Syringes are commercially packaged and shipped and often filled in containers that hold the syringes in an orderly fashion such that syringes can be automatically picked out of the shipping containers and placed onto an assembly line. Therefore, there is still a desire to directly sterilize, fill, and ship the syringes in a single container.
One dose syringes, such as staked needle syringes or syringes with a threadably attached needle, have the deficiency of allowing needle sticks and possible reuse of a contaminated needle. As such, there is an increased desire to prevent inadvertent needle sticks during the use and assembly of the syringes. In order to continue efficiently manufacturing, sterilizing, filling, and distributing the syringes, needle shields have been developed to attach to an end of needle syringes exposing the needle only during use.
Dispensers have also been developed for administering a single dose of medicine which have the general appearance of a pen or mechanical pencil. The dispensers, known as pen injectors or automatic injection and retraction syringes (“auto-injectors”) are typically large enough to hold a glass vial or cartridge of medicine, yet are small enough to fit conveniently in one's pocket or purse. Because the cartridges are shaped differently then a syringe, a different container and system is required for sterilization, filling, and shipment. It would therefore be advantageous to ship the cartridges directly from the filling container similar to the syringes above such that they are sterile and pyrogen free during and after their shipment. Such cartridges are not compatible with conventional syringes and needle shields.
As a result of the various systems known in the art for producing, shipping, and administering a single dose subcutaneous or intra muscular injection, it would be desirable to have a single system to manufacture and ship a universal medicine container or cartridge that is capable of being used directly as a syringe, used in conjunction with a syringe or needle shield, used in an auto-injector or any other syringe cartridge system.
The present invention provides for a syringe cartridge system comprising: a cartridge assembled to a needle hub assembly; and a packaging assembly that includes: a tray configured to support the cartridge, a nesting plate having a plurality of holes configured to receive the cartridge, the nesting plate positioned within the tray; and a flexible film defining an internal cavity configured to contain the tray, the nesting plate, and the cartridge.
The present invention also provides for a syringe cartridge system comprising: a cartridge that includes: a generally hollow tubular body having a distal and proximal end, a flange at the proximal end, and a septum at the distal end; and a needle hub assembly connectable to the cartridge, the needle hub assembly includes: a needle, a needle hub connected to the needle, a coupler operatively engaged with the needle hub and cartridge, and a guard surrounding the needle, needle hub, and coupler.
The present invention further provides for a syringe cartridge system comprising: a cartridge that includes: a generally hollow tubular body having a distal and proximal end, a flange at the proximal end, and a septum at the distal end; and a needle safety device connectable to the cartridge, the needle safety device includes: a needle, a needle hub connected to the needle and connectable to the cartridge, a slidable sleeve mounted to the needle hub, and a guard surrounding the needle, needle hub, and slidable sleeve.
The present invention also provides for a syringe cartridge injector comprising: a cartridge that includes: a hollow tubular body having a distal and proximal end, and a flange at the proximal end, a septum at the distal end, and a piston in the proximal end; and a syringe that includes: a hollow tubular body configured to receive the cartridge, a needle connected to the hollow tubular body, and a plunger connectable to cartridge.
The foregoing summary, as well as the following detailed description of the invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there are shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown.
In the drawings:
a is a side view of a needle hub assembly assembled to the cartridge vial of
b is a side cross-sectional view of the assembly of
c is a side view of the assembly of
a is a side view of a needle safety device assembled to the cartridge vial of
b is a side cross-sectional view of the assembly of
c is a side the assembly of
a is a side elevational view of the needle safety device shown in
b is a cross-sectional view of the needle safety device shown in
c is a side elevational view of the needle safety device shown in
d is a cross sectional view of the needle safety device shown in
e is a side elevational view of the needle safety device shown in
f is a cross-sectional view of the needle safety device shown in
g is a side elevational view of the needle safety device shown in
h is a cross-sectional view of the needle safety device shown in
a is a side view of a Luer lock adapter assembled to the cartridge vial of
b is a side cross-sectional view of the assembly of
c is a side view of the assembly of
Certain terminology is used in the following description for convenience only and is not limiting. The words “right,” “left,” “upper,” and “lower” designate directions in the drawings to which reference is made. The terminology includes the words above specifically mentioned, derivatives thereof, and words of similar import.
