SPARGER DEVICE FOR A BIOPROCESSING SYSTEM AND METHOD OF MANUFACTURING A SPARGER DEVICE
20210138219 · 2021-05-13
Assignee
Inventors
Cpc classification
A61M39/12
HUMAN NECESSITIES
A61M2039/087
HUMAN NECESSITIES
B01F23/23365
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23121
PERFORMING OPERATIONS; TRANSPORTING
B01F35/513
PERFORMING OPERATIONS; TRANSPORTING
B01F27/808
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A sparger device includes a sparge tube having opposed distal ends, an inlet opening, and a plurality of sparge holes along a longitudinal extent of the sparge tube between the opposed distal ends, and a central hub coupled with the sparge tube at a point intermediate the opposed distal ends of the sparge tube, the central hub having a fluid passageway in fluid communication with the sparge tube via the inlet opening.
Claims
1. A sparger device, comprising: a sparge tube having opposed distal ends, an inlet opening, and a plurality of sparge holes along a longitudinal extent of the sparge tube between the opposed distal ends; and a central hub coupled with the sparge tube at a point intermediate the opposed distal ends of the sparge tube, the central hub having a fluid passageway in fluid communication with the sparge tube via the inlet opening.
2. The sparger device of claim 1, wherein: the central hub is overmolded around the sparge tube.
3. The sparger device of claim 1, wherein: the plurality of sparge holes are located in a top of the sparge tube; and the inlet opening is located in a bottom of the sparge tube.
4. The sparger device of claim 1, further comprising: a cap on at least one of the opposed distal ends of the sparge tube, the cap having a throughbore in fluid communication with a central passageway of the sparge tube.
5. The sparger device of claim 4, wherein: the throughbore is an axial throughbore oriented to direct a sparge gas out of the throughbore in a direction generally perpendicular to the sparge gas exiting though the plurality of sparge holes.
6. The sparger device of claim 4, wherein: the throughbore is oriented to direct a sparge gas out of the throughbore in a direction generally parallel to the sparge gas exiting though the plurality of sparge holes.
7. The sparger device of claim 6, wherein: the throughbore includes an angle of approximately 90 degrees.
8. The sparger device of claim 1, wherein: the opposed distal ends of the sparge tube narrow to a point; and the opposed distal ends each include an axial opening for passage of a sparge gas.
9. A method of manufacturing a sparger device, comprising the steps of: providing a tube having opposed distal ends and an inlet opening in a sidewall of the tube between the opposed distal ends; inserting a pin into the inlet opening; overmolding around the pin and the tube to from a central hub; and removing the pin to form a feed passageway within the central hub, the feed passageway being in fluid communication with an interior of the tube via the inlet opening.
10. The method according to claim 9, wherein: the tube includes a plurality of radial holes along a longitudinal extent of the tube.
11. The method according to claim 9, wherein: the pin has a tapered tip.
12. The method according to claim 9, wherein: the pin has an outer diameter that is larger than a diameter of the inlet opening of the tube so as to form an interference fit when the pin is inserted into the inlet opening.
13. The method according to claim 10, further comprising the step of: inserting a cap on each of the opposed distal ends of the tube.
14. The method according to claim 13, wherein: the cap includes an axial bore oriented to direct a sparge gas out of the axial bore in a direction generally perpendicular to sparge gas exiting though the plurality of radial holes.
15. The method according to claim 14, wherein: the cap includes a bore oriented to direct a sparge gas out of the bore in a direction generally parallel to sparge gas exiting though the plurality of radial holes.
16. The method according to claim 13, wherein: the cap is attached to the tube by at least one of a press fit, an adhesive and/or welding.
17. A bioprocessing system, comprising: a vessel; a flexible bioprocessing bag positionable within the vessel; and a sparger device coupled to a fluid port in the flexible bioprocessing bag, the sparger device including a sparge tube having opposed distal ends, an inlet opening, and a plurality of sparge holes along a longitudinal extent of the sparge tube between the opposed distal ends, and a central hub coupled with the sparge tube at a point intermediate the opposed distal ends of the sparge tube, the central hub having a fluid passageway in fluid communication with the sparge tube via the inlet opening.
18. The bioprocessing system of claim 17, wherein: the sparger device is T-shaped.
19. The bioprocessing system of claim 18, wherein: the sparger device further includes a cap on at least one of the opposed distal ends of the sparge tube, the cap having a throughbore in fluid communication with a central passageway of the sparge tube.
20. The bioprocessing system of claim 19, wherein: the throughbore is an axial throughbore oriented to direct a sparge gas out of the throughbore in a direction generally perpendicular to the sparge gas exiting though the plurality of sparge holes.
