Automated Drug Delivery Device
The automated drug delivery device addresses complex actuation and assembly issues by using a rotatable cap retention mechanism and flexible gripping element, enhancing user safety and operational feedback.
Patent Information
- Application Number
- JP2020564746
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-05-24
- Filing Date
- 2019-05-23
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2039-05-23
AI Technical Summary
Existing automatic drug delivery devices face issues such as complex geometries, unintuitive actuation mechanisms, potential misuse, complex assembly, and inadequate protection of needle tips, along with challenges in syringe assembly and feedback mechanisms.
An automated drug delivery device with a removable cap that is axially retained by a retaining element, allowing secure attachment and removal through rotation, featuring a safety shield biased to cover the needle and providing tactile and visual feedback, along with a flexible gripping element for handling the syringe assembly.
Enhances user safety and ease of use by preventing accidental actuation, simplifying assembly, and ensuring secure handling of delicate components while providing effective feedback on operation status.
Smart Images

Figure 0007755931000001 
Figure 0007755931000002 
Figure 0007755931000003
Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to automated drug delivery devices, particularly autoinjectors for delivering fluid products, particularly fluid medications, to patients.
[0002] Automatic drug delivery devices configured as autoinjectors are well known in the prior art. There are various types of automatic drug delivery devices available on the market. While current state-of-the-art automatic drug delivery devices provide reliable functionality, they still have many drawbacks that need to be overcome. [Background technology]
[0003] EP 2745866 B1 describes an automatic drug delivery device having a safety shield that acts as a trigger element. The automatic drug delivery device is activated by pressing the safety shield against an injection site on the patient's skin where the injection is to be performed. The safety shield is pressed into the longitudinal housing of the automatic drug delivery device, thereby initiating the injection process. When the injection is completed and the automatic drug delivery device is removed from the injection site, the safety shield is pushed out of the longitudinal housing and blocked in a safe position covering the needle tip by a blocking mechanism. The blocking mechanism is formed in the safety shield and includes a flexible arm among multiple components. This structure makes the safety shield complex in geometry and manufacturing. Furthermore, the flexible arm of this particular safety shield does not provide sufficient protection against the safety shield moving into the longitudinal housing after use.
[0004] EP 2903670B1 describes an automatic drug delivery device that is actuated by rotating a linkage member relative to an actuating member, thereby requiring a relative rotational movement between different components of the actuation mechanism. Such a rotational movement to actuate the automatic drug delivery device is often unintuitive, making the use of such an automatic drug delivery device uncomfortable for users. A further automatic drug delivery device with a rotating component is known from EP 2583711A1.
[0005] Additionally, there are automatic drug delivery devices in which the injection process is initiated by pressing a button formed on the distal end or on the outer circumferential side of the device. Such devices involve the potential for misuse, as the triggering mechanism can be activated even when the drug delivery device is not correctly positioned at the injection site.
[0006] EP 2978471 B1 describes an automatic drug delivery device that is also activated by pressing a safety shield against an injection site. However, the actuation mechanism is complex in its structure, requiring multiple parts that interact during relative movement with each other. As a result, manufacturing and assembly are complicated.
[0007] U.S. Patent Application Publication No. 2016 / 0331905A1 describes an automatic drug delivery device that includes an actuation mechanism with a ratchet assembly. Different flexible arms interact with a notched rack. Due to the multiple components and moving elements, the device is susceptible to misuse and incorrect actuation. Furthermore, manufacturing and assembly are complex.
[0008] In addition to the assembly and function of the actuation mechanism, a further challenge for automated medication delivery devices is the positioning and retention of the pre-filled syringe assembly. Such pre-filled syringe assemblies typically include a glass body pre-filled with the fluid product to be dispensed. The glass body must be handled with great care during assembly so that it is not damaged or affected. To avoid direct handling of the glass body, this prior art document suggests the use of a syringe holder.
[0009] Reference is also made to WO 2016 / 193374 A1, which describes a specific syringe holder with flexible arms that bend from a pre-assembled state and release when an axial force is applied to the syringe-carrying container. An alternative syringe-carrying container is described in WO 2016 / 193355 A1, which provides an axial biasing force on a syringe within a housing of an automated drug delivery device. Another syringe holder that provides an axial force on a syringe is known from WO 2007 / 083115 A1. Furthermore, WO 2015 / 015230 A2 describes a syringe holder with a guard element for transferring axial loads to a syringe support. A further syringe-carrying container according to the prior art is known from WO 2016 / 089620 A1, which provides an annular member interconnected by two connecting arms with a C-shaped proximal receiving member.
[0010] A further challenge for automatic drug delivery devices is to provide a feedback signal to the user. Such feedback signal can be an audible, visual or tactile signal. Document WO 2016 / 193343 A1 describes an automatic drug delivery device with an audible indicator including a resilient arm that deflects radially outward during use and then releases, thereby generating an audible signal.
[0011] Moreover, another aspect of the automatic drug delivery device uses a removable cap that removes a rigid needle shield from the needle of the pre-filled syringe assembly during removal from the housing of the automatic drug delivery device. Such a removable cap is known from WO 2012 / 103140 A1. This document describes a relatively complex structure of the removable cap having multiple cap engagement mechanisms. Summary of the Invention [Means for solving the problem]
[0012] Cap Features The present invention provides an automated drug delivery device for dispensing fluid products, particularly fluid medications, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end; a distal end opposite a proximal end and a hollow interior; a removable cap attachable to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing, the syringe assembly having a hollow body and a needle coupled to the hollow syringe body, the syringe body containing a fluid product; a drive mechanism actuable by a trigger element to initiate dispensing of the fluid product; the loaded drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where the safety shield projects from the proximal end of the longitudinal housing to cover the tip of the needle, and the safety shield is movable to a distal position where the needle is exposed for injection; The present invention relates to an automatic drug delivery device in which a removable cap is axially retained on the proximal end of the longitudinal housing by engagement of a retaining element between the cap and the longitudinal housing, the retaining element being engaged and disengaged by rotation of the cap relative to the longitudinal housing so that axial movement of the cap relative to the housing can remove the cap, and the axial movement of the cap relative to the housing is supported by a biasing force applied to a safety shield.
[0013] The removable cap is axially retained on the proximal end of the longitudinal housing by engagement of a retaining element between the cap and the longitudinal housing. The longitudinal housing may include a retaining structure for engaging at least one engagement structure provided on the removable cap. The engagement structure may engage with the retaining structure to retain the removable cap on the longitudinal housing. Such engagement may increase the security of the fit between the cap and the longitudinal housing.
[0014] The design of the retaining elements, e.g., the retaining or engaging structures, can be designed to define the method of cap removal, or at least the preferred method of removal. For example, removal of the cap by pulling may be prevented, so that it is only necessary to press and twist it off. Removal of the cap by pulling may also be possible, which would typically be set to an appropriate force. The user may be able to choose between both removal methods. The force required to remove the cap by pulling may be set to a lower level than the force required to twist it off.
[0015] The removable cap may include an end cap body having at least one interior surface defining an axially open receptacle and having an internal ring coupled to the end cap body, the internal surface of the removable end cap and the internal ring forming a space for receiving the proximal end of the longitudinal housing. This space between the internal surface and the internal ring may provide a secure way in which the proximal end of the longitudinal housing can be received, which reduces the risk that the cap may be misaligned or accidentally removed or dislodged. While forming an internal ring in the cap may be advantageous, options may be considered in connection with other features provided by the present invention.
[0016] To perform the proper retention function, the retention structure may be formed by at least one protrusion, such as a U-shaped protrusion, formed on the outer peripheral surface of the longitudinal housing near the proximal end and projecting radially outward, with a recess in the U-shaped protrusion opening distally. The engagement structure may be formed by at least one retention rib on the radially inner peripheral surface of the removable cap. Retention between the removable cap and the longitudinal housing is provided by engaging the retention rib into the U-shaped protrusion formed on the longitudinal housing.
[0017] A suitable retention feature may also be implemented by providing that the longitudinal housing and the removable cap include at least one engaging protrusion and receive formations for maintaining the removable cap in a locked position relative to the longitudinal housing.
[0018] The longitudinal housing may include at least one radially inward engaging protrusion formed on an inner circumferential surface of the proximal end of the longitudinal housing, and the engaging protrusion may be adapted to engage with at least one corresponding radially outward protrusion formed on an outer circumferential surface of the inner ring.
[0019] The at least one radially inward engaging projection may be formed by a rib, preferably with a chamfer, e.g., a chamfered or rounded edge, and the at least one receiving formation may be formed by two opposing chamfered projections and one axial projection. The retaining element for axially retaining the removable cap on the proximal end of the longitudinal housing may include an internal projection formed on the proximal end of the longitudinal housing and a projection formed on the interior of the end cap body, the internal projection of the cap body including a recess within which the internal projection is circumferentially retained by the chamfered projection.
[0020] The cap of the safety shield may engage the removable cap with a proximal contact surface formed on or near the proximal end of the needle shield when the removable cap is attached to the longitudinal housing, for example during cap removal. The proximal contact surface can be a proximal front surface of the needle shield or a stepped surface or shoulder provided near the proximal end of the needle shield. The automatic drug delivery device may further provide that said proximal end of the longitudinal housing engages the removable end cap on at least one interior surface and / or interior ring.
[0021] The removable cap may include at least one guide surface or cam path surface, which may be formed as a guide surface inclined relative to the longitudinal axis to guide the removable cap along at least a portion of its twisting motion in the proximal direction. The at least one guide surface or cam path surface may be disposed on an outer peripheral surface of the inner ring. The cam path surface may be conformal or inclined relative to the longitudinal axis to guide the removable cap along at least a portion of its rotational or twisting motion in the proximal direction (away from the longitudinal housing). As a further option, the guide surface may be provided as a congruently closed, curved front surface on the proximal end of the removable cap, or may be formed on the inner peripheral surface of the removable cap, with corresponding guide protrusions that engage the guide surface formed on the inner peripheral surface of the removable cap or on the front surface of the longitudinal housing.
[0022] The safety shield may include a cylindrical and / or ring-shaped hollow body at its proximal end, and at least one safety shield protrusion may be provided on the hollow body. The at least one safety shield protrusion may be adapted to engage a protrusion or recess on the removable cap to limit distal movement of the safety shield relative to the removable cap. The safety shield may thereby prevent the automatic medication delivery device from unintentionally triggering, i.e., the device from beginning to deliver medication, upon unintentional impact of the safety shield, particularly after a free fall and subsequent impact with a hard surface.
[0023] The removable cap, when attached to the longitudinal housing in its retaining position, may be secured to the longitudinal housing by a breakable seal. The breakable seal may be an attached sticker that overlaps the outer periphery of the longitudinal housing and the removable cap, and may act as a visible seal that, when broken at the joint between the longitudinal housing and the removable cap, indicates whether the device has been used or, when intact at said joint, whether it is in its original, unused state. Breaking the seal may also require a certain threshold force when twisting the removable cap relative to the housing, which may be detected by the user.
[0024] The present invention provides a method of removing a removable cap from an automatic medication delivery device as described herein, comprising: rotating the removable cap relative to the longitudinal body to disengage a retaining element between the cap and the longitudinal body; providing a removal force to separate the removable cap from the longitudinal body; and using a biasing force applied to the safety shield to assist in separating the removable cap from the longitudinal body.
[0025] By rotating the removable cap beyond a position where the retaining element between the cap and the longitudinal housing is disengaged, a cam path on the removable cap or housing engages a portion of the longitudinal housing or removable cap, providing at least a portion of the removal force to separate the removable cap from the longitudinal body.
[0026] Once the retention element is disengaged, the removable cap can be urged proximally by a biasing force acting on the safety shield, and audible or tactile feedback may indicate that the engagement between the engagement structure and the retention structure has been released. Feedback may be provided by the user upon sensing that the initial resistance to twisting of the cap relative to the housing due to engagement is overcome by a response to the application of a sufficiently large twisting force, e.g., a manual twisting force. Once the engagement is disengaged by applying a sufficiently large threshold twisting force, the removable cap can be further rotated. After a certain level of rotation, an axial force acting on the safety shield will support the removable cap and urge it proximally, away from the housing. This provides another tactile feedback experienced by the user, which may indicate the correct way to handle the device.
[0027] When attached to the proximal end of the housing, the removable cap may contact the safety shield and hold the safety shield in a capped position such that a biasing force biasing the safety shield to a proximal position assists in removing the cap as the cap is removed. It should be noted that the removable cap may not be axially retained on the proximal end of the longitudinal housing by engagement of a retaining element between the cap and the longitudinal housing, which may be disengaged by rotating the cap relative to the longitudinal housing such that the cap can move axially relative to the housing to remove said cap.
[0028] The capped position of the safety shield may be between the proximal and distal positions to which the safety shield is biased when not restrained by the cap. In this way, the safety shield is held in a position within its expected range of motion. As noted above, the capped position may be such that further movement against the biasing force is required to move the safety shield to the distal position.
[0029] In the capped position, the tip of the needle may protrude beyond the safety shield. The cap holds the safety shield in the capped position and prevents access to the needle. When the cap is removed, the safety shield moves to its proximal position, where it protrudes from the proximal end of the longitudinal housing to cover the tip of the needle.
[0030] The removable end cap body may be formed to have a cylindrical body integrally formed with extensions, such as arcuate extensions or lobes, so that the body has a non-circular cross-sectional shape that provides a rock-resistant profile when the end cap is placed on a flat or slightly inclined surface. The exterior surface of the body may be textured or knurled to improve grip. For example, the exterior surface of the body may have a number of integrally formed radial gripping recesses or protrusions extending longitudinally between the proximal and distal ends of the body. The proximal part of the body may be formed with a smooth exterior surface. This surface may include arrow-shaped through-holes, recesses, or protrusions, or other indicia indicating the direction of movement to twist and / or push the end cap against the longitudinal housing.
[0031] The interior of the end cap body may include a cylindrical surface forming an axially open receptacle with a smooth receiving surface. Adjacent to the receptacle may be an integrally formed internal ring portion. The ring portion may include a substantially flat distally facing surface. One or more opening cross sections and one or more connecting structures connecting both elements may be provided between the ring portion and the inner peripheral surface of the end cap body. The ring portion may provide one or more protrusions on its outer peripheral surface extending radially outward into the opening cross section. On both sides of the protrusions, the outer peripheral surface of the ring portion may include sloped elevations having a distal-most position close to the protrusions and sloping distally to match the tips.
[0032] The outer peripheral surface of the ring portion may have two protrusions with chamfers or radii, forming a receiving space therebetween. This receiving space may be provided to receive and secure a protrusion formed on the inner peripheral surface of the longitudinal housing at its proximal end, so as to be hidden when viewing and handling the device. This allows for a hidden connection between the housing and the removable cap, which cannot be manipulated. Furthermore, re-capping of the autoinjector may be hindered or avoided.
[0033] On its radially inner surface, the ring body may include one or more opposing radially inwardly projecting projections that are provided to interact with and secure corresponding radially outward projections formed on the outer circumferential surface of the proximal end of the safety shield.
[0034] The removable end cap body near its proximal end may be faced with two annular arches arranged opposite each other and secured to the inner circumferential surface of the end cap body using connecting portions and connecting ribs.
[0035] An end cap cover provided for a removable end cap body may have a proximal end cap portion with slightly inclined projections and the same basic surface as the end cap body. An annular cylinder may extend from the proximal face of the end cap portion. The annular cylinder may have a plurality of longitudinal ribs on its outer circumferential surface that protrude beyond the distal end of the annular cylinder. The free ends of these longitudinal ribs may be provided with any number of radially outwardly projecting snap-fit projections that engage into corresponding (annular) recesses in the removable end cap body. The interior of the annular cylinder may have a chamfered radially extending rib running into the inner cylinder, which is also integrally formed with the distal face of the end cap portion. The distal front face of the arrangement formed by the cylinder, the rib projections, the radially inner rib, and the inner cylinder may form a conical or frusto-conical profile.
[0036] gripping element The syringe assembly may preferably include a rigid needle shield. The needle shield may be coupled to the proximal end of the hollow syringe body. The needle shield may preferably cover the needle together with its sharp tip. The inclusion of a needle shield may mean keeping the needle and the fluid product, e.g., a fluid drug, clean and sterile.
[0037] In addition to the covering and feedback functions of the removable cap, the removable cap may have another purpose for the device. The removable cap may also engage the needle shield. When removing the removable cap, the rigid needle shield may be grasped and removed along with the cap so that the user does not have to directly touch the rigid needle shield. Because the needle and syringe glass are delicate components, the rigid needle shield must be handled with care both during assembly and removal from the syringe assembly. The removable cap may include a flexible gripping element to engage the needle shield with its outer contour.
[0038] The present invention provides an automated medication delivery device for dispensing a fluid product, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end proximal to a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attachable to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing and having a hollow syringe body and a needle coupled to the hollow syringe body containing a fluid product; a drive mechanism that can be actuated by a trigger element to initiate dispensing of the fluid product; the drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where the safety shield projects from the proximal end of the longitudinal housing to cover the tip of the needle, and the safety shield is movable to a distal position where the needle is exposed for injection; the syringe assembly includes a needle shield secured to the proximal end of the hollow syringe body and covering the needle; The removable cap includes a flexible gripping element for engaging the needle shield on its outer circumferential surface such that removal of the removable cap removes the needle shield, the flexible gripping element having a diameter greater than the proximal end of the safety shield.
[0039] By providing a flexible gripping element with a larger diameter than the proximal end of the safety shield, longer flexible gripping elements, such as legs or lobes, can be utilized with lower assembly forces. Because the gripping element has a larger diameter than the proximal end of the safety shield, the gripping element does not have to extend into the safety shield, which can provide packaging advantages. Initially, with the removable cap on the device, the safety shield may be held in a position where at least a portion of the needle shield extends beyond the proximal end of the safety shield, as this facilitates assembly.
[0040] The needle shield may engage the hollow conical glass portion with an insert. The needle shield may include a flexible insert that receives the injection needle to buffer and sterilely receive the needle and needle tip. The flexible insert safely shields the needle and maintains sterility of the injection needle and any medication contained within the syringe and needle. The needle shield may include a tubular member containing the flexible insert. The exterior surface of the tubular member may include lateral gripping ribs and, alternatively, simply a relatively flexible exterior surface. The gripping ribs or the flexible exterior surface may be engaged by a gripping element.
[0041] The needle shield may be intended to be gripped on its outer circumferential surface. The needle shield may comprise at least one gripping structure on its outer circumferential surface contour, for example formed by at least one protrusion or recess, that engages with a flexible gripping element. The flexible gripping element is formed to engage with the outer contour of the needle shield. Alternatively, gripping can be achieved by the gripping element engaging a softer outer surface of the insert of the rigid needle shield.
[0042] The flexible gripping element may be fixedly mounted or may be positioned with axial and / or radial clearance within the removable cap. Positioning the flexible gripping element with a floating axial clearance within the removable cap facilitates flexing of the rim when the gripping element contacts the needle shield during assembly. The gripping element may be designed to reduce the axial force typically exerted on the rigid needle shield. This is to minimize collapse and ensure the integrity of the prefilled syringe container closure is maintained. If the gripping element were held rigidly, the flexible force would increase and the axial force on the needle shield could be much higher. Allowing a small floating clearance and having an edge that contacts the gripping element are design features that help reduce assembly forces and maintain the integrity of the container closure. The clearance may also allow rotation of the gripping element during cap removal, another advantageous feature that reduces the likelihood of coring.
[0043] The flexible gripping element may be formed by a flexible washer component, e.g., a blade washer, having a mounting portion that mounts within the removable cap. The flexible gripping element, such as a flexible washer component, may include at least one gripping arm or lobe that projects radially inward for engaging the needle shield. The blade washer may have a generally frusto-conical shape when installed.
[0044] The flexible gripping element may have an outer periphery, for example a circular periphery, surrounding the ring-shaped body. The flexible gripping element may include at least two radially inwardly extending lobes or arms integrally formed with the ring-shaped body, which may terminate in a circular radially inner gripping feature.
[0045] The flexible gripping elements may have a flat or frusto-conical shape, and in use any gripping arms or lobes may be adapted to bend to provide an axial spring action and / or gripping force, i.e., a force to grip the outer surface of the rigid needle shield. Such a gripping force may be a force that biases the bent gripping arms towards a radially central position and thus towards the rigid needle shield.
[0046] The external geometry of the gripping element may be circular or any other geometry suitable for the available assembly load or packaging space. There may be multiple radially extending lobes formed on a portion of the gripping element, and the blade geometry may be of any type to accommodate a certain insertion force during assembly and the ability to withstand the force from the rigid needle shield when the removable cap is removed from the longitudinal housing. The gripping element may be partially preformed. It may be advantageous to form ribs along the outer periphery of the gripping element. This may allow the gripping element to rotate inside the removable cap during cap removal. If the removable cap is rotated and the gripping element is only pulled longitudinally, a disruptive condition known as coring can be eliminated. Unintentional coring occurs, for example, in the prior art when the material of the rigid needle shield rotates around the needle hub of the syringe assembly. Coring can then unintentionally leave a removed rubber plug inside the needle, which is generally avoided to prevent interference that would stop the device from functioning properly.
[0047] The removable cap may include a proximal end cap cover that is mountable on or inside the removable cap, and the flexible gripping element is disposed in a mounting space between a receiving structure formed on or within the removable cap and the proximal end cap cover.
[0048] The rigid needle shield may be engageable by the gripping element with minimal resistance force applied axially by the gripping element during assembly, preferably in the range of 1N to 50N.
[0049] The present invention, as claimed, provides a method of assembling an automatic drug delivery device, comprising: a power unit subassembly, a syringe assembly, a syringe holder, and a proximal subassembly, the proximal subassembly includes a longitudinal housing extending along a longitudinal axis and having a proximal end near the dispensing location, a distal end opposite the proximal end, and a hollow interior, and a removable cap attached to the proximal end of the housing, the removable cap including a flexible gripping element, the proximal subassembly further including a safety shield, the flexible gripping element having a diameter larger than the proximal end of the safety shield; the first syringe assembly includes a hollow syringe body and a syringe needle formed with the hollow syringe body containing a fluid product, the syringe assembly including a needle shield secured to a proximal end of the hollow syringe body and covering the needle; providing a power unit subassembly including a drive mechanism actuable by a trigger element to initiate dispensing of the fluid product; Mounting a syringe assembly in a syringe holder; inserting the syringe assembly and syringe holder into the proximal subassembly such that the flexible gripping element engages the needle shield at its outer circumferential surface and the needle shield extends through the flexible gripping element; and attaching the power unit subassembly to the proximal subassembly such that the drive mechanism is operably coupled to the safety shield.