In an embodiment, the present invention provides for a syringe cartridge system (not numbered) that includes a cartridge 10 assembled to a needle hub assembly and a vacuum packaging assembly 22. Referring to
Referring to
The tray 26 is preferably constructed out of a polymeric material. The tray 26 is not limited to polymeric materials and can be constructed out of any material sufficient for its intended use, such as a thermal foam plastic material or a machined material, as long as the tray 26 is able to take on the general size and shape and withstand the normal operating conditions of the tray 26. The tray 26 includes a mouth 30 and a lip 32 approximate the mouth 30. The mouth 30 preferably includes channels 30a at its peripheral edge to allow the vacuum bag 24 to draw air from the tray 26 when a vacuum is drawn on the internal cavity 24a of the bag 24. A completely flat mouth 30 could potentially cause the bag 24 to be breached or leave a pocket of air within the tray 26 when a vacuum is drawn from the internal cavity 24a exposing the tray 26 and cartridges 10 to external air.
The nesting plate 28 is configured with a plurality of holes 34. The holes 34 are preferably configured as cylindrical sleeves 36. Each cylindrical sleeve 36 releaseably receives one of the plurality of cartridges 10 and holds the cartridge 10 in a vertical orientation, when the nesting plate is assembled in the tray 26. When assembled with the tray 26, the peripheral edge 38 of the nesting plate 28 is positioned on the lip 32 of the tray 26 to support the nesting plate 28 within the tray 26. The nesting plate 28 is typically constructed out of a generally rigid, polymeric material. However, the nesting plate 28 can be constructed out of any material with sufficient rigidity to support the plurality of cartridges 10.
The nesting plate 28 is also configured with a generally planar base 40. The base 40 includes reinforcing ribs 42 extending generally perpendicular from the base 34. The reinforcing ribs 42 preferably extend to the peripheral edges 38 of the nesting plate 28 to provide stiffness and strength to the planner base 40. The nesting plate 28 can optionally include an arcuate shaped edge rib 44 that extends generally upwardly from the planar base 40 defining an edge hole. The edge hole allows a user to insert a finger or tool therethrough the edge hole to remove the nesting plate 28 from the tray 26. The edge rib 44 provides stiffness and strength for the base 40 approximate the edge hole. The edge hole and edge rib 44 are not limited to inclusion in the edge of the base 40 and can be positioned at nearly any location in the nesting plate 28. The cylindrical sleeves 36 which define the holes 34 through the nesting plate 28 are sized and shaped to accept the cartridges 10 and/or a cartridge assembly, such as a cartridge 10 assembled to a needle hub assembly. The nesting plate 28 is not limited to the inclusion of the reinforcing ribs 42 or cylindrical sleeves 36. For example, the nesting plate 28 can be constructed of a generally planar plate with holes formed therein for receipt of the cartridges 10. However, the cylindrical sleeves 36 and reinforcing ribs 42 are preferred for inclusion in the nesting plate 28 to better orient and space the cartridges 10 relative to the nesting plate 28 and to provide additional strength and stiffness for the nesting plate 28 when the assembly is inserted into the internal cavity 24a of the bag 24.
The syringe cartridge system also includes a staked needle assembly 50 as shown in
The coupler 58 is configured as a generally hollow tubular body having a proximal end 58a and a distal end 58b. The proximal end 58a has a larger internal diameter than the internal diameter of the distal end 58b. The internal diameter of the proximal end 58a is configured to mate with the overall diameter of the cartridge 10 end cap 16. A lip 68 extends radially inwardly from the most proximal portion of the coupler 58 to allow for a snap-fit assembly of the coupler 58 to the cartridge 10 end cap 16. The top of the end cap 16 also abuts a ledge 70 defined by the distal end 58a. The distal end 58a of the coupler 58 has an inner opening in communication with the inner opening of the proximal end 58b, such that needle 52 can be freely passed through the coupler 58. The distal end 58b is also configured for sliding engagement with the needle hub 54. The distal end 58b also has a stepped flange 72 for receiving an optional sealing ring 56. The ledge 70 in concert with the stepped flange 72 is also configured to receive the width of the tear strip 62 so as to retain the guard 60, and if applicable the sealing ring 56, in a relatively fixed position when assembled to the coupler 58.