21. The bioprocessing system of claim 19, wherein: the throughbore is oriented to direct a sparge gas out of the throughbore in a direction generally parallel to the sparge gas exiting though the plurality of sparge holes.
22. A sparger device, comprising: at least one sparge tube having a distal end, and a plurality of sparge holes along a longitudinal extent of the sparge tube; a hub coupled with the sparge tube, the hub having a fluid passageway in fluid communication with a central passageway of the sparge tube for providing gas to the sparge tube; and a cap on the distal end of the sparge tube, the cap having a throughbore in fluid communication with the central passageway of the sparge tube.
23. The sparger device of claim 22, wherein: the throughbore is an axial throughbore oriented to direct a sparge gas out of the throughbore in a direction generally perpendicular to the sparge gas exiting though the plurality of sparge holes.
24. The sparger device of claim 22, wherein: the throughbore is oriented to direct a sparge gas out of the throughbore in a direction generally parallel to the sparge gas exiting though the plurality of sparge holes.
Description
DRAWINGS
[0012] The present invention will be better understood from reading the following description of non-limiting embodiments, with reference to the attached drawings, wherein below:
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DETAILED DESCRIPTION
[0024] Reference will be made below in detail to exemplary embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference characters used throughout the drawings refer to the same or like parts.
[0025] As used herein, the term “flexible” or “collapsible” refers to a structure or material that is pliable, or capable of being bent without breaking, and may also refer to a material that is compressible or expandable. An example of a flexible structure is a bag formed of polyethylene film. The terms “rigid” and “semi-rigid” are used herein interchangeably to describe structures that are “non-collapsible,” that is to say structures that do not fold, collapse, or otherwise deform under normal forces to substantially reduce their elongate dimension. Depending on the context, “semi-rigid” can also denote a structure that is more flexible than a “rigid” element, e.g., a bendable tube or conduit, but still one that does not collapse longitudinally under normal conditions and forces.
[0026] A “vessel,” as the term is used herein, means a flexible bag, a flexible container, a semi-rigid container, a rigid container, or a flexible or semi-rigid tubing, as the case may be. The term “vessel” as used herein is intended to encompass bioreactor vessels having a wall or a portion of a wall that is flexible or semi-rigid, single use flexible bags, as well as other containers or conduits commonly used in biological or biochemical processing, including, for example, cell culture/purification systems, mixing systems, media/buffer preparation systems, and filtration/purification systems. As used herein, the term “bag” means a flexible or semi-rigid container or vessel used, for example, as a bioreactor or mixer for the contents within.
[0027] Embodiments of the invention provide bioreactor systems and sparger devices for a bioreactor system. In an embodiment, a sparger device for a bioprocessing system is formed as a two-piece assembly and includes a sparge tube having opposed distal ends, an inlet opening, and a plurality of sparge holes along a longitudinal extent of the sparge tube between the opposed distal ends, and a central hub coupled with the sparge tube at an approximate midpoint of the sparge tube, the central hub having a fluid passageway in fluid communication with the sparge tube via the inlet opening. The sparger device is formed by inserting a core pin into an inlet opening in the sparge tube to form an interference fit, overmolding around the core pin and sparge tube to form a central hub, and removing the core pin, thereby providing a feed passageway in fluid communication with the sparge tube via the inlet opening.
[0028] With reference to
[0029] The vessel 12 may include one or more sight windows 22, which allows one to view a fluid level within the flexible bag 20, as well as a window 24 positioned at a lower area of the vessel 12. The window 24 allows access to the interior of the vessel 12 for insertion and positioning of various sensors and probes (not shown) within the flexible bag 20, and for connecting one or more fluid lines to the flexible bag 20 for fluids, gases, and the like, to be added or withdrawn from the flexible bag 20. Sensors/probes and controls for monitoring and controlling important process parameters include any one or more, and combinations of: temperature, pressure, pH, dissolved oxygen (DO), dissolved carbon dioxide (pCO.sub.2), mixing rate, and gas flow rate, for example.
[0030] With specific reference to
[0031] The flexible bag 20 contains an impeller 28 attached to a magnetic hub 30 at the bottom center of the inside of the bag, which rotates on an impeller plate (not shown) also positioned on the inside bottom of the bag 20. Together, the impeller 28 and hub 30 (and in some embodiments, the impeller plate) form an impeller assembly. A magnetic drive 34 external to the vessel 12 provides the motive force for rotating the magnetic hub 30 and impeller 28 to mix the contents of the flexible bag 20. While
[0032] As also illustrated in
[0033] Turning now to
[0034] As best shown in
[0035] While the sparge tube 102 has been described above as being generally linear in shape, it is contemplated that the sparge tube 102 may have almost any shape so long as it is a unitary component. In particular, the sparge tube 102 may be generally annular or arcuate in shape so that it extends adjacent the inner periphery of the flexible bag 20 around the impeller.