[0050] The removable cap may include a proximal end cap cover attachable to the removable cap, and the flexible gripping element is disposed within a mounting space between a receiving portion inside the removable cap and the proximal end cap cover.
[0051] The gripping element may provide an asymmetric gripping force such that the needle shield is biased into an unaligned position, e.g., axially misaligned within the removable cap. This may be achieved in various ways, for example, one or more lobes of the gripping element may have a different shape and / or length than the other lobes such that there is an asymmetric force load on the rigid needle shield when engaging the rigid needle shield. This causes a tilting or rotational action such that the rigid needle shield is deflected from its original position. This may prevent or avoid re-capping, i.e., reinstalling the cap onto the housing once the cap has been removed.
[0052] Dosing end features The automatic drug delivery device may further include a feedback mechanism that provides tactile and / or audible and / or visual feedback to the user to indicate the operating status, and the feedback mechanism may include a visual indicator that appears within the distal end of the housing. The visual indicator may appear within a window, which may be provided by a hole or may be made from a transparent or translucent material. The window and / or the distal end of the housing may be transparent or translucent around its entire circumference so that the visual indicator appears at an angle ranging up to 360°. The window and / or the distal end of the housing may be provided by the housing or by a separate part, such as an end cap, coupled to the housing.
[0053] The present invention provides an automated medication delivery device for dispensing a fluid product, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end proximal to a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attachable to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing and having a hollow syringe body and a needle coupled to the hollow syringe body containing a fluid product; a drive mechanism that can be actuated by a trigger element to initiate dispensing of the fluid product; the drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where the safety shield projects from the proximal end of the longitudinal housing to cover the tip of the needle, and the safety shield is movable to a distal position where the needle is exposed for injection; The device also provides an automatic drug delivery device, further comprising a feedback mechanism that provides the user with visible feedback indicating the actual state of operation, the feedback mechanism including a visible indicator that appears within a transparent window on the distal end of the housing.
[0054] The visual indicator may move distally to appear within the transparent window. The visual indicator may be formed by a radial inner indicator component and a radial outer indicator component biased into the indicator position by an indicator spring. The outer indicator may be released to the indicating position after delivery of a predetermined dose of the medication has been delivered to the patient. The predetermined dose may be any predetermined dose, but may also be a majority of the dose, more than 70% of the dose, more than 90% of the dose, or substantially all of the dose. The predetermined dose may be a majority of the dose, such that appearance of the visual indicator indicates the end of the infusion. The visual indicator may appear within a transparent window on the distal end of the housing to indicate the end of the infusion.
[0055] The external indicator component may include a visible surface. A visible surface is a surface intended to provide a visual indicator. The visible surface may include one or more of a color, shape, pattern, symbol, and image such that the visible surface is easily distinguishable from other surfaces or components of the device. The internal indicator component may interact with the housing or a separate part, such as an end cap coupled to the housing, to provide an audible and / or tactile signal.
[0056] The device may include a distal end cap closed by the distal face. The distal end cap may be formed from a transparent material to provide a transparent window. The distal face may be formed from a transparent material.
[0057] The safety shield spring may be supported between a shield retention trigger element and a shield retention indicator member. The shield retention trigger member may support a proximal end of the safety shield spring and may apply a biasing force to a distal end of the or each longitudinal arm of the safety shield to bias the safety shield proximally. The shield retention indicator member may support a distal end of the safety shield spring.
[0058] The present invention provides an automated medication delivery device for dispensing a fluid product, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end proximal to a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attachable to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing and having a hollow syringe body and a needle coupled to the hollow syringe body containing a fluid product; a drive mechanism that can be actuated by a trigger element to initiate dispensing of the fluid product; the drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where the safety shield projects from the proximal end of the longitudinal housing to cover the tip of the injection needle, and the safety shield is movable to a distal position where the injection needle is exposed for injection; Also provided is an automatic drug delivery device, wherein the safety shield has at least one longitudinal arm extending distally guided within the longitudinal housing, the safety shield interacts with a safety shield spring that biases the safety shield proximally via the at least one longitudinal arm, the safety shield spring being supported between a shield retention trigger member and a shield retention indicator member, the shield retention trigger member supporting a proximal end of the safety shield spring and applying a biasing force to the distal ends of the longitudinal arms of the safety shield, and the shield retention indicator member supporting the distal end of the safety shield spring.
[0059] The drive mechanism may include a plunger biased proximally by a drive spring. The plunger may be sealably guided within the syringe body and may act on a stopper that acts on a fluid product contained within the syringe body. The syringe holder may receive an axial force exerted by the plunger on the syringe body and may transmit the force to the longitudinal housing.
[0060] The loaded or activated drive mechanism may include a retainer. The retainer may extend from the distal end of the device to the syringe body. The retainer may include at least one radially deflectable flexible arm. The at least one flexible arm may be used to hold the plunger in a loaded position, where the plunger is biased in a proximal direction.
[0061] The retainer may be resiliently deflectable to bias the syringe body proximally. The retainer may include a proximal ring-shaped head having two opposing protrusions. The protrusions may contact the syringe body or may be configured to fit within a syringe body having a larger diameter so that the proximal ring-shaped head contacts the syringe body. For example, the protrusions may contact the syringe body of a 1 ml syringe and may be configured to fit within a 2 ml syringe body having a larger diameter so that the proximal ring-shaped head contacts the 2 ml syringe body.
[0062] The at least one flexible arm may further include a chamfered radially outward projection and a chamfered radially inward projection. The chamfered radially inward projection may be provided to interact with a corresponding engagement surface of the plunger to retain the plunger in the loaded position. The at least one flexible arm may interact with an inner peripheral surface of the shield retention trigger element using the chamfered radially outward projection.
[0063] When the safety shield is depressed distally to initiate dispensing of the fluid product, the shield retaining trigger element may move distally such that the shield retaining trigger element compresses the safety shield spring. After a predetermined stroke of the safety shield, the shield retaining trigger element may release the at least one flexible arm to move radially outward, thereby releasing the plunger to move proximally under the biasing force of the drive spring to expel and dispense the fluid product from the syringe body through the needle.
[0064] The shield retention indicator may include at least one longitudinal retention arm, and may be held by the at least one retention arm in a position where the display surface is not visible through the housing (e.g., through a window opening or through a transparent portion of the housing). The shield retention indicator thus provides a visible indicator. The at least one retention arm may be held by a retainer until the plunger reaches a predetermined dispensing position. Once the plunger reaches the predetermined dispensing position, the at least one retention arm is released from the retainer. After releasing the at least one retention arm, the shield retention indicator may be pressed by a safety shield spring into a visible position where the display surface is visible through the housing. A tactile and / or audible signal is generated when the shield retention indicator reaches its final visible position.
[0065] After the shield retention indicator is released and moved to the visible position and the safety shield is biased into position over the needle tip, the shield retention indicator can prevent distal movement of the shield retention trigger member, and the shield retention trigger member can prevent distal movement of the safety shield. In this manner, a locked chain of components can be formed from one end of the device to the other to prevent distal movement of the safety shield.
[0066] The shield retention indicator may be formed by a hollow cylinder having an annular cylindrical element that can be extended with arcuate extensions or lobes that fit the geometry of the housing. The shield retention indicator may be slidably but form-fittingly received by the hollow cylindrical extension of the longitudinal housing. The shield retention indicator has a smooth outer circumferential surface. At its proximal end, the shield retention indicator may comprise a plurality of, preferably four, longitudinal flexible arms, each having a proximal free end. The free ends of the flexible arms may comprise protrusions extending radially inward and be reinforced by short longitudinal chamfered ribs. The distal end of the shield retention indicator may comprise a circular opening.
[0067] The arms of the shield retention indicator are flexible, as described above, and thus reduce the degree of distal movement of the safety shield to a certain very limited amount after use. However, beyond this slightly reduced movement, the arms also block distal movement of the safety shield, and the arms are configured to deflect radially outward relative to the hollow cylinder of the longitudinal housing. The device thereby provides a very secure lockout after use, preventing easy access to the needle.
[0068] The outer circumferential surface of the shield retention indicator may have a signal color, i.e., yellow, orange or red, or a signal pattern that is clearly visible to the user, so that the user of the autoinjector, i.e., the doctor or patient, or the caregiver, can easily recognize when the shield retention indicator has been moved to a signal position that is clearly visible from the outside through the longitudinal housing, as discussed in connection with the operation of the drug delivery device according to the present invention.
[0069] The inner element of the shield retention indicator may be formed by a stepped tube having a first hollow cylindrical portion with a smaller diameter and an enlarged second hollow cylindrical portion with a larger diameter. At its proximal end, the inner element of the shield retention indicator may comprise two opposing flexible longitudinal arms extending proximally, a first portion running longitudinally, a second portion tilted slightly radially inward, and a third portion extending longitudinally but at a radial position further radially inward than the first portion. At its proximal end, each arm may have an angled retention protrusion extending radially outward.
[0070] The distal portion of the inner element of the shield retention indicator may include an end plate having a rounded, elongated cross-section generally the same as the distal end of the shield retention indicator. The diameter of the outer circumferential surface of the second hollow cylindrical portion may be adapted to be received within a circular opening provided in the distal end of the shield retention indicator.
[0071] To increase the safety level of the device, the device may further provide a locking ring within the longitudinal housing in the initial position, which may be locked to the safety shield during actuation, the locking ring blocking distal movement of the safety shield when it covers the needle after the fluid product is finally dispensed and the automated drug delivery device is removed from the injection site.
[0072] The locking ring may be initially held by the receiving component, and engages with the safety shield after the safety shield is pushed distally. When the automated drug delivery device is removed from the injection site, the locking ring is moved proximally together with the safety shield under the spring force of the safety shield spring. Moreover, the locking ring may block any distal movement of the safety shield relative to the receiving component when covering the needle.
[0073] After the plunger is released from the retainer, proximal movement of the safety shield may be prevented until the plunger reaches a predetermined dispensing position. This predetermined position may be, but need not be, the same predetermined position as the shield retention indicator. This may allow for accidental removal and subsequent needle reinsertion, rather than accidental removal causing the safety shield to cover the needle and thus waste the remaining dose. The safety shield remaining in the retracted state also makes it easier for the user to hold the device against the skin, since the biasing force acting on the safety shield does not act to move the device from the skin.
[0074] The safety shield may be partially biased distally into the housing by the end cap via the longitudinal arms against the force of the shield spring. The trigger element may act as an intermediate element between the longitudinal arms and the shield spring. In the assembled state, the trigger element may be permanently coupled to the distal ends of the arms of the safety shield via its protrusions and any clip features. The protrusions may be received within internal guide contours at the distal ends of the longitudinal arms. Furthermore, the chamfered protrusions may each engage within the through-holes or recesses of any clip features, thereby preventing the arms of the safety shield from separating from the trigger element under axial force in the assembled state. The chambers in the protrusions and the guide contours at the distal ends of the arms facilitate the assembly process.
[0075] The proximal end of the shield spring may engage a distal portion of the trigger element or abut against a peripheral or lateral rib of the trigger element, and the distal end of the shield spring may press against a flanged proximal face of a plate of the inner element of the shield retention indicator through the distal end of the shield retention indicator.
[0076] The shield retention indicator with its cylindrical body may receive and surround the internal element of the shield retention indicator and the shield spring. The longitudinal arms of the shield retention indicator may extend proximally through gaps provided between any lateral tabs and / or box-shaped structures, and each of the longitudinal arms may protrude radially outward from the trigger element. The longitudinal arms may pass through the trigger element such that protruding portions of the arms of the shield retention indicator engage the outer circumferential surface of the retainer.
[0077] The retainer and associated components may be securely held within the distal end cap, for example by a hollow cylinder that grips with an inner circumferential projection and fits snugly within the outer circumferential slot of the retainer, thereby securing the retainer within the device against any axial movement as well as tilting.
[0078] The shield retention indicator may be held in an axial position using the internal arms of the shield retention indicator despite the shield spring compressing with the internal elements of the shield retention indicator and the resulting axial drive force. This may be achieved by the arms reaching through longitudinal notches in the retainer and radially engaging with the lateral projections of the retainer behind those bridging the corresponding notches in the retainer. Furthermore, the outer peripheral surface of the plunger, which is disposed radially inside the arms in this state, may prevent the arms from bending radially inward and escaping their retention function on the lateral projections.
[0079] The plunger can hold the main spring in a compressed state. The proximal end of the compressed main spring can press against the proximal end of the plunger. The proximal end of the plunger can be slidably received within the hollow glass body of the syringe adjacent the stopper element. The distal end of the main spring can protrude from the plunger and be received within the hollow interior of a retainer that supports against the distal end. The plunger can be held in its axial position against the driving force of the main spring due to engagement with radially inward projections between the flexible arms, which engage within through holes provided in the plunger. Because the flexible arms are held in position by contact between their outer radial projections and the inner circumferential surface of the trigger element, the flexible arms cannot bend radially outward in response to the driving force of the compressed main spring. The plunger is thereby held by the flexible arms and their radially inward projections of the retainer.
[0080] Platform Features The present invention provides an automated medication delivery device for dispensing a fluid product, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end proximal to a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attachable to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing and having a hollow syringe body and a needle coupled to the hollow syringe body containing a fluid product; a drive mechanism that can be actuated by a trigger element to initiate dispensing of the fluid product; the drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where the safety shield projects from the proximal end of the longitudinal housing to cover the tip of the needle, and the safety shield is movable to a distal position where the needle is exposed for injection; the longitudinal housing provides an internal receiving component secured thereto for receiving the syringe holder and providing a predetermined radial and axial position of the syringe holder within the longitudinal housing; the syringe assembly is a first syringe assembly received within the longitudinal housing by a first syringe holder, the first syringe holder providing an interface between the longitudinal housing and the syringe assembly; Also provided is an automated drug delivery device, wherein the longitudinal housing and receiving component are sized and configured to receive a second syringe holder and a second syringe assembly, the second syringe assembly having a different diameter than the first syringe assembly.
[0081] This ability of the device to interchange a single part, in this case the syringe holder, to accommodate different syringe diameters may allow the device to be used as a platform device for a variety of syringe assemblies. The longitudinal housing and receiving component may be sized and configured to receive a second syringe holder and second syringe assembly, the second syringe assembly having a larger diameter than the first syringe assembly.
[0082] The internal receiving component may be fixedly mounted to an inner circumferential surface of the longitudinal housing and may provide a predetermined radial and axial position for the syringe holder within the longitudinal housing. The syringe holder may be received with its proximal end within the receiving component. The receiving component may be integrally formed within the housing. Alternatively, the receiving component may be formed as at least one separate piece fixedly mounted to the inner surface of the longitudinal housing.
[0083] By using a syringe holder, it may be possible to pre-manufacture a subassembly formed by the syringe holder and the syringe assembly. In a subsequent assembly step, this subassembly can be used and mounted in a longitudinal housing. This prevents the glass body of the syringe assembly from being directly handled during the assembly process. Instead, the syringe holder already covers at least a portion of the glass body of the syringe assembly and protects it during assembly. Furthermore, the syringe holder according to the present invention is provided to receive forces acting on the syringe assembly and transmit these forces to the housing, so that stresses acting on the glass body can be avoided or at least substantially reduced.
[0084] The receiving component may be formed as an annular member that receives the proximal end of the syringe holder with its inner circumferential surface. The outer circumferential surface of the annular member may be attached to the inner circumferential surface of the longitudinal housing by means of at least two interconnecting arms. The interconnecting arms between the receiving component and the longitudinal housing may be formed by a solid structure having a sufficient wall thickness to avoid any unintended movement of the receiving structure relative to the housing under axial loads acting thereon during operation.
[0085] The syringe holder may further be provided, away from its proximal end, preferably on its distal end, with at least one contact structure contacting the inner circumferential surface of the longitudinal housing. In this manner, the syringe holder can be supported on its proximal front end by the contact structure using two separate axial positions, i.e., receiving structures, within the longitudinal housing. In this manner, the syringe holder provides a stable position for the syringe assembly within the longitudinal housing.
[0086] The contact structure may be formed by two opposing support arches extending radially from the distal end of the syringe holder. A recess between the two arches may be used to guide a further functional component, such as a trigger mechanism, for example, the longitudinal arms of a safety shield as discussed herein. The two longitudinal arms may be guided through a recess formed in the syringe holder between the support arches.
[0087] As described above, the drive mechanism may include a plunger that may be biased proximally by a drive spring. The plunger may act on a stopper sealably guided within the syringe body and on a fluid product contained within the syringe body. The syringe holder may receive an axial force exerted on the syringe body by the plunger and transmit that force to the longitudinal housing.
[0088] The syringe holder may resiliently engage the syringe glass body near its proximal end using at least two resilient arms. Specifically, the syringe holder may be adapted to grip around a proximal front shoulder of the syringe glass body such that the resilient arms flex slightly during assembly to engage the glass syringe body on a radial step formed radially about the needle hub of the syringe glass body.
[0089] To provide the possibility of using one and the same device according to the present invention for different pre-filled syringes having different fluid product volumes, i.e., to provide a platform device that can be used for different pre-filled syringe sizes according to another aspect of the present invention, the syringe holder may be provided in different sizes that are compatible with different sizes of syringe bodies, whereby the syringe holder can be provided in different configurations to receive different syringe sizes and accommodate these different syringe sizes within the device according to the present invention without the need to modify the longitudinal housing or any other component thereof.
[0090] The present invention also relates to a syringe holder for an automatic drug delivery device as described herein, the syringe holder adapted to receive a syringe assembly within a longitudinal housing, the syringe holder providing an interface between the longitudinal housing and the syringe assembly, the longitudinal housing providing an internal receiving component fixedly mounted to an inner circumferential surface of the longitudinal housing that provides a predetermined radial and axial position of the syringe holder within the longitudinal housing, the syringe holder being received within the receiving component with its proximal end.
[0091] The syringe holder may receive the syringe radially or axially. The syringe holder may form part of a syringe assembly or act as a joint, spacer, or adapter, allowing for various syringe body and needle combinations for use with a particular automated drug delivery device. Specifically, the syringe holder may allow the device to be designed to receive a syringe body having a first outer dimension (with or without the syringe holder) to receive a syringe having a second outer dimension smaller than the first outer dimension by changing / adding only one component. The outer dimension of the syringe body may be a diameter or a length.
[0092] The syringe holder may be positioned to provide contact, interface, or attachment points where the syringe assembly interacts with other portions of the automated drug delivery device. The contact, interface, or attachment points provided by the syringe holder may replicate the contact, interface, or attachment points of another syringe assembly, such as a syringe assembly that does not require a syringe holder or a syringe assembly that includes a different syringe holder. In this way, the automated drug delivery device may be designed to receive and interact with a syringe assembly of a first size and shape, perhaps without a syringe holder, and still be able to receive and interact with a different syringe assembly through the use of an appropriate syringe holder.
[0093] The contact points, junctions, or attachment points may be provided on any suitable portion of the syringe holder. The contact points, junctions, or attachment points may be provided on one or more surfaces of one or more flanges, ridges, or other extensions from the body of the syringe holder. There may be at least two contact points, junctions, or attachment points, which may be longitudinally separated along the length of the syringe holder. One contact point, junction, or attachment point may be located at one end of the syringe holder and one at the opposite end of the syringe holder. As an example, the syringe holder may include a first junction that substantially replicates the flange of the syringe.
[0094] The automated drug delivery's ability to receive and interact with a variety of syringe assemblies is sufficient that a single device design can be used to administer medication from different syringe bodies, possibly in different volumes. Multiple syringe holders may be provided with the device so that an appropriate syringe holder can be selected for use with a particular syringe body and needle combination.
[0095] Accordingly, the present invention provides an automated drug delivery device for dispensing a fluid product, particularly a fluid medicament, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end proximal to a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attachable to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing, the syringe assembly having a hollow syringe body and a needle coupled to the hollow syringe body, the hollow syringe body containing a fluid product; a drive mechanism that can be actuated by a trigger element to initiate dispensing of the fluid product; the loaded drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where the safety shield projects from the proximal end of the longitudinal housing to cover the tip of the needle, and the safety shield is movable to a distal position where the needle is exposed for injection; The syringe assembly further provides an automated medication delivery device, wherein the syringe assembly further includes a syringe holder, the syringe holder supporting the syringe body within the housing.
[0096] The present invention provides a method for manufacturing an automatic drug delivery device, comprising the steps of: providing a housing, a drive mechanism, and a safety shield; providing a hollow syringe body and a needle coupled to the hollow syringe body, the hollow syringe body containing a fluid product; determining whether the syringe holder is required to support a hollow syringe body and needle combination; If necessary, selecting an appropriate syringe holder to create a syringe assembly including the syringe holder, the hollow syringe body, and the needle; and inserting the drive mechanism, the safety shield, and the syringe assembly into the housing to create the automated drug delivery device.
[0097] Multiple syringe holders may be provided. The syringe holders may be configured with different geometries and adapted to receive different syringes with different volumes of medication, and each syringe holder is adapted to fit within the same housing of the automated drug delivery device, regardless of the syringe received. In other words, syringe holders according to the present invention can be provided with different geometries and different configurations so that the syringe holders receive different syringe sizes (e.g., 1 ml and 2 ml) in a manner that is easy to assemble, consistent, and securely holds the syringe within the housing. Specifically, the geometries of the different syringe holders are adapted to fit into the exact same housing without further modification. This can provide a platform system, i.e., drug delivery devices with the same overall dimensions and assembly requirements for different dosages and medications. It may also be necessary to exchange plungers and provide a matching member at the proximal plunger end to accommodate, for example, syringes and / or syringe stoppers with different internal diameters.
[0098] The syringe holder may include at least one flexible portion that is capable of elastically deforming in a circumferential or radial direction, which may enable the syringe holder to receive and elastically retain a syringe body and / or needle therein.
[0099] The syringe holder may include a longitudinal body, which at its proximal end and / or its distal end is formed of a rigid, substantially inelastic U-shaped element so that a pre-filled syringe can be guided into the syringe holder from a radial direction perpendicular to the axial direction.
