassis 24 and the plunger 26 are present in the syringe window 14 .
[0057] FIG. 2 b shows the second portion outer surface 52 of the drive chassis within the status indicator window 20 .
[0058] In the figures above, the status indicator window 20 on the side of the auto-injector 10 indicates the device status in a clear binary manner, which can be very useful, especially to the unsophisticated user. Before administration (and possibly during administration), the color displayed through the window is printed on the drive chassis 24 (see also FIG. 3). At the end of administration, the molded color (indicated by a hash line) of the drive chassis 24 is displayed through the status indicator window 20. Other display configurations are possible, such as using graphics, icons, or text to indicate that administration is in progress.
[0059] Additionally, prior to administration, the dispensable fluid volume of medication M is clearly visible through a syringe window 14, which is formed as a large curved window in housing 12. The geometry of this window 14 is intended to maximize the viewing angle for the user.
[0060] Since the movement of plunger 26 and drive chassis 24 is visible through syringe window 14, the progress of the dosage can also be viewed through window 20.
[0061] At the end of administration, the syringe window 14 is blocked by the drive chassis 24 and plunger 26 to provide an additional visual indication that the auto-injector 10 has been used. This means that there are two different visual indications of end of medication. The portion of the drive chassis 24 visible through the syringe window 14 can be provided with surface decoration or indicia, for example, printed in a different color to provide an additional visual communication of end of administration.
[0062] 3 shows the drive chassis 24. The drive chassis 24 includes a dosing rim 22 and a trigger rim 32. The trigger rim 32 and the dosing rim 22 are arranged parallel to one another. The drive chassis 24 is a component configured to move linearly within the housing to expel the medicament M from the pre-filled syringe upon actuation of the auto-injector 10.
[0063] The trigger rim 32 and the dosage rim 22 are each arranged at least approximately in a U-shape and are connected to each other via a web 42 at the distal end 38 of the drive chassis 24, i.e., axially displaced from each other in the transverse direction T, and the length of the trigger rim 32 is longer than the length of the dosage rim 22.
[0064] In this regard, it should be noted that in other designs, the dosing rim 22 may have the same length as the trigger rim 32 or may be longer than the trigger rim 32 .
[0065] A plunger support 44 is disposed at the end of the dosing rim 22 remote from the web 42. The plunger support 44 is configured to engage the plunger 26 moving through the pre-filled syringe 16, i.e., the plunger support 44 is configured to act on the pre-filled syringe 16 of the auto-injector 10 via the plunger 26 disposed within the pre-filled syringe 16.
[0066] The trigger arm 36 is configured to extend proximally beyond the trigger rim 32 in both a transverse direction T and a radial direction R relative to an axial direction A that extends parallel to the trigger rim 32. The trigger arm 36 is disposed extending from the trigger rim 32 in a direction away from a distal end 38.
[0067] The trigger arm 36 is fixedly attached to the trigger rim 32 and is movable relative to the trigger rim 32 .
[0068] The trigger arm 36 is connected to the trigger rim at a location corresponding to the length of the trigger rim 32, which corresponds to 20-80% of the length of the trigger rim 32 from its distal end 38.
[0069] In this regard, it should be noted that the drive chassis 24 is formed in one piece, i.e. the trigger rim 32, the dosing rim 22, the plunger support 44 and the trigger arm 36 are integrally formed in one piece, preferably from one and the same material, e.g. in the same injection mould or in one production cycle if manufactured by additive manufacturing techniques.
[0070] The drive chassis 24 may be mounted to the auto-injector 10 shown in connection with Figures 1 and 2. The drive chassis 24 may then be linearly guided within the housing 12 of the auto-injector 10 as the auto-injector 10 moves from a storage stage to an administration stage of the auto-injector.
[0071] For this purpose, the drive chassis 24 may have first and second guide aids 46, 48 which cooperate with corresponding structures present in the housing 12. In this example, the first and second guide aids 46, 48 are formed by first and second grooves 46', 48', respectively, which extend in the axial direction A along the dosing rim 22 at the trigger rim 32, respectively. The first and second grooves 46', 48' cooperate with lugs 164, 228 (see, for example, Figs. 10a and 13g, respectively), which are present on the inner wall of the housing 12.
[0072] Alternatively, the drive chassis 24 may include lugs as first and second guide aids 46,48 that cooperate with corresponding grooves in the housing 12.
[0073] Alternatively, the trigger rim 32 and the dosing rim 22 may be shaped to cooperate with guide structures present in the housing 12, for example, the trigger rim 32 and the dosing rim 22 may have a rounded profile in a cross section taken perpendicular to the axial direction A, the rounded profile of the trigger rim 32 and the dosing rim 22 therefore being guided in a complementarily shaped portion of the housing 12.
[0074] In the retraction phase, the trigger arm 36 is held by a stop mechanism 54 (see, for example, FIG. 4a). When moving the auto-injector from the retraction phase to the administration phase of the auto-injector, the trigger arm 36 is biased out of engagement with the stop mechanism 54. To this end, the trigger arm 36 is movable relative to the trigger rim 32, i.e. the position of the trigger arm 36 can be moved relative to the trigger rim 32.
[0075] In this regard, it should be noted that the stop mechanism 54 is disposed at a height along the axis A of the housing 12 that corresponds to 45% of the length of the housing 12 from the distal end 30 of the auto-injector 10.
[0076] In this regard, it should be noted that the stop mechanism 54 can be positioned at a height along the axis A of the housing 12 selected from the distal end 30 of the auto-injector 10 within the range of 30-70% of the length of the housing 12.
[0077] In this regard, it should be noted that the trigger arm 36 is configured to move radially in a radial direction R and transversely in a transverse direction T relative to the trigger rim 32 .
[0078] The trigger rim 32 has an exterior surface 49 that includes a first portion exterior surface 50 (a hashed surface) and a second portion exterior surface 52 (a black exterior surface). The first portion exterior surface 50 and the second portion exterior surface 52 lie in a transverse plane of the trigger rim 32, i.e., a transverse plane pointing in the transverse direction T. The first portion exterior surface 50 and the second portion exterior surface 52 are visible through the status indicator window 20 during different stages of use of the auto-injector 10.
[0079] Specifically, as shown in FIG. 1b, the first portion outer surface 50 is visible through the status indicator window 20 during the retraction phase of the automatic injector 10, and the second portion outer surface 52 is visible through the status indicator window 20 during the administration phase toward the end of the dose, and during the lockout phase of the automatic injector 10 following the end of the dose.
[0080] A first rim of the U-shaped drive chassis 24 is formed by the dose rim 22 and a second rim of the U-shaped drive chassis 24 is formed by the trigger rim 32 .
[0081] The distal end of the syringe window 14 is disposed at approximately the same height as the distal end of the status indicator window 20. The syringe window 14 and the status indicator window 20 are disposed in a portion of the housing 12 where the inner body 80 and the outer body 82 (see FIG. 4) overlap. A third portion of the drive chassis 24 that may be visible in the syringe window 14 is the dosing rim 22, as well as the plunger 26 of the prefilled syringe 16.
[0082] In this regard, it should be noted that the first portion 50 and the second portion 52 of the drive chassis 24 are not visible through the syringe window 14 .
[0083] The appearance of the first portion outer surface 50 and the second portion outer surface 52 are different from each other, i.e., they are different from each other, so that a user (not shown) can distinguish between different stages of use, i.e., the first portion outer surface 50 and the second portion outer surface 52.
[0084] In this example, second portion exterior surface 52 includes printed indicia in the form of hash structures, although other types of surface decoration and / or indicia may be used. First portion exterior surface 50 is formed, for example, in the same color as the rest of drive chassis 24, but may also have some other color with some form of surface indicia and / or decoration, or other form of visual indicator.
[0085] By way of example, words such as "FULL AND / OR READY" and "EMPTY AND / OR USED" may be printed on the first portion outer surface 50 and the second portion outer surface 52. Additionally and / or alternatively, the first portion outer surface 50 and the second portion outer surface 52 may be colored differently from one another, such as red or green.
[0086] The auto-injector 10 shown in Figures 4a-4c comprises a needle guard 18, a removable cap (Figure 4a only), a pre-filled syringe 16 disposed within the housing 12, a drive spring 74, a lockout spring 76 and a removable needle shield 78 (RNS).
[0087] Figure 4a shows the auto-injector 10 of Figure 1a in the retraction stage, Figure 4b shows the auto-injector 10 of Figure 1a in the actuation stage immediately prior to the administration stage, and Figure 4c shows the auto-injector 10 of Figure 1a in the lockout stage.
[0088] During the storage phase of the auto-injector 10, a cap 70 is placed on the proximal end 28 of the auto-injector 10. When the cap 70 is removed, the needle guard 18 of the auto-injector 10 is accessible.
[0089] Needle guard 18 is axially movably mounted within housing 12 for movement between the retraction, administration, and lockout phases. Needle guard 18 has a different axial position relative to housing 12 during each of the retraction, administration, and lockout phases.
[0090] As shown in FIG. 4b, needle guard 18 is moved distally along axis A to make needle 34 externally accessible, ie, so that the patient can insert needle 34 into his or her skin.
[0091] As the patient moves the auto-injector 10 towards the injection point, the needle guard 18 may automatically move distally along the axis A as contact with the patient's skin automatically moves the needle guard into the housing 12 of the auto-injector 10. To this end, the needle guard 18 is configured for axial movement in the distal direction between the retraction and administration stages.
[0092] When moving the needle guard from the retracted position to the dispense position, the lockout spring 76 is biased between the needle guard 18 and the inner body 80 of the housing 12 .
[0093] Once the medication M is administered, i.e., dispensed from the auto-injector 10, the needle guard 18 is configured to move axially proximally between the administration stage and the lockout stage upon removal of the auto-injector 10 from the injection site. This movement of the needle guard 18 is accomplished automatically by the relaxation of the lockout spring 76.
[0094] Housing 12 is a two-part housing formed of an inner body 80 and an outer body 82 that are fixed in position relative to one another and snap-fit together via connection 72 .
[0095] As shown in FIG. 4 b , the connection 72 is formed by a nose 188 formed on the inner body that is configured to hook into a window 190 formed in the outer body 82 .
[0096] In this regard, it should be noted that connection 72 can also be made via different types of connections. For example, nose 188 can be formed in outer body 82, protrude toward inner body 80, engage window 190, and then formed in inner body 80, or a different form of connector can be used to make connection 72.
[0097] The trigger arm 36 is actuated by the needle guard 18 of the auto-injector 10 when moving the auto-injector 10 from a storage stage to an administration stage of the auto-injector 10. As can be seen by comparing Figures 4a and 4b, the trigger arm 36 is biased in a transverse direction T. In addition, the trigger arm 36 is also biased in a radial direction R.
[0098] The drive spring 74 is disposed within the housing 12 of the auto-injector 10. Specifically, the drive spring 74 is disposed between a distal housing wall 84 and the drive chassis 24. More specifically, the drive spring 74 is disposed between the distal housing walls 84 of the outer body 82 and within the trigger rim 32 of the drive chassis 24. To fix the position of the drive spring 74, it may be disposed on a protrusion 86 that protrudes proximally from the distal housing wall 84 of the outer body 82.
[0099] The drive spring 74 is received within a passage 140 formed in the trigger rim 36 of the drive chassis 24. This means that the trigger rim 36 is configured to receive the drive spring 74. In this example, the passage 140 has a cylindrical shape that is complementary to the outer shape of the drive spring 74.
[0100] As can be seen by comparing Figures 4a and 4b with Figure 4c, the drive spring 74 is relaxed in the lockout stage compared to the other two stages because disengagement between the trigger arm 36 and the stop mechanism 54 allows the drive chassis 24 to move proximally relative to the housing, i.e., relative to the inner and outer bodies 80, 82, with the previously biased drive spring 74 relaxed.
[0101] The drive spring 74 also biases the trigger arm 36 in the retracted phase of the auto-injector 10 against the housing 12 of the auto-injector 10 by pressing against the stop mechanism 54 using the inherent spring bias of the drive spring 74 .
[0102] The drive spring 74 is further configured to push the plunger support 44 of the drive chassis of the auto-injector 10 into the pre-filled syringe 16. This is due to the fact that the drive chassis 24 is linearly guided within the housing 12 and is allowed to move in a proximal direction when the trigger arm 36 is released from engagement with the stop mechanism 54.
[0103] The needle guard 18 surrounds the needle 34 of the pre-filled syringe 16 during the retraction and lockout phases. When the cap 70 is removed and the auto-injector 10 is moved to the administration phase, the needle guard 18 no longer surrounds the needle 34 of the pre-filled syringe 16.
[0104] As shown in FIGS. 4a-4c, the auto-injector 10 further comprises a lockout spring 76 disposed between the needle guard 18 and the housing 12, more specifically between the inner body 80 and the needle guard 18.
[0105] The lockout spring 76 is biased between an end wall 88 of the needle guard 18 and a proximal end 92 of the inner body 80. The end wall 88 is disposed proximally relative to the inner body 80 and the drive chassis 24.
