Bioprocessing system and tubing and component management device for bioprocessing system

A modular component management system with pivotally connected segments and adjustable filter holders addresses the laborious setup of bioprocessing systems, enhancing ergonomics and reducing clutter, thus simplifying the installation and use of bioreactor components.

JP7801019B2Active Publication Date: 2026-01-16GLOBAL LIFE SCIENCES SOLUTIONS USA LLC
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Patent Information

Application Number
JP2022580994
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-15
Filing Date
2021-07-08
Publication Date
2026-01-16
Estimated Expiration
2041-07-08

AI Technical Summary

Technical Problem

The installation and setup of flexible bioprocessing bags within bioreactor vessels, along with associated tubing and components, is laborious and time-consuming, often requiring multiple operators and causing tubing clutter due to lack of support, leading to accessibility issues.

Method used

A modular component management system featuring a frame with pivotally connected segments and mounting brackets, allowing ergonomic installation and organization of bioprocess components, including a filter heater assembly with hinged casings and a filter holder with adjustable sleeves to accommodate various sizes.

Benefits of technology

Facilitates intuitive, ergonomic setup and organization of bioreactor components, reducing installation time and preventing tubing clutter, while ensuring easy access and compatibility with different component sizes.

✦ Generated by Eureka AI based on patent content.

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Abstract

A component management device for a bioprocessing system includes a frame having a plurality of segments, including at least a first segment and a second segment pivotally connected to the first segment, the at least second segment being movable between a closed position and an open position, and at least one mounting bracket connected to the frame for connection of a bioprocess component.
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION Embodiments of the present invention relate generally to bioprocessing systems and methods, and more particularly to tubing and component management systems for bioprocessing systems. [Background technology]

[0002] A variety of vessels, devices, components, and unit operations are known for carrying out biochemical and / or biological processes and / or manipulating the liquids and other products of such processes. To avoid the time, expense, and difficulty associated with sterilizing vessels used in biopharmaceutical manufacturing processes, single-use or disposable bioreactor bags and single-use mixer bags are used as such vessels. For example, biological materials (e.g., animal and plant cells) including, for example, mammalian, plant, or insect cells and microbial cultures can be processed using disposable or single-use mixers and bioreactors.

[0003] Single-use or disposable containers are increasingly being used in the biopharmaceutical industry. These containers can be flexible or collapsible plastic bags supported by an outer rigid structure, such as a stainless steel shell or vessel. Using sterile disposable bags eliminates the need for time-consuming container cleaning steps and reduces the possibility of contamination. The bag can be placed within a rigid vessel and filled with the desired fluid for mixing. Depending on the fluid being processed, the system can include multiple fluid lines and different sensors, probes, and ports coupled to the bag for monitoring, analysis, sampling, and fluid transfer. For example, multiple ports can typically be located at the front of the bag and accessible through openings in the sidewall of the vessel, providing connection points for sensors, probes, and / or fluid sampling lines. In addition, a collection port or drain line fitting is typically located at the bottom of the disposable bag and configured for insertion through the opening in the bottom of the vessel, allowing a collection line to be connected to the bag for collection and drainage of the bag after the bioprocessing is complete.

[0004] Fluids are typically mixed using an agitator assembly located within the bag. Existing agitators are either top-driven (having a shaft extending downward into the bag, carrying one or more impellers) or bottom-driven (having an impeller located at the bottom of the bag driven by a magnetic drive system or motor located outside the bag and / or vessel). Most magnetic agitator systems include a rotating magnetic drive head outside the bag and a rotating magnetic agitator (also referred to in this context as an "impeller") within the bag. The movement of the magnetic drive head allows for torque transfer and therefore rotation of the magnetic agitator, allowing the agitator to mix the fluid within the vessel. Magnetically coupling the agitator inside the bag to a drive system or motor external to the bag and / or bioreactor vessel eliminates contamination issues, allows for a completely sealed system, and prevents leaks. Because there is no need for the drive shaft to penetrate the bioreactor vessel wall to mechanically rotate the agitator, a magnetically coupled system can also eliminate the need for a seal between the drive shaft and the vessel.