The guard 60 is configured with a tear strip 62 releasably attached to its proximal end. The guard 60 can also optionally be configured with a recessed track mechanism 200 (as shown in
The addition of the track mechanism 200 to the guard 60 inherently requires a user to push distally to disengage the guard 60 from the coupler 58 thereby automatically engaging the needle 52 to pierce the septum 18 and to fully seat the needle hub 54 within the coupler 58. This advantageously prohibits a user from accidentally forgetting to fully activate the cartridge syringe by not pushing the needle hub 54 proximally and fully seating the needle hub 54 before use.
Referring back to
a illustrates a cartridge vial 12 assembled to the needle hub assembly 50 (the cartridge vial 12 and needle hub assembly 50 hereinafter referred to as the cartridge staked needle) in an initial state.
To activate the cartridge staked needle, a user manually tears the tear strip 62 off the guard 60. Thereafter, the user manually depresses the guard 60 in the proximal direction either linearly or alternatively in a linear and twisting fashion as may be dictated by a track mechanism, to move the needle hub 54 from the first position to the second position, wherein the guard 60 bottoms out on the ledge 70. As the needle hub 54 is moved from the first position to the second position, the needle 52 is moved proximally to pierce the septum 18 to allow the flow of medicament from the cartridge 10 interior. Thereafter, the user can remove the guard 60 completely from the needle hub 54/coupler 58 assembly.
Referring back to
The syringe cartridge system can be pre-filled with a medicament or a plurality of medicaments prior to the bag 24 being sealed or at any time prior to the system be processed through a sterilization process. Alternatively, the syringe cartridge system can be packaged in the vacuum packaging assembly without pre-filling the cartridges 10.
The assembled configuration of the syringe cartridge system is shown in
The present packaging assembly advantageously addresses the problem of packaging effects associated with non-permeable packaging as non-permeable packaging is subject to the effects of changing atmospheric pressure. Part of the package function is to contain the cartridge staked needles in the nesting plate 28 within the tray 26 to reduce movement of the cartridge staked needles and maintain the cartridge staked needles in a sterile, pyrogen free, and particulate matter free condition until they are ready to be filled with the medical products. If a non-permeable package expands due to reduced atmospheric pressure encountered primarily during air shipment or alternate high elevation shipment, the package will no longer hold the cartridge staked needles in the position in the nesting plate 28, potentially resulting in rubbing of the cartridge staked needles against the nesting plate 28 or bumping into each other. A secondary effect is that the package may be stressed at weld points or other stress risers and rupture during shipping. A rupture of the package could cause a leak and the sterility of the contents may likely be compromised.
The present embodiment addresses this packaging problem by providing a vacuum package using a flexible film vacuum bag 24. A multiple-layer film comprised of at least one layer with very low gas permeability is configured into the vacuum bag 24 and sized to cover or contain the tray 26. The tray 26 containing the cartridge staked needles mounted in the nesting plate 28 is placed into the vacuum bag 24 and the bag 24 is evacuated and sealed. With the air removed, the bag 24 clings tightly to the tray 26 and the proximal end 10b or flanges 20 of the cartridge staked needles holding them firmly in the nesting plate 28. The negative effects of reduced atmospheric pressure are counteracted because the bag 24 generally will not loosen its grip on the cartridge staked needles until the seal of the bag 24 is broken. For this reason, it is desirable to reach a level of vacuum inside the bag 24 at least equal to or nearly equal to the pressure encountered in aircraft shipment which is typically eight inches of mercury (8 in. Hg) below standard atmospheric pressure or equivalent to eight thousand feet (8,000 ft.) above sea level. Held tightly in the nesting plate 28, the cartridge staked needles are less likely to be scratched by contact with the nesting plate 28 and other packaging materials. The vacuum in the bag 24 also serves as a ready indicator of package integrity since even the slightest leak or breach will cause the bag 24 to relax, which will be visually apparent (i.e., a visual indicator) to an operator inspecting the bag 24. A bag 24 with a leak would be thus readily identified visually as having been breached. Further, maintenance of the vacuum pressure in the bag 24 indicates that the tray 26 and its external surfaces have been maintained in their sterile, pyrogen free, and particulate matter free condition. Even without the bag 24, the tray 26 allows convenient transfer of the cartridge staked needles to an applicator as described in detail below.