[0106] Additionally, needle guard 18 includes a projection 90 that projects distally from proximal end 28. Lockout spring 76 is disposed within projection 90, and in particular, projection 90 projects into lockout spring 76.
[0107] The needle guard 18 is configured to compress the lockout spring 76 when moving between the retraction and administration stages by the lockout spring 76 abutting the proximal end 92 of the inner body 80 of the auto-injector 10 and the projection 90 being guided through an aperture 91 present in the inner body 80.
[0108] After the auto-injector 10 has been used and the auto-injector is removed from the injection site, the needle guard 18 is configured to move proximally between the administration and lockout stages due to relaxation of the lockout spring 76 .
[0109] In this connection, it should be noted that the projection 90 can also be provided on the inner body 80 so as to project towards the proximal end 28 of the needle guard 18. If this option is chosen, the length of the projection 90 should be adapted so that it does not hinder the needle guard from moving in the distal direction and / or does not project beyond the needle guard 18 during the administration phase and come into contact with the patient's skin, for example when cooperating with an aperture (not shown) in the needle guard 18.
[0110] During a retraction phase of the auto-injector 10, the needle guard 18 is disposed in a first axial position. During an administration phase, the needle guard 18 is disposed in a second axial position, and during a lockout phase, the needle guard 18 is disposed in a third axial position. The first, second, and third axial positions are each distinct from one another, the third axial position is proximal to the first and second axial positions, and the first axial position is proximal to the housing 12 relative to the second axial position.
[0111] In this regard, it should be noted that in other designs of the auto-injector 10, the third axial position may be the same as or very similar to the first axial position.
[0112] This means that the exterior length of the auto-injector 10 with the cap 70 removed is longest in the lockout phase, shortest in the administration phase, and intermediate in length in the retraction phase.
[0113] 5a shows a perspective view of the removable cap 70. The cap 70 is of a single piece design. The needle guard 18 is configured to cooperate with the cap 70 via one or more snap-fit connections 94, each of which includes a protruding edge 96 (see, e.g., FIG. 6) that cooperates with a corresponding snap-fit area 98.
[0114] In this regard, it should be noted that each of the following components, namely, outer body 82, inner body 80, drive chassis 24, needle guard 18, cap 70, and / or needle shield 78, may each be integrally formed in one piece, preferably from one and the same material, e.g., in the same injection mold.
[0115] As shown in Figure 5a, the removable cap 70 has a base 100. The cap 70 tapers outwardly in the region of the base 100 such that the base 100 of the cap 70 has a larger outer diameter than the remaining cap 70. This is particularly beneficial as the base 100 can act as a stand for the auto-injector 10 during the retraction phase of the auto-injector 10.
[0116] The end 102 of the cap 70 facing the needle guard comprises a needle shield holder 104 at the end of the cap 70 disposed opposite the base 100. The needle shield holder 104 is configured to hold a removable needle shield 78 that covers the needle of the pre-filled syringe 16 during the retraction phase of the auto-injector 10.
[0117] The inner wall 106 of the needle shield holder 104 further includes two windows 112. A respective one of the inwardly facing protrusions 108 is disposed in each of the windows 112.
[0118] Two recesses 114 are formed in the inner wall 106 of the needle shield holder 104 of the cap 70. The recesses are located between the respective portions of the needle shield holder 104 having the windows 112.
[0119] The needle shield holder 104 projects distally from the base 100 of the cap 70 and is surrounded by an outer wall 116 of the cap 70. An inner surface 118 of the outer wall 116 of the cap 70 includes a number of ribs 120.
[0120] 5b, a front end 122 of the needle guard 18 is disposed within an opening 124 in the cap 70. The opening 124 is formed between the outer wall 116 of the cap 70 and the needle shield holder 104.
[0121] The ribs 120 are configured to urge radially inward, ie, in the radial direction R, and transversely inward, ie, in the transverse direction T, against the needle guard 18 during the retraction phase of the auto-injector 10 .
[0122] 5b, the removable needle shield 78 is disposed within the needle shield holder 104. For this reason, the inner wall 106 of the needle shield holder 104 includes an inwardly facing protrusion 108 on the needle guard-facing end 102 that engages a syringe-facing surface 110 of the needle shield 78.
[0123] 6, a raised edge 96 is provided on an outer surface 126 of the needle guard 18. A snap-fit area 98 is provided on an inner surface 118 of the cap 70.
[0124] The snap-fit connection 94 holds the cap 70 in place during the retraction phase of the auto-injector. The cap 70 is removably connected to the needle guard 18 such that when the cap 70 is removed, the needle shield 78 is also removed from the auto-injector 10 as the cap projections 108 bear against the syringe-facing surface 110 of the removable needle shield 78, pulling the removable needle shield in a proximal direction as the cap 70 is removed.
[0125] In order to allow for as compact a design of the automatic injector 10 as possible, the inner surface 128 of the outer body 82 is provided with a groove 130 in which one of the protruding edges 96 can move axially relative to the outer body 82 when the needle guard 18 moves axially.
[0126] Similarly, the inner surface 132 of the inner body 80 is provided with a further groove 134 within which a further one of the protruding edges 96 can move axially relative to the inner body 80 as the needle guard 18 moves axially relative to the housing 12.
[0127] The snap-fit protrusions 96 thereby form a detent feature on the needle guard 18 which engages with a corresponding feature on the cap to provide a tight axial fit between the components after assembly.
[0128] The reverse arrangement of the detent mechanism may also be possible, for example, a snap-fit area may be present on the housing 12 and a corresponding snap-fit protrusion may be present on the cap 70.
[0129] The proximal side of these detent mechanisms (snap-fit protrusions 96) on the needle guard are relatively steep, i.e., the proximal side of the snap-fit protrusions 96 is steeper in the axial direction than the distal side of the snap-fit protrusions 96, so that once the cap 70 is removed and the user attempts to reinstall it, the force attempting to re-engage the detent mechanisms is great enough to move the needle guard 18 distally until the detent mechanisms are hidden within the housing 12.
[0130] In this manner, reattachment of the detent mechanism is not possible (although the cap may be held in place by engagement of the RNS 78 and the syringe glass). Attempting to reattach the cap 70 in this manner will not trigger an administration, as the distance that the needle guard 18 is moved to hide the detent mechanism is designed to be less than the distance required to trigger an administration.
[0131] When the cap 70 is attached to the auto-injector 10, i.e., to the needle guard 18 via the snap-fit connection 94, the cap 70 prevents axial movement of the needle guard 18 when attached to the needle guard 18 during the retraction phase.
[0132] 6, during the retraction phase of the auto-injector 10, the outer wall 116 of the cap 70 contacts the outer wall 136 of the housing 12. The outer wall 116 of the cap 70 and the outer wall 136 of the housing 12 do not overlap in the axial direction A of the auto-injector 10. Furthermore, the outer wall 116 of the cap 70 and the outer wall 136 of the housing 12 overlap radially during the retraction phase of the auto-injector 10.
[0133] In this regard, it should be noted that the housing outer wall 136 is the outer wall 136 of the outer body 82 that forms a portion of the two-part housing 12 .
[0134] A clip mechanism in the form of a protrusion 108 on the cap 70 acts on a distal surface of the rigid needle shield (RNS) 78 to grip the needle shield and remove it from the pre-filled syringe 16 when the cap 70 is removed by the user.
[0135] In this regard, it should be noted that whereas state of the art devices typically construct similar caps from two or more separate components in a common injection molding mold (not shown), a "three-plate tool" construction may be used to mold cap 70, including the clip mechanism (protrusion 108) in a single component.
[0136] The protrusions 108 are supported by the needle guard 18 during removal of the needle shield 78 and help prevent the needle shield holder 104 from splaying outward and disengaging when the needle shield holder 104 is urged radially inward by the needle guard 18.
[0137] 7a-7c show partial cross-sectional views of the auto-injector 10 with portions of the housing 12 removed to reveal the needle guard 18, the drive chassis 24, the pre-filled syringe 16 and components of the housing 12 when the auto-injector 10 is actuated.
[0138] These figures show distal movement of the needle guard 18 into the housing 12, which in turn engages the release mechanism 40, including the trigger arm 36 and stop mechanism 54, prior to proximal movement of the drive chassis 24 to administer the medication M contained in the prefilled syringe 16.
[0139] The needle guard 18 includes a plunger arm 142 as part of the release mechanism 40 of the auto-injector 10. The plunger arm 142 extends distally from the front end 122 of the needle guard 18.
[0140] As can be seen, the relative position of plunger arm 142 with respect to housing 12 varies and the distance that needle guard 18 protrudes beyond housing 12 at proximal end 28 is reduced between Figures 7a and 7c.
[0141] Figures 8a to 8c show detailed views of different positions of the release mechanism 40 of the auto-injector 10 corresponding to the views shown in Figures 7a to 7c.
[0142] FIG. 8a shows a close-up view of components of the release mechanism 40 of the auto-injector 10, including the trigger arm 36 of the drive chassis 24 and the stop mechanism 54 present in the opening 138 in the housing 12 with which the trigger arm 36 cooperates.
[0143] In this regard, it should be noted that opening 138 in housing 12 is shown as a through opening, i.e., open to both the outer wall of housing 12 as well as the inner wall of housing 12. It should be noted, however, that opening 138 may also be formed as a recess in the inner wall of housing 12 such that it does not penetrate the wall of housing 12.
[0144] A drive chassis 24 is mounted to the housing 12 and is biased against the housing 12 via a drive spring 74. The drive chassis 24 is further fixed to the housing 12 and moves relative to the housing 12 during the retraction phase of the auto-injector 10 via a trigger arm 36 held in an opening 138.
[0145] During the retraction phase of the auto-injector 10, the drive spring 74 biases the trigger arm 36 in the axial direction A against the stop mechanism 54. The trigger arm 36 resides to the right within the opening 138 (as viewed in this figure).
[0146] To activate the auto-injector 10 and release the drive chassis 24 from its proximal movement, the auto-injector 10 includes a release mechanism 40 .
[0147] The release mechanism allows for relative movement between the needle guard 18 and the drive chassis 24. This relative movement is accomplished by axial movement of the needle guard 18 towards the drive chassis 24, thereby unlocking the drive chassis 24 from the housing 12 when the auto-injector 10 is actuated.
[0148] To this end, the plunger arm 142 is configured to cooperate with the trigger arm 36 of the drive chassis 24 to actuate the release mechanism 40. As the plunger arm 142 is moved distally, it contacts the trigger arm 36, thereby deflecting the trigger arm 36 in a transverse direction T, indicated by arrow B. A comparison of the position of the trigger arm 36 relative to the opening 138 is shown in Figures 8a-8c.
[0149] The plunger arm 142 of the needle guard 18 includes a blocking rib 144. The blocking rib 144 is configured to block radial movement of the trigger arm 36 when the plunger arm 142 contacts the trigger arm 36.
[0150] In this regard, it should be noted that the blocking rib 144 is also configured to block radial movement of the trigger arm 36 during the retraction phase before axial movement of the needle guard 18 causes the plunger arm 142 to contact the trigger arm 36.
[0151] To engage the trigger arm 36, the plunger arm 142 is provided with a cam 162. The cam 162 has an engagement surface 146 configured to engage the trigger arm 36. The engagement surface 146 protrudes from the cam 162 of the plunger arm 142 at a location adjacent the blocking rib 144 in the transverse direction T so as to face the trigger arm 36.
[0152] Trigger arm 36 includes a web 148. Web 148 extends axially (proximally) from trigger arm 36 below projection 154 and provides a contact surface in the transverse direction T facing cam 162 of plunger arm 142 for engaging cam 162 after needle guard 18 is moved axially (distally).
[0153] When needle guard 18 is moved distally, engagement surface 146 engages web 148. This means that web 148 and engagement surface 146 are provided to further facilitate contact between trigger arm 36 and plunger arm 142.
[0154] In an embodiment not shown, the web 148 may include a deflection surface 150 that is inclined relative to the axis A, ie, the direction of movement of the drive chassis 24 , relative to the trigger arm 36 .
[0155] In this connection, it should be noted that the deflection surface 150 may be inclined with respect to the axial direction A at an angle selected in the range of 0 to 40°, in particular in the range of 5 to 35°, and most preferably in the range of 10 to 30°.
[0156] The engagement surface 146 may also be angled relative to the direction of movement of the drive chassis 24, i.e., axis A. The engagement surface 146 is angled to gradually deflect the trigger arm 36 in a direction transverse to the axis A along which the needle guard 18 travels in order to shift the trigger arm 36 from the right side of the opening 138 in FIG. 8a to the left side of the opening 138 in FIG. 8c.
[0157] In this regard, it should be noted that the engagement surface 146 may be inclined relative to the trigger arm 36 at an angle selected in the range of 5 to 50°, particularly in the range of 7 to 30°, and most preferably in the range of 8 to 20°.