[0005] Installing and setting up flexible bioprocessing bags within a bioreactor vessel, along with associated tubing, filter heaters, valves, impellers, and other components, can be a laborious and time-consuming process. For example, existing bioreactor vessels can present accessibility issues, making it difficult to properly align and position the impeller at the base of the bioreactor vessel. The tubing and filter heater, in particular, are located at the top of the vessel, and their installation can require multiple operators and ladders. Additionally, a lack of tubing support for the various tubes connected to the flexible bags can lead to rows of tubing cluttering the bioreactor vessel. Summary of the Invention [Problem to be solved by the invention]

[0006] In view of the above, there is a need for a tubing and component management system for bioprocessing systems that is modular, ergonomically efficient, and easy to install and set up. [Means for solving the problem]

[0007] In one embodiment, a component management device for a bioprocessing system includes a frame having a plurality of segments, including at least a first segment and a second segment pivotally connected to the first segment, the at least second segment being movable between a closed position and an open position, and at least one mounting bracket connected to the frame for connection of a bioprocess component.

[0008] In another embodiment, a bioprocessing system includes a vessel defining an interior space for receiving a flexible bioprocessing bag, the vessel having an access door in a sidewall of the vessel providing access to the interior space, and a tubing and component management device operably connected to the vessel for mounting at least one component of the bioprocessing system. The tubing and component management device includes a frame having multiple segments, the frame including at least a first segment and a second segment pivotally connected to the first segment, the at least second segment being movable between a closed position and an open position, and at least one mounting bracket connected to the frame for connection of the at least one component.

[0009] In yet another embodiment, a filter heater assembly for a bioprocessing system includes a first casing portion and a second casing portion hingedly connected to the first casing portion, the second casing portion being movable between a closed position in which the filter heater receives a filter and an open position that allows for installation or removal of the filter.

[0010] In yet another embodiment, a filter holder assembly includes a sleeve having a plurality of interconnected sleeve elements, the sleeve having a top opening, the sleeve having a cross-sectional area that is greatest at the top opening and decreases away from the top opening, the sleeve elements configured to be biased outward upon insertion of a filter heater through the top opening.

[0011] The invention will be better understood from reading the following description of non-limiting embodiments, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a perspective view of a bioprocessing system according to one embodiment of the present invention. [Figure 2] 2 is a perspective view of a component management device of the bioprocessing system of FIG. 1, according to one embodiment of the present invention. [Figure 3] FIG. 3 is an enlarged perspective view of a portion of the component management device of FIG. 2. [Figure 4] 3 is a perspective view of the component management apparatus of FIG. 2 shown with various components installed. [Figure 5] FIG. 10 is a perspective view of a component management device according to another embodiment of the present invention. [Figure 6] FIG. 6 is a top plan view of the component management device of FIG. 5. [Figure 7] FIG. 6 is a side elevation view of the component management device of FIG. 5. [Figure 8] 1 is a perspective view of a filter heater according to an embodiment of the present invention showing the casing in an open position; FIG. [Figure 9] FIG. 9 is a perspective view of the filter heater of FIG. 8 showing the casing in a closed position. [Figure 10] 9 is a perspective view of the filter heater of FIG. 8, shown with the thermal jacket received around the casing. [Figure 11]FIG. 10 is a perspective view of a filter heater according to another embodiment of the present invention showing the casing in an open position. [Figure 12] FIG. 12 is a perspective view of the filter heater of FIG. 11 showing the filter received in the casing. [Figure 13] FIG. 12 is a perspective view of the filter heater of FIG. 11 showing the casing in a closed position. [Figure 14] FIG. 12 is a perspective view of a mounting bracket for the filter heater of FIG. 11. [Figure 15] FIG. 1 is a perspective view of a filter heater having a mechanical locking mechanism according to one embodiment of the present invention. [Figure 16] FIG. 1 is a perspective view of a filter heater having a magnetic locking mechanism according to one embodiment of the present invention. [Figure 17] FIG. 1 is a perspective view of a filter heater holder according to one embodiment of the present invention. [Figure 18] FIG. 18 is a side elevational view of the filter heater holder of FIG. 17. [Figure 19] FIG. 18 is a top plan view of the filter heater holder of FIG. 17. [Figure 20] 18 is a perspective view of the filter heater holder of FIG. 17 illustrating the use of the filter heater holder with filter heaters of various sizes. DETAILED DESCRIPTION OF THE INVENTION

[0013] Reference will now be made in detail to the 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.