In another embodiment, the present invention provides for a syringe cartridge system that includes a cartridge vial 12 (as shown in
In a further embodiment, the present invention provides for a syringe cartridge system that includes a cartridge vial 12 (as shown in
As shown in
The needle hub 86 has a generally conical shape tapering down towards its distal end and a needle 96 permanently affixed thereto. At its most proximal end, the needle hub 86 is configured to seat on the proximal end 88b of the coupler 88. The main body of the needle hub 86 has a generally hollow cylindrical interior 98 configured to mate with the distal end 88a of the coupler 88 such that the needle hub 86 can be fully seated on the proximal end 88b of the coupler 88. A pair of detents 100, 102 configured on the needle hub 86 and coupler 88 control the seating positions of the needle hub 86 on the coupler 88. In operation, the needle hub 86 is moved from a first position (as shown in
The needle 96 is positioned on the needle hub 86 such that when in the first position, the proximal end of the needle 96 is slightly above the end cap 16. However, when the needle hub 86 is moved to the second position, the proximal end of the needle 96 pierces the septum 18 to allow fluid from within the cartridge to pass through the needle 96.
As shown in
As shown in
As shown in
The needle 96 is initially partially exposed when the needle safety device 80 is in the storage position as shown in
In sum, the needle safety device 70 includes a needle 96, a needle hub 86 surrounding the needle 96, a slidable sleeve 110 slidably mounted on the needle hub 86 and a guard 82 surrounding the needle 96, needle hub 86, and slidable sleeve 110. The needle hub 86, slidable sleeve 110, and guard 82 have a receiving end which is proximal to the tip of the needle 96 and an injection end which is distal to the tip of the needle 96. The receiving end of the needle hub 86 is suitable for connection to an injection device such as a syringe cartridge system. The slidable sleeve 110 is adapted to slide in the direction of the length of the needle 96 between an extended position in which the injection end of the needle 96 is located inside the slidable sleeve 110 and a retracted position in which the injection end of the needle 96 projects from the slidable sleeve 110, via an intermediate position between the extended position and the retracted position in which the injection end of the needle 96 projects partially from the slidable sleeve 110, such that, in use, the slidable sleeve 110 is moved into the intermediate position for injection into a patient. Then as the needle 96 is inserted into a patient, the slidable sleeve 110 is caused to move into the retracted position, and in moving into the retracted position a resultant force is generated such that on removal of the needle 96 from the patient, the resultant force causes the slidable sleeve 110 to move towards the injection end of the needle hub 86 and into the extended position. The needle safety device further includes a locking mechanism capable of retaining the slidable sleeve 110 in the extended position after removal of the needle from the patient. The guard 82 is also releasably mounted on the needle hub 86 and slidable sleeve 110 such that the injection end of the guard 82 covers at least the injection end of needle 96 and the receiving end of the guard 82 has an open portion to expose the receiving end of the needle hub 86, and by causing the guard 82 to be moved in a direction towards the receiving end of the needle hub 86, the guard 82 engages with the slidable sleeve 110 which is retracted from the extended position to the intermediate position.
The cartridge needle safety syringe I can optionally be configured with a track mechanism as previously described in the above embodiment. Moreover, the overall dimensions of the cartridge needle safety syringe I can advantageously be configured and sized to fit within the vacuum packaging assembly as described in the above embodiment.
As shown in
The present embodiment also differs from the cartridge needle safety syringe I embodiment in that the needle hub 186 is directly connected to the cartridge 10 end cap 16 as best shown in
The overall assembly of the cartridge needle safety syringe II is housed within the holder 182, housing 130, and cap 134 assembly as shown in
To activate the cartridge needle safety syringe II, a user can grasp the cap 134 and holder 182 and rotates the cap 134 in a clockwise direction such that the right-hand threads of the cap 134 engage the corresponding threads on the housing 130. As the cap 134 is threaded, the threads of the cap 134 push the cartridge 10 distally within the holder 182 such that the male component of the detent 139 locks or snaps over the proximal end of the end cap 16 and the needle pierces through the septum 18. The holder 182 can also optionally be configured such that the distal movement of the cartridge 10 also sets the slidable shield 1110 into the ready to use position on the needle hub 186.