[0158] In this regard, it should be noted that the engagement surface 146 and the web 148 are cooperatively disposed facing one another.
[0159] When engagement surface 146 contacts respective deflection surface 150 of web 148, trigger arm 36 is configured to move, and specifically disengage, from stop mechanism 54 through deflection in the direction of arrow B.
[0160] The opening 138 in which the stop mechanism 54 is disposed includes a surface 152 having a convex shape. The trigger arm 36 is configured to cooperate with the convex surface 152 of the stop mechanism 54.
[0161] To this end, the trigger arm 36 includes a protrusion 154 that engages the stop mechanism 54. The protrusion 154 is configured to cooperate with the opening 138 by so engaging, and by resting against the surface 152 of the stop mechanism 54, at least during the retraction phase of the auto-injector 10.
[0162] The web 148 is disposed on a surface of the trigger arm 36 that is different from a surface of the trigger arm 36 on which the protrusion 154 is disposed. The protrusion 154 is disposed to protrude radially from the trigger arm 36 and the web 148 is disposed to protrude transversely from the trigger arm 36.
[0163] FIG. 8c shows the stage where the engagement surface 146 of the blocking rib 144 of the plunger arm 142 has moved distally in the axial direction A beyond the axial position of the protrusion 154, and the trigger arm 36 has been deflected in the transverse direction T toward the left side of the opening 138 and radially inwardly in the radial direction R to disengage from the stop mechanism 54.
[0164] FIG. 8c shows the needle guard 18 having moved distally relative to the previous views, i.e. the trigger arm 36 has disengaged from the stop mechanism 54, so that the auto-injector 10 is shown in the administration phase just before the drive spring 74 urges the drive chassis 24 proximally in the axial direction A.
[0165] FIG. 9 a shows a front view of the opening 138 of FIG. 8 b with the protrusion 154 located at the apex 160 of the surface 152 .
[0166] As discussed above, the stop mechanism 54 includes a convex surface 152 formed by a first planar surface 156 and a second planar surface 158 that are inclined relative to one another. The first planar surface 156 and the second planar surface 158 abut one another at an apex 160 formed therebetween.
[0167] In this connection, it should be noted that the inclination angle between the first planar surface 156 and the second planar surface 158 is selected in the range of 110 to 175°, preferably in the range of 120 to 170°, in particular in the range of 130 to 165°.
[0168] In this connection, it should further be noted that the angle between the first flat surface 156 and the axial direction A is selected in the range of 0 to 50°, in particular in the range of 1 to 30°, most preferably in the range of 2 to 20°.
[0169] In this connection, it should further be noted that the angle between the second flat surface 158 and the axial direction A is selected in the range of -20 to 20°, in particular in the range of -10 to 10°, most preferably in the range of -5 to 5°.
[0170] The apex 160 defines the overhaul angle that the trigger arm 36 faces upon actuation of the auto-injector 10 to shift the auto-injector 10 from the retraction stage to the administration stage.
[0171] In this regard, it should be noted that the faces of the trigger arm may preferably be sloped and angled such that the slope and angle match the angle and slope of the first planar surface 156 and the second planar surface 158. In this manner, the contact area between the first planar surface 156 and the second planar surface 158 may be maximized to improve the fit between the respective surfaces, particularly during the retraction phase.
[0172] Figure 9a) shows a first view of the release mechanism 40 with the trigger arm 36 of Figure 8 cooperating with a stop mechanism 54. Figure 9b) shows a second view of the release mechanism 40, specifically a view orthogonal to that shown in Figure 9a, illustrating the cooperation of the trigger arm 36 and the stop mechanism 54.
[0173] During the retraction phase, the blocking rib 144 is configured to block radial movement of the trigger arm 36 by forming a wall against which the trigger arm 36 abuts if the trigger arm 36 is forced radially inward in an impermissible manner, for example, from outside the opening 138 when the plunger arm 142 contacts the trigger arm 36.
[0174] In this retraction phase, the drive spring 74 urges the drive chassis 24 in the axial direction A, and the drive chassis 24 is axially held in place in the opening 138 via the projection 154 on the trigger arm 36 .
[0175] More specifically, the protrusion 154 is, so to speak, held within the acute space formed by the first flat surface 156 of the stop mechanism at the opening in order for the trigger arm 36 to move, which must not only move in the transverse direction T but also move distally in the axial direction A.
[0176] When the automatic injector 10 is moved from the storage stage to the administration stage, as the needle guard 18 is moved towards the drive chassis 24, the plunger arm 142 biases the trigger arm 36 via its engagement surface, i.e., via the biasing surface 150 of the web 148, distally in axial direction A by lifting the web 148 distally in axial direction A, and also urges the web 148 transversely in the transverse direction T.
[0177] When the protrusion 154 of the trigger arm 36 passes the apex 160, the spring force of the drive spring 74 causes the drive spring 74 to relax, urging the drive chassis 24 proximally in the axial direction A and disengaging the trigger arm 36 from the opening 138, for example, as shown in FIG. 8c, or as shown in FIG. 4c.
[0178] Additionally, as the plunger arm engagement surface 146 biases the trigger arm 36 in the transverse direction T, it may also bias it radially inward in the radial direction R. As shown in FIG. 4b, this causes the transverse deflection of the trigger arm 36 by the engagement surface 146 to disengage the trigger arm 36 when it engages the blocking rib 144 of the plunger arm 142, thereby allowing the trigger arm to deflect radially inward in the radial direction R past the blocking rib 144.
[0179] Prior to administration, the trigger arm 36 of the drive chassis 24 is biased into engagement with the axial stop mechanism 54 on the outer body 82 of the housing 12 .
[0180] When an axial force from drive spring 74 is acting on drive chassis 24, trigger arm 36 is prevented from moving laterally or radially inwardly by the following. a negatively inclined contact surface 156 on the outer body 82 of the housing 12; - Friction acting against each other, - the angle of the trigger arm 36, and - Trigger arm 36 rigidity.
[0181] In this regard, it should be noted that this geometry may require a slight lift of the drive chassis 24, and therefore a slight compression of the drive spring 74, to disengage the trigger arm 36. However, sufficient robustness (i.e., protection against false triggering) may be achieved simply by a combination of the load and coefficient of friction between the surface of the stop mechanism 54 and the trigger arm 36 upon contact. If the coefficient of friction is high enough, even a negatively sloped retaining surface (opposite side from that shown in the figures) may work.
[0182] Blocking ribs 144 on the needle guard 18 also prevent the trigger arm 36 from moving radially inward. It would be feasible to add further blocking rib features (not shown) to the needle guard to prevent transverse movement of the trigger arm 36. These transverse blocking rib features would be positioned to axially disengage from the trigger arm 36 during the initial displacement of the needle guard 18 upon actuation, releasing the trigger arm 36 from transverse movement.
[0183] 8a shows the retracted position of the release mechanism 40 during the retraction phase. The administration process is triggered by pressing the needle guard 18 against the user's skin such that it is displaced distally relative to the outer body 82 of the housing 12.
[0184] The angled engagement surface 146 of the cam 162 of the needle guard 18 contacts the trigger arm 36 and causes its projection 154 to translate laterally past the apex 160 of the stop mechanism 54 on the outer body 82 of the housing 12 .
[0185] As the projection 154 of the trigger arm 36 passes over the apex 160 of the stop mechanism 54, it engages the steeper slope of the second flat surface 158 which, under the action of the drive spring 74, continues to deflect the trigger arm 36, eventually disengaging the stop mechanism 54 even radially without further contact by the needle guard 18.
[0186] FIG. 8b shows the release mechanism 40 at the time of triggering, in one optional embodiment, after a short lateral movement, the trigger arm 36 moves the outer body 82 radially inward until it contacts the angled surface and fully disengages from the stop mechanism 54.
[0187] In an alternative embodiment, the cross-sectional profile of the trigger arm 36 tends to create radial movement of the projections 154 (enabling disengagement) as the arm 36 is moved laterally.
[0188] Once fully disengaged, the drive chassis 24 advances toward the pre-filled syringe 16 to engage the plunger 26 and dispense the medication M under the action of the drive spring 74 .
[0189] 8c illustrates the release position of the release mechanism 40. The overhauled convex surface 152 of the stop mechanism 54 on the outer body 82 of the housing 12, and the radial retraction of the trigger arm 36, increases the contact area subjected to the axial load (thereby minimizing stress for a given drive spring 74 force) while at the same time requiring a shorter transition for triggering. This shorter transition for triggering tends to reduce the required user trigger force input, with the drive spring 74 actually contributing a larger portion of the trigger energy.
[0190] Figure 10a shows a diagram of the position of the needle guard 18 of the auto-injector 10 relative to the inner body 80 of the housing 12 in the retracted phase of the auto-injector 10. Figure 10b shows a diagram of the position of the needle guard 18 of the auto-injector 10 relative to the housing 12 in the lockout phase.
[0191] The drive chassis 24 is similarly inserted into the inner body 80. The inner body 80 includes a lug 164 that cooperates with the second groove 48' of the drive chassis 24 as a second guide aid 48 that enables the drive chassis 24 to be linearly guided within the inner body 80 of the housing 12.
[0192] The needle guard 18 comprises a projection 166 which cooperates with an elongated hole 168 present in the inner body 80 to ensure linear guidance of the needle guard 18 relative to the inner body 80 .
[0193] Needle guard 18 further includes a retention mechanism 170. Retention mechanism 170 is configured to prevent removal of the needle guard from the proximal end of housing 12.
[0194] To this end, the slot 168 includes a proximal stop 172 that prevents the projection 166 from moving proximally beyond the stop 172 , which thus acts as a retention feature 170 for the needle guard 18 .
[0195] In this regard, it should be noted that the elongated slot 168 is sized to be complimentary to the shape of the projection 166 and to define the range of linear movement of the needle guard 16 relative to the inner body 80 .
[0196] This means that the width of the elongated hole 168 perpendicular to the axis A may be selected to be complementary to the width of the protrusion perpendicular to the axis A.
[0197] Additionally, the length of slot 168 between proximal stop 172 and distal stop 192 parallel to axis A may be selected to accommodate the range of axial movement of needle guard 18.
[0198] The inner body 80 further includes a first notch 174. The first notch 174 is configured to cooperate with a clip arm 184 and a lockout arm 186 of the needle guard 18.
[0199] Specifically, as shown in FIG. 10a, the clip arm 184 is configured to cooperate with the first portion 180 of the first notch 174, and the lockout arm 186 is configured to cooperate with the second portion 182 of the first notch 174.
[0200] The first and second portions 180, 182 of the first cutout each have a rectangular shape, are immediately adjacent to one another and are offset along an axis A relative to one another.
[0201] The inner body 80 further includes a second notch 176 axially disposed adjacent to the first notch 174 and separated from the first notch 174 by a bar 178. The second notch 176 is configured to cooperate with a lockout arm 186.
[0202] In this regard, it should be noted that the second notch is configured to cooperate only with the lockout arm 186 and therefore not with the clip arm 184. This is made possible by the offset between the first and second portions 180, 182.
[0203] In this regard, it should be further noted that the lockout arm includes an engagement portion 220 configured to engage with a corresponding notch 176 .
[0204] In the illustrated embodiment, the engagement portion 220 has a ramp 222 through which it can pass over the bar 178 when moved proximally from the first notch 174 to the second notch 176, and has a flat portion 224 configured to drop into the second notch 176 and then act as an abutment to prevent the needle guard 18 from moving distally past the bar 178 out of the lockout stage.
[0205] As shown, the first notch 174 may be on the same side of the inner body 80 as the elongated hole 168. The first notch 174 may also be on a different side than the side on which the elongated hole 168 is located. Furthermore, two first notches 174 and / or two elongated holes 168 can be provided and located on oppositely disposed sides of the inner body 80 (see, e.g., FIG. 14 ).
[0206] 10a and 10b, a nose 188 of connection 72 resides in inner body 80. Nose 188 cooperates with a window 190, shown for example in FIG.
[0207] The function of the needle guard 18 prior to administration is as follows. The needle guard spring, or lockout spring 76 (biased against the inner body 80) exerts a proximal force on the needle guard 18. The needle guard 18 is axially retained within the inner body 80 by its clip arms 184. The needle guard lockout arms 186, with play against the inner body, avoid long term creep that could subsequently affect the robustness of the lockout.
[0208] When the needle guard 18 is pressed by the user during administration, the clip arm 184 moves upward within the first notch 174 of the inner body 80, more specifically within the first portion 180 of the first notch 174. As the drive chassis 24 approaches the end of its administration stroke (but before the end-of-dose click (see FIG. 11 ) to avoid associated losses that coincide and reduce the minimum output force from the drive chassis 24), the drive chassis 24 contacts the chamfered surface 226 of the clip arm 184 of the needle guard 18, thereby deflecting and holding the clip arm 184 radially inward. The chamfered surface 226 assists in the deflection of the clip arm 184 in the radial direction R.