[0014] As used herein, the terms "flexible" or "foldable" refer to a structure or material that is pliable or able to bend without breaking, and can also refer to compressible or expandable materials. An example of a flexible structure is a bag formed of polyethylene film. The terms "rigid" and "semi-rigid" are used interchangeably herein to refer to a "non-collapsible" structure, i.e., a structure that does not fold, collapse, or otherwise deform under normal forces to substantially reduce its extended dimensions. Depending on the context, "semi-rigid" can also refer to a structure that is more flexible than a "rigid" element, e.g., a bendable tube or conduit, but still does not collapse longitudinally under normal conditions and forces.

[0015] "Container," as that term is used herein, refers to a flexible bag, flexible container, semi-rigid container, rigid container, or flexible or semi-rigid tubing, as the case may be. The term "vessel" as used herein is intended to encompass bioreactor vessels having flexible or semi-rigid walls or wall portions, single-use flexible bags, and 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, e.g., chromatography and tangential flow filter systems, and their associated flow paths. As used herein, the term "bag" refers to, for example, a flexible or semi-rigid container or vessel used as a bioreactor or mixer for the contents therein. As used herein, "consumable" or "consumable part" refers to a device or component intended to be replaced periodically due to wear or use.

[0016] Embodiments of the present invention provide bioprocessing systems, and in particular component management systems and devices for bioreactor systems. In one embodiment, the bioprocessing system includes a container defining an interior space for receiving a flexible bioprocessing bag, the container having an access door in a sidewall of the container providing access to the interior space, and a component management device mounted to the sidewall of the container and having a mounting frame for mounting at least one consumable part of the bioprocessing system. The mounting frame is vertically movable into and out of the interior space.

[0017] Referring to FIG. 1, a bioprocessing system 10 (also referred to herein as a bioreactor system 10) according to one embodiment of the present invention is shown. The bioreactor system 10 includes a generally rigid bioreactor vessel or support structure 12 mounted on a base 14 having a plurality of legs 16. The vessel 12 may be formed, for example, from stainless steel, a polymer, a composite, glass, or other metal, and may be cylindrical in shape, although other shapes may be utilized without departing from the broader aspects of the present invention. The vessel 12 may be of any shape or size so long as it is capable of supporting a single-use, flexible bioreactor bag within its interior space 18. For example, according to one embodiment of the present invention, the vessel 12 is capable of receiving and supporting a 10 L to 2000 L flexible or collapsible bioprocess bag.

[0018] Vessel 12 may include one or more sight windows 20 that allow an operator to view the fluid level within the flexible bag disposed within interior space 18, as well as a window 22 located in a lower region of vessel 12. Window 22 allows access to the interior of vessel 12 for inserting and placing various sensors and probes (not shown) within the flexible bag, and for connecting one or more fluid lines to the flexible bag for adding or removing fluids, gases, etc. Sensors / probes and controls for monitoring and controlling critical process parameters include, for example, any one or more and combinations of temperature, pressure, pH, dissolved oxygen (DO), dissolved carbon dioxide (pCO2), mixing rate, and gas flow rate.

[0019] In one embodiment, the container 12 includes an access door 24 hingedly or pivotally connected to the sidewall of the container 12, allowing access to the interior space 18. The door 24 may include a handle 26 to facilitate movement of the door between open and closed positions. In one embodiment, the door 24 may be configured and arranged such that the lower edge of the door 24 forms the upper edge or boundary of the window 22 and / or the side edge of the door 24 forms the edge or boundary of the window 20 when the door 24 is in the closed position. By having the edge of the door 24 define one or more boundaries of the windows 20, 22, when the door 24 is in the open position, the opening 20, the opening 22, and the open door 24 (i.e., the opening through which the door is received) form a continuous, unobstructed access opening in the sidewall of the container. Thus, the area of ​​the continuous access opening formed in the sidewall of the container 12 when the door is in the open position is equal to the combined area of ​​the door 24, the window 22, and the window 20. This provides greater clearance and access to the interior space 18 than would be possible if the door and window were separated by a portion of the side wall of the container 12.

[0020] 1, the interior sidewall of vessel 12 may include one or more vertical baffles 28 that protrude into interior volume 18. Baffles 28 may be generally triangular in cross-section, although shapes and configurations known in the art may be utilized without departing from the broader aspects of the present invention. Baffles 28 are configured to contact and bias inwardly a flexible bag (when placed in interior volume 18) during a bioprocessing operation for purposes known in the art.