[0100] The syringe holder may be formed by two longitudinal shells connected by at least one flexible V-shaped portion that provides circumferential flexibility to the syringe holder, allowing the shells to resiliently move apart when guiding a syringe.
[0101] The syringe holder may include an internal radial projection for axially supporting the syringe body, particularly in the proximal axial direction. The internal radial projection of the syringe holder may support a proximal shoulder of the syringe body.
[0102] The syringe assembly may include a possibly rigid needle shield secured to the proximal end of the hollow syringe body and covering the needle. The syringe holder may radially receive the syringe assembly such that the internal radial projection is located between the syringe body and the needle shield. The internal radial projection may have a smaller diameter than the rigid needle shield.
[0103] The syringe holder may comprise one, two or more flexible zones or sections, particularly z-shaped flexible sections, that are capable of bending radially and / or circumferentially, and that, once distally inserted and received therein, can support the syringe axially while allowing some axial movement, for example, to absorb energy shocks and due to assembly misalignment.
[0104] The drive mechanism may retain the plunger in an initial position through engagement of the radially inward projection with a slot in the plunger. The plunger may include multiple retention slots to accommodate different syringe sizes or different fills. The multiple retention slots may include slots at different axial positions. One or more retention slots may engage with the drive mechanism, thereby determining the starting position of the plunger relative to a movable stopper or other feature of the syringe assembly. By providing slots with different longitudinal positions, the slots can be engaged with the drive mechanism at different longitudinal positions during manufacturing. The plunger may include longitudinally and circumferentially offset retention slots. This can facilitate manufacturing because the slots only need to engage with the drive mechanism in a specific rotational direction. By offsetting the slots circumferentially, the plunger can be aligned with the drive mechanism upon assembly rotation to the correct orientation, such that the longitudinal slots at the desired positions align with the drive mechanism-engaging components. The plunger can then be assembled to the drive mechanism by linear motion, such that the desired slots engage the drive mechanism. If the slots were not circumferentially offset, the assembly motion would require a combination of linear and rotational motion, which could result in assembly errors.
[0105] The plunger may include an alignment marker to facilitate rotational alignment. The alignment marker may be any suitable marker, for example a visible mark, for example a mark printed or etched on the plunger, or the marker may be a physical marker, for example a protrusion or groove that can be engaged by an assembly device. The alignment marker may be an alignment slot in the end of the plunger. The alignment slot may extend across substantially the entire diameter of the end of the cylindrical plunger. The alignment slot may be present in the stopper or plunger head that engages the end of the plunger to facilitate assembly.
[0106] The plunger head of the plunger rod may include an adapter to increase the diameter of the plunger head relative to the diameter of some stoppers. The plunger adapter may be integrally molded with the plunger. As with syringe holders, various options may mean that multiple plungers are available for assembly into a particular device.
[0107] This means that the method of manufacturing the above-described automatic drug delivery device may further include the step of determining which plunger head size is required for a particular syringe body and needle combination and selecting an appropriate plunger for assembling the device. Since the selection may not be based solely on head size, the manufacturing method may include: determining which of a plurality of plungers is required for use with the selected syringe assembly; and b. assembling the selected plunger into the device.
[0108] If the plunger has longitudinally offset slots for engaging the drive mechanism, the method of manufacturing the automatic medication delivery device described above may further include determining which longitudinal slots should engage a particular syringe assembly with the drive mechanism and engaging the appropriate longitudinal slot with the drive mechanism during assembly. If the longitudinal slots are circumferentially offset, the method may further include rotating the plunger a predetermined rotation relative to the drive mechanism before assembly.
[0109] As noted above, providing multiple plungers and syringe holders in a particular device design can provide a platform device that can be used to deliver medication from multiple syringe bodies having different sizes and fill volumes.
[0110] Thus, the present invention provides a kit of parts for assembling an automatic drug delivery device for delivering a medication from a hollow syringe body having an associated needle, where the hollow syringe body contains a fluid product, and the kit includes a standard housing, a standard drive mechanism, a standard safety shield, multiple syringe holders, and / or multiple plungers. This means that a combination of parts can be assembled together to produce an automatic drug delivery device appropriate for a particular hollow syringe body and needle. This "platform" construction allows the device to be adapted for use with syringe body / needle combinations having different sizes / shapes / fill volumes by changing only one or two parts.
[0111] The present invention also provides a kit of parts for assembling an automatic drug delivery device as described herein, the kit including a power unit subassembly, a first syringe assembly, a second syringe assembly, and a proximal subassembly, the proximal subassembly includes a longitudinal housing extending along a longitudinal axis and having a proximal end near the dispensing location, a distal end opposite the proximal end, and a hollow interior, and a removable cap attached to the proximal end of the housing; the first syringe assembly includes a hollow syringe body and a syringe needle formed with the hollow syringe body containing a fluid product; the second syringe assembly includes a hollow syringe body having a diameter larger than the diameter of the syringe body of the first syringe assembly, and a needle coupled to the hollow syringe body containing the fluid product; a power unit subassembly, a first syringe assembly, a second syringe assembly, and a proximal subassembly, wherein the power unit subassembly includes a drive mechanism that can be actuated by a trigger element to initiate dispensing of the fluid product; a first syringe holder for providing an interface between the longitudinal housing and the first syringe assembly; a second syringe holder for providing an interface between the longitudinal housing and the second syringe assembly; The assembled automated drug delivery device includes a power unit subassembly and a proximal subassembly, and a first syringe assembly and a first syringe holder, or a second syringe assembly and a second syringe holder.
[0112] The present invention provides a method for assembling an automatic drug delivery device using a kit of parts as described above, comprising the steps of: selecting either a first syringe assembly and a first syringe holder or a second syringe assembly and a second syringe holder; Loading a selected syringe assembly into a selected syringe holder; placing a syringe and a syringe holder in the proximal subassembly; and assembling a power unit subassembly onto the proximal subassembly.
[0113] As discussed herein, the syringe holder has the purpose of receiving and holding a pre-filled syringe within the housing. The syringe holder is adapted to receive different types of syringes with different volumes of medication without the need to change other components of the subassembly. Thus, different syringe holders should provide compatibility with different types / volumes of syringes.
[0114] The syringe holder may include a longitudinal body. At its proximal end, the syringe holder may be formed of a substantially rigid, inelastic U-shaped element. The U-shaped element may open in one radial direction. This rigid U-shaped element at the proximal end may be reinforced by parallel peripheral ribs. At its proximal front face, the U-shaped element may include transverse ribs or protrusions. At its distal end, the syringe holder may include a similar substantially rigid, inelastic U-shaped element. The distal U-shaped element may be reinforced by peripheral ribs. The peripheral ribs may include radially outward facing notches at opposing locations. The rigid U-shaped element may be connected by two, possibly substantially rigid, longitudinal linking arms. Each linking arm may extend linearly. Each arm may include a radially inward protrusion for releasably retaining a syringe within the syringe holder, the arms being deformable to allow the syringe body to pass between the protrusions. The inner surface of the protrusion may be contoured to allow the glass body of the syringe to be placed therein and retained.
[0115] When placed within the longitudinal housing, a syringe holder holding a pre-filled syringe assembly may be positioned so that any protrusions engage corresponding notches in the double ring structure. The syringe holder may be positioned within the longitudinal housing in a rotational position about the appropriate axial and longitudinal axis by the ring structure or double ring structure.
[0116] According to some examples of syringe holders, the syringe holder can be formed with a plurality of longitudinal shells with longitudinal notches therebetween. The shells can be connected at their respective distal and proximal regions by flexible V-shaped portions that provide circumferential flexibility to the syringe holder, allowing the shells to resiliently move apart as they guide the syringe. The syringe holder can further include radially outward protruding structures near its distal and proximal ends to secure the syringe holder within the housing of the autoinjector.
[0117] Internal radial projections may be formed in both shells for axially supporting the syringe once distally inserted and received within the syringe holder.
[0118] Alternatively, the syringe holder may have a hollow cylindrical receiving tube with a distal end and a proximal end. As with other examples described herein, this syringe holder may also include a radially outward protruding structure to retain the syringe holder within the housing of the autoinjector.
[0119] Near its proximal end, the syringe holder can include one or more double Z-sections, each including an inclined flexible arm interconnected by a peripheral rib. On its inner circumferential surface, the syringe holder can include a radially inward protrusion, which can be circumferentially formed within both flexible double Z-sections, for axial support once the syringe is distally inserted and received therein. In this syringe holder example, the syringe is pushed distally into the hollow cylindrical receiving tube with slight radial play. Due to the resilient flexibility of the two double Z-sections, the arms bend slightly, allowing the peripheral rib to move radially outward to grip the proximal front end of the syringe body.
[0120] The example syringe holders described herein have a circumferentially closed structure with features that provide some radial or circumferential flexibility, thereby allowing for easy assembly of a prefilled syringe with the syringe holder. The syringe is simply held by a flexible element that deforms radially outward during assembly. This allows tolerance variations in the syringe assembly to be balanced both radially and axially. Nevertheless, the syringe holder has a robust structure with a rigid shell or cylindrical receiving tube.
[0121] The plunger may be formed by a longitudinal cylindrical hollow element having a plunger head at its proximal end. The plunger head may include a front surface and a transverse slot. The front surface may include a small cylindrical through-hole. The front surface with optional transverse slot and cylindrical through-hole can be combined with or formed with a larger diameter plunger head element, if necessary, for example, for a syringe with a larger inner diameter to interface with a correspondingly larger stopper. This additional enlarged plunger head feature can be used to accommodate larger syringes, e.g., 2.25 ml fluid volumes. For smaller syringes, e.g., 1 ml fluid volumes, the enlarged plunger head component or feature can be omitted, and the plunger has a simple parallel cylindrical shape at its proximal end.
[0122] A pair of opposing rectangular through-holes may be provided in the wall of the hollow element at the center of the plunger. Note that a single through-hole can be used, rather than a pair of through-holes or slots being required. The plunger may have additional through-holes or pairs of through-holes that match the through-holes at different axial positions to accommodate different syringe sizes or drug fill volumes. At the distal end, the hollow element may have a longitudinally approximating circular opening for receiving a drive spring. The proximal end of the hollow element may include a stopper or plunger head engaging the end as discussed above, and may include a rotational alignment feature.
[0123] The retainer may act as a control member for multiple control functions of the power supply unit. The retainer may be formed from a hollow cylinder. On two opposite sides, the cylinder may include U-shaped notches, each forming a longitudinal flexible arm. The longitudinal flexible arms may be integrally connected to the hollow cylinder at their distal ends. At their proximal ends, the flexible arms may include a chamfered feature projecting radially outwardly toward the protrusion, and a corresponding chamfered feature projecting radially inwardly on the opposite side, i.e., radially inwardly thereof. Additionally, the cylinder may include two opposing longitudinal notches in regions rotated 90° relative to the flexible arms formed by the notches. The longitudinal notches may extend approximately the same longitudinal extent as the U-shaped notches, or further distally. The cylinder may include lateral projections that laterally bridge the notch in a region approximately one-third of the longitudinal length of the notch near the distal end of the notch, and these lateral projections are subsequently approached at the proximal end by additional projections having the same circumferential shape.
[0124] At its proximal end, the cylindrical body of the retainer may include a plurality of flexible arms integrally formed with the cylindrical body and inclined at an angle relative to the proximal front surface of the hollow cylindrical body. These flexible arms may be connected to a ring-shaped head. The ring-shaped head may be formed as a bushing with a cylindrical portion and two opposing proximal arcuate projections. The head may be integrally formed with the flexible arms or may be formed as a separate piece rigidly connected to the flexible arms, for example, using an intermediate connecting ring.
[0125] The flexible arms allow for some tolerance and compensation for different syringe sizes. Additionally, these flexible arms act on the distal end of the syringe to bias the syringe axially in a proximal direction to hold the syringe in a generally fixed position. Conversely, the biasing element positively biases the retainer and associated components distally.
[0126] At its distal end, the cylindrical body of the retainer can be formed with a circumferential groove. The distal end may have a distal end face with a central opening. At its interior near the distal end, the cylindrical body can have an internal guide rib running axially or longitudinally between the distal end face and the longitudinal section with the circumferential groove. The cylindrical body may have varying diameters, blending accordingly between diameter sizes, for assembly within other system components coaxially disposed or coupled around the retainer.
[0127] Additionally, the safety shield is held in its initial assembled state by the removable cap in an axial position. Specifically, this aims to prevent unintended distal movement, i.e., if the device is dropped and experiences impact when it hits the ground. This is achieved by engagement between a protrusion formed on the outer periphery of the barrel at the proximal end of the safety shield and two protrusions formed on the inner periphery of the inner ring portion of the removable cap. The protrusions thereby block any axial movement of the safety shield in the distal direction relative to the removable cap attached to the housing, and thereby relative to the housing.
[0128] At the distal end, the distal end cap can be fixedly and closely attached to the longitudinal housing by a snap-fit arrangement, with protrusions formed on the outer peripheral surface of the skirt of the distal end cap engaging with through holes formed in the distal end of the housing.
[0129] Furthermore, in the assembled state, the syringe can be maintained within the syringe holder, which is received within the ring structure of the housing. As described above, the syringe holder can be positioned relative to the housing using the ring structure, with lateral protrusions engaging within respective notches and additional protrusions protruding into hollow spaces provided by the U-shaped elements of the syringe holder. The syringe can be axially or laterally assembled within the syringe holder before assembling the syringe holder within the housing or after assembling the syringe holder within the housing, depending on the syringe's geometry. Any U-shaped elements of the syringe holder are rigid and are intended not to bend during assembly or actuation of the syringe, allowing the rigid needle shield to pass through. Note that the syringe can be rotationally held within the syringe holder or can rotate freely.
[0130] Assembling the syringe inside the device can be problematic due to glass breakage and difficulty in inspecting the final position. By side-loading the syringe into the syringe holder, better control and access to critical features can be achieved. Assembly may be done by visual positioning and inspection. Assembly may be done by dimensional and force control and inspection.
[0131] Additionally, the syringe can be pressurized proximally against the conical, stepped ring structure of the housing via the syringe flange using the head of the retainer together with the syringe holder, and once fully assembled with the power unit, the flexible arms of the retainer act as an axial biasing means that provides a spring force axially in the proximal direction to maintain and thereby position the syringe in place within the syringe holder.
[0132] Further features The syringe assembly may include a hollow syringe body containing the fluid product and a needle formed with the hollow syringe body. The term hollow syringe body is intended to include a hollow cartridge or other hollow body, and it should be understood that a piston or movable stopper within the hollow body can move to create a variable-volume chamber from which fluid can be discharged via an outlet. The outlet may include an integral needle, such as those found in fixed-needle syringes, or the needle may be coupled to the hollow body in another manner, such as by a luer lock, a threaded connection, or other suitable connection. The outlet from which fluid can be discharged may also be created by the back of the needle piercing a membrane, for example, during actuation of the automated drug delivery device.
[0133] The housing may have a non-circular shape in cross section of at least a portion thereof to provide anti-vibration functionality.The housing may be formed in whole or in part from an opaque or transparent material.
[0134] The fluid product is typically a pharmaceutical composition / formulation suitable for parenteral administration to a human or animal subject. The pharmaceutical composition / formulation comprises one or more pharmaceutically active agents, including biological pharmaceuticals such as low molecular weight compounds and / or recombinant products. Examples of pharmaceutically active agents include antibodies (full length or active fragments thereof), polypeptides / peptides and derivatives thereof, as well as nucleic acid molecules, which may be part of a combination with a delivery vehicle such as a vector, a viral particle, and optionally a lipid. The nucleic acids and polypeptides / peptides may be produced by biological processes or synthetically. In one example, the fluid product comprises a pharmaceutical active selected from secukinumab, canakinumab, bimagrumab, omalizumab, tesidolumab, iodelcizumab, elgemtumab, lacnotuzumab, ofatumumab, ligelizumab, ranibizumab, brolucizumab, and ianalumab.
[0135] The present invention provides an automated drug delivery device, particularly an autoinjector, for dispensing a fluid product, particularly a fluid medication, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end proximal to a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attachable to the proximal end of the housing; a syringe assembly mounted at a mounting location inside the housing, the syringe assembly having a hollow syringe body and a needle integral with the hollow syringe body containing a fluid product; a loaded or activated drive mechanism that can be actuated by a trigger element to initiate dispensing of the fluid product; a feedback mechanism that provides tactile and / or audible and / or visual feedback to the user indicating the actual state of operation; the needle projects from the proximal end of the housing with a sharp needle tip when the syringe assembly is in its loaded position; the load or energized drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where the safety shield projects from the proximal end of the longitudinal housing to cover the sharpened needle, and the safety shield is movable against a biasing force to a distal position where the sharpened needle is exposed for injection; During use, the automatic drug delivery device is in the following operating states: an initial state in which the automated drug delivery device is fully assembled and has removable end caps attached to the longitudinal housing; The removable end cap is removed from the housing and the safety shield is placed over the needle tip, ready to use; a trigger state in which the automated drug delivery device is pressed against the patient's skin, thereby forcing the safety shield into the longitudinal housing to release the needle tip for injection; a dispensing state in which the fluid product is dispensed into the patient's tissue; and an in-use state in which the fluid product has been completely dispensed, the automatic drug delivery device has been removed from the patient's skin, and the safety shield covers the needle tip.
[0136] The safety shield may include at least one, and possibly two, distally extending longitudinal arms guided within the longitudinal housing. The safety shield may interact with a safety shield spring, which biases the safety shield proximally via the or each longitudinal arm. This may allow for a relatively simple and compact actuation mechanism. The basic mechanical actuation and biasing functions may be concentrated at the distal end of the housing, away from the safety shield and syringe assembly.
[0137] The loaded or activated drive mechanism may include a plunger biased proximally by a drive spring. The plunger may act on a stop, which may be sealably guided within the syringe body. The plunger may act on a fluid product contained within the syringe body.
[0138] The proximal end of the drive spring may act on the distal end of the plunger. The distal end of the drive spring may act on a fixed end cap, which may be fixed to the distal end of the longitudinal housing. The fixed end cap may include a rod member for longitudinally guiding the drive spring. The fixed end cap may also be attached to the longitudinal housing by a snap-fit engagement.
[0139] The distal end of the drive spring may be received within a rotary click element rotatably disposed within the fixed end cap together with the distal end of the plunger. The rotary click element and the fixed end cap may have corresponding engaging sawtooth profiles, allowing relative rotation of the rotary click element relative to the fixed end cap in one rotational direction and preventing relative rotation in the opposite rotational direction. The rotary click element may be configurable in its axial position depending on the rotational position of the rotary click element relative to the fixed end cap. The intensity of an audible or tactile signal may be selectable depending on an initially selected rotational position of the rotary click element.
[0140] The autoinjector of the present invention may be formed by different subassemblies, such as a proximal subassembly including an end cap, a prefilled syringe unit, and a power supply unit subassembly. These three subassemblies may be provided as separate preassembled modules for assembling the device of the present invention. This allows the syringe unit and power supply unit to be preassembled. Furthermore, the corresponding prefilled syringe can be sealed and used with the desired medication provided therein with a predetermined volume for drug delivery.
[0141] The three subassemblies can be assembled to form a complete autoinjector by inserting a prefilled syringe, with or without the syringe unit (if necessary), into the syringe holder, which is then inserted distally into the open distal end of the syringe unit's body and into the power supply unit until it locks in a predetermined, non-separable position. This modular structure allows the device according to the present invention to be easily assembled in an error-free manner. It should be understood that the terms prefilled syringe unit or prefilled syringe are used herein to refer to a syringe body coupled to a needle. The syringe body includes a variable-volume chamber filled with a medication that can be expelled through the needle.
[0142] If desired, the syringe may be attached or coupled to a syringe holder within the housing or external to the housing to provide a syringe assembly or syringe subassembly.
[0143] The proximal syringe unit subassembly may include a removable cap formed by an end cap body, a blade washer, and a proximal end cap cover. Additionally, the proximal syringe unit subassembly may include a safety shield, a longitudinal housing, and a syringe holder.
[0144] The syringe subassembly may include a rigid needle shield with an insert, a glass body with a fixed needle, a medication, and a stopper.
[0145] The power unit subassembly may include a trigger element, a trigger spring, a shield retention indicator, a plunger, a drive spring, a retainer, a shield retention indicator inner element, and a distal end cap.
[0146] The plunger may have a proximal end that can be appropriately adapted to different syringe sizes, preferably by mating with an adapter piece.
[0147] The device may have a label on the exterior of the housing, the label including a black interior surface that inhibits light and the ability to view the edge of the use indicator before use. The device may have a label on the exterior of the housing that is opaque, thereby preventing the ability to view the edge of the use indicator before use, or that is sufficiently opaque to limit the user's ability to view the edge of the use indicator before use.
[0148] The safety shield may include a ring-shaped hollow cylindrical body with two diametrically opposed longitudinal arms at its proximal end. This arrangement of body and longitudinal arms may be formed in one piece or in separate pieces, i.e., the cylindrical body may include a separate cover, which may be formed from a colored material.
[0149] The ring-shaped body may have one or more protrusions near its distal end. The distal end of the ring-shaped body may comprise an annular collar having a rounded circumferential ring with one or more opposing slots. A longitudinal hollow may extend distally from the annular collar and be divided into two separate halves by the slots. Two longitudinal arms may be integrally formed with the distal end of the collar, with a first transition between the collar and the first longitudinal arm having a stepped course to form a first shoulder, and a second transition between the first longitudinal arm and the second longitudinal arm forming a second sloped shoulder. Each second longitudinal arm may have a protrusion protruding radially outward from its outer periphery and having a sharp radial surface facing proximally and a sloped chamfered surface facing distally. The longitudinal arms have a rectangular through-hole near their distal ends, collinear with the protrusion.
[0150] The outer circumferential surface of each second longitudinal arm may include internal guide projections. Additionally, the inner circumferential surface of the cylinder may include guide ribs projecting radially inward. These internal guide ribs can guide the rigid needle shield during assembly of the syringe. Alternatively, the outer circumferential surface of each second longitudinal arm may have guide ribs and the inner circumferential surface of the cylinder may include guide projections.
[0151] The barrel may be smooth and chamfered on its leading (proximal) end to prevent the barrel from damaging or abrading the patient's skin. As noted above, the barrel together with the longitudinal arms may be a single piece construction or a multi-piece assembly.
