System and method for packaging an elongate medical device
10864349 ยท 2020-12-15
Assignee
Inventors
Cpc classification
B32B2535/00
PERFORMING OPERATIONS; TRANSPORTING
B29K2075/00
PERFORMING OPERATIONS; TRANSPORTING
A61M25/002
HUMAN NECESSITIES
B32B2597/00
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/746
PERFORMING OPERATIONS; TRANSPORTING
B32B27/18
PERFORMING OPERATIONS; TRANSPORTING
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
B29K2023/065
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/242
PERFORMING OPERATIONS; TRANSPORTING
B32B2274/00
PERFORMING OPERATIONS; TRANSPORTING
B32B3/08
PERFORMING OPERATIONS; TRANSPORTING
B29C48/0021
PERFORMING OPERATIONS; TRANSPORTING
A61M2207/00
HUMAN NECESSITIES
International classification
B29C48/00
PERFORMING OPERATIONS; TRANSPORTING
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method of manufacturing a clipless package for an elongate medical device or other elongate device is provided. The subject invention utilizes adhesives and material surface characteristic modification to bond the tube surfaces together, which overcomes the deficiencies of currently utilized packaging methods. The bonds can be created by a singular application of adhesive or in plurality or combination with a surface modifier, coated surface and/or a surface treatment, or by selection of a singular polymer outer layer that is tacky when fully cooled, whose morphology changes post-extrusion.
Claims
1. A method of manufacturing a package for an elongate device, comprising the steps of: forming a tube having a lumen extending through at least a portion of the tube, via an extrusion process, wherein the extruded tube has a tacky exterior surface; arranging the tube into a coiled configuration such that turns of the tube are placed in adjacent, spiral relationship; and contacting the tacky exterior surface of a first turn of the tube to a second turn of the tube to bond the first turn of the tube to the second turn of the tube, without applying heat or an adhesive, to maintain the coiled configuration of at least the first turn and the second turn of the tube.
2. The method according to claim 1, wherein: the extrusion process is a coextrusion process; and the step of forming the tube includes forming a Thermoplastic Polyurethane outer layer with the tube.
3. The method according to claim 2, wherein: the step of contacting the first turn of the tube to the second turn of the tube occurs while an outer surface of the tube is tacky after the coextrusion process.
4. The method according to claim 1, further comprising the step of: cooling the tube; wherein the step of contacting the first turn of the tube to the second turn of the tube is carried out after the tube is cooled.
5. The method according to claim 1, further comprising the step of: fully cooling the tube; wherein the step of contacting the first turn of the tube to the second turn of the tube is carried out after the tube is fully cooled.
6. The method according to claim 1, wherein: the step of contacting the tacky exterior surface of the first turn of the tube to the second turn of the tube to bond the first turn of the tube to the second turn of the tube includes only contacting discrete points along the exterior surface of the first turn of the tube to discrete points along the second turn of the tube such that the tube is not continuously bonded along its entire length.
7. A method of manufacturing a package for an elongate device, comprising the steps of: forming a tube having an inner layer and an outer layer, the inner layer defining a lumen extending through at least a portion of the tube, the outer layer being formed from a Thermoplastic Polyurethane; wherein forming the outer layer occurs via an extrusion process and provides the outer layer with a tacky exterior surface; arranging the tube into a coiled configuration such that turns of the tube are placed in adjacent, spiral relationship; and contacting a portion of the tacky exterior surface along the first turn of the tube to a portion of the outer layer along the second turn of the tube to bond the first turn of the tube to the second turn of the tube, without applying heat or an adhesive, to maintain the coiled configuration of at least the first turn and the second turn of the tube.
8. The method according to claim 7, wherein: the step of forming the tube having the inner layer and the outer layer is carried out via coextrusion.
9. The method according to claim 7, further comprising the step of: cooling the tube; wherein the step of contacting the portion of the outer layer along the first turn to the portion of the outer layer along the second turn is carried out after the tube is cooled.
10. The method according to claim 7, further comprising the step of: fully cooling the tube; wherein the step of contacting the portion of the outer layer along the first turn to the portion of the outer layer along the second turn is carried out after the tube is fully cooled.