[0021] As further shown in FIG. 1 , the bioreactor system 10 also includes a component management apparatus 100. The apparatus 100 includes a frame 102 connected to a vertically oriented support 104 via a top plate 106, as shown in FIG. 2 . The support 104 is operably connected to the vessel 12 in such a manner that the support 104, and the frame 102 carried thereon, are vertically movable relative to the vessel 12, allowing the frame 102 to move vertically into and out of the interior space 18, also known as a “floating frame.” It is contemplated that various movement mechanisms / devices can be utilized to raise and lower the support 104 and frame 102, and the present invention is not intended to be limited to any particular configuration. In one embodiment, the movement mechanism can be, for example, a hand-driven mechanism such as a cable and hand crank, or an actuator such as an electric motor. According to an alternative embodiment, the apparatus 100 can have a set height above the vessel, also known as a “fixed frame.” In a fixed frame configuration, a movement mechanism / device is not required. Additionally, with respect to fixed frame embodiments, there may be additional support structures 104 to support the frame 102 in its attachment to the container 12. For example, the additional support structures 104 may extend from or be attached to the portion of the frame 102 that is attached to the container 12 (e.g., below the location of the bushings 118). Furthermore, the flexible bag may be positioned to be lifted to a working position via the aforementioned movement mechanism / device (i.e., the frame is configured to lift the flexible bag to its working position). Alternatively, the flexible bag may be suspended above the frame when positioned above the container 12. Furthermore, a separate movement mechanism / device (e.g., a hoist) may be configured to lift the flexible bag to its working position.

[0022] 2 and 3, detailed views of the component management apparatus 100 are shown. As shown therein, the frame 102 is generally annular in shape and includes a plurality of interconnected segments. For example, in one embodiment, the frame 102 is arcuate in shape and includes a first segment 108 having opposed distal ends 110, 112, a second segment 114 pivotally connected to the first end 110 of the first segment 108, and a third segment 116 pivotally connected to the second end 112 of the first segment 108. As shown in FIG. 2, the distal ends 110, 112 of the first segment 108, in one embodiment, can have a substantially 90-degree bend that facilitates connecting the second and third segments 114, 116 to their respective ends. In this regard, the second and third segments 114, 116 lie in a plane that is perpendicularly spaced apart from the plane in which the first segment 108 lies. In one embodiment, bushings 118 and nylon 120 washers may be utilized to facilitate rotational or pivotal movement of the second and third segments 114, 116 relative to the first segment 108. It is envisioned that the frame 102 may be manufactured from a variety of materials known in the art, such as, for example, stainless steel.

[0023] As discussed in detail below, the second and third segments 114, 116 are pivotable relative to the first segment 108 so that they can be positioned in a closed position (shown in FIG. 2 ) in which they together form a closed ring, and an open position in which the interior space of the frame 102 is accessible. As further shown in FIG. 2 , the second and third segments 114, 116 are shaped and dimensioned such that, when in the closed position, the distal ends of the second and third segments 114, 116, respectively, closely associate with one another. In one embodiment, the distal ends of the second and third segments 114, 116 are configured with complementary connecting mechanisms 122 configured to maintain the second and / or third segments in the closed position. In one embodiment, the connecting mechanism 122 is a mechanical lock. In another embodiment, the connecting mechanism 122 is a magnetic coupling. As indicated above, the second and third segments 114, 116 can be positioned in a closed position and held in such position by the connecting mechanism 122. When it is desired to move the second and / or third segments 114, 116 to the open position, the user can optionally unlock the connection mechanism or rotate the segments to break the magnetic attraction of the connection mechanism.

[0024] 2 , frame 102 is equipped with a plurality of mounting brackets that allow various bioreactor components to be connected to frame 102. For example, the mounting brackets can include a plurality of filter heater mounting brackets 124 for connecting filter heaters to frame 102 and a plurality of pinch valve mounting brackets 126 for connecting pinch valves to the frame. In one embodiment, filter heater mounting brackets 124 can be welded or bolted to frame 102. In yet another embodiment, brackets 124 can be connected to the frame via brackets, allowing brackets 124 to be easily added and positioned as desired. As best shown in FIG. 2 , pinch valve mounting bracket 126 is mounted to the underside of frame 102 and depends downwardly therefrom. In one embodiment, mounting bracket 126 is rotatable about a vertical axis and includes a knob (not shown) that can be used to adjust the angle of the pinch valve (when received by mounting bracket 126) so that the pinch valve can be used with one filter heater or rotated to be used with a different filter heater.

