Fluid Transfer Assembly, A Fluid Transfer System, and a Related Method
20220055255 · 2022-02-24
Assignee
Inventors
- Michael A. Zumbrum (New Oxford, PA, US)
- Charles Meadows (Phoenixville, PA, US)
- Kevin Perdue (Havre de Grace, MD, US)
Cpc classification
B29C33/505
PERFORMING OPERATIONS; TRANSPORTING
B29C33/12
PERFORMING OPERATIONS; TRANSPORTING
B29C33/306
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14065
PERFORMING OPERATIONS; TRANSPORTING
B29C39/10
PERFORMING OPERATIONS; TRANSPORTING
B29K2683/00
PERFORMING OPERATIONS; TRANSPORTING
B29C33/0033
PERFORMING OPERATIONS; TRANSPORTING
B29C33/44
PERFORMING OPERATIONS; TRANSPORTING
B29C37/0017
PERFORMING OPERATIONS; TRANSPORTING
B29C45/2675
PERFORMING OPERATIONS; TRANSPORTING
B29C70/84
PERFORMING OPERATIONS; TRANSPORTING
F16L47/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29K2019/00
PERFORMING OPERATIONS; TRANSPORTING
B29C45/4407
PERFORMING OPERATIONS; TRANSPORTING
B29K2083/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C37/00
PERFORMING OPERATIONS; TRANSPORTING
B29C39/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Fluid transfer assemblies for transferring fluid into or out of a single vessel and distributing the fluid to multiple other vessels are provided. The fluid transfer assemblies are customizable, substantially aseptic, and single-use. The fluid transfer assemblies may be manufactured by solidifying polymeric materials to form a body around a mandrel with protrusions engaged to fluid conduits and leaving recesses in the solidified polymeric material to stretch the resultant body and remove the mandrel with protrusions. The resultant fluid transfer assembly may be surrounded by a rigid housing and valves may be engaged with the conduits and/or body to control the fluid flow within the fluid transfer assembly.
Claims
1. A fluid transfer assembly comprising: one or more fluid conduits; and a body portion engaged with the one or more fluid conduits and defining a fluid channel within the body portion in fluid communication with the one or more fluid conduits when the body portion is in an unelongated state, the body portion having an elongation to break of between about 150% and about 1,500%.
2. The assembly according to claim 1, wherein the body portion defines one or more internal recesses that enable the body portion to be stretched from the unelongated state to an elongated state to remove a mandrel and one or more protrusions extending outwardly therefrom from the fluid transfer assembly.
3. The assembly according to claim 2, wherein the one or more internal recesses are defined by sleeves positioned in a mold to define the one or more internal recesses in the body portion upon removal of the fluid transfer assembly from the mold.
4. The assembly according to claim 1, comprising a housing configured to receive at least a portion of the body portion and at least a portion of the one or more fluid conduits.
5. The assembly according to claim 4, wherein the housing comprises a rigid material.
6. The assembly according to claim 5, comprising one or more fluid control devices configured to be engaged with at least one of the one or more fluid conduits and the body portion, and the housing to control fluid flow within the fluid transfer assembly.
7. The assembly according to claim 1, wherein the body portion or the one or more fluid conduits comprises a polymeric material.
8. The assembly according to claim 7, wherein the polymeric material comprises at least one of a thermoplastic conduit, a thermoset conduit, and a silicone elastomer body portion.
9. The assembly according to claim 7, further comprising a collar attached around an end of at least one of the one or more fluid conduits adjacent to the fluid channel.
10. The assembly according to claim 9, wherein the polymeric material is configured to at least partially cover the collar.
11. The assembly according to claim 10, wherein the polymeric material is configured to substantially entirely cover the collar.
12. A fluid transfer assembly comprising: a first fluid conduit; a second fluid conduit; and a body portion comprising an open end, the body portion including a fluid channel defined therein and in fluid communication with the open end, the body portion engaged with the first fluid conduit and the second fluid conduit such that the first fluid conduit and the second fluid conduit are secured within the body portion and in fluid communication with the fluid channel, the body portion capable of receiving a mandrel having a first protrusion and a second protrusion extending in a direction away from a longitudinal mandrel axis of the mandrel with the first fluid conduit capable of being received over the first protrusion and the second fluid conduit capable of being received over the second protrusion, the body portion having an elongated state in which the mandrel with the first protrusion and the second protrusion are removable through the open end.