[0152] The housing is intended to form the body of the device. It is formed from a stable, rigid, transparent or opaque material. If not entirely transparent, the housing can be formed with a drug viewing notch or transparent window to allow the user to see the liquid contents of the syringe and the state of the device. Additionally or alternatively, the location of the stopper may be visible to the user through such a window. The state of the device may include the location of the stopper within the syringe body. The housing is formed by a longitudinal tubular member. At its proximal end, the tubular member may comprise a hollow cylindrical portion having a generally circular cross-section and a front surface. A short distance from the proximal end, the longitudinal member may comprise an arched extension or lobe having generally the same shape and cross-section as the end cap cover to provide additional geometry with anti-rocking capabilities in a flat surface, for example, when the removable end cap is removed.
[0153] At the proximal end of the housing, the cylindrical portion may have opposing rib-like protrusions projecting radially inward on its inner circumferential surface; the protrusions may be hidden or inconspicuous on the outside, and the protrusions are adapted to interact with a removable end cap. Additionally, in its central portion, the housing may have two opposing longitudinal through-holes functioning as guide slots. Alternatively, these through-holes may be replaced by guide channels that open to the inside of the housing but close on its outer circumferential surface. Nearer the distal end, but in line with the guide slots, the housing may have further opposing through-holes, which may alternatively be provided as internal recesses, which close on the outer circumferential surface. Near its distal end, the housing may have a pair of opposing transverse through-holes, which may alternatively be provided as internal recesses, which close on the outer circumferential surface for attachment to a power supply unit subassembly. The distal end may further comprise a distal front surface having two opposing short notches for enhancing rotational coupling with the power unit.
[0154] The housing may have a ring or double ring structure in its interior, which is integrally connected to the tubular member in the region of the cylindrical section by means of at least one rigid connecting arm. The connecting arm may be formed by a stable U-shaped structure with two transverse longitudinal connecting ribs and one transverse connecting rib running in the circumferential direction. The size and U-shaped cross-sectional shape of the connecting ribs should provide structural rigidity to the housing. This joining geometry is also important for material flow when the component is molded.
[0155] Additionally, the ring or dual ring structure may have an outer ring running into a hollow inner ring with a conical transition. To the proximal end, a reinforcing rib may stabilize the connection between the outer and inner rings. At the distal end, the conical transition may include one or more notches and / or rib-like axial projections. The arrangement of the notches and axial projections may accommodate a pre-filled syringe, either directly or in conjunction with a syringe holder.
[0156] The trigger element may be formed by a generally cylindrical hollow body. At its proximal end, the trigger element has a front surface surrounded by a chamfered rim and equipped with two radially extending, opposing lateral tabs. Two rectangular protrusions may extend longitudinally from the front surface of these lateral tabs. The protrusions may include chamfered protrusions extending radially outward to bias the safety shield. The tubular hollow body may extend distally and provide a surrounding annular reinforcing rib connected to the proximal end, reinforced at its midsection by a longitudinal rib. Between the proximal end and the reinforcing rib, a recess formed by two opposing rectangular hollow box elements or other wall structures may be provided on the outer surface of the trigger element. These box elements or recesses each provide a hollow space within which additional components, such as an electronic sensor, can be accommodated. The trigger element acts as a temporary blocking element for a shield retention indicator, described below, during use of the drug delivery device.
[0157] Further distally, the outer peripheral surface of the tubular hollow body may be provided with further annular and peripheral reinforcing ribs, e.g., having an L-shaped profile for supporting a spring. The distal end of the tubular hollow body of the trigger element may be formed by a hollow cylindrical portion having a front surface. Inside thereof, the trigger element may be provided with a plurality of, preferably four, longitudinal guide ribs, two pairs of these guide ribs each connected by an arched connecting rib that extends circumferentially along the inner peripheral surface of the tubular hollow body.
[0158] The end plate may be a colored surface of an indicator that is opaque and easily visible when the label is on the exterior surface of the transparent housing.
[0159] The shield spring that biases the shield retention indicator internal element distally can be positioned so as to be concealed between the shield retention indicator internal element and the shield retention indicator, and the entire indicator can be positioned in a portion distal to the drug delivery device that faces the user and is easily visible during use.
[0160] The distal end cap may have a distal end cap body with the same cross-sectional profile as the distal end of the longitudinal housing, i.e., rounded with arcuate extensions or lobes. The distal end cap body may be formed from a transparent material and closed by a distal face. The transition between the peripheral face and the distal face may be rounded or chamfered. At its proximal end, the distal end cap may comprise a skirt portion that can be form-fittingly received within the distal end of the longitudinal housing in the assembled state. The skirt portion thus has a transition to the distal end cap body via a reduced outer diameter and a stepped face.
[0161] In the region of the stepped surface, the distal end cap may be provided with longitudinal protrusions corresponding to the notches described on the longitudinal housing. The interaction of the protrusions and the notches allows the distal end cap to be positioned relative to the longitudinal housing. Furthermore, the skirt may be slotted to provide a plurality of longitudinal protrusions, the outer circumferential surface of which may each be formed with a chamfered snap-fit protrusion that is snap-fit into a corresponding through-hole provided in the longitudinal housing when assembling the device.
[0162] It is noted that the snap-fit engagement between the protrusion and the through-hole should not be easily separable once assembled. The device according to the invention is a disposable device, and the distal end cap is not removed from the longitudinal housing again after being secured to the housing. The device does not provide or intend to replace or refill the syringe after use, or to allow any other access to the interior and components of the device once used.
[0163] Looking at the interior of the distal cap, the end cap may comprise a hollow cylindrical body integrally formed with the bottom surface of the distal cap. Preferably, the distal cap is formed of a transparent or opaque material that provides a 360° window for an indicator to show the use status of the device. Inside, the distal cap includes a hollow receptacle, e.g., a cylindrical hollow body, for receiving the distal body of the drive spring received within the distal end of the retainer. However, by selecting a neutral color for the retainer, this arrangement is not visible from the outside through the transparent distal cap.
[0164] In the assembled or initial state of the device, the end cap is mounted onto the longitudinal housing, and the end cap is circumferentially held within a corresponding receiving space between two protrusions formed on the inside of the end cap body by engagement of the internal protrusions formed on the proximal end of the housing. Furthermore, the end cap can be held longitudinally by engagement of the internal protrusions formed within the proximal end of the housing, each of which is positioned behind a protrusion formed on the internal ring portion of the end cap body. This allows the removable cap to be held onto the housing against an axial pull-out force by the protrusions, and against a small twist-off force below a twist-off force threshold by the opposing protrusions that form the receiving space.
[0165] The longitudinal housing may be made of a transparent or opaque material, with at least a transparent portion or window through which the actual state of operation is visible to the user.
[0166] The invention will now be further described, by way of example only, with reference to the following drawings. [Brief explanation of the drawings]
[0167] [Figure 1] FIG. 1 is a perspective view of the drug delivery in an assembled state. [Figure 2-3]Figure 2 is an exploded view of the drug delivery device according to Figure 1 showing its subassemblies, in particular the removable cap, the safety shield, the longitudinal housing and the syringe holder. Figure 3 is an exploded view of the drug delivery device according to Figure 1 showing its subassemblies, in particular the pre-filled syringe. [Figure 4] 2 is an exploded view of the drug delivery device according to FIG. 1 showing its subassemblies, specifically the trigger element, trigger spring, shield retention indicator, plunger and spiral spring, retainer, shield retention indicator interior, and distal end cap. [Figure 5-7] 10A-10C show different perspective views of the cap housing. [Figure 8-13] Figures 8 and 9 show different perspective views of the cap insert, and Figures 10-13 show different perspective views of an example needle shield gripper. [Figure 14-18] 1 shows different views of the safety shield; [Figure 19-22] 1 shows different views of the longitudinal housing; [Figure 23-25] Figures 23 and 24 show perspective views of the syringe holder, and Figure 25 shows an assembled pre-filled syringe. [Figure 26-29] Figures 26 and 27 show exploded perspective views of the rigid needle shield and its insert, Figure 28 shows a perspective view of the syringe body, and Figure 29 shows a perspective view of the stopper. [Figure 30-33] 1A-1C are different views of a trigger element. [Figure 34-37] Figures 34 and 35 show different perspective views of the shield retention indicator, and Figures 36 and 37 are perspective views of the plunger. [Figure 38-41] Figure 38 is a perspective view of the inside of the shield holding indicator. Figures 39 to 41 are different views of the holder. [Figure 42-43] 10A-10C are different perspective views of the distal end cap. [Figure 44]Figures 44a to 44d show a side view (Figure 44a) and different longitudinal cross-sections of a device according to the invention in its initial state, where Figure 44b is a longitudinal cross-section rotated by 90° relative to Figure 44a, Figure 44c is a longitudinal cross-section rotated by 180° relative to Figure 44a, and Figure 44d is a longitudinal cross-section rotated by 45° relative to Figure 44a. [Figure 45] Figures 45a to 45d show views according to Figures 44a to 44d in a state where the removable cap has been partially twisted off the longitudinal housing. [Figure 46] Figures 46a-46d show views according to Figures 44a-44d with the removable cap completely removed from the longitudinal housing and the device ready to dispense a fluid product. [Figure 47] Figures 47a-47d are views according to Figures 44a-44d with the device already pressed against the patient's skin, with the safety shield partially pressed into the longitudinal housing. [Figure 48] Figures 48a-48d show views according to Figures 44a-44d with the device pressurized against the patient's skin, the injection needle inserted into the patient's skin, the safety shield fully depressed into the longitudinal housing and dispensing of the fluid product initiated. [Figure 49] Figures 49a to 49d show views according to Figures 44a to 44d when a portion of the fluid product has been dispensed. [Figure 50] Figures 50a-50d show views according to Figures 44a-44d when the fluid product has been almost completely dispensed and the indicator mechanism has been activated. [Figure 51] Figures 51a to 51d show the fluid indicator according to Figures 44a to 44d when it has reached its final position. [Figure 52] Figures 52a-52d show views according to Figures 44a-44d when the fluid product has been fully dispensed. [Figure 53] Figures 53a-53d show views according to Figures 44a-44d when the device is in the process of being removed from the injection site on the patient's skin, with the needle partially retracted from the patient's tissue and the safety shield partially released. [Figure 54]Figures 54a-54d show views according to Figures 44a-44d with the device in the process of being removed from the injection site on the patient's skin, with the needle fully retracted from the patient's tissue and the safety shield further released. [Figure 55] Figures 55a-55d show views according to Figures 44a-44d with the device completely removed from the injection site on the patient's skin, with the needle completely retracted from the patient's tissue and the safety shield completely released. [Figure 56] Figures 56a to 56d show views according to Figures 44a to 44d with the device completely removed from the injection site on the patient's skin, with the safety shield blocked against further axial recession. [Figure 57-58] 10A-10C are different views of a further example of a syringe holder. [Figure 59-60] 10A-10C are different views of a further example of a syringe holder. [Figure 61-62] Figure 61 is a perspective view of a different drug delivery device in an assembled state, and Figure 62 is an exploded view of the drug delivery device according to Figure 1 showing its subassemblies. [Figure 63-65] Figure 63 is an exploded view showing components of a syringe unit subassembly including a front cap according to Figure 62. Figure 64 is an exploded view showing components of a syringe subassembly according to Figure 62. Figure 65 is an exploded view showing components of a power supply unit subassembly according to Figure 62. [Figure 66-68] Figures 66a-66b are different perspective views of the distal end cap body, Figure 67 is a perspective view of the distal end cap cover, and Figure 68 is a perspective view of the blade washer. [Figure 69-70] Figures 69a and 69b are perspective views of the safety shield of the syringe unit sub-assembly, and Figure 70 is a perspective view of the safety shield indicator. [Figure 71-72] Figures 71a and 71b are perspective views of a lock ring of the syringe unit sub-assembly, and Figures 72a and 72b are perspective views of a syringe holder of the syringe unit sub-assembly. [Figure 73]Figures 73a and 73b are perspective views of the syringe unit sub-assembly housing, and Figure 73c is a side view of the syringe unit sub-assembly housing from the right, showing the internal structure. [Figure 74-77] Figure 74 is a perspective side view of a rigid needle shield. Figure 75 is a perspective side view of a needle-receiving insert for a rigid needle shield. Figure 76 is a perspective view of a glass body containing a needle. Figure 77 is a perspective view of a stopper. [Figure 78-79] 78a and 78b are different perspective views of the plunger rod of the power unit subassembly, and 79a and 79b are perspective views of the shield retainer trigger of the power unit subassembly. [Figure 80-81] Figures 80a and 80b are perspective views of a shield retention indicator for a power supply unit sub-assembly, and Figures 81a and 81b are perspective views of a retainer for a power supply unit sub-assembly. [Figure 82-83] 82a and 82b are perspective views of the rotary click element of the power unit subassembly, and 83a and 83b are perspective views of the snap-fit distal end cap of the power unit subassembly. [Figure 84] Figures 84a and 84b show the drug delivery device in a ready to use state, with Figure 84a showing a side view and Figure 84b showing a longitudinal cross section. [Figure 85] Figures 85a and 85b are longitudinal cross-sectional views of the drug delivery device with the end caps just removed, Figure 85a being a longitudinal cross-sectional view along plane A shown in Figure 61 and Figure 85b being a longitudinal cross-sectional view along plane B shown in Figure 61. [Figure 86] Figures 86a and 86b are longitudinal cross-sectional views according to Figures 85a and 85b of the drug delivery device when it is fully pressed against the patient's skin and drug delivery has just begun. [Figure 87] Figures 87a and 87b are longitudinal cross-sectional views according to Figures 85a and 85b in intermediate states when the drug delivery device delivers a drug to a patient. [Figure 88]Figures 88a and 88b are longitudinal cross-sections according to Figures 85a and 85b in an intermediate state when drug delivery is nearing the end. [Figure 89] Figures 89a and 89b are longitudinal cross-sectional views according to Figures 85a and 85b when the drug delivery device has completely delivered the drug to the patient. [Figure 90-1] Figure 90: Figures 90a and 90b are longitudinal cross-sectional views according to Figures 85a and 85b when the drug delivery device has been removed from the patient's skin and locked into a locked position after use. Figure 90c is a perspective view of the drug delivery device in a locked position after use. [Figure 90-2] As stated above. DETAILED DESCRIPTION OF THE INVENTION
[0168] FIG. 1 shows a perspective side view of an automated mechanical drug delivery device 10 configured as an autoinjector according to the present invention. The device 10 includes a longitudinal body 12 extending along an axis X and a removable cap 50 at the proximal end of the device 10. The end of the device 10 against which the removable end cap 50 is positioned will be referred to as the proximal end in this description, and the proximal end will be in contact with the patient. The opposite end, to the right of FIG. 1, will be referred to as the distal end in this description.
[0169] 1 further schematically illustrates two different viewing directions A, B, C, and D, which represent a line of sight (top view A) and longitudinal cross sections B, C, and D. When the structure and operation of device 10 is described below, it will refer to these particular viewing directions A and longitudinal cross sections B, C, and D.
[0170] Figures 2, 3, and 4 show subassemblies 100, 200, and 300 of device 10. In Figure 2, proximal subassembly 100, including end cap 50, can be seen. In Figure 3, the subassembly including pre-filled syringe unit 200 can be seen. In Figure 4, power supply unit subassembly 300 can be seen. These three subassemblies 100, 200, and 300 are provided as separate pre-assembled modules when assembling device 10 in accordance with the present invention. This allows for pre-assembly of syringe unit 200 and power supply unit 300, with the required medication sealed therein to provide a corresponding pre-filled syringe 204 with a predetermined volume for drug delivery.
[0171] As will be seen below, the three subassemblies 100, 200 and 300 can be assembled into device 10 by inserting pre-filled syringe 200 into receiving syringe unit 100, and then inserting power supply unit 300 from the right, i.e., distal, side into the open distal end of body 12 of syringe unit 100 until power supply unit 300 locks into a predetermined, non-separable position. This modular construction allows devices according to the present invention to be easily assembled in a error-free manner.
[0172] While specific examples of device 10 are described below with respect to their structure and function with reference to the figures, it should be noted that the components of device 10 as described below can also be used independently of their respective structures. Specifically, each of the three subassemblies 100, 200, and 300 and their components can be used separately and independently of the other subassemblies. For example, proximal subassembly 100 and its components can be used separately in different autoinjectors, independent of the specific design of the injector unit 200 or power supply unit 300. Accordingly, the following description should not be construed as a disclosure that limits any and all components to be used only with additional components described in the following context. Instead, the present disclosure should be understood such that any and all components disclosed therein can claim their respective features separately, independent of the interaction of the components of each subassembly.
[0173] Below, the components of the subassembly are described in detail.
[0174] 2 shows an exploded view of the proximal subassembly 100. The proximal subassembly 100 includes a removable end cap 50 formed by an end cap body 52, a blade washer 54, and a proximal end cap cover 56. Additionally, the proximal subassembly 100 includes a safety shield 102, a longitudinal housing 104, and a syringe holder 106. These components are described in detail below in connection with FIGS. 4-24.
[0175] 3 shows an exploded view of the subassembly components that form a prefilled syringe 200. The syringe subassembly 200 includes a rigid needle shield 202 with an insert 207, a glass body 204 with an integrally provided needle 206, a medication 208 shown as a liquid column, and a stopper 210. These components of the prefilled syringe 200 are described in detail in connection with FIGS.
[0176] 4 shows an exploded view of the subassembly components that form the power unit 300. The power unit subassembly 300 includes a trigger element 302, a trigger spring 304, a shield retention indicator 306, a plunger 308, a drive spring 310, a retainer 312, a shield retention indicator inner element 314, and a distal end cap 316. These components are described in more detail below in connection with FIGS.
[0177] 5-7 show the removable end cap body 52 from different perspectives. The cylindrical body 58 can be seen integrally formed with an arcuate extension 60 such that when the end cap is placed on a flat or slightly inclined surface, the cylindrical body 58 forms a non-circular perimeter that provides a rock-resistant profile. The outer peripheral surface of the body 58 has a number of integrally formed radial gripping recesses 62 that extend longitudinally between the proximal and distal ends of the body 58. The proximal portion of the body 58 is formed by a smooth outer surface 64. This surface includes an arrow-shaped surface offset 66 that indicates a direction of movement for twisting the end cap 50 in or out of the longitudinal housing 12.
[0178] Within its interior, end cap body 52 includes a cylindrical surface 68 that forms an axially open receptacle 70 with a smooth receiving surface. Adjacent to receptacle 70 is an integrally formed ring portion 72. Ring portion 72 includes a substantially flat, cylindrical front surface 74 facing distally. Between ring portion 72 and inner peripheral surface 68 of end cap body 52 is an open gap 75 and a connecting structure 76 connecting both components. Ring portion 72 provides two protrusions 78 on its outer peripheral surface that extend radially outward into gap 74. On either side of protrusions 78, the outer peripheral surface of ring portion 72 includes angled raised formations 80 and 82 that have their distal-most positions near protrusions 78 and are angled distally to meet at apex 84.
[0179] As can be seen in Figure 6 just below each protrusion 78, the outer peripheral surface of ring portion 72 has two chamfered protrusions 86 and 88 that define a receiving space 90 therebetween. This receiving space 90 is provided with a longitudinal housing 104 on its proximal end for receiving and securing a protrusion 198 formed on the inner peripheral surface, as will be described in connection with Figures 19 and 20.
[0180] On its radially inner surface, the ring body 72 includes two opposing radially inwardly projecting projections 92. These two projections 92 are provided to interact with and secure opposing radially outward projections 156 formed on the outer circumferential surface of the proximal end of the safety shield 102, as described in connection with FIGS.
[0181] Focusing on FIG. 6, it can be seen that the end cap body 52 near its proximal end faces two annular arches 94 arranged opposite each other and secured to the inner circumferential surface of the end cap body 52 using connecting portions 96 and connecting ribs 98.
[0182] 8 and 9 show the end cap cover 56. The end cap cover 56 has a proximal end cap portion 110 having the same basic surface as the end cap body 52 with a slightly inclined projection 112. An annular cylindrical body 114 extends from the proximal face of the end cap portion 110. The annular cylindrical body 114 has a plurality of longitudinal ribs 118 on its outer circumferential surface 116, which protrude above the distal end of the annular cylindrical body 114. At the free ends of these longitudinal ribs 118, any number of radially outwardly projecting snap-fit projections may be provided, which engage within corresponding (annular) recesses in the end cap body 52. Inside, the annular cylindrical body 114 has a chamfered radially extending rib 120 running into an inner cylindrical body 122, which is also integrally formed with the distal face of the end cap portion 110. The distal front surface of the arrangement formed by the cylinder 114, the projections of the ribs 118, the radially inner ribs 120 and the inner cylinder 122 form a conical profile.
[0183] 10-13 show two different examples of blade washer 54. Blade washer 54 has a circular outer periphery 130 surrounding a ring-shaped body 132. Blade washer 54 includes four radially inwardly extending lobes 134 integrally formed with ring-shaped body 132 and terminating in a circular radially inner gripping surface 136. In side view, it can be seen that the example blade washer 54 shown in FIGS. 10 and 11 is flat, whereas the example blade washer 54 shown in FIGS. 12 and 13 has a frustoconical shape. In both examples, the lobes 84 provide axial spring action, i.e., the lobes 84 can be resiliently deflected in the axial direction.
[0184] With the end cap 50 assembled, the blade washer 54 is positioned on the proximal face of the annular arch 94. The end cap cover 56 is pressed into the proximal end of the end cap body 52, whereby the protruding ends of the ribs 118 engage the ring-shaped bodies 132 of the blade washer 54 and (as an optional feature) press the ring-shaped bodies 132 against the annular arch 94. The blade washer 54 is thereby firmly held and biased, or alternatively, the blade washer 54 is positioned with a slight axial spacing between the proximal front face of the annular arch 94 and a conical structure formed on the distal side of the end cap cover 56. The conical structure on the distal side of the end cap cover 56 provides sufficient distance for the lobes 84 to bend axially proximally within this assembly.
[0185] As an optional feature, one or two lobes 134 may have a different length than the other lobes 134 so that upon engagement of the rigid needle shield 202, there is an asymmetric load-balancing force on the rigid needle shield 202, causing the rigid needle shield 202 to tilt or rotate to deflect from its original position, thereby avoiding recapping, i.e., reinserting the cap 50 onto the housing, once the cap 50 has been removed.