[0036] As indicated above, the sparger device 100 therefore has a two-piece construction, namely, a unitary sparge tube 102 having the central inlet opening 110, and a feed tube 104 that is in fluid communication with the sparge tube 102 via the central inlet opening 110. It is contemplated that the sparge tube 102 and the feed tube may be manufactured from a variety of materials such as, for example, polypropylene. In an embodiment, the feed tube 104 is manufactured with a wall thickness and/or from a material such that the feed tube 104 is substantially stiff and robust. In an embodiment, the feed tube 104 may be formed by overmolding around the sparge tube 102, as described hereinafter.
[0037] In particular, with reference to
[0038] The sparge tube 102, once formed, is then positioned in a mold 140 having a mold region 142 that corresponds in shape/configuration to the shape/configuration of the central hub to be formed. As illustrated in
[0039] After the sparge tube 102 is received on the core pin 150 and is positioned in the mold 140, material is passed into the mold region 142 around the core pin 150 and sparge tube 102 to form the central hub (i.e., the sleeve 120 and feed tube 104). The sparge device 100 is then removed from the mold 140. Removal of the core pin 150 forms the central passageway 112 of the feed tube 104. As will be appreciated, receipt of the core pin 150 in the inlet opening 110 of the sparge tube 102 ensures that the holes on opposite sides of the sparge tube 102 are spaced equally from the midpoint of the sparge tube 102. In addition, because the core pin 150 forms an interference fit with the sparge tube 102 when inserted into the opening 110, material is prevented from seeping into the sparge tube 102 through the opening 110, which could form restrictions (which can lead to pressure drops during use) within the passageway 106.
[0040] Once the sparge device is removed from the mold (or, in some embodiments, prior to overmolding the central hub), the opposed, distal ends of the sparge tube 102 may be plugged or capped.
[0041]
[0042] It is contemplated that the caps 200, 300 of
[0043] Turning finally to
[0044] As alluded to above, the sparger device 100 is intended to be connected to a fluid port on the bottom of the flexible bag 20 of a bioreactor/bioprocessing system. The fluid port, and thus the sparger device 100, are connected to a supply of fluid (i.e., sparge gas) for use during a sparging operation of the bioreactor system. As indicated above, the sparge device 100 is robust and substantially stiff, owing to the two-piece construction of the device, and the configuration of central hub and the feed tube 104. As a result, the sparge device 100 is much less prone to movement within the bag, thereby minimizing the likelihood that the sparge device 100 would contact the impeller, sensors, the bag film, etc. In addition, the provision of an hole or opening on the distal end of the sparger device 100 (via the cap or a narrowing distal end) eliminates dead space beyond the distal-most sparge hole in the sparge tube 102.
[0045] The construction of the sparger device 100, and the manufacturing process therefor, also facilitates accurate and repeatable sparge hole position. In particular, the core pin 150, when received in the central inlet opening 110 in the sparge tube 102, precisely positions the feed passage 112 of the feed tube 10 equidistant from the sparge holes 108 to either side of the feed passage 112 and inlet opening 110. Moreover, by utilizing a unitary (i.e., single piece) sparge tube 102, assembly and alignment of the sparge tube 102 (and sparge holes 108 thereof) in relation to the feed tube 104 is simplified. As a result of this accurate sparge hole positioning, the possibility of reverse flow, which can result in trapped cell debris inside the sparge tube, is minimized. The use of the core pin 150, as discussed above, also provides reliable hole seal-off, preventing mold material from seeping into the sparge tube 102, which could create restrictions resulting in pressure drop during sparging.
[0046] The sparger device 100 of the invention, and manufacturing method therefor, significantly minimizes the likelihood of cell buildup within the sparger, and is less prone to deflection. The manufacturing method described herein, as discussed above, achieves more repeatable hole positioning and is simpler and cheaper than existing methods. The sparger device of the invention disclosed above may be used for injecting gas into a liquid for a variety of purposes including, for example, to control an amount of dissolved gas (e.g., oxygen, nitrogen, carbon dioxide) in the liquid and/or for carbon dioxide stripping.