13. The assembly according to claim 12, wherein the body portion defines one or more internal recesses that enable the body portion to be stretched from an unelongated state to the elongated state.
14. The assembly according to claim 13, wherein the one or more internal recesses extend in a direction orthogonal to a longitudinal axis of the body portion.
15. The assembly according to claim 12, wherein the body portion has an elongation to break of between about 150% and about 1,500%.
16. The assembly according to claim 12, further comprising a housing configured to receive a portion of the body portion, a portion of the first fluid conduit, and a portion of the second fluid conduit.
17. The assembly according to claim 16, wherein the housing comprises a rigid material.
18. The assembly according to claim 17, comprising a first fluid control devices configured to engaged the first fluid conduit and a second fluid control device configured to engage the second fluid conduit.
19. The assembly according to claim 12, further comprising a collar attached around an end of the first fluid conduit adjacent the fluid channel.
20. The assembly according to claim 12, wherein the body portion is formed of a polymeric material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0110] Certain exemplary embodiments of the present invention are described below and illustrated in the accompanying figures. The embodiments described are only for purposes of illustrating the present invention and should not be interpreted as limiting the scope of the invention, which, of course, is limited only by the claims below. Other embodiments of the invention, and certain modifications and improvements of the described embodiments, will occur to those skilled in the art, and all such alternate embodiments, modifications, and improvements are within the scope of the present invention.
[0111] In some aspects, a fluid transfer assembly, a fluid transfer system, and/or a related method are used for distribution of fluid between large and small vessels. For example, such a fluid transfer assembly and/or system may be useful for sampling a small volume off of a line or body when transferring from one vessel to another vessel, whether or not those vessels are of the same size. In another example, such a fluid transfer assembly and/or system may be useful for adding one or more fluids from one vessel into another vessel (e.g., a small size vessel into a larger size vessel). In a further example, such a fluid transfer assembly and/or system may be useful for incorporating into vessel closures (e.g., MYCAP™) for the addition or removal of one, two, three, four, etc., fluids within the same vessel.
[0112] Referring now in more detail to the drawing figures, wherein like reference numerals indicate like parts throughout the several views,
[0113] It should be understood that the fluid transfer assembly 100 is also not limited to use with any particular fluids but, depending on the size and composition of the assembly 100 and its constituent fluid conduits 110, may be used with fluids with particulates or having a high viscosity or with fluids having no or very little particulate content or low viscosity.
[0114] In some aspects, the body portion 120 is longer in a longitudinal dimension (length) rather than a lateral dimension (width) so that the body portion 120 is substantially rectangular shaped. In other aspects, however, the body portion 120 is substantially square, triangular, circular, etc., relative to a length and width dimension. Accordingly, although not shown in
[0115] The fluid conduits 110 are in some aspects considered as being “long” relative to a length of the body portion 120. For example, the fluid conduits 110 comprise a length of between about 1 inch and about 100 inches or longer depending on the application. The fluid conduits 110 may be selectable depending on whether or not a longer or shorter conduit is desirable for a particular application. Example fluid conduits 110 may have a 1/16″ wall thickness.
[0116] In some aspects, a material of the body portion 120 comprises a material having an elongation to break of between about 150% and about 1,500% per ASTM D412C. In some aspects, the material of the body portion 120 is a rubber or other type of elastomer such as a solidified polymeric material. For example, the polymeric material comprises a thermoplastic, a thermoset, a silicone elastomer, a combination thereof, and the like. Other materials having an elongation to break of between about 150% and about 1,500% are also contemplated.
[0117] In other aspects, a material of the conduits 110 is a same or similar material to that of the body portion 120. More particularly, the fluid conduits are silicone tubing. The tubing may be of any length suitable and necessary for the desired process. In one embodiment, at least a portion of the silicone tubing is treated with a primer. Suitable primers include, but are in no way limited to, SS-4155 available from MOMENTIVE™, Med-162 available from NuSil Technology, and RODORSIL® V-06C available from Bluestar Silicones of Lyon, France. Further, in this preferred embodiment, the silicone conduits are combined with a silicone body portion.