[0025] The frame 102 may also include a ring-shaped mounting bracket 128 connected to the frame 102, for example, by welding. The mounting bracket 128 is specifically designed to accommodate multiple stack lights used to provide visual indication of several bioprocessing conditions. Additionally, the frame 102 includes multiple hanger brackets 130 evenly spaced around the frame 102. The hanger brackets 130 serve as mounting points for hanging flexible bioprocessing bags. Specifically, the bioprocessing bag has multiple hanging points spaced around the top of the bag, with a grommet associated with each hanging point. A hanger strap is connected to each hanger bracket 130, and a carabiner is then attached to the grommet to suspend the flexible bag from the frame 102.

[0026] During use, the frame 102 can be lowered into the bioreactor vessel 12 using a movement mechanism associated with the support 104. Once positioned within the interior space 18, the door 24 can be opened. At this point, the second and third segments 114, 116 can be rotated to their respective open positions, allowing them to partially extend through openings in the sidewalls of the vessel 12. In this position, all points on the frame are ergonomically accessible, allowing the user to easily and efficiently load all components required for a bioprocessing operation (and disassemble, if necessary, after use) as well as organize all lines and cables. For example, filter heaters, pinch valves, pressure sensors, and the cables and tubing required to operate them, as well as liquid and gas lines, can be easily mounted to the frame using mounting brackets. Once all components are loaded onto the frame 102, the frame segments can be moved to their respective closed positions, and the frame 102 can be raised to its operating position.

[0027] 4 shows a filter heater 134 mounted to mounting bracket 124, a pinch valve 136 mounted to mounting bracket 126, and a stack light 138 mounted to mounting bracket 128. FIG. 4 also shows a hanger strap 140 connected to hanger bracket 130.

[0028] 5-7, there is shown a component management apparatus 200 according to another embodiment of the present invention. The component management apparatus 200 is substantially similar in construction and operation to the component management apparatus 100 described above. In particular, the component management apparatus 200 includes a frame 202 having a plurality of rotating or pivotally interconnected segments that, in a closed position, define a peripheral shape of the frame 202 that generally corresponds to the shape of the interior (including sidewalls and baffles) of the bioreactor vessel 12.

[0029] 6, the frame 202 includes at least a first segment 204 having a peripheral shape and radius that generally corresponds to the shape and radius of the interior of the bioreactor vessel 12, second and third segments 206, 208 pivotally connected to opposite ends of the first segment 204, and fourth and fifth segments 210, 212 pivotally connected to the second and third segments 206, 208, respectively. Each of the segments is rotatable about a vertical axis defined by a pivot point 214 where the segments connect to one another. As with the previously described embodiment, the end-most segments completing the loop are configured with a connection mechanism, e.g., a magnetic coupling 216, that holds the frame 202 in a closed position.

[0030] 6, segments 204, 210, and 212 have generally convex peripheries, while segments 206 and 208 have generally concave peripheries, which allows frame 202 to be positioned closely against the interior sidewalls of bioreactor vessel 12, even when internal baffles 28 are present. In particular, segments 206, 208 are shaped and dimensioned to accommodate internal baffles 28 of the bioreactor vessel. In other words, the segments are shaped and dimensioned collectively to closely correspond to the shape of the interior walls of the bioreactor vessel (including the baffles).

[0031] As best shown in Figure 7, the second and third segments 206, 208 are interconnected with the first segment 204 at pivot points 214 via vertical posts or shafts 216, which function to vertically space the second and third segments 206, 208 from the first segment 204 (i.e., the second and third segments 206, 208 are vertically lower than the first segment 204). Similarly, the fourth and fifth segments 210, 212 are connected to the second and third segments 206, 208 so as to be positioned vertically lower than the second and third segments 206, 208. As shown in Figure 7, the fourth and fifth segments 210, 212 are rotatable about their respective pivot points 214 against the retaining force of the connecting mechanisms 216 to a position where they extend at least partially through an access door opening in the side wall of the bioreactor vessel 12. This configuration therefore allows ergonomic access to the entire frame 202 and facilitates easy connection of components such as filter heaters, filters, pinch valves, stack lights, sensors and tubing.