[0047] In an embodiment, a sparger device is provided. The sparger device includes a sparge tube having opposed distal ends, an inlet opening, and a plurality of sparge holes along a longitudinal extent of the sparge tube between the opposed distal ends, and a central hub coupled with the sparge tube at a point intermediate the opposed distal ends of the sparge tube, the central hub having a fluid passageway in fluid communication with the sparge tube via the inlet opening. In an embodiment, the central hub is overmolded around the sparge tube. In an embodiment, the plurality of sparge holes are located in a top of the sparge tube and the inlet opening is located in a bottom of the sparge tube. In an embodiment, the sparger device also includes a cap on at least one of the opposed distal ends of the sparge tube, the cap having a throughbore in fluid communication with a central passageway of the sparge tube. In an embodiment, the throughbore is an axial throughbore oriented to direct a sparge gas out of the throughbore in a direction generally perpendicular to the sparge gas exiting though the plurality of sparge holes. In an embodiment, the throughbore is oriented to direct a sparge gas out of the throughbore in a direction generally parallel to the sparge gas exiting though the plurality of sparge holes. In an embodiment, the throughbore includes an angle of approximately 90 degrees. In an embodiment, the opposed distal ends of the sparge tube narrow to a point, and the opposed distal ends each include an axial opening for passage of a sparge gas.
[0048] In another embodiment, a method of manufacturing a sparger device is provided. The method includes the steps of providing a tube having opposed distal ends and an inlet opening in a sidewall of the first tube between the opposed distal ends, inserting a pin into the inlet opening, overmolding around the pin and the tube to from a central hub, and removing the pin to form a feed passageway within the central hub, the feed passageway being in fluid communication with an interior of the tube via the inlet opening. In an embodiment, the tube includes a plurality of radial holes along a longitudinal extent of the tube. In an embodiment, the pin has a tapered tip. In an embodiment, the pin has an outer diameter that is larger than a diameter of the inlet opening of the tube so as to form an interference fit when the pin is inserted into the inlet opening. In an embodiment, the method also includes inserting a cap on each of the opposed distal ends of the tube. In an embodiment, the cap includes an axial bore oriented to direct a sparge gas out of the axial bore in a direction generally perpendicular to sparge gas exiting though the plurality of radial holes. In an embodiment, the cap includes a bore oriented to direct a sparge gas out of the bore in a direction generally parallel to sparge gas exiting though the plurality of radial holes. In an embodiment, the cap is attached to the tube by at least one of a press fit, an adhesive and/or welding.
[0049] In yet another embodiment, a bioprocessing system is provided. The bioprocessing system includes a vessel, a flexible bioprocessing bag positionable within the vessel, and a sparger device coupled to a fluid port in the flexible bioprocessing bag, the sparger device including a sparge tube having opposed distal ends, an inlet opening, and a plurality of sparge holes along a longitudinal extent of the sparge tube between the opposed distal ends, and a central hub coupled with the sparge tube at a point intermediate the opposed distal ends of the sparge tube, the central hub having a fluid passageway in fluid communication with the sparge tube via the inlet opening. In an embodiment, the sparger device is T-shaped. In an embodiment, the sparger device further includes a cap on at least one of the opposed distal ends of the sparge tube, the cap having a throughbore in fluid communication with a central passageway of the sparge tube. In an embodiment, the throughbore is an axial throughbore oriented to direct a sparge gas out of the throughbore in a direction generally perpendicular to the sparge gas exiting though the plurality of sparge holes. In an embodiment, the throughbore is oriented to direct a sparge gas out of the throughbore in a direction generally parallel to the sparge gas exiting though the plurality of sparge holes.
[0050] In yet another embodiment, a sparger device is provided. The sparger device includes at least one sparge tube having a distal end, and a plurality of sparge holes along a longitudinal extent of the sparge tube, a hub coupled with the sparge tube, the hub having a fluid passageway in fluid communication with a central passageway of the sparge tube for providing gas to the sparge tube, and a cap on the distal end of the sparge tube, the cap having a throughbore in fluid communication with the central passageway of the sparge tube. In an embodiment, the throughbore is an axial throughbore oriented to direct a sparge gas out of the throughbore in a direction generally perpendicular to the sparge gas exiting though the plurality of sparge holes. In an embodiment, the throughbore is oriented to direct a sparge gas out of the throughbore in a direction generally parallel to the sparge gas exiting though the plurality of sparge holes.
[0051] As used herein, an element or step recited in the singular and proceeded with the word “a” or “an” should be understood as not excluding plural of said elements or steps, unless such exclusion is explicitly stated. Furthermore, references to “one embodiment” of the present invention are not intended to be interpreted as excluding the existence of additional embodiments that also incorporate the recited features. Moreover, unless explicitly stated to the contrary, embodiments “comprising,” “including,” or “having” an element or a plurality of elements having a particular property may include additional such elements not having that property.
[0052] This written description uses examples to disclose several embodiments of the invention, including the best mode, and also to enable one of ordinary skill in the art to practice the embodiments of invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to one of ordinary skill in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.