[0186] 14-18 show different perspective views of the safety shield 102. The safety shield 102 includes a ring-shaped hollow cylindrical body 150 with two diametrically opposed longitudinal arms 152, 154 at its proximal end. This arrangement of the body 150 and longitudinal arms 152, 154 can be formed integrally or from separate pieces, i.e., the cylindrical body may include a separate cover which can be formed from a colored material.
[0187] Ring-shaped body 150 has two protrusions 156 near its distal end. The distal end of ring-shaped body 150 comprises an annular collar 158 having a rounded circumferential ring 160 with two opposing slots. A longitudinal hollow 164 extends distally from the annular collar 158 and divides it into two separate halves by a slot 162. Two longitudinal arms 152, 154 are integrally formed with the distal end of collar 158 and have a stepped course such that a first transition 166 between collar 158 and first longitudinal arm 168 forms a first shoulder and a second transition 170 between first longitudinal arm 168 and second longitudinal arm 172 forms a second sloped shoulder. Each second longitudinal arm 172 has a protrusion 174 on its outer circumferential surface that projects radially outward and has a sharp radial surface facing proximally and a sloped chamfered surface facing distally. Colinear with protrusion 174, longitudinal arm 172 has a rectangular through-hole 176 near its distal end.
[0188] The inner circumferential surface at the distal end of each second longitudinal arm 172 includes an inner guide contour 178. Additionally, the inner circumferential surface of the cylindrical body 150 includes four radially inwardly projecting guide ribs 180. These inner guide ribs 180 are provided to guide the rigid needle shield 202.
[0189] The barrel 150 is smoothly formed and radiused on its front (proximal) end to prevent the barrel 150 from damaging or abrading the patient's skin. As mentioned above, the barrel 150, together with the longitudinal arms 152, 154, can be a single-piece construction or a multi-piece assembly.
[0190] 19-22 show different views of the housing 104. The housing 104 is intended to form the main body 12 of the device 10. The housing 104 is formed from a stable, rigid, transparent or opaque material. If not entirely transparent, the housing can be formed with a drug viewing notch or transparent window to allow the user to view the drug and the state of the device. The housing 104 is formed by a longitudinal tubular member 190. At its proximal end, the tubular member 190 includes a hollow cylindrical portion 192 having a circular cross-section and a front surface 194. A short distance from the proximal end, the longitudinal member 190 includes a rounded hollow extension 196 having the same shape and cross-section as the removable cap extension 60 to provide a non-rocking geometry on a flat surface. At its proximal end, the cylindrical portion 192 has two opposing rib-like protrusions 198 on its inner circumferential surface that protrude radially inward, thereby concealing the protrusions 198 from the outside and adapted to interact with the removable end cap 50. Furthermore, in its middle portion, the housing 104 has two opposing longitudinal through-holes 220 that function as guide slots. Alternatively, these through-holes 220 can be replaced by guide channels that open toward the inside of the housing 104 but close on its outer circumferential surface. Colinear with the guide slots 220 but closer to the distal end, the housing has two further opposing through-holes 222, which can alternatively be provided as internal recesses that close on the outer circumferential surface. Near its distal end, the housing 104 has a pair of opposing transverse through-holes 224, which can alternatively be provided as internal recesses that close on the outer circumferential surface. The distal end further comprises a distal front surface 226 having two opposed short notches 228 therein.
[0191] Inside, the housing 104 comprises a double ring structure 230, which is integrally connected to the tubular member 190 in the region of the cylindrical portion 192 by means of a pair of opposing rigid connecting arms 232. The connecting arms 232 are formed by a stable U-shaped structure with two circumferentially running transverse longitudinal connecting ribs 234 and one transverse connecting rib 236. The connecting ribs and the size of the U-shaped cross-sectional shape should provide structural rigidity to the housing 104. This joining geometry is also important for material flow when the component is being molded.
[0192] Additionally, dual ring structure 230 has an outer ring 238 running into a hollow inner ring 242 with a conical transition section 240. Towards the proximal end, two reinforcing ribs 244 stabilize the connection between outer ring 238 and inner ring 242. Facing the distal end, conical transition section 240 includes two opposing notches 246 and a rib-like axial protrusion 248. The arrangement of two opposing notches 246 and axial protrusion 248 provides for positioning of pre-filled syringe 200 coupled with syringe holder 106. For some variations, protrusion 248 may or may not be included.
[0193] Figures 23 and 24 show one example for syringe holder 106. Other examples of syringe holders are described in relation to Figures 57-60.
[0194] Syringe holder 106 has the purpose of receiving and holding pre-filled syringes 204 within housing 104. Syringe holder 106 is adapted to receive different types of syringes with different volumes of medication without the need to change the dimensions of other components of device 10. Thus, different sized syringe holders 106 should provide compatibility for different types / volumes of syringes.
[0195] The syringe holder 106 provides a longitudinal body 260. At its proximal end, the syringe holder 106 is formed with a rigid, inelastic U-shaped element 262, which opens in one radial direction as can be seen in FIG. 23 . This rigid U-shaped element 262 is reinforced at the proximal end by two parallel circumferential ribs 264, 266. At its proximal front face, the U-shaped element 262 is provided with two transverse ribs or projections 268. At its distal end, the syringe holder 106 comprises a similar rigid, inelastic U-shaped element 270, which is reinforced by two parallel circumferential ribs 272, 274. The two circumferential ribs 272, 274 are provided with opposite radially outward facing notches 276, 278. The two rigid U-shaped elements 262 and 272 are connected by two longitudinal rigid connecting arms 280, 282. Each connecting arm extends straight and includes a radially inwardly projecting projection 284, 286 at its upper end or midsection in FIG. 23 so that the connecting arms face each other. The inner surfaces 288 of the projections 284, 286 are rounded, as can be seen in FIGS. 23 and 24, so that the glass body of the syringe 200 can be placed and held therein.
[0196] When placed within longitudinal housing 104, syringe holder 106, which preferably rotationally holds pre-filled syringe 200, is positioned so that two protrusions 268 engage notches 246 in double ring structure 230 and protrusion 248 engages within the hollow space provided by proximal U-shaped element 262. Syringe holder 106 is thereby positioned within longitudinal housing 104 by double ring structure 230 in the proper axial and rotational position about the longitudinal axis.
[0197] FIG. 25 shows the pre-filled syringe 200 in an assembled state, with a rigid needle shield 202 placed over the proximal front end of the syringe covering the needle 206.
[0198] 26 and 27 show perspective views of the rigid needle shield 202 with the insert 207. The rigid needle shield 202 is formed by a tubular member 320 with an open distal end 322 and a closed proximal end 324. At its front, the rigid needle shield 202 has a face formed with lateral gripping ribs 326. Near its distal end, the rigid needle shield 202 has two opposing rectangular through holes 328.
[0199] The insert 207 is formed from a flexible, deformable material that can be compressed into the rigid needle shield 202 so that the insert 207 is firmly held therein. The insert 207 has an annular collar 330 near its distal end that engages with the rectangular through-hole 328 in the rigid needle shield 202.
[0200] 28 shows a syringe 204. The syringe 204 is formed by a hollow cylindrical glass body 332 having an open distal end 334 surrounded by a circumferential annular collar 336 with two flat, opposing sides 338. At its proximal portion, the cylindrical glass body 332 is formed with a rounded tapered portion 340, transitioning into a hollow conical glass portion 342 and terminating in a stepped needle hub 344 with a spherical or rounded proximal head 346. The proximal head 346 securely holds the injection needle 206 with a sharp needle tip 348.
[0201] 29 shows a stopper element 210 formed from a flexible material, such as rubber. At its proximal portion, the stopper element 210 has a smooth cylindrical outer surface 350 having a diameter that matches the inner diameter of the hollow cylindrical glass body 332 of the syringe 204 so that the stopper element 210 slidably engages the inner surface of the hollow cylindrical glass body 332 in a fluid-tight manner. On the distal portion of its outer surface, the stopper element 210 includes four circumferential annular recesses that form three circumferential sealing ribs 352. The stopper element 210 has a cup shape with a closed proximal end 354 and an open distal end 356.
[0202] Referring now to the components of the power unit or drive assembly, FIGS. 30-33 show different views of the trigger element 302. The trigger element is formed by a tubular hollow body 360. At its proximal portion, the trigger element has a front surface 362 surrounded by a chamfered rim 363 and provided with two radially extending, opposing lateral tabs 364, 366. Extending longitudinally from the front surface 362 of these lateral tabs 364, 366 are two rectangular projection plates 368, 370. The projection plates 368, 370 include chamfered projections 372 extending radially outward. The tubular hollow body 360 extends distally and provides its intermediate portion with a surrounding annular reinforcing rib 374 connected to a proximal end reinforced by a longitudinal rib 376. Additionally, between the proximal end 362 and the reinforcing rib 374, recesses formed by two opposing rectangular hollow box elements 378 or other wall structures are provided in the outer peripheral surface of the trigger element 302, each of which provides a hollow space within which additional components, such as electronic sensors, can be provided.
[0203] Further distally, the outer peripheral surface of tubular hollow body 360 is provided with a further annular circumferential reinforcing rib 380 having an L-shaped profile for supporting spring 304. The distal end of tubular hollow body 360 of trigger element 302 is formed by a hollow cylindrical portion 382 having a front surface 384. Inside thereof, trigger element 302 is provided with four longitudinal guide ribs 386, two pairs of which are each connected by an arcuate connecting rib 388 that extends circumferentially along the inner peripheral surface of tubular hollow body 360.
[0204] 34 and 35 show a shield retention indicator 306. The shield retention indicator 306 is formed by a hollow cylindrical body 400 having an annular cylindrical component 402 extended by a rounded extension 404 that matches the geometry of the housing 104. The shield retention indicator 306 can be received in a slidable but form-fitting manner within the extension 196 of the hollow cylindrical body 190 of the longitudinal housing 190. The shield retention indicator 306 has a smooth outer circumferential surface 406. At its proximal end, the shield retention indicator 306 includes four longitudinal flexible arms 408, each having a proximal free end 410. The free ends 410 of the flexible arms 408 include a protrusion 412 extending radially inward and reinforced by a short longitudinal chamfered rib 414. The distal end of the shield retention indicator 306 includes a circular opening 416 .
[0205] The outer peripheral surface 406 of the shield retention indicator 306 has a signal color, i.e., yellow, orange, or red, or a signal pattern that is clearly visible to a user, so that the user of the device 10, i.e., a doctor or a patient, can easily recognize when the shield retention indicator 306 has been moved to a signal position that is clearly visible from the outside through the longitudinal housing 104, as will be discussed in detail in the operation of the drug delivery device 10 according to the present invention.
[0206] 36 and 37 depict plunger 308 in different perspective views. Plunger 308 is formed by a longitudinal, pipe-shaped hollow element 420 having a plunger head 422 at its proximal end. Plunger head 422 includes a front surface 424 and a transverse slot 426. Front surface 424 includes a small cylindrical through-hole 428. The front surface with transverse slot 426 and cylindrical through-hole 428 can be coupled with an additional plunger head element, if necessary, for example, for a syringe with a larger inner diameter to interface with a correspondingly larger stopper 210. This additional, enlarged plunger head can be used for a larger syringe, for example, with a drug volume of 2.25 ml. For a smaller syringe, such as one with a drug volume of 1 ml, as shown in the example, the enlarged plunger head is omitted, and plunger 308 has only a straight cylindrical shape on its proximal end.
[0207] At the middle of plunger 308, a pair of opposing rectangular through-holes 430 are provided in the wall of hollow element 420. According to another example, the plunger may have additional pairs of through-holes matching through-holes 430 that can accommodate different syringe sizes or drug fill volumes. At the distal end, hollow element 420 comprises a longitudinally approximated circular opening 432 for receiving drive spring 310.
[0208] 38 shows the shield retention indicator inner element 314. This element is formed by a stepped tubular body 440 having a first hollow cylindrical portion 442 with a smaller diameter and an enlarged second hollow cylindrical portion 444 with a larger diameter. At its proximal end, the shield retention indicator inner element 314 comprises two opposing flexible longitudinal arms 446 extending proximally, with a first portion 448 running longitudinally, a second portion 450 angled slightly radially inward, and a third portion 452 extending longitudinally but at a radial position further radially inward than the first portion 448. At its proximal end, each arm 446 has an angled retention protrusion 454 extending radially outward.
[0209] The distal portion of the shield retention indicator inner element 314 includes an end plate 456 having the same rounded, elongated cross-section as the distal end of the shield retention indicator 306. The diameter of the outer circumferential surface of the second hollow cylindrical portion 444 is adapted to be received within the circular opening 416 provided in the distal end of the shield retention indicator 306.
[0210] 39-41 depict the holder 312 of the power supply unit 300 or drive assembly. The holder 312 acts as a control member that includes multiple control functions for the power supply unit 300. The holder 312 is formed from a hollow cylindrical body 470. On two opposite sides, the cylindrical body 470 includes U-shaped notches 472, each of which forms a longitudinal flexible arm 474. The longitudinal flexible arms 474 are integrally connected to the hollow cylindrical body 470 at their distal ends 476. At their distal ends, the flexible arms 474 include a chamfered radially outward protrusion 478 and, on their opposite, or radially inner, sides, a corresponding chamfered radially inward protrusion 480. Additionally, the cylindrical body 470 includes two opposing longitudinal notches 482 at a region rotated 90° relative to the flexible arms 474 defined by the notches 472. Longitudinal notches 482 have approximately the same longitudinal extent as U-shaped notches 472, but extend slightly further distally. Near their proximal ends, in a region approximately one-third of the longitudinal length of notches 482, barrel 470 includes lateral projections 484 that laterally bridge notches 482. These lateral bridging projections 484 are continued to the proximal end by additional projections 486 having the same circumferential shape.
[0211] At its proximal end, the cylindrical body 470 comprises two flexible arms 490 that are integrally formed with the cylindrical body 470 and inclined at an angle of approximately 45° relative to the proximal front face of the hollow cylindrical body 470. These flexible arms 490 are connected to a ring-shaped head 492 that is formed as a bushing with a cylindrical portion 494 and two opposing proximal arcuate projections 496. The head 492 can be integrally formed with the flexible arms 490 or can be formed as a separate piece that is rigidly connected to the flexible arms 490, for example, using an intermediate connecting ring.
[0212] At its distal end, the cylindrical body 470 is formed with a circumferential groove 500. The distal end includes a distal end face 502 having a central opening 504. On its interior near the distal end, the cylindrical body 470 includes an internal guide rib 498 running axially or longitudinally between the distal end face 502 and the longitudinal portion having the circumferential groove 500.
[0213] 42 and 43 depict the distal end cap 316 of the device 10. The distal end cap 316 has a distal end cap body 510 with the same cross-sectional profile as the distal end of the longitudinal housing 104, i.e., a rounded profile with an extension. The distal end cap body 510 is formed from a transparent material and is closed by a distal face 512. A transition 516 between the circumferential face 514 and the distal face 512 is rounded or chamfered. At its proximal end, the distal end cap 316 includes a receptacle 520 that is form-fittingly received within the distal end of the longitudinal housing 104 in an assembled state. Thus, the receptacle 520 has a reduced outer diameter and transitions into the distal end cap body 510 via a stepped face 522.
[0214] 19-22 for the longitudinal housing 104. By interaction of the protrusions 524 and the notches 228, the distal end cap 316 is positioned relative to the longitudinal housing 104. Furthermore, the plug portion 520 is provided with two longitudinal projections 526 on its proximal end, the outer periphery of which is formed with a chamfered snap-fit projection 528, respectively. The projections 528 are provided for snap-fit engagement with corresponding through-holes 224 provided in the longitudinal housing when the device is assembled.
[0215] It is noted that the snap-fit engagement between the protrusion 528 and the through-hole 224 cannot be separated once assembled. The device according to the present invention is a disposable device, such that the distal end cap 316, once secured to the longitudinal housing 104, cannot be removed from the housing 104 again. The device does not allow or intend to replace or refill the syringe 200 after use, or to provide any other access to the interior and components of the device 10 once used.
[0216] Looking inside the distal end cap 316 , it can be seen in FIG. 43 that the end cap comprises a hollow cylindrical body 530 integrally formed with a bottom surface 532 of the distal end cap 316 .
[0217] In the following, the assembled state of device 10 is described with reference to Figures 44a to 44d. Figure 44a shows a side view, and Figures 44b to 44d show different longitudinal sections of the device according to the invention in an initial state, where Figure 44b is a longitudinal section rotated by 90° with respect to Figure 44a, Figure 44c is a longitudinal section rotated by 180° with respect to Figure 44a, and Figure 44d is a longitudinal section rotated by 45° with respect to Figure 44a. Reference is made to the planes and arrows A, B, C, and D depicted in Figure 1. The states shown are also the initial state of device 10, i.e., the state of the device in the way that it is delivered to the user.
[0218] In the assembled or initial state of device 10, end cap 50 is threaded onto longitudinal housing 104, and end cap 50 is circumferentially held by engagement of each internal projection 198 formed on the proximal end of housing 104 within corresponding receiving spaces 90 between two projections 86, 88 formed on the inside of end cap body 52. Moreover, end cap 50 is longitudinally held by engagement of each internal projection 198 formed on the proximal end of housing 104, each of which is disposed behind a projection 78 formed on inner ring portion 72 of end cap body 52. Removable cap 50 is thereby held on the housing against axial pull-out forces by projections 78 and against small twist-off forces below a twist-off force threshold by opposing projections 86 and 88 that form receiving spaces 90.
[0219] Moreover, the safety shield 102 is held in the initial assembled state according to Figures 44a-44d by the removable cap 50 in the axial position shown in Figures 44b-44d. Specifically, this aims to prevent unintended distal movement, i.e., in the event that the device 10 is dropped and experiences impact when it hits the ground. This is achieved by engagement between a protrusion 156 formed on the outer circumferential surface of the cylindrical body 150 at the proximal end of the safety shield 102 and two protrusions 92 formed on the inner circumferential surface of the inner ring portion of the removable cap body 52. The protrusions 92 thereby block any axial movement of the safety shield 102 in the distal direction relative to the removable cap 50 attached to the housing 104, and thereby relative to the housing 104.
[0220] At the distal end, the distal end cap 316 is fixedly and closely attached to the longitudinal housing 104 by a snap-fit arrangement, and a protrusion 526 formed on the outer surface of the insert portion 520 of the distal end cap 316 engages within a through hole 224 formed on the distal end of the housing 104.
[0221] Moreover, in the assembled state, the syringe 204 is held within the syringe holder 106, which is received within the ring structure 230 of the housing 104. As described above, the syringe holder is positioned relative to the housing 104 using the ring structure 230, with the lateral projections 268 engaging within the respective notches 246, and the projections 248 projecting into the hollow space provided by the U-shaped elements 262 of the syringe holder (see above). The syringe 204 is axially compressed into the syringe holder 106. The U-shaped elements 262 and 272 are rigid and do not bend during assembly or operation. It should be noted that the syringe 204 is rotationally held within the syringe holder 106.
[0222] Additionally, the syringe 204, together with the syringe holder 106, is pressed proximally against the conical, stepped ring structure 230 of the housing 104 via the syringe flange 336 using the head 494 of the retainer 312, and the flexible arm 490 of the retainer acts as an axial spring means that provides a spring force in the axial proximal direction to hold and thereby position the syringe 204 in place within the syringe holder 106. The rigid needle shield 202 engages the hollow conical glass portion 344 using the insert 207. The flexible insert 207 safely covers the needle 206, maintaining the sterility of the needle 206 and the medication contained within the syringe 204 and needle 206. As can be seen in FIG. 44b, the outer surface of the tubular member 320 with the lateral gripping ribs 326, or alternatively with only a flexible outer surface, is engaged by the flexible lobes 134 of the blade washer 54, which in this example has a conical shape. As mentioned above, the flexible lobes 134 can have different radial lengths to provide an unbalanced force on the rigid needle shield 202. The blade washer 54 is maintained within the removable end cap 50 using the cap cover 56.
[0223] Additionally, Figures 44b-44d show the ring-shaped cylindrical body 150 of the safety shield 102. The safety shield 102 is partially biased distally into the housing 104 by the end cap 50 via the longitudinal arms 152, 154 against the force of the shield spring 308. The trigger element 302 acts as an intermediate element between the longitudinal arms 152, 154 and the shield spring 304. As can be seen in Figure 44c, the trigger element 302 is in an assembled state, permanently coupled to the distal ends of the arms 152, 154 of the safety shield 102 via its protruding plates 368, 370. The protruding plates 368, 370 are received within internal guide contours 178 at the distal ends of the arms 152, 154. Additionally, the chamfered projections 372 each engage within the through holes 176, thereby preventing, in the assembled state, the arms 152, 154 of the safety shield 102 from separating under axial force from the projection plates 368, 370 of the trigger element 302. The chambers of the projections 372 and the guide contours 178 on the distal ends of the arms 152, 154 facilitate the assembly process.
[0224] The proximal end of shield spring 304 engages distal portion 382 of trigger element 302 and abuts against peripheral rib 380 of trigger element 302, which has an L-shaped profile that tightly holds the proximal end of shield spring 304. The distal end of shield spring 304 presses against the flanged proximal surface of plate 456 of shield retention indicator inner element 314 via the distal end of shield retention indicator 306.
[0225] Additionally, the shield retention indicator 306 with its cylindrical body 406 receives and encloses the shield retention indicator inner element 314 as well as the shield spring 308. The four longitudinal arms 408 of the shield retention indicator 306 extend proximally through gaps provided between the lateral tabs 364, 366 and the box structure 378, and the arms 408 each project radially outward from the trigger element 302. The four longitudinal arms 408 pass through the trigger element 302 such that protrusions 412 of the arms 408 engage the outer circumferential surface of the retainer 314, as seen in FIGS.
[0226] The retainer 312 is securely held within the distal cap 316 by a hollow cylindrical body 530 with an inner peripheral projection that form-fits and grips within the outer peripheral groove 500 of the retainer, thereby securing the retainer 312 within the device 10 against any axial movement as well as tilting.