[0032] In that regard, although not fully shown in FIG. 7, the frame 202 may be equipped with a series of mounting brackets, such as filter heater mounting brackets, pinch valve mounting brackets, stack light mounting brackets, bag hangers, etc., of the type more particularly described above in connection with the component management apparatus 100.

[0033] As disclosed above, the component management device of the present invention includes a frame that supports all necessary bioreactor components, including filter heaters, pinch valves, pressure sensors, and liquid and gas lines, on top of the bioreactor. This frame allows for intuitive, ergonomic installation of all components and facilitates organization of all lines and cables. The frame fits within the interior space 18 of the bioreactor 12 and can be lowered into the bioreactor vessel or left at its maximum height. The device 100, 200 is modular, allowing users to add or remove features as needed (e.g., if a user needs four filter heaters instead of three, they can easily add a feature to hold an additional filter heater). The frame is hinged, allowing it to be expanded for optimal usability while maintaining a very small footprint. Additionally, this frame configuration allows users to quickly and easily make all gas line and electrical connections while maintaining proper biomechanics.

[0034] As noted above and as will be appreciated, single-use bioreactor bags have a mess of tubing on top that can be difficult to handle. The component management device disclosed herein supports tubing and other components without preventing the user from reaching other necessary components. Additionally, the frame has a circular shape that roughly corresponds to the shape of the bag and bioreactor vessel, allowing the user to run tubing 360°. The articulating segments of the frame allow the user to open the frame to directly access the tubing as well as reach further into the vessel unimpeded to make other connections, providing ease of setup, disassembly, and use not previously seen in the art.

[0035] 8-10, detailed views of a filter heater 134 according to one embodiment of the present invention are shown. The filter heater 134 is designed to provide uniform heat distribution to exhaust gases passing through a filter disposed inside the filter heater 134. As shown in FIGS. 8-10, the filter heater 134 includes a first casing portion 160, a second casing portion 162, and a third casing portion 164, each of which includes a top cap member 166 and a bottom cap member 168. A vertical portion of the casing extending between the top and bottom cap members of each casing is formed or configured as a heat distributor for distributing heat to a filter 170 removably received within the filter heater 134. As shown in FIG. 8 , the second and third casing portions 162, 164 are hingedly connected to the first casing portion 160 about their respective vertical axes, allowing the filter heater 134 to be opened and the filter 170 to be inserted therein. Once the filter 170 is inserted, the second and third casing portions 162, 164 can be closed to retain the filter 170 therein, as shown in FIG. 9 . In one embodiment, the second and third casing portions 162, 164 are configured with a latch or locking mechanism, such as, for example, a magnetic coupling, Velcro®, snaps, or the like, to maintain the casing portions in a closed position. In one embodiment, the top and bottom cap members 166, 168 can be manufactured from a thermoplastic material, such as, for example, polyetherimide, and the heat distributor portion of the casing can be formed from aluminum, although other materials capable of distributing heat to the filter 170 retained in the casing can be utilized without departing from the broader aspects of the present invention.

[0036] 10 , the filter heater 134 further includes a thermal jacket or heating blanket 172 wrapped around the periphery of the filter heater 134. The thermal jacket 172 is configured to transfer heat to the casing, which is then transferred to the filter 170, heating the gas passing therethrough. In one embodiment, the thermal jacket 172 can be held onto the filter heater 134 using straps, snaps, or other fastening means. As indicated above, the filter heater 134 can be mounted to the filter heater mounting bracket 124 on the frame of the component management apparatus 100, 200.

[0037] 11-16, a filter heater 250 according to another embodiment of the present invention is shown. The filter heater 250 is generally similar to the filter heater 134 disclosed above, except that instead of having a three-piece casing, the filter heater 250 includes a two-piece casing. In particular, the filter heater 250 includes a first casing portion 252 and a second casing portion 254 hingedly connected to the first casing portion 252 about a vertical axis. The filter heater 250 further includes a bracket 256 attached to the first casing portion 252, which allows the filter heater 250 to be mounted to a corresponding mounting bracket on the frame of the component management device. As shown in FIG. 11, the second casing portion 254 is pivotable to an open position, allowing the filter 170 to be installed and retained by the first casing portion 252 without slippage. Once received by the first casing portion, as shown in FIG. 12, the second casing portion 254 can be closed, as shown in FIG. 13. The filter heater 250 also includes a thermal jacket or blanket 258 that wraps around the casings 252, 254 to transfer heat to the casings 252, 254 and ultimately to the filter 170 held thereby.