11. A method of manufacturing a package for an elongate device, comprising the steps of: extruding a Thermoplastic Polyurethane material to form a tube having a lumen extending through at least a portion of the tube; cooling the tube; while an outer surface of the tube remains tacky following the extruding, and after cooling the tube, arranging the tube into a coiled configuration such that turns of the tube are placed in adjacent, spiral relationship; and contacting adjacent turns of the tube to one another to non-thermally and non-adhesively bond the adjacent turns to one another via the tacky outer surface, to maintain the coiled configuration of at least the first turn and the second turn of the tube.
12. The method according to claim 11, wherein: the tube is arranged into the coiled configuration, and the adjacent turns of the tube are contacted with one another, as the tube is collected from an extrusion device such that steps of extruding the Thermoplastic Polyurethane material to form the tube, arranging the tube into the coiled configuration and contacting the adjacent turns of the tube to one another are carried out in a single inline process.
13. The method according to claim 12, wherein: extruding the Thermoplastic Polyurethane material to form a tube includes coextruding the tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be better understood from reading the following description of non-limiting embodiments, with reference to the attached drawings, wherein below:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(10) Referring to
(11) As shown therein, the package 10 includes at least one tube 12 having a lumen 14 that extends between opposing ends 16 and 18. The tube 12 may be formed by extrusion or other means known in the art, and is wound into a coil 20. While
(12) As best illustrated in
(13) In an embodiment, the turns of the tube 12 may be tacked to one another every 90 degrees (i.e., at four radial locations of the package). In another embodiment, the turns of the tube may be tacked to one another every 180 degrees (i.e., at two radial locations of the package). Other adhesive bonding configurations may also be used to provide a desired level of rigidity or flexibility.
(14) In another embodiment, rather than adhesively bonding the adjacent turns at spaced radial locations, the tube 12 can be continuously bonded along the entirety of adjacent turns. In such an embodiment, the adhesive 22 is a low durometer adhesive that is flexible itself and is bonded completely around the circumference of the turns with no gaps. The flexible adhesive flexes with the bonded tubular package 10 when a force is applied, and flexes along with the turns of the tube 12 without any separation of the turns. Both embodiments contemplated herein provide a means to absorb impact that may be caused by handling, while still protecting the elongate device held inside. Specific configurations are dependent on package needs, and can include adhesive bonding of bridge material between the adjacent coils as well, as disused in detail hereinafter.
(15) In an embodiment, the low durometer adhesive may be an adhesive offered under the name Loctite AA 3108 (a 72 on the Shore A scale, and listed as an acrylated urethane acrylic liquid adhesive). Elongation after cure is listed at 330% and Tensile Modulus is 2670 psi. The properties of this low durometer flexible adhesive allow for the bond to act as a shock absorber to the more rigid tubing. The combination of these properties can be varied to enhance the final package properties. The coil can be made to be rigid and non-moving with a hard durometer inflexible adhesive or made to bend and flex between coils in the package form with a low durometer flexible adhesive. Other low durometer adhesives may include, for example, Loctite 4307, Loctite AA3108, Loctite 3311, Loctite 4310, Loctite 3201, and Loctite 3105.
(16) While the tube 12 is preferably manufactured from a high slip material, the low surface energy of the material and lack of reactive sites on the tube surface required for adhesive bonding to be effective requires special considerations and treatment. In order to create a substantive bond that will work for the packaging 10, the surface chemistry or surface energy of the polymer tube 12 is chosen carefully or modified to be of sufficient surface energy to readily allow for adhesive bonding utilizing the adhesive 22. As discussed hereinafter, the present invention contemplates a number of processes that can be utilized to modify the surface chemistry or surface energy of the tube 12 to facilitate adhesive bonding. For example, in an embodiment, the surface of the tube 12 may be modified utilizing at least one of corona, flame or plasma treatment. In yet other embodiments, primers can also be applied to the exterior surface of the tube 12 at the adhesive bonding locations that will temporarily change the surface energy of the product to allow for adhesion. Examples of primers that may be used include Loctite primer SF 7701 (a medical grade primer used to enhance the surface energy of polyolefin materials to increase bond strength with cyanoacrylate adhesives), Loctite SF 770, and MasterBond x-18 primer.