[0118] In general, if a thermoset is used for the body, silicones, polyurethanes, fluoroelastomers or perfluoropolyethers are preferred construction materials for the conduits. If a thermoplastic is used for the body, C-FLEX® tubing, block copolymers of styrene-ethylene-butylene-styrene, PureWeld, PVC, polysulfone, polyetheretherketone, polyolefins, or polyethylene are preferred construction materials. In some aspects, multiple conduits may be used including combinations of thermoset and thermoplastic materials for the conduits in the same fluid transfer assembly (e.g., a thermoplastic conduit and a thermoset conduit is provided in a fluid transfer assembly). As such, in some examples, the conduits 110 comprise a thermoplastic or a thermoset material and the body portion 120 comprises a silicone elastomer material.
[0119] In some aspects, the fluid conduits 110 extending from the fluid transfer assembly 100 may be connected to a variety of vessels for collection. Acceptable vessels include, without limitation, bags, bottles, syringes, centrifuge tubes, or tubing. A plug may also be inserted in the end of the fluid conduits 110. An aseptic connector may also be inserted into the end of the fluid conduit. The fluid conduits 110 may also be connected to additional fluid control devices. The fluid transfer assembly 100 may further comprise a housing 130. In some aspects, the fluid transfer assembly 100 is partially engaged with a housing 130. The housing 130 comprises a bottom portion 132 engaged with the fluid transfer assembly 100, while a top portion of the housing 134 is disengaged therewith. As used herein, the housing 130 is considered “rigid” relative to the fluid transfer assembly 100. The rigidity of the housing refers to material properties of the housing 130, such that the housing, itself, is more inflexible and unable to be bent or stretched relative to the conduits 110 and/or the body portion 120 of the fluid transfer assembly 100. A material of the housing 130, e.g., of the bottom portion 132 and/or the top portion 134, may be selected from the group consisting of polyether sulfone, polyester, polycarbonate, polyamide, polyetherimide, polyether ether ketone, polyolefins, ethylene tetrafluoro ethylene, aluminum, stainless steel, carbon fiber epoxy, and glass filled plastics. Other materials are also contemplated.
[0120] In
[0121] In some aspects, one or more fluid control devices such as valves 140 are engaged with at least one of the conduits 110 and the body portion 120 and the housing 130. Notably, as is known to those of ordinary skill, valves are considered as more reliable than some other types of flow control devices such as, for example, pinch clamps. In this manner, the fluid control devices provided herein provided ultimate user controllability and security.
[0122] As illustrated in
[0123] In some aspects, the fluid transfer assembly 100 comprises additional elements. For example, the body portion 120 comprises a proximal or first end and an opposing or distal end. The proximal end defines tubing 150 such as, for example, a thermoplastic tubing in fluid communication with the fluid channel defined within the body portion. The thermoplastic tubing 150 is configured to be weldable to other thermoplastic tubing in an aseptic manner.
[0124] In other aspects, the distal end defines a tube stub 160 to engage a barb to another fluid transfer assembly, or a single-use component (e.g., a filter) to form a closed system. In such aspects, the clamp interface 160 is a threaded connection, a clamp connection, a welded connection, a bonded connection, or any other mechanical connection. Alternatively, the clamp interface 160 is formed as a singular unit with the vessel, other fluid transfer assembly, the single-user component, etc. For example, a bioreactor bag may be formed in a manner whereby the fluid transfer assembly (e.g., the body portion) is formed as an integral component of the bag when the bag is manufactured.
[0125] Regardless of whether the fluid transfer assembly is a separate component, or formed as an integral part of the vessel, the fluid transfer assembly 100 is combined with the vessel to form a substantially aseptic leak-free connection. As such, the housing 130 is configured to enclose at least a portion of the tubing 150 as well as at least a portion of the clamp interface 160 therein, as well as any other portion of the fluid transfer assembly 100.
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[0127] Similar to
[0128] In yet another embodiment, the collar 264 may be a thermoplastic material and can be attached to the distal end of the tubing 250 or fluid conduits 210 using an adhesive, such as a hot melt adhesive. In a further embodiment, the body portion 220 may be formed from a thermoplastic elastomer having an elongation to break of between about 150% and about 1500%.