[0209] When the user removes the needle 34, and thereby the needle guard 18, from the skin, the needle guard 18 extends linearly proximally under the action of the lockout spring 76. The clip arms 184 are biased radially inward by the drive chassis 24 so that they do not engage the inner body assembly stop mechanism 194 during their return transition. Instead, the needle guard 18 continues to extend until its lockout arms 184 engage the bar 178 of the inner body 80 in the extended position, locking the needle guard 18 from moving distally. The bar 178 separates the first notch 174 from the second notch, and the lockout arms 184 are movable within the first notch 174 during and before use to lock out the needle guard 18.
[0210] Additionally, protrusion 166 engages the proximal end of slot 168 which acts as a retaining mechanism 170 during the lockout phase, thereby preventing needle guard 18 from moving further in the proximal direction.
[0211] 10b shows the extended position of the needle guard 18 after administration, with the lockout clip 186 engaging the bar 178. In the fully extended position, the lockout arm 186 of the needle guard 18 engages the bar 178 of the inner body 80, providing a mechanical lockout that resists collapse of the needle guard 18, thus protecting the user from the risk of a needle stick.
[0212] Figure 11a) shows a view of the auto-injector 10 in the administration stage at the end of the dose, and b) shows an enlarged view of a portion of the auto-injector 10 in the administration stage at the end of the dose.
[0213] The trigger rim 32 further comprises at least a first portion 56 of an audible dose end feedback member 58 in the form of a click arm 56. The first portion 56, i.e. click arm 56, is defined by a nose 60 formed at the end of a tongue 62 that projects from the trigger rim 32, optionally having a generally triangular profile.
[0214] The tongue 62 projects from the trigger rim 32 in the region of a recess 64 formed in the outer surface 49 of the trigger rim 32. An opening 68 of the recess 64 faces in the radial direction R.
[0215] The inner body 80 of the housing 12 further comprises at least a second portion 66 of the audible end-of-dose feedback member 58 (see, eg, FIG. 11b).
[0216] The second portion 66 of the audible dose end feedback member 58 includes a distal surface 196 and a proximal surface 198 that surrounds the inner body recess 206 .
[0217] In this regard, it should be noted that the positioning of the first and second portions 56, 66, respectively, of the audible feedback member 58 can be reversed, i.e., the recess 206 can be provided on the drive chassis 24 and the tongue 62 can be provided on the inner body 80. It should also be noted that the drive chassis 24 and the inner body 80 can each include a first and second portion 56, 66, respectively, of the audible feedback member 58 that cooperates with the other first and second portion 56, 66, respectively, of the audible feedback member 58 provided on the other component, i.e., the inner body 80 has both a recess and a tongue that each cooperates with a respective one of the tongue and recess on the drive chassis 24.
[0218] When the automatic injector 10 is used, the trigger rim 32 is moved axially A by the drive spring 74 during administration, which causes the first portion 56 of the audible end-of-dose feedback member 58 to be biased in a transverse direction T towards the drive spring 74.
[0219] This is accomplished when the angled surface 200 of the end-of-dose feedback member 58 is deflected by the distal inner housing end 204 of the inner housing 80. This can be assisted because the distal inner housing end 204 may be chamfered toward the distal wall 84 of the housing 12.
[0220] The audible dose end feedback member 58 is configured to emit a sound when substance is dispensed from the automatic injector, i.e., when the click surface 202 of the nose 60 attached to the latching tongue 62 engages the distal surface 196 of the inner body recess 206 by moving outward in the transverse direction T.
[0221] The positions of the first portion 56 and the second portion 66 of the audible feedback member 58 are selected so that an audible click occurs when the plunger 26 reaches or is close to reaching its final position within the pre-filled syringe 16.
[0222] Thereby, the audible dose end feedback member 58 is configured to emit a sound between the drive chassis 24 and the housing 12 when substance is dispensed from the auto-injector 10 .
[0223] Thus, as the end of dosing approaches, the nose 60 of the drive chassis 24 engages the ramp of the inner body 80, i.e., the chamfered distal inner housing end 204, which deflects the tongue 62 radially inward. Near the end of the transition, the nose 60 drops into the inner housing recess 206 of the inner body 80, quickly releasing its deformation and producing an audible click (due to contact with another component surface or simply due to acceleration through the air).
[0224] 12a-12f show various views of an example cap 70 of the auto-injector 10. FIG.
[0225] 12a shows a perspective view of the removable cap 70. The cap 70 is of a single piece design. The needle guard 18 is configured to cooperate with the cap 70 via one or more snap-fit connections 94.
[0226] Figures 12b and 12c respectively show side views of the cap, indicating section lines C:C, D:D, and E:E for the respective cross sections shown in Figures 12d-12f.
[0227] The window 112 shown in FIG. 12b has at least approximately a triangular shape with rounded edges.
[0228] The recesses 114 shown in FIG. 12 c have the shape of slots with rounded edges and separate the windows 112 .
[0229] In this regard, it should further be noted that by providing window 112 in needle shield holder 104, a respective tooling lead-in surface is also provided which allows cap 70 to be ejected from the injection mold tool.
[0230] Figure 12d shows a cross section through cap 70 taken along section line C:C of Figure 12b. Ribs 120 are provided on the inner surface 118 of cap 70 only in areas where needle shield holder 104 is not present within cap 70.
[0231] As shown in the cross section shown in FIG. 12e, taken along the transverse line D:D of FIG. 12b, a space is visible provided within the needle shield holder 104 for receiving and holding a removable needle shield 78, which covers the needle of the pre-filled syringe 16, in the retracted stage of the auto-injector 10.
[0232] The inner shape of the needle shield holder 104 is complementarily shaped to the outer shape of the removable needle shield 78 to facilitate as compact a design of the cap 70 as possible and to enable reliable removal of the removable needle shield 78 when the cap 70 is removed from the automatic injector 10.
[0233] Additionally, an opening 124 in the cap 70 is formed between the outer wall 116 of the cap 70 and the needle shield holder 104. The size of the opening is selected according to the size of the portion of the needle guard that is to be inserted into the opening during the retraction phase of the auto-injector 10.
[0234] The needle shield holder 104 projects distally from the base 100 of the cap 70 and is surrounded by an outer wall 116 of the cap 70. An inner surface 118 of the outer wall 116 of the cap 70 includes a number of ribs 120 that are configured to compress a front end 122 of the needle guard 18 when it is disposed within an opening 124.
[0235] As shown in the cross section shown in Fig. 12f, taken along section line E:E of Fig. 12c, the ribs 120 project inwardly into an opening 124 in the cap 70. The ribs 120 are distributed across the inner surface 118 for retaining a front end 122 of the needle guard 18.
[0236] The inner wall 106 of the needle shield holder 104 further includes two windows 112 with a respective inwardly facing protrusion 108 disposed in each of the windows 112 .
[0237] Two recesses 114 are formed in the inner wall 106 of the needle shield holder 104 of the cap 70. The recesses are located between the respective portions of the needle shield holder 104 having the windows 112.
[0238] The snap-fit area 98 of the cap 70 is provided on the inner surface 118 of the cap 70, a first snap-fit area 208 is formed within some of the ribs 120 of the cap, and a second snap-fit area 210 is formed in an area of the cap 70 where there are no ribs 120.
[0239] The cap 70 is of a single piece design and the end face at the proximal surface of the cap 70 at the base 100 does not include a hole.
[0240] Figures 13a-j show various views of an example of an outer body 82 of an auto-injector 10. Figures 13a and 13b show perspective views from two sides of the outer body 82, respectively, Figures 13c-f show side views of the outer body 82, Figure 13g shows a cross section taken along section line C:C in Figure 13f, Figure 13h shows a cross section taken along section line D:D in Figure 13e, and Figure 13i shows a top view of the outer body 82.
[0241] Figure 13j shows a cross section taken along section line E:E of Figure 13e. A lug 228 configured to engage with second groove 48' forming second guide aid 48 is visible on inner surface 132 of outer body 82.
[0242] In contrast to the embodiment shown in connection with the above figures, the outer body 82 includes two stop mechanisms 54, one on each side of the outer body 82 at each window 40, as shown in Figures 13a, 13c, and 13e.
[0243] Additionally, visible in FIG. 13g is a protrusion 86 protruding from the distal wall 84 of the outer body 82 of the housing 12. This is intended to be inserted into the passageway 140 of the drive chassis 24 upon assembly of the auto-injector 10, and is therefore located in the same transverse position as the trigger rim 32 of the drive chassis 24.
[0244] In this regard, it should be noted that the drive chassis 24 is a component that may be configured to move in a linear fashion within the housing 12 in order to expel the medication M stored in the prefilled syringe 16 disposed within the housing 12 from the prefilled syringe 16 when the automatic injector 10 is actuated by pulling the plunger 26 of the prefilled syringe 16.
[0245] Figures 14a-j show various views of an example of an inner body 80 of an auto-injector 10. Figures 14a and 14b each show a perspective view from two sides of the inner body 80. The recessed distal housing end 204 is shown at the top of Figures 14a and 14b.
[0246] 14c-14f show side views of the inner body 80, FIG. 14g shows a cross-section taken along section line F:F of FIG. 14e, FIG. 14h shows a cross-section taken along section line E:E of FIG. 14f, FIG. 14i shows a top view of the inner body 80, and FIG. 14j shows a cross-section taken along section line G:G of FIG. 14e.
[0247] The inner body 80 is configured to cooperate with the outer body 82 of Figure 13 and with the needle guard 18 shown in Figure 15 below. The inner body 80 has two first notches 174, two second notches 176, and two elongated holes 168 disposed on oppositely disposed sides of the inner body 80 and configured to engage corresponding portions of the needle guard 18.
[0248] 15a to 15j show various views of one example of a needle guard 18 of an auto-injector 10, which is configured to cooperate with the inner body 80 of FIG. 14 and, to this end, comprises two protrusions 166 cooperating with respective ones of the elongated holes 168, two lockout arms 186 cooperating with respective ones of the first and second notches 174, 176 separated by a respective bar 178, and two respective clip arms 184 which engage with respective first notches 174 and the trigger rim 32 of the drive chassis 24.
[0249] Additionally, needle guard 18 also includes a single plunger arm 142 having two blocking ribs 144 and two cams shaped in the manner described above. Blocking rib 144 is configured to cooperate with drive chassis 24, discussed in connection with FIG. 17, when inserted into housing 12, which includes outer body 82, discussed in connection with FIG. 13, and inner body 80, discussed in connection with FIG. 14. It should also be noted that blocking ribs 144 are located on opposite sides of plunger arm 142.
[0250] Figures 15a and 15b respectively show oblique views from two sides of needle guard 18, Figures 15c to 15f respectively show side views of needle guard 18, Figure 15g shows a cross-section taken along section line D:D of Figure 15e, Figure 15h shows a cross-section taken along section line E:E of Figure 15f, Figure 15i shows a top view of needle guard 18, and Figure 15j shows a cross-section taken along section line F:F of Figure 15e.
[0251] 16a-16k show various views of an example of a needle shield 78 of an auto-injector 10. The needle shield 78 has a needle receptacle 212 at its end with a syringe-facing surface 110. The syringe-facing surface 110 is disposed opposite a front end 214 of the needle shield 78. The needle shield 78 has outer dimensions configured to be received in the needle shield holder 104 and inner dimensions adapted to receive the needle 34 of the pre-filled syringe 16.
[0252] Figures 16a, 16b, 16d and 16e show various perspective views from above and below the needle shield 78, Figures 16c, 16f, 16g and 16h show side views of the needle shield 78, Figure 16i shows a cross section taken along section line B:B in Figure 16g, Figure 16j shows a view from the front end 214 and Figure 16k shows a cross section taken along section line C:C in Figure 16g.
[0253] Section B:B in Fig. 16i shows that the needle receptacle 212 is complementarily shaped to the needle 34 of the pre-filled syringe 16. The function of the needle shield 78 is to protect the needle 34 from external influences.
[0254] 17a-17l show various views of an example drive chassis 24 of an auto-injector 10. The drive chassis 24 has two trigger arms 36, each having respective components as discussed above, and a single audible feedback member 58 disposed on one side of the drive chassis 24.
[0255] Figures 17a and 17b show perspective views of the drive chassis 24, and Figures 17c-17f show different side views of the drive chassis 24. Figure 17g shows a cross section taken along section line E:E in Figure 17e through the dosing rim 22 with the plunger support 44.
[0256] FIG. 17h shows a cross section taken along section line F:F of FIG. 17e, showing the passageway 140 formed therein through the trigger rim 32.
[0257] FIG. 17i shows a cross section taken along section line G:G of FIG. 17f, showing the parallel arrangement of the dosing rim 22 and the trigger rim 32.
[0258] FIG. 17j shows a top view of the drive chassis 24 with the projection 154 of the trigger arm 36 projecting radially outwardly from the drive chassis 24.
[0259] Figure 17k shows a cross section taken along section line D:D of Figure 17e, and Figure 17l shows a cross section taken along section line C:C of Figure 17e at the height of the drive chassis 24 where the two protrusions 154 are positioned relative to the trigger arm 36.