(17) The nature of polyolefins, however, is that they have high chemical resistance, which also adds complexity to the art of surface modification when selecting a primer. The present invention therefore envisions that surface modification of the tube 12 can also be made through the use of additives to the polymer. Modifiers may include any additive that increases the reactivity of the polymer surface, in order to allow for chemical bonding utilizing the adhesive 22. In an embodiment, a silane-based coupling agent may be used as an additive to the base polymer to enhance surface reactivity of the tube 12.
(18) Applying a coating to the tube is yet another method that will result in a modified surface chemistry that facilitates adhesive bonding. In an embodiment, a coating can be applied to the tube 12 through processes such as, for example, coextrusion, tandem extrusion, fluidized bed and spray coating. The selection of method and the selection of a coating material is dependent upon the composition of the tube 12 as well as the adhesive 22. Extruded coatings, known as tie layers, are typically used in a melt state and require heat to activate the reactive groups to the extent that dissimilar materials can be bonded. These coatings, when added to the tube extrusion process, allow for increased bond strength of adhesives between adjacent coils of the tube 12 because they change the surface energy and or leave a greater number of reactive groups available to bond to the adhesive 22.
(19) As indicated above, the choice of adhesive is dependent on the material of the tube 12, the needs of manufacturing, and material bond strength for the application. In one preferred embodiment, the adhesive 22 is a UV curable adhesive, and the tube 12 is a co-extruded tube having an inner wall 24 of polyethylene and a thin anhydride modified polyethylene outer layer 26 (see
(20) Turning now to
(21) Other materials that enhance the ability to adhesive bond polyolefins and low surface energy materials used in the manufacture of elongated surgical device packaging, whether currently known or to be developed, would not alter the intent of the present invention to more readily allow adhesive bonding of the adjacent coils of a tube into a clipless elongated surgical device package for high L/D surgical devices.
(22) The application of a thermoplastic elastomer, namely, a polyether block amide (PEBA) such as, for example, Arkema Pebax grades in a co-extrusion with HDPE is another embodiment of the invention. The thin, coextruded outer layer of Pebax is bonded at various points along the coil with a flash cure UV curable adhesive to form the tube into the coiled package. No primers or additional modifiers are needed in this embodiment to obtain bond strength and package integrity greater than needed in final application.
(23) Turning now to
(24) Turning now to
(25) As discussed above, the present invention contemplates the non-thermal bonding of polymer tubing through the use of adhesives and surface modification such as, for example, coextrusion, compounding or blending of additives or other polymers to the monolayer or multi-layered tube construction. Coupling agents can also be used to modify the chemistry of the polymer tube substrate to enhance the surface characteristics of polyolefins and other polymers to more readily bond utilizing adhesives. The present invention therefore obviates the need to use mechanical clips to hold the coil together, and provides a functionally improved package and more efficient alternative to thermal bonding.
(26) In certain embodiments, other layers may be applied to the interior of the tube and/or additives may be added to the base polymer to provide a near frictionless inner surface. This facilitates the insertion and removal of delicate or fragile surgical or medical devices, thereby reducing the likelihood of damage during such insertion or removal. The increase slip on the inner surface of the tube can also provide for faster insertion of the medical device into the package, thereby increasing product throughput.
(27) Additionally, another embodiment allows greater bonding integrity of end caps due to the enhancements and techniques described herein. For example, polyolefin or other polymer end caps can attached to the elongated package in a manner similar to how the turns of the tube are bonded to one another, as described above.
(28) An additional embodiment uses the properties of Thermoplastic Polyurethane (TPU), for example, as an outer layer in a co-extrusion. The morphology of the TPU grade that is utilized allows the packaging tube to be coiled and bonded as it is collected. This embodiment allows for a coiling operation as the cooled extruded tubes are collected in an extrusion operation. Bonding is created by intimate contact at points between the outside of the tube surface and attaching it to itself along its length, thus bonding the material after it is cooled in the extrusion process. The chemical nature of the TPU's hard and soft segments create a tacky product immediately as extruded (even though it is fully cooled), which mitigates over time (less than 24 hours with many grades) to a non-tacky smooth surface. The points of the tube that were placed in contact with each other post extrusion are therefore fully bonded, with no application of heat.
(29) Although this invention has been shown and described with respect to the detailed embodiments thereof, it will be understood by those of skill in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed in the above detailed description, but that the invention will include all embodiments falling within the scope of this disclosure.