METHOD FOR INSERT MOLDING A SHIELDING PLATE INTO A HOUSING PORTION OF AN ACCESS PORT
20190076637 ยท 2019-03-14
Inventors
Cpc classification
B29L2031/753
PERFORMING OPERATIONS; TRANSPORTING
A61M39/0208
HUMAN NECESSITIES
B29K2101/00
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14073
PERFORMING OPERATIONS; TRANSPORTING
A61M2207/00
HUMAN NECESSITIES
A61M2039/0226
HUMAN NECESSITIES
International classification
Abstract
A method for insert molding a shielding plate into a housing portion of an access port includes the steps of: positioning the shielding plate on a first corepin of a mold tool having a cavity, clamping the shielding plate between the first corepin and a second corepin of the mold tool, injecting plastic into the cavity so as to fill the cavity, and retracting the second corepin to create a void and subsequently injecting more plastic so as to fill the void. The molded housing portion of the access port forms a reservoir for receiving fluid. The housing portion includes an open end in which a septum is arranged, an exit passage, and a wall. The shielding plate includes a circular portion having a periphery. An annular region of the shielding plate has a bent portion with an axially extending portion formed on the annular region.
Claims
1. A method for insert molding a shielding plate into a housing portion of an access port, the housing portion forming a reservoir for receiving fluid, the reservoir having a central axis, the housing portion comprising an open end in which a septum is arranged, an exit passage, and a wall, the shielding plate comprising a lower side and a circular portion having a periphery, an annular region of the shielding plate having a bent portion with an axially extending portion, the method comprising the steps of: positioning the shielding plate on a first corepin of a mold tool having a cavity; clamping the shielding plate between the first corepin and a second corepin of the mold tool; injecting plastic into the cavity so as to fill the cavity, and retracting the second corepin to create a void and subsequently injecting more plastic so as to fill the void, wherein the lower side and the periphery of the shielding plate are embedded into the housing portion, the annular region of the shielding plate is embedded on all of its sides into the housing portion, and the bent portion is embedded on all of its sides into the housing portion.
2. The method according to claim 1, wherein the shielding plate is metallic or ceramic.
3. The method according to claim 1, wherein the bent portion is formed all around the annular region.
4. The method according to claim 1, wherein the bent portion comprises at least one extension extending from a portion of the annular region, and which is embedded on all of its sides into the housing portion.
5. The method according to claim 4, wherein the at least one extension is directed parallel to the central axis of the reservoir.
6. The method according to claim 4, wherein the at least one extension is inclined towards the central axis of the reservoir.
7. The method according to claim 4, wherein the at least one extension extends along the entire axial length of the wall.
8. The method according to claim 4, wherein at least one recess is formed on the circular portion laterally beyond the at least one extension.
9. The method according to claim 1, wherein the periphery of the circular portion has a maximum diameter that is greater than a maximum internal diameter of the reservoir.
10. The method according to claim 1, wherein the circular portion comprises an upper side that is concave.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The foregoing and further features and advantages of the invention will become apparent from the following description of example embodiments with reference to the accompanying figures, wherein like numerals are used to represent like elements and wherein:
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
DETAILED DESCRIPTION
[0049] Hereinafter, embodiments of the invention will be described in detail with reference to the accompanying drawings.
First Embodiment
[0050] A first embodiment of the invention is described in the following.
[0051]
[0052] A shielding plate 20 which is a disc-shaped member comprising a circular portion 22 is arranged on the inner base 6 of the lower housing 2 such that one face of the shielding plate 20 almost entirely, preferably entirely, covers the inner base 6. The shielding plate 20 has a periphery 26. The shielding plate 20 is preferably made from a hard material such as titanium, stainless steel, or ceramic, and further preferably made from sheet or plate. In the present embodiment the shielding plate 20 has uniform thickness.
[0053] A septum (not shown) is arranged at the open end 7 of the recess so as to seal the open end 7. The septum is preferably made from a self-sealing, needle-penetrable material such as silicone. The wall 4, shielding plate 20 and inner surface of the septum together define a reservoir 18.
[0054] An exit passage 10 formed in the lower housing 2 laterally penetrates the wall 4 of the reservoir 18. In this way the reservoir 18 is fluidly connected to the outside of the access port 1. A connector or cannula 11 (cf.