[0260] 17d and 17f, by way of example, show that the trigger rim 32 includes a lip 216 at an end disposed opposite the web 42. The lip 216 is configured to engage a clip arm 184 formed on the needle guard 18.
[0261] The lip 216 includes two tips 218 , each tip 218 configured to engage a respective one of the clip arms 184 formed on the needle guard 18 .
[0262] It should also be noted that the first and second guide aids extend proximally from web 42 , with second groove 48 ′ extending directly from web 42 and first groove 46 ′ beginning to offset from web 42 .
[0263] Above, the mechanical elements of a disposable auto-injector 10 are described, which dispenses a medication M from a pre-filled syringe (PFS) 16. The disclosed design allows the integration of state-of-the-art mechanisms into a small physical package using very few low-cost components and very simple processes compared to the state-of-the-art.
[0264] The disclosed auto-injector device consists of an assembly surrounding a pre-filled syringe (PFS) 16 containing a medication M. Typically, such devices are intended for single use and for administration by the patient (i.e., self-administration) or by a caregiver. At the time of use, the user removes the protective cap 70 from the proximal end of the auto-injector 10, positions the auto-injector 10 at an injection site (typically the skin of the thigh or abdomen), and axially pushes the auto-injector 10 proximally to achieve needle insertion of the needle 34 into the skin and initiate administration.
[0265] Energy from the helical compression drive spring 74 is released to displace the plunger 26 within the PFS 16, delivering the medication M to the patient. An audible click informs the patient that dosing has begun. In this regard, it should be noted that such an audible click may be produced when the trigger arm 36 cooperates with the stop mechanism 54 in triggering the release mechanism 40 when moving the auto-injector 10 from the retraction stage to the dosing stage. The progress of the dosing can be monitored by the user as the position of the PFS plunger 26 and the mechanism plunger change within the large curved "syringe window" 14.
[0266] The user knows when the dose is complete by an audible click emitted by the auto-injector 10 and a color change displayed within the unique "status indicator window" 20. The auto-injector 10 can then be removed from the injection site to allow the spring loaded needle guard 18 to extend to cover the needle 34 under the action of a separate helical compression spring 76 to a locked position in which the needle guard 18 covers the needle 34 and protects the patient or additional persons from needlestick injury.
[0267] The mechanism described utilizes a parallel drive arrangement in which the axis of the drive spring 74 is offset from the axis of the PFS 16, rather than being within the bore of the PFS 16 as is common in the prior art. This arrangement has several advantages. The length of the auto-injector 10 can be minimized, as determined in large part by the length of the PFS 16 and the amount of plunger 26 travel. - Allows flexibility in drive spring 74 specifications since geometry is not constrained by PFS 16 bore diameter (e.g., increasing or decreasing applied force, or making other modifications that improve manufacturing efficiency). - Allows improved access to components and mechanisms where tubular arrangements often require multiple concentric (or at least coaxial) components that move relative to one another, which can be difficult to optimally connect with one another. Improved access also allows for simpler interactions between components, making trigger, feedback, and lockout mechanisms that tend to avoid the need for additional parts or complex mechanisms.
[0268] The simplicity of the mechanism reduces the number of components which in turn helps to minimize the number of wall thicknesses required and thus the width and depth of the device.
[0269] Due to the disposable nature of the single-use auto-injector 10, it is thus deemed advantageous to minimize the complexity, material usage, packaging size, and assembly complexity of the auto-injector 10, all of which tend to reduce costs and environmental impact by: - Reducing the amount of raw materials used. - Reduce the cost of manufacturing equipment and assembly processes. - Reducing the volume required for transportation and storage, which can be expensive especially when low temperatures are required.
[0270] The disclosed invention achieves this simplicity and small size while incorporating state-of-the-art user features and adding innovative new user features.
[0271] Enumeration of embodiments 1. A housing 12; a pre-filled syringe 16 mounted within and fixed relative to the housing 12; a needle guard 18 axially movably mounted within the housing 12 for movement between a retracted stage, an administration stage, and a lockout stage, the retracted stage, the administration stage, and the lockout stage having different axial positions relative to the housing 12; Equipped with a needle guard 18 configured for axial movement in a distal direction between a retraction stage and an administration stage; the needle guard 18 is configured to move axially in the proximal direction between the administration stage and the lockout stage; Auto-injector 10.
[0272] 2. The auto-injector 10 of embodiment 1, wherein the needle guard 18 surrounds the needle 34 of the pre-filled syringe 16 during the retraction and lockout stages.
[0273] 3. The auto-injector 10 of embodiment 1 or embodiment 2, wherein the needle guard 18 does not surround the needle 34 of the pre-filled syringe 16 during the administration phase.
[0274] 4. The automatic injector 10 according to one of embodiments 1 to 3, further comprising a lockout spring 76 disposed between the needle guard 18 and the housing 12.
[0275] 5. The auto-injector 10 of embodiment 4, wherein the needle guard 18 is configured to compress the lockout spring 76 when moving between the retraction stage and the administration stage.
[0276] 6. The automatic injector 10 of embodiment 4 or embodiment 5, wherein the needle guard 18 is configured to move between the administration stage and the lockout stage upon relaxation of the lockout spring 76.
[0277] 7. The automatic injector 10 according to one of embodiments 1 to 6, wherein the needle guard 18 comprises one or more lockout arms 186.
[0278] 8. The automatic injector 10 of embodiment 7, wherein the one or more lockout arms 186 are provided with an engagement portion 220 configured to engage with a corresponding notch 176 in the housing 12 of the automatic injector 10 during the lockout phase.
[0279] 9. The automatic injector 10 according to one of embodiments 4 to 8 and embodiment 7, wherein two or more lockout arms 186 are provided and the lockout spring 76 is disposed between the two or more lockout arms 186.
[0280] 10. The automatic injector 10 according to any one of embodiments 1 to 9, wherein the needle guard 18 is provided with an anti-slip mechanism 170 cooperating with the housing 12.
[0281] 11. The automatic injector 10 according to one of the preceding embodiments, wherein the needle guard 18 is provided with a plunger arm 142 that activates the release mechanism 40 of the automatic injector 10.
[0282] 12. The automatic injector 10 of embodiments 10 and 11, wherein the anti-withdrawal mechanism 170 is disposed on the plunger arm 142.
[0283] 13. The automatic injector 10 according to one of embodiments 10 to 12, wherein the anti-slip mechanism 170 comprises a protrusion 166 that engages with a hole 168 present in the housing 12.
[0284] 14. The automatic injector 10 according to one of embodiments 1 to 13, further comprising a drive chassis 24, the drive chassis 24 being mounted to the housing 12, the drive chassis 24 being biased relative to the housing 12, and the drive chassis 24 being further fixed relative to the housing 12 and against movement relative to the housing 12 during the storage phase of the automatic injector 10.
[0285] 15. The automatic injector 10 of embodiment 14 and embodiments 7 to 13, wherein the drive chassis 24 is configured to engage one or more clip arms 184 and deflect them radially inwardly away from the housing 12 during the administration phase.
[0286] 16. The automatic injector 10 according to one of embodiments 14 or 15 and embodiments 11 to 13, wherein the plunger arm 142 is configured to cooperate with the trigger arm 36 of the drive chassis 24 to activate the release mechanism 40 of the automatic injector 10.
[0287] 17. The automatic injector 10 according to one of embodiments 14 to 16, wherein axial movement of the needle guard 18 towards the drive chassis 24 releases the drive chassis 24 from the housing 12 when the automatic injector 10 is actuated.
[0288] 18. The automatic injector 10 of embodiment 16 or embodiment 17, wherein axial movement of the needle guard 18 is configured to deflect the trigger arm 36 in a direction transverse to the axial movement.
[0289] 19. The automatic injector 10 according to one of embodiments 16 to 18 and one of embodiments 11 to 15, wherein the plunger arm 142 is configured to deflect the trigger arm 36 in a direction transverse to the axial movement of the needle guard 18.
[0290] 20. The automatic injector 10 according to one of the preceding embodiments, wherein the needle guard 18 includes a blocking rib 144.
[0291] 21. The automatic injector 10 according to embodiment 20 and one of embodiments 16 to 19, wherein the blocking rib 144 is configured to block radial movement of the trigger arm 36.
[0292] 22. The automatic injector 10 according to one of embodiments 1 to 21, wherein the needle guard 18 further comprises a cam 162 having an engagement surface 146.
[0293] 23. The automatic injector 10 according to one of embodiments 16 to 21 and embodiment 22, wherein the engagement surface 146 is configured to engage with the trigger arm 36.
[0294] 24. The automatic injector 10 according to embodiment 23, wherein the trigger arm 36 includes a web 148, and the engagement surface 146 engages with the web 148 of the trigger arm 36.
[0295] 25. The automatic injector 10 according to one of embodiments 21 to 24 and embodiment 20, wherein the engagement surface 146 protrudes from the blocking rib 144.
[0296] 26. The automatic injector 10 according to embodiment 24 or embodiment 25, wherein the web 148 includes a deflection surface 150 inclined with respect to the direction of movement of the drive chassis 24.
[0297] 27. The automatic injector 10 according to any one of embodiments 20 to 26, wherein the engagement surface 146 is inclined relative to the direction of movement of the drive chassis 24.
[0298] 28. The automatic injector 10 according to embodiments 26 and 27, wherein the engagement surface 146 and the deflection surface 150 are cooperatively inclined with respect to the direction of movement of the drive chassis 24.
[0299] 29. The automatic injector 10 of embodiment 28, wherein the engagement surface 146 is inclined to bias the trigger arm 36 in a direction transverse to the axial direction of movement of the needle guard 18.
[0300] 30. The automatic injector 10 according to one of embodiments 14 to 29, further comprising a drive spring 74, the drive spring 74 being configured to drive the drive chassis 24 towards the needle guard 18 after actuation of the automatic injector 10.
[0301] 31. The automatic injector 10 according to one of embodiments 1 to 30, wherein the needle guard 18 is configured to cooperate with the cap 70 via one or more snap-fit connections 94.
[0302] 32. The automatic injector 10 according to embodiment 31, wherein each snap-fit connection includes a snap-fit protrusion 96 that cooperates with a corresponding snap-fit area 98.
[0303] 33. The automatic injector 10 of embodiment 32, wherein the needle guard 18 includes one or more snap-fit protrusions 96.
[0304] 34. The automatic injector 10 of embodiment 32 or embodiment 33, wherein one or more snap-fit protrusions 96 are provided on the outer surface 126 of the needle guard 18.
[0305] 35. The automatic injector 10 according to one of embodiments 32 to 34, wherein the inner surface 128, 132 of the housing 12 has one or more grooves 130, 134, within which one or more of the snap-fit protrusions 96 can move axially relative to the housing 12 upon axial movement of the needle guard 18.
[0306] 36. The automatic injector 10 according to one of embodiments 31 to 35, wherein the front end 122 of the needle guard 18 is disposed within the opening 124 of the cap 70.
[0307] 37. The automatic injector 10 according to one of embodiments 31 to 36, wherein in a storage phase of the automatic injector 10, the outer wall 116 of the cap 70 contacts the outer wall 136 of the housing 12.
[0308] 38. The automatic injector 10 according to embodiment 37, wherein the outer wall 116 of the cap 70 and the outer wall 136 of the housing 12 do not overlap in the axial direction of the automatic injector 10.
[0309] 39. The automatic injector 10 according to embodiment 37 or embodiment 38, wherein the outer wall 116 of the cap 70 and the outer wall 136 of the housing 12 overlap radially in the storage stage of the automatic injector 10.
[0310] 40. The automatic injector 10 according to one of the preceding embodiments, wherein the housing 12 is a two-part housing 12 comprising an inner body 80 and an outer body 82.
[0311] 41. The automatic injector 10 according to one of embodiments 1 to 40, further comprising a drive chassis 24 mounted to the housing 12, the drive chassis 24 being biased relative to the housing 12, the drive chassis 24 being further fixed relative to the housing 12 and against movement relative to the housing 12 during a storage phase of the automatic injector 10, and the drive chassis 24 moving relative to the housing 12 when administering a substance from the prefilled syringe 16.
[0312] 42. The automatic injector 10 of embodiment 41, wherein the automatic injector 10 is configured to generate an audible end-of-dosage feedback between the drive chassis 24 and the housing 12 when a substance is administered from the automatic injector 10.
[0313] 43. The automatic injector 10 of any one of embodiments 1 to 42, further comprising a drive chassis 24 mounted to the housing 12, the drive chassis 24 being biased against the housing 12 by a drive spring 74, the drive chassis 24 being further fixed relative to the housing 12 and against movement relative to the housing 12 during a storage phase of the automatic injector 10.
[0314] 44. The automatic injector 10 of embodiment 43, wherein the drive chassis 24 is provided with a trigger arm 36 that engages with a stop mechanism 54 present in the housing 12 during the storage phase of the automatic injector 10 to secure the drive chassis 24 relative to the housing 12.