[0227] The shield retention indicator 306, together with the shield retention indicator inner element 314, is held in axial position by means of the arms 446 despite the compressed shield spring 304 and the resulting axial driving force. This is achieved due to the fact that the arms 446 reach through the longitudinal notches 482 of the retainer 312 and engage with their radially retaining projections 454 behind the lateral projections 484 of the retainer 312 that bridge the notches 382 of the retainer 312. Moreover, in this state, the outer peripheral surface of the plunger 308, which is disposed radially inside the arms 446, prevents the arms 446 from bending radially inward and escaping their retention function on the lateral projections 484.
[0228] The plunger 308 holds the main spring 310 in a compressed state, as described below. The proximal end of the compressed main spring 310 presses against the proximal end of the plunger 308. The proximal end 422 of the plunger 308 is seen to be slidably received within the hollow glass body 332 of the syringe 204 near the stopper element 210. Additionally, the medicament 208 can be seen as a column of liquid contained within the syringe 204. The distal end of the main spring 310 protrudes from the plunger 308 and is received within the hollow interior of a retainer 310 against which the main spring 310 is supported against its distal end. The plunger 308 is held in its axial position against the driving force of the main spring 310 due to engagement with a radially inward projection 480 that engages within a throughbore 430 provided in the plunger 308 between the flexible arms 474. As described above, an additional through-hole 430 or slot can be provided for the projection 480 to engage. Because the longitudinal position of the projection 480 is fixed within the device, the longitudinal position of the through-hole 430 determines the initial position of the plunger within the device. As shown, the plunger head 422 is fairly close to the stopper 210; however, a stopper 210 with a smaller fill volume may be closer to the proximal end and therefore further away from the plunger head 422. This could cause an undesirably large impact between the plunger head 422 and the stopper 210. In such cases, an additional through-hole 430 longitudinally offset from the original through-hole 430 can be included on the plunger 308 to offset the initial position of the plunger 308. The flexible arms 474 are unable to bend radially outward in response to the driving force of the compressed main spring 310, such that the flexible arms 474 are held in place by contact between their radially outward projections 478 and the inner circumferential surface of the trigger element 302. The plunger 308 is thereby held in place by the flexible arms and their radially inward projections 480.
[0229] From this fully assembled initial position, the device 10 according to this example of the invention is used as follows.
[0230] Twist on removable end caps 50 FIGS. 45a-45d show the views according to FIGS. 44a-44d with the removable cap partially twisted away from the longitudinal housing. The removable end cap 50 has been slightly rotated relative to the housing 104. No axial movement has occurred. The relative rotation has been performed to such an extent that the engagement between the projection 198 formed on the inside of the proximal end of the housing 104 and the projections 86 and 88 formed on the inner ring portion 72 of the end cap body 52 has been disengaged. To achieve this, a certain threshold of twisting force must be provided to overcome the engagement between the projection 198 of the housing 104 and the projections 86, 88 of the removable end cap 50. Furthermore, the engagement between the projection 156 on the proximal end 150 of the safety shield 102 and the projection 92 on the end cap body 52 has also been disengaged during this relative movement. In this state, there is no axial engagement between the removable end cap 50 and the housing 104.
[0231] Upon further rotation between the removable end cap 50 and the housing 104, the protrusion 198 is guided along the inclined surfaces of the elevation formations 80, 82. Furthermore, during further relative rotation between the removable end cap 50 and the housing 104 performed by the user by applying a twisting force, the safety shield 102 is pushed axially proximally by the safety shield spring 304. While the safety shield 102 with its proximal portion 150 is pushed longitudinally away from the housing 104, this force supports the removal of the removable end cap 50 and also supports the relative rotation between the removable end cap 50 and the housing 104 by using a mechanical advantage. Thus, by experiencing the force provided by the spring 304, the user is guided to further rotate the end cap 50 relative to the housing 104, separating the two components from one another.
[0232] The proximal portion 150 of the safety shield 102 moves out of the housing 104, covering the needle. Relative movement between the safety shield 102 and the housing 104 is guided by interaction between a protrusion 174 formed on each arm 152, 154 of the safety shield and a longitudinal through-hole 220, which acts as a longitudinal guide channel.
[0233] During removal of the top end cap 50, the rigid needle shield 202, gripped by the lobes 134 of the blade washer 54, is pulled out of the hollow conical glass portion 344 of the syringe 204 together with its insert portion 207. Due to the fact that the syringe 204 is rotationally supported within the syringe holder, unwanted coring can be avoided and the syringe is not damaged by the removal of the rigid needle shield 202. Finally, the needle 206 with its needle tip 348 is exposed within the ring-shaped proximal body 150 of the safety shield 102.
[0234] Removable end cap 50 separate from housing 104 Figures 46a-46d show the views according to Figures 44a-44d with the removable cap completely removed from the longitudinal housing and the device ready to dispense the fluid product. The removable end cap 50 can be seen completely separated from the housing 104. The proximal portion 150 of the safety shield 102 protrudes completely from the housing 104 and covers the injection needle 206 with its needle tip 348.
[0235] Initiating the injection by pressing the device against the patient's skin 47a-47d show the views according to FIGS. 44a-44d with the device 10 already pressed against the patient's skin, with the safety shield partially pressed into the longitudinal housing 104. FIG.
[0236] As can be seen, the proximal front surface of the proximal portion 150 of the safety shield 102 is in contact with the patient's skin S. The device 10 is pressed against the patient's skin S by holding the housing 104, thereby pressing the safety shield 102 into the housing 104, thereby causing relative movement between these two components. Again, protrusions 174 formed on the arms 152, 154 of the safety shield 102 and engaging within the longitudinal holes 220 of the housing 104 guide the safety shield 102 along its relative linear movement with respect to the housing 104.
[0237] Due to the movement of the safety shield 102 into the housing 104, the arms 152, 154 bias the trigger element 302 distally, causing the trigger element 302 to move with its chamfered proximal rim 363 under the arm 408 of the shield retention indicator 306. As a result, the arm 408 bends as shown in FIG.
[0238] Initiating drug dispensing by further pressing the device against the patient's skin As the device 10 is further pressurized against the patient's skin S, the needle 206 is forced into the patient's skin such that the safety shield 102 moves further distally into the housing 104, eventually reaching the situation shown in Figures 48a-48d, which show views from 44a-44d with the device pressurized against the patient's skin, the injection needle is forced into the patient's skin, the safety shield 102 is depressed fully into the longitudinal housing 104, and dispensing of the fluid product begins.
[0239] Due to relative motion between the safety shield 102 and the housing 104, the needle 206 is exposed and protrudes into the patient's skin S. The safety shield 102 is urged into the housing 104 to such an extent that, under compression of the spring 304, the safety shield 102 moves the trigger element 302 with its front surface 362 past the protrusion 478 of the flexible arm 474 of the retainer 314. Under the action of the main spring 310, the plunger 308 is axially urged by the surrounding surface of the throughbore 430. The surrounding surface of the throughbore 430, which engages with the chamfer of the radially inward protrusion 480 of the flexible arm 474, urges the flexible arm 474 of the retainer 312 radially outward under the force of the main spring 310. This is possible because the retainer has moved past the outer protrusion 478 of the flexible arm 474, as shown in FIG. 48c. As a result, flexible arm 474 bends, releasing plunger 308 for axial movement in the proximal direction.
[0240] Dispensing drugs into a patient's tissue Figures 49a-49d show the views according to Figures 44a-44d with a portion of the fluid product already dispensed. Because the plunger 308 is no longer held in an axial position by the flexible arm 374 of the retainer 312, the plunger 308 moves proximally, engaging the stopper element 210 and, under the action of the main spring 310, pressuring the stop element 210 proximally. The drug is thereby forced out of the glass body 332 of the syringe 204, through the injection needle 206 and into the patient's tissue, as indicated by the three thin arrows.
[0241] This process continues with complete dispensing of the drug into the patient's tissue.
[0242] Reaching the end of the dispensing process and starting the indicator mechanism Figures 50a-50d show the views according to Figures 44a-44d with the fluid product nearly completely dispensed. At this stage of the device, the indicator mechanism is initiated. As can be seen, the stopper element 210 nearly reaches the bottom proximal surface of the cylindrical glass body 332 of the syringe 204. The plunger 308 correspondingly moves further proximally in response to the expansion of the main spring 310. This causes the distal end of the plunger 308 to move proximally beyond the end of the flexible longitudinal arm 446 of the shield-retaining indicator inner element 314. The outer circumferential surface of the plunger 308 thus no longer blocks the radially inward bending of the longitudinal arm 446.
[0243] Due to the compressed state of spring 304, which is supported against safety shield 104 via trigger element 302 and tends to expand distally, the distal end of spring 304 presses against the distal end of shield retention indicator 306, urging the combined arrangement of shield retention indicator 306 and shield retention indicator internal element 314 distally. This causes longitudinally flexible arms 446, due to angled retention protrusions 454, to bend radially inward and pass through lateral protrusions 484 bridging notches 482. The combined arrangement of shield retention indicator 306 and shield retention indicator internal element 314 is thus free to move distally.
[0244] As outlined above, the outer circumferential surface 406 of the shield retention indicator 306 has a signal color or pattern that is immediately visible to a user when the outer circumferential surface 406 enters the transparent area of the distal end cap 316, which is transparent all around.
[0245] The indicator reaches its final position Figures 51a-51d show the views of Figures 44a-44d when the shield retention indicator 306 reaches its final position. As can be seen from the state according to Figures 50a-50d to the state according to Figures 51a-51d, the shield retention indicator 306 is compressed entirely into the distal end cap 316 under the action of the expanding spring 304.
[0246] Upon reaching the distal inner bottom surface of end cap 316, shield retention indicator inner element 314 impacts its end plate 456 with inner bottom surface 532 of distal end cap 316, thereby generating an audible and / or tactile signal. This impact contact, achieved under the influence of release spring 304, acts axially and is clearly tactile by the user. Moreover, the sound generated thereby is sufficiently loud that it is normally heard by the user as a clearly audible click signal. In this way, the user receives feedback from device 10 immediately upon reaching a situation near the end of the fluid dispensing process.
[0247] It is noted that the spring force of spring 304 when disassembling shield retention indicator 306 distally with shield retention indicator inner element 314 is strong enough to initiate this triggering function within a very short period of time, such as a few milliseconds or tenths of a second.
[0248] Reaching the end of the dispensing process As mentioned above, the signaling mechanism is initiated just before the end of the dispensing process is reached. This is due to the fact that when the signaling mechanism is initiated, the stopper element 210 has not yet reached its end position within the syringe glass body 332, as shown in FIG. 51a.
[0249] Figures 52a-52d show the views according to Figures 44a-44d in a state where the fluid product has been fully dispensed. In this state, the stopper element 210 has reached the proximal end of the glass body 332 of the syringe 204. As a result, the complete dose of the drug is expelled from the syringe 204.
[0250] Initiating removal of device 10 from the patient's skin Once the dose has been completely dispensed into the patient's tissue, the device 10 can be removed from the injection site. Figures 53a-53d show the views according to Figures 44a-44d on the patient's skin as the device is in the process of being removed from the injection site, with the needle partially retracted from the patient's tissue and the safety shield partially released.
[0251] A portion of the housing 104 of the device 10 can be seen to have been withdrawn from the patient's skin, with the proximal front portion 150 of the safety shield 102 still in contact with the patient's skin S. This is due to the fact that the compressed spring 304 still acts on the longitudinal arms 152, 154 of the safety shield 102 via the trigger element 302, thereby pushing the safety shield 102 out of the housing 104 under the action of the compressed spring 304. The injection needle 206 is thereby retracted together with the housing 104 from the patient's skin S, and is permanently covered during this retraction process.
[0252] This can be seen in Figures 53a-53d. While the housing 104 is retracted, the safety shield 102 with its proximal end 150 remains in contact with the patient's skin S so that the needle is permanently covered.
[0253] Complete removal of device 10 from the patient's skin Finally, the housing 104 has by now been lifted from the patient's skin so that the needle is completely covered by the proximal end 150 of the safety shield 102, which extends beyond the sharp tip 348 of the injection needle. In other words, due to the action of the expanding spring 304, the safety shield 102 is thus pushed out of the housing 104 so that the safety shield 102 completely covers the needle and protrudes above the tip 348.
[0254] Figures 54a-54d show views according to Figures 44a-44d in intermediate states where the device is in the process of being removed from the injection site on the patient's skin, with the needle fully retracted from the patient's tissue and the safety shield further released.
[0255] Figures 55a-55d show the views according to Figures 44a-44d with the device completely removed from the injection site on the patient's skin, the needle completely retracted from the patient's tissue, and the safety shield completely released. The axial end position of the safety shield 102, i.e., its final position after being pushed out of the housing 104 by the action of the expanding spring 304, is determined by the abutment of the sharp proximal edge of the protrusion 174 against the proximal end of the longitudinal through-hole 220. In this position, the safety shield 102 cannot move further proximally, despite still being spring-loaded in the proximal direction by the spring 304. The proximal portion 150 of the safety shield 102 has reached the position where the proximal portion 150 maximally protrudes from the housing 104. In this position, the sharp needle tip 348 is well-positioned behind the proximal end 150 and safely enclosed therein.
[0256] Blocking Distal Movement of Safety Shield 102 After Use When safety shield 102 is pushed out of housing 104 as described above, the combined arrangement formed by shield retention indicator 306 and shield retention indicator internal element 314 is held in a distal position within distal cap 316. However, as described above, due to the spring action of spring 304, trigger element 302 is urged proximally. Thus, trigger element 302 is pushed out of engagement with arm 408 of shield retention indicator 306 under the spring force of spring 304. In other words, arm 408 again bends as seen in FIGS. 52a-52d, and the two move past proximal chamfered rim 363 of trigger element 302.
[0257] During further proximal movement of trigger element 302, radially inward projection 412 of arm 408 slides along the outer periphery of trigger element 302 until projection 412 reaches chamfered annular reinforcing rib 374 of trigger element 302. This is seen in Figures 53a-53d. In response to further movement, arm 408 again bends radially outward to clear chamfered annular reinforcing rib 374, as seen in Figures 54a-54d.
[0258] Passing through the chamfered annular reinforcing rib 374, the arms 408 snap radially inward due to their inherent resilience and grip distally just behind the chamfered annular reinforcing rib 374. The distal surface of the chamfered annular reinforcing rib 374 is slightly sloped so that the rib 374 has a concave conical profile. In addition, the protrusions 412 are correspondingly sloped so that the protrusions 412 form-fit and engage within this concave conical profile. This engagement prevents any unintended further bending of the arms 408. Instead, the engagement continues with the arms 408 engaging the concave conical distal surface of the annular reinforcing rib 374. The shield retention indicator 306 thereby blocks any distal movement of the trigger element 302. As a result, any distal movement of the safety shield 102 is blocked. This means that the safety shield 102, once it has reached the state shown in FIGS. 55a-55d, cannot be pushed into the longitudinal housing 104.
[0259] This is shown in Figures 56a-56d, which depict views according to Figures 44a-44d with the device fully removed from the injection site on the patient's skin, with the safety shield blocked against further axial collapse. In this state, once a force is applied onto the proximal portion 150 of the safety shield 102, the arms 408 of the shield retention indicator 306 block any distal movement. In this state, the shield retention indicator 306 is supported using the shield retention indicator inner element 314, specifically its end plate 456 against the bottom surface 532 of the distal end cap 316. As mentioned above, the lettering is inseparably connected to the housing 104.
[0260] As a result, the safety shield 104 with its proximal portion 150 safely and irreversibly shields the needle 206 against any misuse.
[0261] advantage The device 10 according to the above example of the invention has, in particular, the following advantageous features: The device 10 can be easily assembled from three different pre-assembled sub-assemblies: a syringe unit 100, a pre-filled syringe 200, and a power supply unit 300. Pre-filled syringes 200 can be provided in different shapes and sizes just as required to fit the syringe holder 106. The distal end cap 50 can be easily removed from the housing 104, and the twisting operation is supported by the action of the shield spring 304. During use of the device, the device provides audible and / or tactile and / or visible signals of different states of operation. As long as no drug is delivered, the user can see this state through the transparent housing 104 or a window provided therein. The device does not show any visual indicators until drug delivery is complete. Once drug delivery is initiated by activating the device by pressing it against the patient's skin, it cannot be stopped. This prevents the device from being used multiple times. The device is easy and intuitive to use as it has no separate triggering elements, such as buttons. Activation occurs simply by pressing the device with its safety shield 104 against the patient's skin. The device has no rotating parts and corresponding complex rotational movements, which makes the device simple to manufacture, easy to use, and reliable.
[0262] In short, the device facilitates assembly of a structure that can use different types of syringes. The device is easy and intuitive to use in a safe manner. The device provides several feedback signals to the user.
[0263] Syringe holder alternatives 57 and 58 show an alternative example for a syringe holder 600. The syringe holder 600 is formed by two longitudinal shells 602, 604, which define longitudinal notches 606, 608 therebetween. The two shells 602, 604 are connected by two flexible V-shaped arms 610, 612 on the distal and proximal portions, respectively, which provide circumferential flexibility to the syringe holder 600, thereby allowing the shells 602, 604 to resiliently move apart when introducing a syringe. The syringe holder 600 further includes radially outward protruding structures 618, 620 near its distal end 614 and its proximal end 616 for securing the syringe holder within the housing of the autoinjector.
[0264] In FIG. 58, one can see the radially inner protrusions 622 formed in both shells 602, 604 to axially support the syringe once it is distally inserted and received within the syringe holder 600.
[0265] 59 and 60 show a further alternative embodiment of a syringe holder 640. This syringe holder has a hollow cylindrical receiving tube 642 with a distal end 644 and a proximal end 646. Similar to the embodiment according to FIGS. 57 and 58, this syringe holder 640 also includes radially outward protruding structures 648, 650 for retaining the syringe holder within the housing of the autoinjector.
[0266] Near its proximal end, the syringe holder includes two double Z-sections 652, 654 that include angled flexible arms 656, 658 interconnected by a peripheral rib 660. On its inner circumferential surface, the syringe holder includes a radially inward protrusion 662 circumferentially formed in both flexible double Z-sections 652, 654 for axially supporting the syringe once distally inserted and received therein. Within this syringe holder 640, the syringe is pushed into the hollow cylindrical receiving tube 642 from its distal end 644 with slight radial play. Due to the resilient flexibility of the two double Z-sections 652, 654, the arms 656, 658 flex slightly, allowing the peripheral rib 660 to move radially outward to grip the proximal front end of the syringe's glass body.
[0267] Both syringe holder alternatives according to Figures 57-60 have a circumferentially closed structure with features that provide some flexibility in the radial or circumferential direction, thereby allowing for easy assembly of a prefilled syringe with the syringe holder. The syringe is simply held in place by the flexible element that provides radially outward flexibility. This allows tolerance variations in the glass syringe to be compensated for both radially outward and axially. Nevertheless, the syringe holder has a robust structure due to the shell or cylindrical receiving tube.
[0268] FIG. 61 shows a perspective side view of an automated mechanical drug delivery device 1010 configured as an autoinjector in accordance with the present invention. The device 1010 includes a longitudinal body 1012 extending along axis X at the proximal end of the device and a removable end cap 1050. The end of the device 1010 on which the removable end cap 1050 is disposed is referred to herein as the proximal end, and the proximal end contacts the patient. The opposite end to the right of FIG. 61 is referred to herein as the distal end.
[0269] A portion of body 1012 is covered by label 1014, which extends from the middle of device 1010 toward the distal end. In the ready-to-use state shown in FIG. 61 , tamper label 1016 is visible on body 1012 as well as the distal portion of end cap 1050. When end cap 1050 is removed, tamper label 1016 breaks, thereby indicating that end cap 1050 has been removed.
[0270] Figure 61 further schematically illustrates two different planes, A and B, which represent planes of longitudinal cross-section. Below, when describing the structure and operation of device 1010, planes A and B refer to these particular planes of longitudinal cross-section.
[0271] FIG. 62 shows the three subassemblies of device 1010. On the left side, syringe unit subassembly 1100, including end cap 1050, can be seen. Next to syringe unit subassembly 1100, a subassembly including pre-filled syringe unit 1200 can be seen. On the right side, power supply unit subassembly 1300 can be seen. These three subassemblies 1100, 1200, and 1300 are provided as separate pre-assembled modules when assembling device 1010 in accordance with the present invention. This allows syringe unit 1100 and power supply unit 1300 to be pre-assembled to provide a corresponding pre-filled syringe 1200 with a predetermined volume for drug delivery, with the required medication provided sealed therein.
[0272] As will be seen below, the three subassemblies 1100, 1200, and 1300 can be assembled into a device by inserting the pre-filled syringe 1200 into the receiving syringe unit 1100, and then inserting the power supply unit 1300 from the right side into the open distal end of the body 1012 of the syringe unit 1100 until the power supply unit 1300 locks into place. This modular structure allows a device according to the present invention to be easily assembled in an error-free manner.
[0273] While specific examples of device 1010 are described below in terms of their structure and function with reference to the drawings, it should be noted that the components of device 1010 as described below can be used independently of their respective structures. Specifically, the three subassemblies 1100, 1200, and 1300 and their components can each be used separately and independently of the other subassemblies. For example, proximal subassembly 1100 and its components can be used separately in another autoinjector, independent of the specific design of syringe unit 1200 or power supply unit 1300. Accordingly, the following description should not be construed as a disclosure that limits any and all components to only those methods that can be used with additional components described in the following context. Instead, the present disclosure should be understood such that any and all components disclosed therein can claim their respective features separately, independent of the interaction of the components of each subassembly.
[0274] Below, the components of the subassembly are described in detail.
[0275] 3 shows an exploded view of the syringe unit subassembly 1100. The syringe unit subassembly 1100 includes an end cap 1050 formed by an end cap body 1052, a blade washer 1054, and a proximal end cap cover 1056. Additionally, the syringe unit subassembly 1100 includes a safety shield indicator 1102, a safety shield 1104, a locking ring 1106, a longitudinal housing 1108, and a syringe holder 1110. These components are described in detail below in connection with FIGS. 66a-73.
[0276] Figure 64 shows an exploded view of the components of the subassemblies that form a prefilled syringe 1200. This syringe subassembly includes a rigid needle shield 1202, a glass body 1204 with an integrally provided needle 1206, a medication 1208 shown as a liquid column, and a stopper 1210. These components of the prefilled syringe 1200 are described in detail in connection with Figures 74-77.