[0055] As shown in
[0056] The advantages of the shielding plate 20 according to the first embodiment are described in the following.
[0057] The shielding plate 20 according to the first embodiment has uniform thickness and a simple shape that may be made from plate or sheet. Due to its simple construction, the manufacture of the metal parts of the access port 1 is facilitated compared to an access port that is all-metal or has an all-metal reservoir 18. Therefore a simple design is achieved and manufacturing effort is reduced, while protecting the inner base 6 from needle marks.
[0058] The shielding plate 20 of the present embodiment is embedded into the inner base 6 of the lower housing 2. In particular the periphery 26 of the shielding plate 20 is surrounded by the inner base 6 of the lower housing 2. Therefore lateral displacement of the shielding plate 20 is prevented both during an insert molding operation and in service. In addition, the lower side of the shielding plate 20 is supported by the inner base 6. Therefore detachment of the shielding plate 20 from the lower housing 2, due to the force of an inserted needle for example, is prevented, and sealing performance of the reservoir 18 is improved.
[0059] The shielding plate 20 according to the present embodiment may be assembled to the lower housing 2 by insert molding. During molding, the material of the lower housing 2 contacts the shielding plate 20 in liquid form. When the liquid plastic solidifies, a reliable surface contact between the lower housing 2 and shielding plate 20 is formed, and anchoring of the shielding plate 20 to the lower housing 2 is further ensured here.
[0060] In a preferable modification (not shown in the figures) to an insert molded shielding plate 20 according to the first embodiment, the upper side of the circular portion 22 is concave. In this way surface pressure can be applied from the first corepin 30 of a mold tool predominantly towards the outer diameter of the upper face of the shielding plate 20 so as to avoid leakage of liquid plastic past this region and into the reservoir 18 during molding.
Second Embodiment
[0061] A second embodiment of the invention is described in the following, wherein the differences from the first embodiment are described.
[0062]
[0063] As shown in
[0064] In total the following elements of the shielding plate 120 are embedded into the lower housing 102: the lower side of the shielding plate 120, the periphery 126, and an annular region including all surfaces of the bent portion 124. The elements mentioned above are in surface contact with the lower housing 102, thus providing a form-locking connection between shielding plate 120 and lower housing 102. The remaining region of the upper side of the shielding plate 120 is exposed to the reservoir 18. In addition the shielding plate 120 preferably completely covers the inner base 6 of the reservoir 18.
[0065] A preferred method for manufacturing the access port 101 so as to integrate the shielding plate 120 is described below together with
[0066] An insert molding process which is an injection molding process is used to form the lower housing 102 while simultaneously integrating the shielding plate 120, using a mold tool. The main steps of the molding process are shown in
[0067] In a first step (S1) shown in
[0068] In a second step (S2) shown in
[0069] In a third step (S3) shown in
[0070] In a fourth step (S4) shown in
[0071] As shown in
[0072] In addition to the advantages of the first embodiment, the advantages of the shielding plate 120 according to the second embodiment are described in the following.
[0073] In the present embodiment an annular region of the shielding plate 120 including all surfaces of the bent portion 124 is embedded into the wall 4. In addition the lower side of the shielding plate 120 is embedded into the inner base 6. As a result the shielding plate 120 cannot loosen axially into the direction of the reservoir 18. Therefore the form-locking connection between the shielding plate 120 and lower housing 102 is further improved. Also a leak path from the reservoir 18 to the underside of the shielding plate 120 is prevented.
[0074] The bent portion 124 extends in an axial direction. As a result it is prevented that the shielding plate 120 can come loose from the wall 4 in a lateral direction. The anchoring of the shielding plate 120 in the lower housing 102 is further ensured.
[0075] The shielding plate 120 has a bent portion 124. During molding of the lower housing 102, the bent portion 124 may serve to centre the shielding plate on the first corepin 30 of the mold, the axial extension of the bent portion 124 preventing lateral movement of the shielding plate 120 during the molding process. Therefore the accuracy of location of the shielding plate 120 with respect to the lower housing 102 is improved and the manufacture of the access port 101 is facilitated.