[0315] 45. The automatic injector 10 of embodiment 44, wherein the trigger arm 36 is configured to disengage from the stop mechanism 54 upon actuation of the automatic injector 10.
[0316] 46. The automatic injector 10 according to any one of embodiments 1 to 45, further comprising a needle shield 78 covering the needle 34 of the prefilled syringe 16 during the storage phase of the automatic injector 10, an axially movable needle guard 18 covering the needle 34 of the prefilled syringe 16 at least after use of the automatic injector 10 and arranged to move relative to the prefilled syringe 16 during use of the automatic injector 10, and a removable cap 70 into which the needle guard 18 is stored during the storage phase of the automatic injector 10.
[0317] 47. The automatic injector 10 of embodiment 46, wherein during the storage phase of the automatic injector 10, the cap 70 is removably connected to the needle guard 18, and when the cap 70 is removed, the needle shield 78 is also removed from the automatic injector 10.
[0318] 48. The automatic injector 10 of any one of embodiments 1 to 47, further comprising a drive chassis 24 mounted to the housing 12, the drive chassis 24 being biased against the housing 12 and fixed relative to the housing 12 during a storage stage of the automatic injector 10.
[0319] 49. The automatic injector 10 of embodiment 48, further comprising a status indicator window 20 arranged in the housing 12, through which the drive chassis 24 is visible from the outside, the status indicator window 20 indicating a first part 50 of the drive chassis 24 in the storage stage of the automatic injector 10 and a second part 52 of the drive chassis 24 after use of the automatic injector 10, such that the first part 50 and the second part 52 of the drive chassis 24 can be distinguished from each other.
[0320] 50. The automatic injector 10 according to any one of embodiments 1 to 49, further comprising a drive chassis 24, the drive chassis 24 comprising a dosing rim 22 and a trigger rim 32, the plunger 26 being positionable at the proximal end of the dosing rim 22, and the trigger arm 36 being positioned extending proximally from the trigger rim 32.
[0321] 51. The automatic injector 10 according to embodiment 50, wherein the trigger rim 32 and the dosing rim 22 are arranged parallel to each other, at least essentially parallel to each other, and connected to each other at the distal end sides of the dosing rim 22 and the trigger rim 32, respectively, via a web 42.
[0322] 52. The automatic injector 10, optionally according to one of the preceding embodiments, A housing 12; A pre-filled syringe 16 attached to the housing 12; a drive chassis 24 mounted to the housing 12, the drive chassis 24 being biased relative to the housing 12 and fixed relative to the housing 12 and against movement relative to the housing 12 during a retraction phase of the auto-injector 10, and for movement relative to the housing 12 when dispensing a substance from the pre-filled syringe 16; Equipped with the automatic injector 10 includes an audible feedback member 58 configured to generate an audible end-of-dose feedback between the drive chassis 24 and the housing 12 when the substance is dispensed from the automatic injector 10; Auto-injector 10.
[0323] 53. The automatic injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 includes a first portion 56 of an audible feedback member 58 that engages with a second portion 66 of the audible feedback member 58 disposed on the housing 12 to generate an audible end-of-dosing feedback.
[0324] 54. The automatic injector 10 according to one or more of the above embodiments, wherein the housing 12 includes a recess 208 and a drive chassis 24 that engages the recess 208 to generate an audible end-of-dosage feedback.
[0325] 55. The automatic injector 10 of embodiments 53 and 54, wherein the first portion 56 of the audible feedback member 58 of the drive chassis 24 engages the recess 208 to generate an audible end-of-dosing feedback.
[0326] 56. The automatic injector 10 according to one or more of the above embodiments, wherein the housing 12 includes a distal inner housing end 204 that is chamfered on its inner surface 132.
[0327] 57. The automatic injector 10 of embodiment 56, wherein the chamfered distal inner housing end 204 biases the portion of the drive chassis 24 radially inward as it moves from the retracted stage to the end-of-dosing stage.
[0328] 58. The automatic injector 10 according to embodiment 57 and one of embodiments 53 to 56, wherein the chamfered distal inner housing end 204 biases the first portion 56 of the audible feedback member 58 radially inward as the drive chassis 24 moves from the retracted stage to the end-of-dosing stage.
[0329] 59. The chamfered distal inner housing end 204 is configured to bias the first portion 56 of the audible feedback member 58 radially inward before the first portion 56 of the audible feedback member 58 engages the recess 208; The automatic injector 10 according to embodiment 58.
[0330] 60. The auto-injector 10 according to one or more of the above embodiments, wherein the audible end-of-dosing feedback comprises an audible click.
[0331] 61. The auto-injector 10 of embodiment 60, wherein the audible click is caused by at least one of contact between the two components 56, 66 and acceleration of component 56.
[0332] 62. The automatic injector 10 according to embodiment 60 or embodiment 61 and one of embodiments 57 to 59, wherein the audible click is produced by the radially inwardly biased portion 56 of the drive chassis 24 relaxing radially outward.
[0333] 63. The automatic injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 further comprises a plunger support 44 which engages with the plunger 26 of the prefilled syringe 16.
[0334] 64. The automatic injector 10 according to embodiment 63 and one of embodiments 55 to 62, wherein the first portion 56 of the audible feedback member 58 extends from the drive chassis in a portion of the drive chassis 24 different from the plunger support 44.
[0335] 65. The auto-injector 10 according to one or more of the above embodiments, further comprising a drive spring 74 mounted between the drive chassis 24 and the housing 12.
[0336] 66. The automatic injector 10 according to embodiment 65 and one of embodiments 63 and 64, wherein after activation of the automatic injector 10, relaxation of the drive spring 74 drives the plunger support 44 towards the plunger 26 of the prefilled syringe 16.
[0337] 67. The automatic injector 10 according to embodiment 66, wherein the drive spring 74 is disposed within a portion of the drive chassis 24 that includes the first portion 56 of the audible feedback member 58, in particular in the passage 140.
[0338] 68. The automatic injector 10 according to one or more of the above embodiments, wherein the housing 12 is a two-part housing comprising an inner body 80 and an outer body 82.
[0339] 69. The automatic injector 10 according to embodiment 68, wherein the inner body 80 and the outer body 82 are fixed in position relative to each other.
[0340] 70. The automatic injector 10 according to embodiment 68 or embodiment 69, wherein the inner body 80 and the outer body 82 are connected to each other via a connection 72.
[0341] 71. The automatic injector 10 according to embodiment 70, wherein the connection 72 is formed by a nose 188 engaging with a window 190.
[0342] 72. The automatic injector 10 according to embodiment 71, wherein a nose 188 is formed in the inner body 80 and engages a window 190 formed in the outer body 82.
[0343] 73. The automatic injector 10 according to one of embodiments 68 and 54 to 72, wherein the inner body 80 includes a recess 208.
[0344] 74. The automatic injector 10 according to one or more of the above embodiments, wherein the inner body 80 is provided with one or more notches 174, 176 and / or holes 168 configured to cooperate with one or more corresponding portions 184, 186, 166 of the needle guard 18.
[0345] 75. The automatic injector 10 according to one or more of embodiments 68 to 74 and one or more of embodiments 54 to 66, wherein the drive spring 74 is disposed between the outer body 82 and the drive chassis 24.
[0346] 76. The automatic injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 is of a generally U-shaped design and includes a dosing rim 22 as well as a trigger rim 32.
[0347] 77. The automatic injector 10 according to one or more of the above embodiments, wherein the drive chassis 24, the first portion 56 of the audible feedback member 58, and the plunger support 44 are formed in one piece from the same material.
[0348] 78. The auto-injector 10, optionally according to one or more of the above embodiments, a housing 12 in which a prefilled syringe 16 is disposed; a drive chassis 24 mounted to said housing 12, said drive chassis 24 being biased against said housing 12 by a drive spring 74 and being fixed against movement relative to said housing 12 and relative to said housing 12 during the retraction phase of the automatic injector; Equipped with the drive chassis 24 includes a trigger arm 36 that engages a stop mechanism 54 present in the housing 12 during a retraction phase of the auto-injector 10 to secure the drive chassis 24 relative to the housing 12; Upon actuation of the automatic injector 10, the trigger arm 36 is configured to disengage from the stop mechanism 54. Auto-injector 10.
[0349] 79. The automatic injector 10 according to one or more of the above embodiments, wherein the stop mechanism 54 includes an opening 138.
[0350] 80. The automatic injector 10 according to one or more of the above embodiments, wherein the stop mechanism 54 includes a convex surface 152.
[0351] 81. The automatic injector 10 according to embodiment 80, wherein the trigger arm 36 is configured to cooperate with the convex surface 152 of the stop mechanism 54.
[0352] 82. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger arm 36 includes a protrusion 154 that engages with the stop mechanism 54.
[0353] 83. The automatic injector 10 of embodiment 82, wherein the protrusion 154 is configured to cooperate with the opening 138.
[0354] 84. The automatic injector 10 according to one of embodiments 82 or 83, wherein the protrusion 156 is configured to cooperate with the convex surface 152.
[0355] 85. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger arm 36 includes a web 148 protruding therefrom.
[0356] 86. The automatic injector 10 according to embodiment 85 and embodiment 84 or embodiment 83, wherein the web 148 is arranged on a surface different from the surface on which the protrusion 154 is arranged.
[0357] 87. The automatic injector 10 according to one or more of the above embodiments, further comprising a needle guard 18, wherein axial movement of the needle guard 18 towards the drive chassis 24 unlocks the drive chassis 24 relative to the housing 12.
[0358] 88. The automatic injector 10 of embodiment 87, wherein the needle guard 18 includes a blocking rib 144.
[0359] 89. The automatic injector 10 of embodiment 87 or embodiment 88, wherein the needle guard 18 engages with the trigger arm 36 when moving axially toward the drive chassis 24.
[0360] 90. The automatic injector 10 according to one of embodiments 87 to 89 and embodiment 85, wherein the needle guard 18 includes an engagement surface 146 configured to engage with the web 148 of the trigger arm 36.
[0361] 91. The automatic injector 10 according to embodiment 88 or embodiment 89 and embodiment 90, wherein the engagement surface 146 protrudes from the rib.
[0362] 92. The automatic injector 10 according to one of embodiments 80 to 86, wherein the web 148 includes a deflection surface 150 inclined with respect to the direction of movement of the drive chassis 24.
[0363] 93. The automatic injector 10 according to one of embodiments 85 to 87, wherein the engagement surface 146 is inclined with respect to the direction of movement of the drive chassis 24.
[0364] 94. The automatic injector 10 according to embodiments 92 and 93, wherein the engagement surface 146 and the deflection surface 150 are cooperatively inclined with respect to the direction of movement of the drive chassis 24.
[0365] 95. The automatic injector 10 according to one of embodiments 78 to 94, wherein the drive spring 74 is configured to drive the drive chassis 24 towards the needle guard 18 after actuation of the automatic injector 10.
[0366] 96. The automatic injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 further comprises a plunger support 44 that engages with the piston of the prefilled syringe 16.
[0367] 97. The automatic injector of embodiment 96, wherein relaxation of the drive spring 74 drives the plunger support 44 toward the plunger 26 of the prefilled syringe 16.
[0368] 98. An automatic injector according to one of the above embodiments, wherein the drive chassis 24 is of a generally U-shaped design.
[0369] 99. An automatic injector according to one or more of the above embodiments, wherein the trigger arm 36, the drive chassis 24 and the plunger support 44 are formed in one piece from the same material.
[0370] 100. An auto-injector 10, optionally according to one or more of the above embodiments, comprising a pre-filled syringe 16 disposed within the housing 12 of the auto-injector 10, a needle shield 78 covering the needle 34 of the pre-filled syringe 16 during a storage phase of the auto-injector 10, an axially movable needle guard 18 arranged to cover the needle 34 of the pre-filled syringe 16 at least after use of the auto-injector 10 and to move relative to the pre-filled syringe 16 during use of the auto-injector 10, and a removable cap 70 into which the needle guard 18 is stored during a storage phase of the auto-injector 10, wherein during the storage phase of the auto-injector 10, the cap 70 is removably connected to the needle guard 18, and when the cap 70 is removed, the needle shield 78 is also removed from the auto-injector 10.
[0371] 101. The auto-injector according to one or more of the above embodiments, wherein the needle guard 18 is connected to the cap 70 via one or more snap-fit connections 94.
[0372] 102. The automatic injector of embodiment 101, wherein each snap-fit connection 94 includes a snap-fit protrusion 96 that cooperates with a corresponding snap-fit area 98.
[0373] 103. The automatic injector of embodiment 102, wherein one or more snap-fit protrusions 96 are provided on the outer surface 126 of the needle guard 18.
[0374] 104. The automatic injector of embodiment 101 or embodiment 102, wherein one or more snap-fit areas 98 are provided on an inner surface of the cap 70.