[0277] FIG. 65 shows an exploded view of the subassembly components that form the power unit 1300. This power unit subassembly 1300 includes a plunger 1302, a drive spring 1304, a shield retention trigger element 1306, and a shield spring 1308. Additionally, the power unit subassembly 1300 includes a shield retention indicator 1310, a retainer 1312, a rotary click element 1314, and a distal end cap 1316. These components are described in detail below in connection with FIGS. 78a-83b.
[0278] FIGS. 66a and 66b show the end cap body 1052 from different perspectives. A cylindrical body with multiple integrally formed radial gripping ridges 1058 can be seen extending longitudinally from the proximal end of the body 1052 to its midsection. The distal part is formed by a cylindrical body with a smooth outer surface 1060. This surface includes arrow-shaped through-holes 1059 that indicate the direction of movement for twisting the end cap 1050 relative to the body 1012. Additionally, two opposing retention ribs 1061 can be seen in FIGS. 66a and 66b, each provided on the inner circumferential surface of the end cap body 1052 and interrupted by a through-hole 1059. These retention ribs 1061 are provided to retain the end cap body 1052 on the housing 1108 when they engage within the U-shaped projections 1178, as discussed below in connection with FIG. 73.
[0279] On its interior side, the end cap body 1052 includes an axially open receptacle 1062 with a smooth receiving surface. Adjacent to the receptacle 1062 is a section having a radially inwardly extending rib 1064 formed therein. Following the section including the rib 1064, the end cap body 1052 includes a stepped surface 1066 that abruptly increases the inner diameter of the end cap body 1052. The stepped surface 1066 axially follows a closed sinus shape that acts as a drive curve when the stepped surface 1066 engages a corresponding drive lug on the housing 1108 to twist the end cap 1050 in or out of the body 1012. At its distal end, the interior of the end cap body 1052 includes a further radially inwardly extending rib 1068 that acts as a contact means for interacting with the outer peripheral surface of the housing 1108.
[0280] 67 shows a cap cover 1056. The cap cover 1056 comprises a cylinder with an outer peripheral surface 1070 for leading into the open receptacle 1062 of the end cap body 1052 in a press-fit engagement. The cap cover 1056 has a closed proximal end wall 1072. Extending axially distally from this end wall 1072, the cap cover 1056 provides an internal cylindrical ring 1074 with the formation of a radial internal rib 1076. A distal end surface 1078 of the internal rib 1076 is angled slightly inward to form a circumferential bevel.
[0281] FIG. 68 shows a blade washer 1054. The blade washer 1054 has a circular outer periphery 1080 that surrounds a ring-shaped body 1082. The blade washer 1054 is integrally formed with the ring-shaped body 1082 and includes four radially inwardly extending lobes 1084 that terminate in a circular radially inner gripping surface 1086. In a side view, the blade washer 1054 can be seen to have a frusto-conical shape, with the lobes 1084 providing an axial spring action, i.e., the lobes 1084 can be resiliently deflected in the axial direction.
[0282] Generally, the outer geometry 1080 of the blade washer 1054 may be circular or any other geometry suitable for the available assembly load or packaging space. Multiple extending lobes 1084 may be present, and the blade geometry may be any type to achieve a specific insertion force or any function to retain force from the rigid needle shield when the end cap is removed from the housing. Generally, the blade washer 1054 may have a planar or flat shape. In other examples, the blade washer may have a non-planar preform; for example, the blade washer may be formed in a conical or wavy shape. In one example, ribs may be formed around the outer rim of the blade washer to strengthen the ribs. This may allow the blade washer to rotate during cap removal. If the cap is rotated and the blade washer is simply pulled longitudinally, a detrimental condition known as coring can be eliminated. Coring occurs when the rubber of the rigid needle shield rotates around the needle. A rubber plug may then remain inside the needle, which is undesirable. This can be disruptive and stop the device from functioning properly.
[0283] With the end cap 1050 assembled, the blade washer 1054 is placed on the proximal face of the rib 1064 and clamped against the rib 1064 by pressing the cap cover 1056 into the receiver 1062. The blade washer 1054 is thereby held stationary or positioned with some axial clearance between the cylindrical radially outer front face 1086 of the cap cover 1056 and the rib 1064 to allow axial resilient deflection to grip the rigid needle shield 1202, described below. The inner ring 1074 is positioned a sufficient distance from the lobes 1084 to allow the lobes to flex axially proximally.
[0284] 69a and 69b show the safety shield 1104 in different perspective views. The safety shield 1104 includes a ring-shaped body 1112 with two diametrically opposed longitudinal arms 1114, 1116. The ring-shaped body has a stepped, rounded outer surface contour such that the ring-shaped body reduces in diameter from a cylindrical portion 1118 to a protruding, rounded front end 1120 with an axial opening 1122. The inner diameter of the axial opening is slightly larger than the outer diameter of the rigid needle shield 1202 so that the syringe together with the rigid needle shield 1202 can move therethrough without friction. The front end 1120 of the safety shield 1104 is rounded and free of sharp edges for contact with the patient's skin. Furthermore, the safety shield 1104 of the device 1010 according to the present invention forms a trigger element when pressed against the patient's skin with the required actuation force. Therefore, the front end 1120 is smooth so that the front end 1120 does not damage or abrade the patient's skin.
[0285] The two longitudinal arms 1114 and 1116 each have a slightly rounded shape and include a longitudinally grooved through-hole 1124 next to the cylindrical portion 1118. The two through-holes 1124 are therefore provided in opposing positions relative to each other. These through-holes 1124 act as guides for guiding the longitudinal movement of the needle shield 1104 within the device 1010.
[0286] The ring-shaped body 1112 of the needle shield 1104 includes four radially inwardly extending ribs 1126. These internal ribs 1126 are provided to support the rigid needle shield 1202 against deflection, thereby supporting the position of the pre-filled syringe 1200 in the assembled state, for example during transport. Additionally, the ring-shaped body 1112 of the needle shield 1104 includes two opposing through holes 1128 with proximal and distal walls 1129, 1130, each running substantially perpendicular to the major axis X.
[0287] 70 shows the safety shield indicator 1102. The safety shield indicator 1102 is formed as a thin-walled element that can be coupled to the proximal ring-shaped body 1112 of the needle shield 1104 by a pressure-fit and / or snap-fit engagement. Alternatively, the safety shield indicator can simply be provided as a colored coating on the front surface of the needle shield 1104, or it may be integrally molded as a colored portion of the needle shield 1104. To this end, the safety shield indicator 1102 has an inner surface contour that corresponds to the outer surface contour of the ring-shaped body 1112 of the needle shield 1104. The safety shield indicator 1102 has a peripheral outer surface that has a signal color that is clearly visible to the user, i.e., yellow, orange, or red. This allows the user of the device 1010, i.e., the physician or patient, to easily recognize when the safety shield indicator 1102 protrudes from the housing 1108 to cover the needle 1206, as will be discussed in detail in connection with the operation of the drug delivery device 1010 according to the present invention.
[0288] 71a and 71b show the structure of the locking ring 1106. The locking ring 1106 is provided to engage with the safety shield 1104 during use, as the safety shield 1104 is fully pressurized into the housing 1108 when the device 1010 is actuated to deliver medication to a patient. After engaging with the safety shield 1104, the locking ring 1106 is permanently bonded to the safety shield 1104, preventing the safety shield 1104 from being pushed back into the housing 1108 a second time after the device has been used and the medication has been fully delivered.
[0289] The locking ring 1106 includes a closed ring 1132 with two opposing recesses 1134. Radially inward of these recesses 1134, the locking ring 1106 includes two flexible arms 1136 formed on opposing lobes 1138 that project radially inward from the locking ring. In addition, the locking ring includes two further radially inwardly projecting lobes 1140. The two flexible arms 1136 each have a proximally projecting, radially outwardly extending snap lug 1142. At their upper proximal ends, the flexible arms 1136 have a front surface that runs substantially radially.
[0290] In other examples, the ring may have different cross-sectional geometries and may have a number of legs, from single to multiple.
[0291] On the distal side of the closure ring 1132, the locking ring 1106 includes four slightly flexible arms 1146 extending distally. Each flexible arm 1146 has a snap lug 1148 on its distal end extending radially inward with a slightly sloped distal wall 1150, thereby providing each flexible arm 1146 with a sharp toothed profile on its distal end. It is important to note that the degree of flexibility of the arms 1146 should be matched to the spring constant of the spring 1308 so that the sliding over force of these arms 1146 is less than the safety shield spring force. This is to ensure that post-infusion occlusion and removal of the device from the skin always works. This is discussed below when describing functionality.
[0292] 72a and 72b show one example of a syringe holder 1110. The syringe holder 1110 is intended to receive and hold a pre-filled syringe 1204 within the housing 1108. The syringe holder 1110 is adapted to receive different types of syringes with different volumes of medication without having to substantially change the dimensions of other components of the device 1010. Thus, different sizes for the syringe holder 1110 should provide compatibility with different types of syringes.
[0293] The syringe holder 1110 provides a longitudinal tubular body 1152. At its proximal end, the tubular body 1152 has four protruding flexible arms, each of a first pair of two opposing arms 1154 having a radially inwardly protruding lug 1156 forming a gripping element. Each of a second pair of two opposing arms 1158 is supported using cross-shaped lateral support ribs 1162, such as an angled lug 1160. The angled lug 1160 has a sloped surface 1164 at its proximal portion. The distal end of the syringe holder 1110 has an angled collar 1166 with two recesses 1168 on opposite sides thereof. The collar 1166 has a radial portion 1170 and a longitudinal portion 1172 connected by a rounded transition. The radial portion 1170 may be rounded or chamfered at its transition to the longitudinal portion 1172 to facilitate assembly, specifically to guide the syringe holder 1110 into the housing 1108 together with the syringe 1200.
[0294] 73a-73c show different views of the housing 1108. The housing 1108 is intended to form the main body 1012 of the device 1010. The housing 1108 is formed from a stable, rigid, transparent or opaque material. If not entirely transparent, the housing can be formed with a drug viewing notch or transparent window to allow the user to see the drug and the actual state of the device. The housing 1108 is formed by a longitudinal tubular member 1174. At its proximal end, the tubular member has a front surface 1176 having a closed, sinus-shaped profile. Near the proximal end and the front surface 1176, the housing 1108 has two U-shaped lateral projections 1178 that are positioned opposite each other and project radially outward. A U-shaped lateral projection 1178 is provided to receive the retaining rib 1061 of the end cap body 1052, described in connection with FIG. 66a, to hold the end cap body 1052 in place on the housing 1108 prior to use. At its distal end, the housing has a circular front surface 1180. Near the end face and substantially longitudinally aligned with the projection 1178, the housing 1108 has two opposing lateral notches 1182. In the region between the distal end and the notches 1182, the housing is integrally formed with two pairs of protruding knobs 1184. The protruding knobs 1184 may have alternative shapes. The protruding knobs 1184 function to provide an anti-rocking feature for the device 1010 on a flat surface. Each pair of knobs 1184 is aligned with a respective lateral notch 1182.
[0295] Within its interior, the housing 1108 includes a ring structure 1186 that is integrally connected to the tubular member 1174 using a pair of opposing rigid connecting arms 1188. The connecting arms 1188 are formed by a stable E-shaped structure with three longitudinal connecting ribs and one lateral connecting rib. The size of the connecting ribs and the E-shaped cross-sectional shape should provide structural rigidity to the housing 1108. This joint geometry is also important for material flow when the components are molded. Additionally, the ring structure 1186 has a longitudinal apex 1190 with two V-shaped notches 1192 that open distally and terminate proximally in a radially circular base surface 1194. The V-shaped notches 1192 are provided to receive the angled lugs 1160 that include the lateral support ribs 1162 of the syringe holder 1110. A longitudinal collar 1196 extends proximally from the base surface 1194. This geometry guides the movement of the safety shield 1104 during actuation of the device 1010 and also positions the syringe holder 1110 in place within the housing 1108. The collar 1196 provides a measure of stiffness to constrain loads applied through the syringe 1200 when the device is actuated, as discussed below.
[0296] 74 and 75 show perspective views of the rigid needle shield 1202 and its insert 1212. The rigid needle shield 1202 is formed by a tubular member 1214 with an open distal end 1216 and a closed proximal end 1218. At its front, the rigid needle shield 1202 has a face formed with lateral gripping ribs 1220. Near its distal end, the rigid needle shield 1202 has two opposing rectangular through holes 1222.
[0297] 75 is formed from a flexible, deformable material that can be compressed into the rigid needle shield 1202 so that the insert 1212 is firmly held therein. The insert 1212 has an annular collar 1224 near its distal end that engages with a rectangular through-hole 1222 in the rigid needle shield 1202.
[0298] 76 shows a syringe 1204. The syringe 1204 is formed by a hollow cylindrical glass body 1230 having an open distal end 1232 surrounded by a circumferential annular collar 1234 with two flat, opposing sides 1235. At its proximal portion, the cylindrical glass body 1230 is formed with a rounded tapered portion 1233 and transitions into a hollow conical glass portion 1236. The hollow conical glass portion 1236 terminates in a proximal head 1238 in which the needle 1206 with a sharp needle tip 1240 is firmly received.
[0299] 77 shows a stopper element 1210 formed from a flexible material, such as rubber. At its proximal portion, the stopper element 1210 has a smooth, cylindrical outer surface 1242 having a diameter that matches the inner diameter of the hollow cylindrical glass body 1230 of the syringe so that the stopper element 1210 slidably engages the inner surface of the hollow cylindrical glass body 1230 in a fluid-tight manner. On the distal portion of its outer surface, the stopper element 1210 includes four circumferential annular recesses that form three circumferential sealing ribs 1244. The stopper element 1210 has a cup shape with a closed proximal end 1246 and an open distal end 1248.
[0300] Referring now to the components of the power supply unit, FIGS. 78a and 78b depict plunger 1302 in different perspective views. Plunger 1302 is formed by a longitudinal, pipe-shaped hollow element 1320 having a plunger head 1322 at its proximal end. Plunger head 1322, which may be formed integrally with hollow element 1320 or as a separate piece, has a cylindrical portion 1324 with an enlarged outer diameter in the illustrated example. This enlarged plunger head 1322 is used for larger syringes, e.g., having a drug volume of 2.25 ml instead of only 1 ml. For smaller syringes, e.g., having a drug volume of 1 ml, enlarged plunger head 1322 can be omitted, and plunger 1302 simply has a straight cylindrical shape at its proximal end. At the middle of the plunger 1302, a pair of opposing rectangular through holes 1326 are provided in the wall of the hollow element 1320. At the distal end, the hollow element 1320 is provided with four longitudinal ribs 1328 spaced equidistantly about the circumference of the hollow element 1320. Additionally, the distal end of the plunger 1302 provides two grooved channels 1330 opening into a distal end face 1331, each having a sloped portion 1332 and a longitudinal end 1334.
[0301] 79a and 79b depict the shield retention trigger element 1306. The shield retention trigger element 1306 is formed by a hollow bushing 1340 having a radial annular collar 1342 integrally formed at its proximal end. The bushing 1340 includes two opposing notches 1344 opening at its distal end. The two opposing notches 1344 provide longitudinal guide surfaces 1346 that extend through the entire housing 1340.
[0302] 80a and 80b depict a shield retention indicator 1310. The shield retention indicator 1310 has the purpose of providing a visible indicator for an actual state of use, specifically, an indicator that the device 1010 has already been used to deliver a drug. The shield retention indicator 1310 includes an annular cylindrical body 1350 having a radially inwardly protruding rib 1352 on its proximal inner circumferential surface. Additionally, the annular cylindrical body 1350 has two opposing proximally extending flexible arms 1354, with a first portion 1356 running longitudinally, a second portion 1358 inclined radially inward, and a third portion 1360 extending longitudinally but further radially inward than the first portion 1356. At its proximal end, each arm 1354 has a radially outwardly extending retention protrusion 1362.
[0303] At its intermediate portion, the annular cylindrical body 1350 has a radially outwardly extending annular flange 1364. Two opposing arcuate wall members 1366 extend distally from the flange 1364. The outer circumferential surfaces 1368 of the arcuate wall members 1366 are provided with a signal color and / or signal visibility pattern.
[0304] 81a and 81b depict a retainer 1312 of the power supply unit 1300. The retainer 1312 acts as a control member that contains multiple control functions of the power supply unit 1300. The retainer is formed from a hollow cylindrical body 1370. On two opposite sides, the cylindrical body 1370 includes U-shaped notches 1372 that form longitudinal flexible arms 1374. The longitudinal flexible arms 1374 are integrally connected to the hollow cylindrical body 1370 at their distal ends 1376. At their distal ends, the flexible arms 1374 include a chamfered radially outward projection 1378 and a corresponding chamfered radially inward projection 1380 on the opposite side. Additionally, the cylindrical body 1370 comprises two opposing longitudinal notches 1382 in an area rotated by 90° relative to the flexible arm 1374 formed by the notches 1372. The longitudinal notches 1382 extend over approximately the same longitudinal extent as the U-shaped notches 1372. Near their proximal ends, in an area approximately one-third of the longitudinal length of the notches 1382, the cylindrical body 1370 includes lateral projections 1384 that laterally bridge the notches 1382.
[0305] At its proximal end, the cylindrical body 1370 comprises two flexible arms 1390 that are integrally formed with the cylindrical body 1370 and that are inclined at an angle of approximately 45° relative to the proximal front face of the hollow cylindrical body 1370. The flexible arms 1390 are connected to a ring-shaped head 1392 that is formed as a bushing with a cylindrical portion 1394 and a proximal flange portion 1396. The head 1392 can be integrally formed with the flexible arms 1390 or can be formed as a separate piece that is rigidly connected to the flexible arms 1390, for example, by means of an intermediate connecting ring.
[0306] At its distal end, the cylindrical body 1370 is formed with two opposing groups of external longitudinal ridges 1400, 1402, 1404 extending radially outward from the cylindrical body 1370. Distal to the ridges 1400, 1402, 1404, the cylindrical body 1370 includes a cylindrical section 1406 of increased diameter. This cylindrical section 1406 of increased diameter includes two opposing rounded transverse notches 1408 that are longitudinally aligned with the notches 1382 in the cylindrical body 1370. The remaining unnotched wall cross section of the cylindrical section 1406 includes two longitudinal protrusions 1410 that extend radially outward slightly and have a rectangular shape in side view. These protrusions 1410 each include a transverse slot 1412 at their midpoint.
[0307] 82a and 82b depict the rotary click element 1314. The rotary click element is provided to vary the driving force of the main spring 1304. The rotary click element 1314 is formed by a hollow cylindrical bushing 1420 having a smooth proximal front surface 1422 and a distal surface formed with an annular apex of shark teeth 1424. Radially inward from the apex of the shark teeth 1424, the rotary click element 1314 includes two opposing cylindrical walls 1426, which are divided by a transverse notch 1428. On its inner circumferential surface, the bushing 1420 includes protrusions for engaging the main spring 1304 for general rotation therewith.
[0308] 83a and 83b depict the distal end cap 1316 of the device 1010. The distal end cap 1316 has an end cap body 1440 formed from a distal plate that closes the distal opening of the housing 1108. To that end, the end cap body 1440 is formed with two protruding flexible arms 1442 having engaging projections 1444 at their proximal ends. These flexible arms 1442 act as snap hooks that engage with corresponding openings 1182 in the housing 1174. Additionally, radially inward from the flexible arms 1442, the end cap body 1440 is formed with a hollow cylindrical body 1446. The hollow cylindrical body 1446 includes two opposing nose elements 1448 extending radially outward. Additionally, the hollow cylindrical body 1446 includes two proximal slopes 1450 extending longitudinally. Provided on the face of the end cap body 1440, inside the hollow cylindrical body 1446, are further apexes of shark teeth 1452 adapted to engage the apexes of the shark teeth 1424 formed on the rotary click element 1314. A longitudinal cylindrical rod member 1454 extends proximally from the face of the end cap body 1440 at the center of the apexes of the shark teeth 1452.
[0309] The assembled state of device 1010 will now be described with reference to Figures 84a and 84b. This is also the initial state of device 1010, i.e., the state of the device as it is being delivered to a user. In the assembled state of device 1010, end cap 1050 is removably secured to longitudinal housing 1108, with end cap 1050 retained within U-shaped protrusion 1178 of housing 1108 by its retaining rib 1061 and corresponding recess. Syringe 1204 is retained within syringe holder 1110, which is received within ring structure 1186 of housing 1108. Additionally, the syringe 1204, via its annular collar 1234 or flange, is pressed proximally against the ring structure 1186 of the housing 1108 using the head 1392, and the flexible arm 1390 acts as a spring means that provides an axial spring force to hold the syringe 1204 in place within the syringe holder 1110. The rigid needle shield 1202 engages the hollow conical glass portion 1236 using the insert 1212. The flexible insert 1212 safely covers the needle 1206, maintaining sterility of the contact needle and contained medication. As can be seen, the exterior surface of the tubular member 1214, including the lateral gripping ribs 1220, is engaged by the flexible lobes 1084 of the blade washer 1054. The blade washer 1054 is retained within the end cap 1050 using the cap cover 1056.
[0310] Additionally, FIG. 84b shows the ring-shaped body 1112 of the safety shield 1104. The safety shield 1104 is compressed against the force of the shield spring 1308 by the end cap 1050 via the longitudinal arms 1114, 1116, with the shield retention trigger element 1306 acting as the interface between the longitudinal arms 1114, 1116 and the shield spring 1308. The proximal end of the shield spring 1308 engages against a flange 1342 of the shield retention trigger element 1306, and the distal end of the shield spring 1308 compresses against a flange 1364 of the shield retention indicator 1310.
[0311] The shield retention indicator 1310 is held in its axial position by means of its arms 1354 despite the compressed shield spring 1308 and the resulting force. This is achieved due to the fact that the arms 1354 reach through longitudinal notches 1382 in the retainer 1312 and engage their radial retention protrusions 1362 behind lateral protrusions 1384 that bridge the notches 1382 of the retainer 1312. Furthermore, in this state, the plunger 1302 located radially inward of the arms 1354 prevents the arms 1354 from bending radially inward.
[0312] Plunger 1302 holds main spring 1304 in compression. The proximal end of main spring 1304 presses against the proximal end of plunger 1302, to which plunger head 1322 is fixed. Plunger head 1322 is seen to be slidably received within hollow glass body 1230 of syringe 1204 near stopper element 1210. Additionally, FIG. 84b shows medicament 1208 as a liquid column contained within syringe 1204.