[0129] To conclude, collars 264 may be used on one or more of the tubing 150, 250, etc. and fluid conduits 110, 210, etc. In various embodiments the collars 264 may be metallic, thermoplastic, thermoset, silicone, or other material. The collars 264 may be used between similar materials such as a thermoplastic body portion and thermoplastic fluid conduits, or a thermoset body portion and a thermoset fluid conduit, or a silicone elastomer body portion and a silicone elastomer fluid conduit. Collars 264 may be particularly beneficial when used between dissimilar materials, such as a silicone elastomer (or thermoset) body portion and thermoplastic fluid conduits, or a thermoplastic body portion and thermoset or silicone elastomer fluid conduit.
[0130] Referring now to
[0131] Notably, with regard to the stretching fixture 300, this is only one exemplary embodiment of a stretching fixture, apparatus, or mechanism that is able to engage the internal recesses 270 of the body portion 220 of a fluid transfer assembly 200 or other similar assembly. Other such embodiments of a stretching fixture are also contemplated, including, for example, a hook used for radial expansion to remove the mandrel (see, e.g.,
[0132] Referring now to
[0133] A method of forming a fluid transfer assembly is provided herein. The method of forming the fluid transfer assembly or system provided herein provides numerous benefits or advantages such as simplifying manufacturing costs and time by utilizing fluid conduits formed from tubing rather than from molding “Y joints” to a manifold. The method of forming the fluid transfer assembly or system provided herein provides further benefits or advantages by reducing a number of connections needed to be made between vessels from which fluid is transferred. For example, the fluid conduits of the fluid transfer assembly and the fluid channel defined within the body portion thereof provide a simple flow path for fluid flow from a first vessel to a second vessel. Additional vessels may be easily connected to additional fluid conduits (not in use) of the fluid transfer assembly for fluid flow from the first vessel to the second vessel and the additional vessels. The method provided herein is also advantageous in that there is added security in that the fluid transfer assembly more securely engages with vessels as compared to barb fittings that leak under pressure or luers that may come undone during use.
[0134] In an initial step, one or more protrusions 306 extending outwardly from a mandrel 304 may be engaged with one or more fluid conduits 210 such as shown in
[0135] In another step, the mandrel with the one or more protrusions engaging the conduits may be positioned into a mold.
[0136] In another step, a polymeric material may then be introduced into the mold 400 to substantially surround the mandrel and at least a portion of the conduits engaged with the one or more protrusions. The polymeric material introduced therein may comprise a polymeric material as described herein. Depending on a size of the cavity 412, a predetermined quantity of polymeric material may be introduced into the mold 400.
[0137] In another step, the polymeric material in the mold may be solidified to define a fluid transfer assembly (e.g., fluid transfer assembly 100, 200) comprising a body portion engaged with the one or more conduits. For example, solidification of the polymeric material comprises curing the polymeric material having an elongation to break of between about 150% and about 1,500%. “Curing” refers to toughening or hardening the material by cross-linking the polymer chains by heat, chemical additives, ultraviolet radiation, electron beams, pressure, and the like. A high or lower powered laser, an oven, or other curing mechanism may be utilized to cure the polymeric material until cross-linking of the polymer chains occurs. Otherwise, solidification refers to the heating and subsequently cooling of the polymeric material as a thermoplastic about the mandrel to thereby join the one or more conduits together within the mold. Regardless, the molding step results in joining one or more conduits together using the polymeric material and the mandrel. In another step, the fluid transfer assembly may be removed from the mold 400. For example, removing the fluid transfer assembly from the mold comprises opening the mold 400 by unfastening the top and bottom portions 410, 420 and removing the solidified polymeric material therefrom. The mandrel and the one or more protrusions extending outwardly from the mandrel with the one or more conduits engaged therewith will have formed a solidified body portion that is readily removable from the mold in substantially one piece.