[0375] 105. The automatic injector according to one or more of the above embodiments, wherein during a storage phase of the automatic injector 10, the outer wall 116 of the cap 70 contacts the outer wall 136 of the housing 12.
[0376] 106. An automatic injector as described in embodiment 105, wherein the outer wall 116 of the cap 70 and the outer wall 136 of the housing 12 do not overlap in the axial direction of the automatic injector 10.
[0377] 107. An automatic injector according to embodiment 105 or embodiment 106, wherein the outer wall 116 of the cap 70 and the outer wall 136 of the housing 12 overlap radially in the storage stage of the automatic injector 10.
[0378] 108. The automatic injector according to one or more of the above embodiments, wherein the cap 70 prevents axial movement of the needle guard 18 when attached to the needle guard 18 during the retraction phase.
[0379] 109. The automatic injector according to one or more of the above embodiments, wherein in a storage phase of the automatic injector 10, the needle shield 78 is disposed within the inner wall of the cap 70.
[0380] 110. The automatic injector according to one or more of the above embodiments, wherein a front end of the needle guard 18 is disposed within the opening 124 of the cap 70.
[0381] 111. An automatic injector according to one or more of the above embodiments, wherein the front end 122 of the needle guard 18 is positioned within an opening 124 of the cap 70, the opening 124 being formed between the outer wall 116 of the cap 70 and the inner wall of the cap 70.
[0382] 112. An automatic injector according to one or more of the above embodiments, wherein the front end 122 of the needle guard 18 is disposed within the opening 124 of the cap 70, and the front end 122 of the needle guard 18 includes the one or more snap-fit protrusions 96.
[0383] 113. An automatic injector as described in one of the above embodiments, wherein the inner surface 128, 132 of the housing 12 is provided with one or more grooves 130, 134, within which one or more of the snap-fit protrusions 96 can move axially relative to the housing 12 upon movement of the needle guard 18.
[0384] 114. An automatic injector according to one or more of the above embodiments, wherein the axially movable needle guard 18 is arranged to move relative to the housing 12 during use of the automatic injector 10.
[0385] 115. The automatic injector according to one or more of the above embodiments, wherein the cap 70 is of a single-piece design.
[0386] 116. An auto-injector according to one or more of the above embodiments, wherein the cap 70 includes an inwardly facing protrusion 108 on the needle guard-facing end 102 that engages the syringe-facing surface 110 of the needle shield 78.
[0387] 117. The automatic injector according to one or more of the above embodiments, wherein the inner wall 106 of the cap 70 is provided with two windows 112.
[0388] 118. The automatic injector 10 according to embodiments 116 and 117, wherein each protrusion 108 is disposed in a window 112.
[0389] 119. The automatic injector 10 according to one or more of the above embodiments, wherein the recess 114 is formed in the inner wall of the cap 70.
[0390] 120. The automatic injector 10 according to one or more of the above embodiments, wherein the inner surface 118 of the outer wall 116 of the cap 70 is provided with one or more ribs 120.
[0391] 121. The automatic injector 10 according to one or more of the above embodiments, wherein the cap 70 comprises a stand for the automatic injector 10.
[0392] 123. The automatic injector 10 according to one or more of the above embodiments, wherein axial movement of the needle guard 18 in the direction of the prefilled syringe 16 results in engagement of a release mechanism 40 of the plunger 26 of the prefilled syringe 16, administering the substance stored in the prefilled syringe 16.
[0393] 124. The auto-injector 10, optionally according to one or more of the above embodiments, a housing 12 in which a prefilled syringe 16 is disposed; a drive chassis 24 mounted to the housing 12, the drive chassis 24 being biased against the housing 12 and being fixed relative to the housing 12 during a retraction phase of the auto-injector 10; The housing further includes a status indicator window 20 through which the drive chassis 24 is visible from the outside, the status indicator window 20 indicating a first portion 50 of the drive chassis 24 during a storage stage of the automatic injector 10 and a second portion 52 of the drive chassis 24 after use of the automatic injector 10, and the first portion 50 and the second portion 52 of the drive chassis 24 are distinguishable from each other. Auto-injector 10.
[0394] 125. The automatic injector 10 according to embodiment 124, wherein the status indicator window 20 is formed by an elongated slot extending radially around a portion of the housing 12.
[0395] 126. The automatic injector 10 of embodiment 124 or embodiment 125, wherein the first part 50 and the second part 52 of the drive chassis 24 are distinguishable from each other by differences in color, a printed label applied to the surface of the drive chassis 24, text applied to the surface 49 of the drive chassis 24, and / or an icon displayed on the surface of the drive chassis 24.
[0396] 127. The auto-injector 10 according to one or more of the above embodiments, further comprising a syringe window 14 through which the prefilled syringe 16 is visible from the outside.
[0397] 128. The automatic injector 10 of embodiment 127, wherein the syringe window 14 shows the contents filled in the prefilled syringe 16 during the storage stage of the automatic injector 10.
[0398] 129. The automatic injector 10 of embodiment 127 or embodiment 128, wherein the syringe window 14 shows at least one of the plunger 26 disposed within the prefilled syringe 16 and a portion of the dosing rim 22 that is within the prefilled syringe 16 after use of the automatic injector 10.
[0399] 130. The automatic injector 10 according to one of embodiments 127 to 129, wherein the syringe window 14 is disposed in the housing 12.
[0400] 131. The automatic injector 10 according to one of embodiments 127 to 130, wherein the syringe window 14 is elongated in shape, the length of the elongated shape extending in the axial direction of the automatic injector 10.
[0401] 132. The automatic injector 10 according to one of embodiments 127 to 131, wherein the syringe window is arranged transversely to the status indicator window 20.
[0402] 134. The auto-injector 10 according to one of embodiments 127 to 132, wherein the syringe window shows a different part of the drive chassis 24 compared to the status indicator window 20.
[0403] 135. The auto-injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 includes a trigger arm 36 that engages with an opening 138 in the housing 12 during a storage stage of the auto-injector 10.
[0404] 136. The automatic injector 10 according to one or more of the above embodiments, further comprising a needle guard 18, wherein axial movement of the needle guard 18 towards the drive chassis 24 unlocks the drive chassis 24 relative to the housing 12.
[0405] 137. The automatic injector 10 according to embodiment 136, wherein the needle guard 18 includes a plunger arm 142.
[0406] 138. The automatic injector 10 of embodiment 136 or embodiment 137, wherein the needle guard 18 engages with the trigger arm 36 when moving axially toward the drive chassis 24.
[0407] 139. The automatic injector 10 of embodiment 137 or embodiment 138, wherein the plunger arm 142 of the needle guard 18 engages with the trigger arm 36 when moving axially toward the drive chassis 24.
[0408] 140. The auto-injector 10 according to one or more of the above embodiments, further comprising a drive spring 74 mounted between the housing 12 and the drive chassis 24.
[0409] 141. The automatic injector 10 of embodiment 140, wherein the spring is configured to drive the drive chassis 24 toward the needle guard 18 after actuation of the automatic injector 10.
[0410] 141. The automatic injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 further comprises a plunger support 44 that engages with the piston of the prefilled syringe 16.
[0411] 142. The automatic injector 10 according to embodiment 139 or embodiment 140 and embodiment 141, wherein relaxation of the drive spring 74 drives the plunger support 44 towards the piston of the prefilled syringe 16.
[0412] 143. The auto-injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 is of a generally U-shaped design.
[0413] 144. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger arm 36, the drive chassis 24 and the plunger support 44 are formed in one piece from the same material.
[0414] 145. An auto-injector 10, optionally according to one or more of the above embodiments, comprising a drive chassis 24, the drive chassis 24 comprising a dosing rim 22 and a trigger rim 32, a plunger 26 disposed at a proximal end of said dosing rim 22, a trigger arm 36 disposed extending proximally from said trigger rim 32, the trigger rim 32 and the dosing rim 22 respectively disposed parallel to each other, at least essentially parallel to each other, and connected to each other at the distal side of the dosing rim 22 and the trigger rim 32, respectively.
[0415] 146. The automatic injector 10 according to embodiment 145, wherein the trigger rim 32, the dosing rim 22, the plunger support 44, and the trigger arm 36 are integrally formed in one piece.
[0416] 147. The automatic injector 10 according to embodiment 145 or embodiment 146, wherein the trigger arm 36 is biased against the housing 12 of the automatic injector 10 during the storage phase of the automatic injector 10.
[0417] 148. The auto-injector 10 according to one or more of the above embodiments, wherein the trigger arm 36 is deflected when moving the auto-injector 10 from a retracted stage to an actuated stage of the auto-injector 10.
[0418] 149. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger arm 36 is actuated by the needle guard 18 of the automatic injector 10 when moving the automatic injector 10 from the retracted stage to the actuated stage of the automatic injector 10.
[0419] 150. The automatic injector 10 according to one or more of the above embodiments, wherein the plunger support 44 is configured to act on the pre-filled syringe 16 of the automatic injector 10.
[0420] 151. The automatic injector 10 according to one or more of the above embodiments, further comprising a drive spring 74.
[0421] 152. The automatic injector 10 according to embodiment 151, wherein the drive spring 74 is disposed within the housing 12 of the automatic injector 10 between the distal housing wall 84 and the drive chassis 24.
[0422] 153. The automatic injector 10 according to embodiment 152, wherein the drive spring 74 biases the trigger arm 36 against the housing 12 of the automatic injector 10 during the storage phase of the automatic injector 10.
[0423] 154. The automatic injector 10 according to one of embodiments 152 to 153, wherein the drive spring 74 is configured to drive the plunger 26 of the automatic injector 10 within the prefilled syringe 16 of the automatic injector 10.
[0424] 155. The auto-injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 is linearly guided within the housing 12 of the auto-injector 10 as the auto-injector 10 moves from the storage stage to the actuation stage of the auto-injector 10.
[0425] 156. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger arm 36 is configured to move radially and laterally relative to the trigger rim 32.
[0426] 156. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger arm 36 is configured to cooperate with a stop mechanism 54 arranged on the housing 12 during a storage phase of the automatic injector 10.
[0427] 158. The auto-injector 10 according to one or more of the above embodiments, wherein the trigger rim 32 and the dose rim 22 are each U-shaped and at least approximately U-shaped.
[0428] 159. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger rim 32 further comprises at least a first portion 56 of an audible end-of-dosage feedback member 58.
[0429] 160. The automatic injector 10 of embodiment 159, further comprising a housing 12, the housing 12 further comprising at least one second portion 66 of the audible dose end feedback member 58, optionally, the housing 12 being formed by an outer body 82 and an inner body 80, one of the inner body 80 and the outer body 82 comprising the at least one second portion 66 of the audible dose end feedback member 58.
[0430] 161. The automatic injector 10 described in embodiment 159 or embodiment 160, wherein the first part 56 and the second part 66 of the audible dose end feedback member 58 are formed by a recess 208 and a latching tongue 62 configured to cooperate with the recess 208.
[0431] 162. The automatic injector 10 according to one of embodiments 159 to 161, wherein the audible end-of-dosing feedback member 58 is configured to emit a sound when the substance is administered from the automatic injector 10.
[0432] 163. The automatic injector 10 according to one of embodiments 159 to 162, wherein the audible end-of-dosing feedback member 58 is configured to emit a sound between the drive chassis 24 and the housing 12 when a substance is dispensed from the automatic injector 10.
[0433] 164. The automatic injector 10 according to one or more of the above embodiments, wherein the inner body 80 further comprises a first notch 174, the first notch 174 being configured to cooperate with a clip arm 184 and a lockout arm 186 of the needle guard 18.
[0434] 165. The automatic injector 10 of embodiment 164, wherein the inner body 80 further comprises a second notch 176, the second notch being configured to cooperate with a lockout arm 186 of the needle guard 18.
[0435] 166. The automatic injector 10 according to one or more of the above embodiments, wherein the drive chassis 24 further comprises a second trigger arm 36.
[0436] 167. The automatic injector 10 according to embodiment 166, wherein the second trigger arm 36 is disposed on a side of the drive chassis 24 opposite the first trigger arm 36.
[0437] 168. The auto-injector 10 according to one or more of the above embodiments, wherein the trigger rim 32 includes a passageway 140 formed therein.
[0438] 169. The automatic injector 10 of embodiment 168, wherein the passage 140 is configured to receive at least a portion of the drive spring 74.
[0439] 170. The automatic injector 10 according to one or more of the above embodiments, wherein the trigger rim 32 includes a lip 216 at an end disposed opposite the web 42.
[0440] 171. The automatic injector 10 according to embodiment 170, wherein the lip 216 is configured to engage with a clip arm 184 formed on the needle guard 18.
[0441] 172. The automatic injector 10 of embodiment 170 or embodiment 171, wherein the lip 216 has two tips 218, each tip 218 configured to engage with a respective one of the clip arms 184 formed on the needle guard 18.
[0442] 173. The automatic injector 10 according to one or more of the above embodiments, wherein the needle shield 78 includes a needle receptacle 212 configured to receive the needle 34 of the prefilled syringe 16.