[0313] The distal end of the main spring 1304 protrudes from the plunger 1302 and is received within the hollow interior of the rotary click element 1314, where it is also non-rotatably engaged. The rotary click element 1314 is then received within the hollow cylindrical body 1446 of the distal end cap 1316, and the two shark's tooth formations 1424 and 1452 engage with one another. Relative rotation of the rotary click element 1314 and the distal end cap 1316 produces a clicking sound that can be heard or felt by the user.
[0314] As seen on the right side of FIGURE 84b, the cylindrical post member 1454 extends proximally into the hollow interior of the main spring 1304 and acts as an axial guide element for the compressed main spring 1304. The distal cap 1316 is inserted into the housing 1108, and the flexible arms 1442 have their radially outwardly pointing engagement protrusions 1444 which engage with the lateral notches 1182 in the housing, thereby holding the distal cap 1316 in place against the resulting spring force.
[0315] From this fully assembled initial position, device 1010 according to this example of the invention is used as follows.
[0316] To remove the end cap 1050, the end cap 1050 is twisted away from the housing 1108 in the direction of the arrow-shaped opening 1059, thereby rupturing the tamper label 1016. The twisting force must be great enough to overcome the interaction between the U-shaped projections 1178 on the housing 1108 that receive the retention ribs 1061 provided on the interior surface of the end cap body 1052. The twisting motion follows the contour of the sinusoidal front surface 1176 of the housing 1108. Due to the fact that the safety shield 1104, in its ready-to-use state, is biased against the end cap 1050 by the shield spring 1308, the twisting motion of the end cap 1050 is supported by this biasing force of the shield spring 1308. Thereby, after overcoming the initial resistance also provided by the tamper label 1016, the twisting motion of the end cap 1050 is supported by the spring force, and the user experiences support in removing the end cap 1050. During removal of the end cap 1050, the shield spring 1308 supports the twisting motion of the end cap 1050, while the shield spring 1308 expands axially, pressing the safety shield 1104 from the housing 1108 until the safety shield 1104 finally reaches its fully extended position covering the needle 1206. Moreover, during removal of the end cap 1050, the rigid needle shield 1202, which is gripped by the lobes 1084 of the blade washer 1054, is pulled out of the hollow conical glass portion 1236 of the syringe 1204 together with its insert portion 1212. Thereby, the needle 1206 with its needle tip 1240 is exposed within the ring-shaped body 1112 of the safety shield 1104 .
[0317] In other words, the removable end cap 1050 is held to the housing 1108 by the U-shaped protrusion 1178. While this is shown as a U-shape, it could be any of a number of other geometric shapes. Its function is a limit on the middle of the U. This sets the tension force for the removable end cap 1050 when pulled. The removable end cap 1050 has a rib 1061 in the middle of the arrow notch that contacts the middle of the U-shaped protrusion 1178. Each angle is aligned to stop the pull and require less force at greater angles. By combining the function and angle of the plastic area of the arrow notch 1059, the pull force can be varied to the desired level. The sides of the U-shaped protrusion 1178 can be rotated and angled to adjust the initial torque required to begin removal of the removable end cap 1050. The U-shaped protrusion 1178 and the restraining rib 1061 provide a longitudinal rotation restraint.
[0318] Figures 85a and 85b show longitudinal cross-sectional views of a drug delivery device according to an example of the present invention with the end cap 1050 just completely removed, where Figure 85a is a longitudinal cross-section along plane A shown in Figure 61 and Figure 85b is a longitudinal cross-section along plane B shown in Figure 61.
[0319] In this state, the safety shield 1104, along with its ring-shaped body 1112, protrudes from the housing 1108. The user can see the safety shield indicator 1102 with its signal color protruding from the housing. The shield spring 1308 is partially relaxed but still in a substantially compressed state. The main spring 1304 is still fully compressed, and it remains in this fully compressed state due to the fact that the flexible arms 1374 of the retainer 1312 engage the chamfered radially inward projections 1380 into the opposing rectangular through-holes 1326 of the plunger 1302. This holds the plunger 1302 in an axial position against the spring force of the main spring 1304, preventing it from expanding. The power supply unit 1300 is pre-loaded.
[0320] The possible range of axial movement of the safety shield 1104 is determined by the length of the longitudinal grooved through-holes 1124 in each of the longitudinal arms 1114, 1116, which receive the angled lugs 1160 of the syringe holder 1110. This can also be achieved in an alternative way, namely by a protrusion guided in a longitudinal slot, such as in the housing 1108. As discussed above, in the assembled state the syringe holder 1110 is firmly held within the housing 1108.
[0321] To use the device 1010, as shown in FIGS. 85a and 85b, the device is positioned on the patient's skin S at the location where the patient intends to inject the medication, for example, the patient's thigh. The device 1010 is then pressed proximally by the user onto the patient's skin S. The safety shield 1104 is thereby pressed into the housing 1108 against the biasing force of the shield spring 1308, while the pushing motion of the device causes the needle tip 1240 to pierce the patient's skin S and the needle 1206 to be pressed through the patient's skin S and into the patient's tissue. Finally, when the safety shield 1104 is fully pressed down into the housing 1108, the safety shield 1104 impacts the distal end face of its ring-shaped body 1112 against the proximal front face of the connecting arm 1188, which connects the housing 1108 to the ring structure 1186. At this point, there is no further axial movement of the safety shield 1104 into the housing 1108 and the safety shield 1104 is blocked.
[0322] This position, with the safety shield 1104 fully depressed, is shown in Figures 86a and 86b, which depict longitudinal cross-sectional views of the drug delivery device just fully pressed against the patient's skin and drug delivery just beginning.
[0323] In this position, the two flexible arms 1136 of the locking ring 1106 engage their snap lugs 1142 into corresponding openings 1128 in the ring-shaped body 1112 of the safety shield 1104. The locking ring 1106 is thereby rigidly coupled to the safety shield 1104 while still providing general axial movement during use. Moreover, in this position, the safety shield indicator 1102 is primarily covered by the housing 1108 since the ring-shaped body 1112 is substantially received within the housing 1108.
[0324] As seen in FIG. 86b, by pressing the safety shield 1104 into the housing, the two longitudinal arms 1114, 1116 are moved distally while the longitudinal arms 1114, 1116 are guided by the engagement of the angled lugs 1160 and the slots 1124. This causes the shield retention trigger 1306 to move distally against the compressive force of the shield spring 1308. The shield retention trigger 1306 is moved distally enough that it unblocks the chamfered radially outward protrusions 1378 of the flexible arms 1372 of the retainer 1312. As a result, the flexible arms 1372 are free to bend radially outward. Due to the bias of the main spring 1304 urging the plunger 1302 proximally, and due to the chamfered design of the radially inward projection 1380 interacting with a corresponding chamfered rim of the throughbore 1326 of the plunger 1302, the flexible arm 1374 is forced radially outward by the plunger 1302, thereby disengaging from the opening 1326. The plunger 1302 then moves proximally, contacting the stopper element 1210 and displacing the stopper element 1210 proximally within the vitreous body of the syringe 1204, which can initiate delivery, i.e., expel, of the medicament through the needle 1206 and into the patient's tissue.
[0325] 87a and 87b show longitudinal cross-sectional views of an intermediate state when the drug delivery device is delivering a drug to a patient, with the plunger 1302 contacting the stopper element 1210 and moving the plunger 1302 a certain distance within the syringe 1204 to force the medicament through the needle. In FIG. 87b, it can be clearly seen that the flexible arms 1374 are bent radially outward, clearing the aperture 1326. Naturally, the plunger 1302 is moved proximally under the spring force of the main spring 1304, which tends to expand.
[0326] Finally, the main spring 1304 drives the plunger 1302, and thereby the stopper element 1210, immediately adjacent the rounded taper 1233 of the syringe 1204. Figures 88a and 88b show longitudinal cross-sectional views depicting this state as drug delivery nears the end. In this state, the distal end of the plunger 1302 just passes with its end face 1331 the proximal side of the radially inwardly extending protrusion 1380 of the flexible arm 1374 of the retainer 1312. As the end face 1331 of the plunger 1302 passes the proximal side of the protrusion 1380, the flexible arm 1374 can bend radially inward behind the end face 1331. Additionally, this radially inward movement of the flexible arm 1374 may provide a particular audible and / or tactile signal to the user as the proximal front of the flexible arm 1374 impacts the outer circumferential surface of the distal end of the plunger 1302.
[0327] Moreover, as seen in FIG. 88b, near the end of drug delivery, with the plunger 1302 nearly fully advanced proximally within the syringe 1204, the plunger 1302 also passes with its distal end face 1331 the proximal end of the flexible arm 1354 of the shield retention indicator 1310. The plunger 1302 thus unblocks the flexible arm 1354 of the shield retention indicator 1310 radially inward. As a result, due to the biasing force of the compressed shield spring 1308, the chamfered retention protrusion 1362 of the arm 1354 slides along the proximal front face of the lateral protrusion 1384, which laterally bridges the notch 1382 of the retainer 1312. This forces the flexible arm 1354 radially inward, causing it to bend inward. The flexible arm 1354 is now free to pass distally past the lateral protrusion 1384. As the compressed shield spring 1308 tends to expand, it moves the shield retention indicator 1310 distally until the shield spring 1308 impacts the distal end cap 1316, thereby providing an audible and / or tactile signal to the user.
[0328] Additionally, opposing arcuate wall members 1366, with their outer periphery having a signal color, fit into the free peripheral space between flexible arms 1442. As noted above, housing 1108 is formed from a transparent material. Label 1014 terminates substantially away from the proximal end of housing 1108, for example, a distance of 6-20 mm, thereby providing a circular transparent window 1198 through which a user can view the interior of housing 1108.
[0329] In the state shown in Figures 84a, 84b through 87a, 87b, the window is transparent. However, as shown in Figure 89b, as soon as the shield retention indicator 1310 is released by the radially inward movement of the arms 1354 and is distally compressed by the shield spring 1308, the arcuate wall member 1366 with the colored or patterned peripheral surface 1368 enters the surrounding free space and is visible through said circular transparent window 1198. The user thereby also receives a visual indication within the window 1198 that drug delivery has ended. In another example, this could be one or more windows, where the label or housing creates opaque and transparent regions.
[0330] 89a and 89b show longitudinal cross-sectional views of the drug delivery device when it has fully delivered the drug to the patient. It can be seen that the main spring 1304 has substantially released, fully compressing the plunger 1302, together with the stopper element 1210, against the inner surface of the rounded taper 1233 of the syringe 1204. The drug has been fully expelled through the needle 1206 and into the patient's tissue. The shield retention indicator 1310 is fully compressed distally by the shield spring 1308 and is visible to the user through the window 1198.
[0331] The user is informed that drug delivery has ended by an audible and / or tactile signal, as well as by a visual indication through window 1198. The user then removes device 1010 from their skin by axially retracting device 1010, thereby withdrawing the needle from the tissue. During removal of device 1010 from their skin, i.e., withdrawing the needle from the tissue, safety shield 1104 remains in permanent contact with the patient's skin S until it fully covers and protrudes over needle 1206 with its needle tip 1240. This is due to the fact that the needle shield, together with shield retention trigger element 1306, is pushed proximally out of housing 1108 by shield spring 1308.
[0332] 90a-90c show different views of the drug delivery device when it has been removed from the patient's skin and secured in a locked state after use. A safety shield 1104, permanently coupled to a locking ring 1106 (see FIG. 86a), protrudes from the housing 1108. The locking ring 1106, which engages with its flexible arms 1136 in the corresponding openings 1128 within the ring-shaped body 1112, blocks the safety shield 1104 from any further distal movement within the housing 1108. In other words, the locking ring 1106 prevents the safety shield 1104 from being pushed back into the housing. The safety shield 1104 thereby safely shields the needle 1206 with its needle tip 1240 from any manipulation or contact with the patient or practitioner, which could result in contamination with the patient's blood.
[0333] Blockage of any distal movement of the safety shield 1104 is achieved by four flexible arms 1146 formed on the distal side of the locking ring 1106. Due to the permanent coupling of the arms 1136 with the safety shield 1104, when the safety shield 1104 is pushed out of the housing 1108 under the force of the shield spring 1308 during removal of the device 1010 from the insertion site on the patient's skin, the safety shield 1104 pulls the locking ring 1106 with this movement. This causes the locking ring 1106, along with its four flexible arms 1146, to move across the outer periphery of a ring structure 1186 integrally formed within the housing 1108. Finally, the flexible arms 1146, along with their distal wall 1150, bend radially inward past the proximal leading edge of the ring structure 1186 of the housing 1108. The four flexible arms 1146 with their distal walls 1150 thereby snap radially inward in front of the proximal face of the ring structure 1186. As a result, the flexible arms 1146 act as a fixed spacer between the safety shield 1104 and the proximal front face of the ring structure 1186. By means of the locking ring 1106, the safety shield 1104 is secured against any relative distal movement into the housing 1108. Moreover, the safety shield 1104 is secured against any further proximal movement out of the housing 1108, i.e., against being pulled out of the housing, because the safety shield 1104 is blocked from engaging in the longitudinal slots 1124 of the arms 1114, 1116 by means of the radially distal surfaces of the angled lugs 1160.
[0334] This prevents any further use of the device 1010. The device 1010 also cannot thread or press the end cap 1050 onto the housing 1108 because it is blocked by the projection and lock safety shield 1104. A user can see the colored shield indicator 1102 through the window 1198 as well as the colored wall segment 1366 of the shield retention indicator 1310.
[0335] The device 1010 according to the above example of the invention has, in particular, the following advantageous features: The device 1010 can be easily assembled from three different pre-assembled sub-assemblies: a syringe unit 1100, a pre-filled syringe 1200, and a power supply unit 1300. Pre-filled syringes 1200 can be provided in different shapes and sizes as needed to fit the syringe holder 1110. The distal end cap 1050 can be easily removed from the housing 1108, in which the twisting action is supported by the action of the shield spring 1308. During use of the device, the device offers multiple possibilities to give audible and / or tactile and / or visible signals of different states of operation. Unless the drug is delivered, the user can be made aware of this condition through window 1198, which does not show any visible indicator until drug delivery is complete. Once drug delivery is initiated by pressing the device against the patient's skin to activate the device, there is no risk of stopping drug delivery. This prevents the device from being used multiple times. The device is easy and intuitive to use as it has no separate triggering elements, such as buttons. Activation is achieved simply by pressing the device with its safety shield 1104 against the patient's skin.
[0336] In summary, the device provides an easy assembly structure that can be used with different types of syringes. The device is easy, intuitive, and error-free to use. The device provides several feedback signals to the user. It should be noted that the present invention includes the following aspects. [Aspect 1] 1. An automated medication delivery device for dispensing a fluid product, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end near a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attached to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing, the syringe assembly having a hollow syringe body and a needle formed with the hollow syringe body containing the fluid product; a drive mechanism actuable by a trigger element to initiate dispensing of said fluent product; Including, the drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where it projects from the proximal end of the longitudinal housing to cover the tip of the needle, and the safety shield is movable to a distal position where the needle is exposed for injection; The device, wherein the removable cap is axially retained on the proximal end of the longitudinal housing by engagement of a retaining element between the cap and the longitudinal housing, the retaining element being engaged and disengaged by rotating the cap relative to the longitudinal housing to allow axial movement of the cap relative to the housing to remove the cap, the axial movement of the cap relative to the housing being supported by the biasing force applied to the safety shield. [Aspect 2] The device of aspect 1, wherein the safety shield engages the removable cap with a proximal contact surface formed on or near the proximal end of the safety shield when the removable cap is attached to the longitudinal housing. [Aspect 3] 3. The device of claim 1 or 2, wherein the retaining element that axially retains the removable cap on the proximal end of the longitudinal housing includes an internal protrusion formed on the proximal end of the longitudinal housing and a protrusion formed on the inside of an end cap body, the protrusion on the inside of the cap body including a recess within which the internal protrusion is circumferentially retained by a chamfered protrusion. [Aspect 4] 4. The device of any one of aspects 1 to 3, wherein the removable cap includes an end cap body having at least one inner surface defining an axially open receiving portion, the end cap body having an inner ring coupled to the end cap body, the inner surface of the removable end cap and the inner ring forming a space for receiving the proximal end of the longitudinal housing. [Aspect 5] A device described in any one of aspects 1 to 4, wherein the removable cap includes at least one cam path surface that is conformed to or inclined relative to the longitudinal axis to guide the removable cap proximally along at least a portion of the removable cap's rotation relative to the longitudinal housing. [Aspect 6] The device of aspect 5, wherein the removable cap includes an end cap body having at least one inner surface defining an axially open receiving portion and an inner ring connected to the end cap body, the inner surface of the removable end cap and the inner ring forming a space for receiving the proximal end of the longitudinal housing, and the cam path surface is disposed on the outer peripheral surface of the inner ring. [Aspect 7] Aspect 7. The device of any one of aspects 1 to 6, wherein at least one safety shield protrusion is adapted to engage with a protrusion or recess in the removable cap to limit movement of the safety shield in a distal direction within the cap. [Aspect 8] Aspect 8. The device of any one of aspects 1-7, wherein the removable cap, when attached to the longitudinal housing in the retaining position, is secured to the longitudinal housing by a breakable seal. [Aspect 9] Aspects 1-8. The device of any one of aspects 1-8, wherein the syringe assembly includes a rigid needle shield secured to the proximal end of the hollow syringe body and covering the needle along with its sharp tip, and the removable cap includes a flexible gripping element for engaging and / or retaining the rigid needle shield on its outer circumferential surface. [Aspect 10] A method of removing a removable cap from the automated medication delivery device of any one of aspects 1-9, comprising: rotating the removable cap relative to the longitudinal body to disengage a retaining element between the cap and the longitudinal body; providing a removal force to separate the removable cap from the longitudinal body; using a biasing force applied to a safety shield to assist in the separation of the removable cap from the longitudinal body. The method comprising: [Aspect 11] The method of claim 10, wherein rotating the removable cap beyond a position where the retaining element between the removable cap and the longitudinal housing is disengaged causes a cam path of the removable cap to engage with a portion of the longitudinal housing and provide at least a portion of the removal force to separate the removable cap from the longitudinal body.
Claims
1. 1. An automated medication delivery device for dispensing a fluid product, comprising: a longitudinal housing extending along a longitudinal axis and having a proximal end near a dispensing location, a distal end opposite the proximal end, and a hollow interior; a removable cap attached to the proximal end of the housing; a syringe assembly disposed in a mounting position inside the housing, the syringe assembly having a hollow syringe body and a needle formed with the hollow syringe body containing the fluid product; a drive mechanism actuable by a trigger element to initiate dispensing of said fluent product; Including, the drive mechanism is operably coupled to a safety shield movable within the longitudinal housing; the safety shield is biased to a proximal position where it projects from the proximal end of the longitudinal housing to cover the tip of the needle, the safety shield being movable to a distal position where the needle is exposed for injection, the movement of the safety shield to the distal position actuating the drive mechanism to initiate dispensing of the fluid product; The device, wherein the removable cap is axially retained on the proximal end of the longitudinal housing by engagement of a retaining element between the cap and the longitudinal housing, the removable cap retaining the safety shield between the proximal position and the distal position, the retaining element being engaged and disengaged by rotating the cap relative to the longitudinal housing to allow axial movement of the cap relative to the housing to remove the cap, and the cap being biased by the biasing force applied to the safety shield as it moves axially relative to the housing.
2. 10. The device of claim 1, wherein the safety shield engages the removable cap with a proximal contact surface formed on or near a proximal end of the safety shield when the removable cap is attached to the longitudinal housing.
3. 3. The device of claim 1, wherein the retaining element that axially retains the removable cap on the proximal end of the longitudinal housing includes an internal protrusion formed on the proximal end of the longitudinal housing and two chamfered projections formed on the inside of an end cap body, the two chamfered projections on the inside of the cap body providing a recess between which the internal protrusion is circumferentially retained.
4. 4. The device of claim 1, wherein the removable cap includes an end cap body having at least one inner surface defining an axially open receptacle, the end cap body having an inner ring coupled thereto, the inner surface of the removable end cap and the inner ring forming a space for receiving the proximal end of the longitudinal housing.
5. 5. The device of claim 1, wherein the removable cap includes at least one cam path surface that is conformed to or inclined relative to the longitudinal axis to guide the removable cap proximally along at least a portion of its rotation relative to the longitudinal housing by engaging an internal protrusion formed on the proximal end of the longitudinal housing.
6. 6. The device of claim 5, wherein the removable cap includes an end cap body having at least one inner surface defining an axially open receptacle, the end cap body having an inner ring coupled to the end cap body, the inner surface of the removable end cap and the inner ring forming a space for receiving the proximal end of the longitudinal housing, and the cam path surface is disposed on an outer peripheral surface of the inner ring.
7. 7. The device of claim 1, wherein at least one safety shield projection is adapted to engage a projection or recess in the removable cap to limit movement of the safety shield in a distal direction within the cap.
8. The device according to any one of claims 1 to 7, wherein the removable cap, when mounted on the longitudinal housing in its retaining position, is secured to the longitudinal housing by a breakable seal.
9. 9. The device of claim 1, wherein the syringe assembly comprises a rigid needle shield secured to the proximal end of the hollow syringe body to cover the needle together with its sharp tip, and the removable cap includes a flexible gripping element for engaging and / or retaining on an outer peripheral surface of the rigid needle shield.
10. A method for removing a removable cap from an automatic medication delivery device according to any one of claims 1 to 9, comprising the steps of: rotating the removable cap relative to the longitudinal housing to disengage a retaining element between the cap and the longitudinal housing; providing a removal force to the removable cap to separate the removable cap from the longitudinal housing; using a biasing force applied to a safety shield to assist in the separation of the removable cap from the longitudinal housing. The method comprising:
11. 11. The method of claim 10, wherein rotating the removable cap past a position where the retaining element between the removable cap and the longitudinal housing is disengaged causes a cam path in the removable cap to engage a portion of the longitudinal housing and provide at least a portion of the removal force to separate the removable cap from the longitudinal housing.
Citation Information
Patent Citations
Tamper Proof Syringe Assembly
JP2002541932A
Autoinjector
JP2016526460A
boot remover
JP2016538056A
Plug and container made of film and having plug
WO2017078166A1
An injection device
WO2017089259A1