[0076] The upper side of the circular portion 122 (i.e. the side facing the first corepin 30) is preferably concave at the start of step S1. When the second corepins 32 press the shielding plate 120 against the first corepin 30 in step S2, the sealing of the shielding plate 120 to the upper core pin 30 at the shielding plate's annular and laterally outer region on its upper side is improved. Therefore the likelihood of plastic leaking between the first corepin 30 and circular portion 122 of the shielding plate 120 is reduced.
Third Embodiment
[0077] A third embodiment of the invention is described in the following, wherein the differences from the second embodiment are described.
[0078]
[0079] As shown in
[0080] In total the following elements of the shielding plate 220 are embedded into the lower housing 202: the lower side of the circular portion 222; the periphery 226; an annular region of the upper side of the circular portion 222, and all the surfaces of each extension 224. The elements mentioned above are in surface contact with the lower housing 202, thus providing a form-locking connection between shielding plate 220 and lower housing 202. The remaining region of the upper side of the shielding plate 220 is exposed to the reservoir 18. The shielding plate 220 preferably completely covers the inner base 6 of the reservoir 18.
[0081] Each extension 224 is suitably sized with respect to the lower housing 202 so as not to obstruct the exit passage 10. Preferably the extensions 224 have the same thickness as the circular portion 222.
[0082] The steps of the insert molding process described above for the second embodiment and shown in
[0083] In the case of insert molding, in the first molding step S1 the shielding plate 220 is positioned with respect to the first corepin 30 such that each extension 224 extends axially along the cylindrical surface of the first corepin 30. Preferably here each extension 224 has an inner lateral dimension suitably sized to fit around the outer diameter of the lower face of the first corepin 30. In this way axial alignment of the shielding plate 220 with respect to the first corepin 30 is facilitated. In order to ensure a sufficient locating effect, the extensions 224 are equispaced around the periphery 126 of the circular portion 222.
[0084] In addition to the advantages of the first embodiment, the advantages of the shielding plate 220 according to the third embodiment are described in the following.
[0085] The shielding plate 220 has three axially extending extensions 224 embedded into the lower housing 202. As a result it is further prevented that the shielding plate 220 can come loose from the wall 4 in a lateral direction. Therefore a stronger form-locking connection between the shielding plate 220 and lower housing 202 is achieved and the anchoring of the shielding plate 220 is further improved.
[0086] In the case that the shielding plate 220 is made from bent sheet, the bending of the extensions 224 requires less effort than bending of the entire periphery of the shielding plate 120 of the second embodiment.
[0087] The shielding plate 220 according to the third embodiment has three axially extending extensions 224. During molding of the lower housing 202, the extensions 224 may serve to centre the shielding plate 220 on the first corepin 30 of the mold, preventing lateral movement and providing a clearer visual indication that the shielding plate 220 is correctly seated on the first corepin 30. Therefore the accuracy of location of the shielding plate 220 within the lower housing 202 is further improved and the manufacture of the access port 201 is further facilitated.
[0088] The respective axial length of each extension 224 may be suitably sized so as not to obstruct the exit passage 10 when any one of the extensions 224 is aligned with the exit passage 10. Therefore an arbitrary orientation of the shielding plate 220 with respect to the lower housing 202 is possible.
Fourth Embodiment
[0089] A fourth embodiment of the invention is described in the following, wherein the differences from the first embodiment are described.
[0090]
[0091] In total the following elements of the shielding plate 320 are embedded into the lower housing 302: the lower side of the circular portion 322; the periphery 326; an annular region of the upper side of the circular portion 322, and all the surfaces of each long extension 324. The elements mentioned above are in surface contact with the lower housing 302, thus providing a form-locking connection between shielding plate 320 and lower housing 302. The remaining region of the upper side of the shielding plate 320 is exposed to the reservoir 18. The shielding plate 320 preferably completely covers the inner base 6 of the reservoir 18.
[0092] Preferably an orientation of the shielding plate 320 is chosen such that none of the long extensions 324 obstructs the exit passage 10.