[0443] 174. The automatic injector 10 according to one or more of the above embodiments, wherein the cap 70 includes a needle shield holder 104 configured to receive the needle shield 78.
[0444] 175. The automatic injector 10 according to one or more of the above embodiments, wherein the needle guard 18 further comprises one or more lockout arms 186.
[0445] 176. The automatic injector 10 according to embodiment 175, wherein the one or more lockout arms 186 are configured to cooperate with the inner body 80.
[0446] 177. The automatic injector 10 according to embodiment 175 or embodiment 176, wherein the one or more lockout arms 186 are configured to engage with one or more bars 178 of the inner body 80 in a lockout stage.
[0447] 178. The automatic injector 10 according to one of embodiments 175 to 177, wherein the one or more lockout arms 186 are configured to engage with respective ones of the one or more notches 176 in the inner body 80 during the lockout stage.
[0448] 179. The automatic injector 10 according to one of embodiments 175 to 178, wherein one or more lockout arms 186 are configured to engage with one or more further notches 174 in the inner body 80 during the administration phase and the retraction phase.
[0449] 180. The auto-injector 10 according to one or more of the above embodiments, wherein the needle guard 18 further comprises one or more clip arms 184.
[0450] 181. The automatic injector 10 according to embodiment 180, wherein the one or more clip arms 184 are configured to cooperate with respective ones of the one or more notches 174 of the inner body 80 during the administration phase.
[0451] 182. The automatic injector 10 according to embodiment 180 or embodiment 181, wherein the one or more clip arms 184 are biased inward and abut against the inner surface 132 of the inner body 80 during the lockout phase.
[0452] 183. The auto-injector 10 according to one of embodiments 180 to 182, wherein the one or more clip arms 184 are configured to be biased inwardly by the drive chassis 24 upon proximal movement of the drive chassis 24.
[0453] 184. The automatic injector 10 according to one or more of the above embodiments, wherein the needle guard 18 further comprises a plunger arm 142.
[0454] 185. The automatic injector 10 according to embodiment 184, wherein the plunger arm 142 is provided with one or more blocking ribs 144 arranged at its distal end.
[0455] 186. The automatic injector 10 according to embodiment 185, wherein the plunger arm 142 has two blocking ribs 144, the two blocking ribs 144 being disposed opposite each other.
[0456] 187. The automatic injector 10 according to embodiment 185 or embodiment 186, wherein one or more blocking ribs 144 are configured to block radial movement of the trigger arm 36 during the retraction phase.
[0457] 188. The automatic injector 10 according to one of embodiments 184 to 187, wherein the plunger arm 142 is provided with one or more cams 162.
[0458] 189. The automatic injector 10 according to embodiment 188, wherein the one or more cams 162 are configured to engage with one or more trigger arms 36 of the drive chassis 24 upon actuation of the automatic injector 10.
[0459] 190. The automatic injector 10 according to embodiment 189, wherein the one or more cams 162 are configured to pull the one or more trigger arms 36 of the drive chassis 24 in the transverse direction T upon actuation of the automatic injector 10.
[0460] 191. The automatic injector 10 according to one or more of the above embodiments, wherein the needle guard 18 is provided with one or more protrusions 166 cooperating with respective ones of the one or more elongated holes 168 present in the inner body 80.
[0461] 192. The automatic injector 10 according to embodiment 191, wherein one or more protrusions 166 are provided to ensure linear guidance of the needle guard 18 relative to the inner body 80.
[0462] 193. The auto-injector 10 according to one or more of the above embodiments, wherein the needle guard 18 further comprises one or more anti-removal mechanisms 170.
[0463] 194. The automatic injector 10 of embodiment 193, wherein the one or more anti-removal mechanisms 170 are configured to prevent the needle guard 18 from being removed from the proximal end of the housing 12.
[0464] 195. The automatic injector 10 of embodiment 194, wherein the inner body 80 has one or more elongated holes 168 each having a proximal stop 172, which prevents each one of the protrusions 166 from moving proximally beyond the stop 172.
[0465] 196. The automatic injector 10 according to one or more of the above embodiments, wherein the inner body 80 of the housing 12 further comprises at least one portion 66 of the audible end-of-dosing feedback member 58.
[0466] 197. The automatic injector 10 according to embodiment 196, wherein the portion 66 of the audible dose end feedback member 58 comprises an inner body recess 206 having a distal surface 196 and a proximal surface 198 surrounding the inner body recess 206.
[0467] 198. The auto-injector 10 according to one or more of the above embodiments, wherein the inner body 80 includes one or more notches 174, 176.
[0468] 199. The automatic injector 10 according to embodiment 198, and embodiment 196 or 197, wherein the one or more notches 174, 176 are disposed at an end of the inner body 80 disposed opposite the second portion 66 of the audible dose end feedback member 58.
[0469] 200. The auto-injector 10 according to one or more of the above embodiments, wherein the outer body 82 includes one or more stop mechanisms 54.
[0470] 201. The automatic injector 10 according to embodiment 200, wherein each stop mechanism 54 is provided at each opening 138.
[0471] 202. The automatic injector 10 according to embodiment 200 or embodiment 201, wherein each stop mechanism 54 is a component of each release mechanism 40 of the automatic injector 10.
[0472] 203. The automatic injector 10 according to one or more of the above embodiments, wherein the outer surface 49 of the trigger rim 32 includes a first portion outer surface 50 and a second portion outer surface 52 that differ in appearance from each other.
[0473] 204. A method of actuating an auto-injector 10, optionally according to one or more of the above embodiments, comprising: Releasing the snap-fit connection 94 between the cap 70 and the needle guard 18; axially moving the cap 70 away from the needle guard 18, thereby simultaneously removing the needle shield 78 from the pre-filled syringe 16; The method includes:
[0474] 205. A method of assembling an auto-injector 10, optionally according to one or more of the above embodiments, comprising: Providing a prefilled syringe 16; providing a needle shield 78; covering the needle 34 of the prefilled syringe 16 with a needle shield 78; inserting the needle shield 78 and the needle 34 into the cap 70; The method includes: [Explanation of symbols]
[0475] 10 auto-injector 12. Housing 14 Syringe window 16 Prefilled Syringes 18 Needle guard 20 Status Indicator Window 22 Dosing Rim 24 Drive Chassis 26 Plunger 28 Proximal end 30 Distal end 32 Trigger Rim 34 needles 36 Trigger Arm Distal end of 38 24 40 Release mechanism 42 Web 44 Plunger support 46, 46' First guide aid, first groove 48, 48' Second guide aid, second groove 49 32 outer surface 50 32 first portion outer surface 52 32 second part outer surface 54 Stopping mechanism 56 First part of the audible feedback member 58 Audible feedback members 60 Nose 62 Tongue 64 Depression 66 second portion of audible feedback member 58 68 Opening 70 Cap 72 Connection between 80 and 82 74 Drive spring 76 Lockout spring 78 Removable needle shield 80 12 inner body 82 12 outer body 84 12 distal wall 86 84 protrusion 88 18 end wall 90 28 protrusions 91 80 Aperture 92 80 proximal end 94 Snap-fit connection 96 Snap-fit protrusion 98 Snap-in area 100 base 102 End Facing the Needle Guard 104 Needle Shield Holder 106 104 Inner Wall 108 104 protrusion 110 Syringe-facing surface 112 Window 114 Depression 116 70 exterior wall 118 116 inner surface 120 Ribs 122 18 front end 124 Opening 126 18 outer surface 128 82 inner surface 130 82 groove 132 80 inner surface 134 80 grooves 136 12th exterior wall 138 Opening 140 32 Passage 142 Plunger Arm 144 Block Rib 146 Engagement surface 148 Web 150 Deflection surface 152 Convex surface 154 36 protrusions 156 54 first flat surface 158 54 second flat surface 160 Peak between 156 and 158 162 Cam 164 Rug 166 Protrusion 168 Slot 170 Anti-slip mechanism 172 Stop part 174 First Notch 176 Second notch 178 Bar 180 174 1st part 182 2nd part of 174 184 Clip Arm 186 Lockout Arm 188 Nose 190 Windows 192 Distal stop 194 Inner Body Assembly Stop Mechanism 196 Distal Surface 198 Proximal Surface 200 inclined surface 202 Click Surface 204 Distal inner housing end 206 Inner body recess 208 First snap-fit area 210 Secondary snap-fit area 212 Needle Receptacle 214 78 front end 216 Lip 218 216 Tip 220 Engagement part 222 220 Ramp 224 Flat area 226 Chamfered Surface 228 Rug A Axial direction B Arrow M Drug R Radial direction T transverse direction
Claims
1. An automatic injector (10), comprising: a housing (12) in which a pre-filled syringe (16) is disposed; a drive chassis (24) mounted to the housing (12), the drive chassis (24) being biased against the housing (12) by a drive spring (74) and being fixed relative to the housing (12) and fixed against movement relative to the housing (12) during a retraction phase of the automatic injector (10); the automatic injector (10) comprises a release mechanism (40), the release mechanism (40) comprising a trigger arm (36) adapted to engage a stop mechanism present in the housing (12) during the retraction phase of the automatic injector (10) to secure the drive chassis (24) relative to the housing (12), the drive chassis (24) further comprising a trigger rim (32) adapted to receive at least a portion of the drive spring (74), the trigger arm (36) being positioned to extend proximally from the trigger rim (32); the trigger arm (36) is configured to disengage from the stop mechanism (54) upon actuation of the automatic injector (10); Auto-injector (10).
2. 2. The automatic injector (10) of claim 1, wherein the stop mechanism (54) includes a surface (152), and the trigger arm (36) is configured to cooperate with the surface (152) of the stop mechanism (54).
3. 3. The automatic injector (10) of claim 1 or 2, wherein the surface (152) is a convex surface.
4. 3. The automatic injector (10) of claim 1 or 2, wherein the trigger arm (36) includes a protrusion (154) that engages the stop mechanism (54).
5. 3. The automatic injector (10) of claim 1 or 2, wherein the trigger arm (36) includes a web (148) protruding from the trigger arm (36).
6. 3. The automatic injector (10) of claim 1 or 2, further comprising a needle guard, wherein axial movement of the needle guard toward the drive chassis (24) engages the release mechanism to release the fixation of the drive chassis (24) relative to the housing (12) upon actuation of the automatic injector (10).
7. 7. The automatic injector (10) of claim 6, wherein the axial movement of the needle guard (18) is configured to deflect the trigger arm (36) of the release mechanism (40) in a direction transverse to the axial movement.
8. 7. The automatic injector (10) of claim 6, wherein the needle guard (18) comprises a plunger arm (142) having a blocking rib (144).
9. 9. The automatic injector (10) of claim 8, wherein the plunger arm (142) includes a cam (162), the cam (162) having an engagement surface (146) configured to engage the trigger arm (36).
10. 10. The automatic injector (10) of claim 9, wherein the cam (162) of the plunger arm (142) protrudes from the plunger arm (142) in a radial direction (R) directly adjacent to the blocking rib (144) so that the cam (162) faces the trigger arm (36) during the retraction phase.
11. 6. The automatic injector (10) of claim 5, wherein the web (148) projects from the trigger arm (36) in a transverse direction (T) facing a cam (162) of the plunger arm (142).
12. 10. The automatic injector (10) of claim 9, wherein the engagement surface (146) is inclined relative to the direction of movement of the drive chassis (24), and optionally the engagement surface (146) is inclined to deflect the trigger arm (36) in a direction different from the axis (A) of movement of the needle guard (18).
13. the drive spring (74) is configured to lock the trigger arm (36) relative to the stop mechanism (54) during the retraction phase to prevent transverse and / or radial movement of the trigger arm; and / or the drive spring (74) is further configured to, upon actuation of the automatic injector (10), move the trigger arm (36) to disengage the trigger arm (36) from the stop mechanism (54) following an initial distal and lateral movement of the trigger arm (36); and / or the drive spring (74) is configured to drive the drive chassis (24) toward the needle guard (18) after actuation of the automatic injector (10); An automatic injector (10) according to claim 1 or 2.
14. a surface (152) of the stop mechanism (54) configured to cooperate with the trigger arm (36) to prevent transverse and / or radial movement of the trigger arm (36); and / or The drive chassis (24) is configured to be pressed toward the drive spring (74) to overcome the stop mechanism (54). An automatic injector (10) according to claim 1 or 2.
15. 3. The automatic injector (10) according to claim 1 or 2, wherein the surface (152) comprises at least a portion of a surface (156, 158) inclined with respect to the axial direction (A), in particular the surface (152) comprises two portions of a surface (156, 158) inclined with respect to each other and with respect to the axial direction (A).
16. 3. The automatic injector (10) of claim 1 or 2, wherein the stop mechanism (54) is formed by an opening (138) in the outer wall of the housing (12) and / or the stop mechanism (54) is formed by an opening (138) in the outer body (82) of the housing (12).