[0138] In another step, the body portion may be stretched into an elongated state to remove the mandrel with the one or more protrusions. For example, as described hereinabove in reference to
[0139] In another step, the fluid transfer assembly may then be relaxed into an unelongated state from the elongated state such that a fluid channel in fluid communication with the one or more conduits is formed within the body portion. More particularly, and as illustrated in
[0140] In some aspects, a fluid transfer system is provided. For example, the fluid transfer system comprises the elements for manufacturing a fluid transfer assembly such as fluid transfer assembly 100 and/or 200. The elements of the fluid transfer system include, for example, a mandrel with one or more protrusions extending outwardly therefrom, one or more fluid conduits configured to engage the one or more protrusions of the mandrel, a mold configured to receive the mandrel and the one or more protrusions therein, a polymeric material configured to be introduced into the mold and substantially surround the mandrel and at least a portion of the conduits engaged with the one or more protrusions, and a solidifying mechanism configured to solidify the polymeric material in the mold to define a body portion engaged with the conduits having an elongation to break of between about 150% and about 1,500%.
[0141] In some aspects, a housing configured to receive at least a portion of the body portion and at least a portion of the conduits, one or more fluid control devices, such as pinch valves, configured to be engaged with at least one of the conduits and the body portion, and the housing to control fluid flow within the fluid transfer assembly, and/or a sleeve positioned in the mold to define the one or more internal recesses in the body portion upon removal of the fluid transfer assembly from the mold are also provided with the system. Other elements are also contemplated.
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[0152] As such, the fluid transfer assemblies described herein may comprise any number of conduits, any size or shape body portions, any number of valves, any number or type of tubings, any number or type of fluid control devices, any number of clamps, and/or any number of internal recesses. A disposition and/or placement of any of these elements of the fluid transfer assembly are contemplated by this disclosure and shown by the numerous exemplary embodiments provided herein.
[0153] The fluid transfer assembly, system, and related method disclosed herein are low cost and single-use but still capable of effectuating a substantially aseptic seal to a vessel while still allowing maximum flexibility. In addition, the related method provides a method for forming a fluid transfer assembly of relatively few components all while maintaining a substantially aseptic assembly in which the fluid may flow.
[0154] The fluid transfer assemblies disclosed herein may be assembled and then the entire devices or components thereof may be rendered substantially aseptic by, for example, gamma radiation.
[0155] Alternatively, the entire devices or components thereof may be rendered substantially aseptic by exposure to steam above 121° C. for a period of time long enough to eliminate microorganisms. The entire devices or components thereof may also be rendered aseptic by chemical treatment, such as with ethylene oxide (ETO). Once rendered substantially aseptic, the fluid transfer assemblies may be appropriately packaged and stored to maintain the substantially aseptic state until ready for use.
[0156] The aforementioned fluid transfer assemblies are particularly useful when the vessel from which fluid is being transferred is a bioreactor bag. Such fluid transfer assemblies, combined with a bioreactor bag, may be used in single-use bioreactors, such as the BIOSTAT® STR available from Sartorius. Fluid conduits may be sized to accommodate high density cell culture applications and provide a sterile, low-cost manner of collecting samples from bioreactor bags without the risk of leakage. As discussed above, the fluid transfer assemblies provided herein may be connected to a variety of sample vessels or additional fluid transfer assemblies.
[0157] The fluid transfer assemblies and/or systems as well as a primary vessel (such as the bioreactor bag), may be rendered substantially aseptic by the methods described above or others known in the art. Once rendered aseptic, the entire fluid transfer assembly or system may be aseptically packaged and distributed for use. An end user may open and utilize a completely closed and substantially aseptic system without risk of leaks due to the barbed or luer connectors extending from a bioreactor vessel. The foregoing descriptions of fluid transfer assemblies, fluid transfer systems, and related methods illustrate and describe various embodiments. As various changes can be made in the above embodiments without departing from the scope of the invention disclosed and claimed herein, it is intended that all matter contained in the above description or shown in the accompanying figures shall be interpreted as illustrative and not limiting. Furthermore, the scope of the invention covers various modifications, combinations, alterations, etc., of the above-described embodiments that all are within the scope of the claims. Additionally, the disclosure shows and describes only selected embodiments of the invention, but the invention is capable of use in various other combinations, modifications, and environments and is capable of changes or modifications within the scope of the inventive concept as expressed herein, commensurate with the above teachings, and/or within the skill or knowledge of artisans in the relevant art. Furthermore, certain features and characteristics of each embodiment may be selectively interchanged and applied to other illustrated and non-illustrated embodiments of the invention without departing from the scope of the invention.