The point at which the needle hub 186 is fully set on the cartridge 10, represents the point at which the right-hand threads are fully engaged such that further clockwise rotation of the cap 134 starts to unscrew the initially fully engaged left-hand threads holding the housing 130 and holder 182 together. The user continues unscrewing the left-hand threads until the housing 130 and cap 134 assembly can be removed allowing the user to remove the syringe cartridge from the holder 182. In sum, as the user starts a clockwise rotation of the cap 134, it operates to engage the first threaded connection and subsequently to disengage the second threaded connection.
In yet another embodiment, the present invention provides for a syringe cartridge system that includes a cartridge vial 12 (as shown in
The coupler 146 has a generally hollow tubular body with a proximal end 146a and a distal end 146b. The distal end 146b has a smaller overall inner and outer diameter than the proximal end 146a. The internal diameter of the proximal end 146a is configured to mate with the overall diameter of the cartridge 10 end cap 16. A lip 152 extends radially inwardly from the most proximal portion of the coupler 146 to allow for a snap-fit assembly of the coupler 146 to the cartridge 10 end cap 16. The top of the end cap 16 also abuts against a ledge 154 defined by the distal end 146b. The ledge 154 also extends radially outward beyond the outer diameter of the proximal end 146a to retain the tear strip 144. The distal end 146b of the coupler 146 has an inner opening in communication with the inner opening of the proximal end 146a, such that the needle 150 can be freely passed through the coupler 146. The distal end 146b has an inner diameter configured to mate with and receive the needle hub 148. The distal end 146b also has a stepped flange 156 for receiving an optional sealing ring 158. The ledge 154 in concert with the stepped flange 156 is configured to receive the width of the tear strip 144 and retain the guard 142 in a fixed position when assembled to the coupler 146.
The needle hub 148 has a proximal end 148a and a distal end 148b. The distal end 148b is configured with Luer lock threads 148c which are readily known in the art. The proximal end 148a is of a generally cylindrical configuration having a hollow interior 160. The proximal end 148a is configured to slidably engage with the distal end 146b of the coupler 146.
A pair of snap-fits 162 and 164 is configured on the needle hub 148 and coupler 146 such that the needle hub 148 can be moved from a first position (as shown in
The guard 142 is configured with a tear strip 144 releasably attached to its proximal end. The guard 142 can also optionally be configured with a track mechanism (not shown) configured on the internal surface of the guard 142 to facilitate the proximal movement of the needle hub 148 into the coupler 146, as previously described in the above embodiments.
In an assembled state, the tear strip 144 is attached to the proximal end of the guard 142 and positioned in between the ledge 154 and stepped flange 156 of the coupler 146. In this initial position, the proximal end of the needle 150 is positioned slightly above the end cap 16 so as not to pierce the septum 18.
To activate the cartridge Luer lock, a user can manually tear the tear strip 144 off the guard 142. Thereafter, the user depresses the guard 142 in the proximal direction either linearly or alternatively in a linear and twisting fashion as may be dictated by a track mechanism, to move the needle hub 148 from the first position to the second position. As the needle hub 148 is moved from the first position to the second position, the needle 150 is moved proximally to pierce the septum 18 to allow the flow of medicament from the cartridge 10 interior. Thereafter, the user can remove the guard 142 completely from the needle hub 148/coupler 146 assembly to further attach a corresponding needle or device to the needle hub 148.
In yet a further embodiment, the present invention provides for a syringe cartridge injector. The syringe cartridge injector includes a cartridge 10 (as shown in
As shown in
From the foregoing description, it can be seen that the present invention provides for a novel and versatile syringe cartridge system capable of being used with multiple systems. For example, the cartridge can be configured in combination with a vacuum packaging assembly, needle hub assembly, needle safety device, Luer lock assembly, or an auto-injector. One of the main benefits of such a syringe cartridge system is that existing and conventional filling, dispensing systems, and packaging systems can be utilized without having to be modified.
It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. For example, additional components and steps can be added to the various syringe cartridge systems. It is to be understood, therefore, that this invention is not limited to the particular embodiment disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.
The present application claims the benefit of U.S. Provisional Patent Application No. 60/867,685 filed Nov. 29, 2006 entitled “Automatic Injection and Retraction Syringe Cartridge System,” the entire disclosure of which is hereby incorporated herein by reference.
Number | Date | Country | |
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60867685 | Nov 2006 | US |