[0093] The steps of the insert molding process described above for the second embodiment and shown in
[0094] In the case of insert molding, in the first molding step S1 the shielding plate 320 is positioned with respect to the first corepin 30, preferably with each long extension 324 extending along the cylindrical surface of the first corepin 30 so that the shielding plate 320 is axially aligned with respect to the first corepin 30. Preferably here each long extension 324 has a minimum lateral dimension suitably sized to fit around the outer diameter of the lower face of the first corepin 30. In doing so, each long extension 324 contacts, and is preferably also biased against, the cylindrical surface of the first corepin 30. In order to ensure a sufficient locating effect, the long extensions 324 are preferably equispaced on the circular portion 322.
[0095] In addition to the advantages of the third embodiment, the shielding plate 320 according to the fourth embodiment has the following further advantages.
[0096] The shielding plate 320 has three long extensions 324 that are arranged in a circular pattern on the circular portion 322, each extending over the majority of the axial length of the wall 4. In addition the diameter of the periphery 326 of the circular portion 322 is preferably greater than the maximum internal diameter of the reservoir 18. As a result it is even further prevented that the shielding plate 320 can come loose from the wall 4 in a lateral or axial direction. In particular axial displacement of the shielding plate is further prevented. Therefore an even stronger form-locking connection between the shielding plate 320 and lower housing 302 is achieved and the anchoring of the shielding plate 320 is even further improved.
[0097] In the present embodiment, recesses 328 are formed on the periphery 326 of the circular portion 322, which allow the uninterrupted plastic wall thickness of the wall 4 to be locally increased at these positions. In other words the plastic material of the wall 4 is allowed to extend through and laterally beyond each recess 328. Therefore the overall strength of the wall 4 is maintained even when the diameter of the periphery 326 of the circular portion 322 is greater than the maximum internal diameter of the reservoir 18. In other words reinforcing portions are created within the wall and the wall 4 is not excessively weakened by the embedding of part of the circular portion 322.
[0098] Due to the provision of the recesses 328, the lateral extent of each long extension 324 can be less than the diameter of the circular portion 322. Therefore the choice of diameter of the circular portion 322 is unconstrained by the positional requirements of the long extension.
[0099] Each long extension 324 is inclined toward the axis of the reservoir 18. As a result the wall thickness (marked t in
[0100] The shielding plate 320 according to the fourth embodiment may be assembled to the lower housing 302 by the insert molding process described above. The long extensions 324 may serve to here to align the shielding plate 320 with respect to the first corepin 30 of the mold. Each long extension 324 may be inclined with respect to the cylindrical surface of the first corepin 30 such that only the tips of the long extensions 324 make contact with the first corepin 30. The long extensions 324 may be dimensioned to be biased against the surface of the first corepin 30. In this way axial alignment with the first corepin 30 is improved in comparison with the preceding embodiments because lateral clearance between each long extension 324 and the first corepin 30 is reduced, preferably removed.
[0101]
[0102] The invention is not limited to the above-described embodiments and various modifications may be made within the scope of the appended claims.
[0103] For example, in the preceding embodiments the access port has a single reservoir 18. However the invention is not limited to single-reservoir access ports and it may be applied to access ports having more than one reservoir.
[0104] In the access port 101 according to the second embodiment, the bent portion 124 extends all around the circular portion 122. The bent portion according to the invention may extend around only a portion or portions of the circular portion.
[0105] In the third and fourth embodiments of the invention, the extensions 224, 324 are equispaced and the number of extensions 224, 324 provided on the shielding plate 220, 320 is three. The invention is not limited to this number of extensions and in addition the arrangement of extensions is not limited to being equispaced. Furthermore the respective angles that the extensions 224, 324 make with the axial direction may differ.
[0106] In the fourth embodiment of the invention, the long extensions 324 extend over the majority of the axial length of the reservoir 18. The invention is not limited to this distance and the long extensions 324 may extend over the entire axial length of the wall 4.
[0107] In the fourth embodiment of the invention, the recesses 328 are formed on the periphery 326 of the circular portion 322. The invention is not limited to this configuration and the recesses may be formed within the circular portion 322.
[0108] The molding method described above and shown in
[0109] According to the invention, it is possible to provide an access port having a one-piece plastic lower housing, that comprises a shielding plate that is strongly anchored to the housing.
[0110] According to a modification of the invention, the upper housing 3 is integrally formed with the lower housing 2, 102, 202, or 302 so as to form a single-unit molded housing in which the shielding plate 20 is embedded.