[0038] With particular reference to FIG. 15 , in one embodiment, the thermal jacket 258 may be retained on the filter heater 250 using snaps 260, although other fastening means such as Velcro®, magnets, etc. may be utilized without departing from the broader aspects of the present invention. For example, as shown in FIG. 16 , the thermal jacket 258 may be retained on the filter heater using a magnetic coupling 262. Also shown therein, in one embodiment, the thermal jacket 258 may be powered by a removable cable 266. The removable cable 266 allows for easy internal routing (installation and disassembly) of the cable 266. It should be noted that the thermal jacket 258 and its associated fastening means may be equally implemented in the filter heater embodiments of FIGS. 8-10 and 17-20.

[0039] The filter heaters disclosed herein provide an increased level of accessibility for inserting and removing filters and ensure that the filter does not slip out of the filter holder, which overall reduces filter assembly time and increases system accessibility.

[0040] 17-19, a filter heater holder 300 that can be used in the bioprocessing system 10 is shown. As known in the art, filters are widely used in bioreactors and come in a variety of diameters and heights. As discussed above, these filters are covered by a filter heater. Current filter holders can only accommodate filters of a specific size, limiting customers' ability to use filters of different sizes. As shown in FIGS. 17-19, the filter heater holder 300 of the present invention includes a sleeve 302 having a top opening 304. The sleeve 302 is formed by multiple sleeve elements (e.g., sleeve elements 306, 308, 310) interconnected to one another by a web of material 312 adjacent the top opening 304. In one embodiment, the sleeve 302 has a cross-sectional area that is greatest at the top opening 304 and decreases away from the top opening 304. For example, the sleeve 302 can be frusto-conical in shape. Sleeve elements 306, 308, 310 are configured and joined together via web 312 such that when inserted through top opening 304, a distal portion of the sleeve element opposite the top opening can be resiliently biased by a filter heater, e.g., filter heater 250.

[0041] 20 , this configuration allows filter heater holder 300 to accommodate filter heaters 250 of various sizes (e.g., diameters and heights). In particular, when filter heater 250 is pushed downwardly through opening 304, the distal portion of the sleeve element is biased outward, allowing filter heater 250 to be received by holder 300. Filter heater holder 300 can be connected to the frame of the component management device using a bracket or other hardware, such as mounting bracket 124.

[0042] Each of the filter heater holder embodiments discussed above is configured to connect to the component management device 100, 200. Although not explicitly shown in the drawings, a combination of such filter heater holders can be implemented (e.g., attached) to the component management device 100, 200.

[0043] The invention disclosed herein as a whole is therefore modular, ergonomically efficient, and facilitates installation and setup of bioreactor components (and, in particular, consumables) to a level not previously seen in the art.

[0044] In one embodiment, a component management device for a bioprocessing system is provided. The device includes a frame having multiple segments, including at least a first segment and a second segment pivotally connected to the first segment, the at least second segment being movable between a closed position and an open position, and at least one mounting bracket connected to the frame for connection of a bioprocess component. In one embodiment, the device also includes a connection mechanism configured to maintain the second segment in the closed position. In one embodiment, the connection mechanism can be a mechanical lock or a magnetic coupling. In one embodiment, the at least one mounting bracket is a filter heater mounting bracket configured to mount a filter heater at a generally upper position of the frame. In one embodiment, the at least one mounting bracket is a pinch valve mounting bracket configured to receive a pinch valve, the pinch valve mounting bracket depending downward from the frame. In one embodiment, the at least one mounting bracket is a plurality of mounting brackets, the plurality of mounting brackets including a plurality of filter heater mounting brackets configured to mount a filter heater in a generally upper position on the frame, the plurality of mounting brackets further including a plurality of pinch valve mounting brackets configured to receive pinch valves, the plurality of pinch valve mounting brackets depending downwardly from the frame. In one embodiment, the plurality of segments further includes at least a third segment, wherein a first segment is arcuately shaped and has a first end and a second end, the second segment is pivotally connected to the first end of the first segment, and the third segment is pivotally connected to the second end of the first segment. In one embodiment, at least one of the first segment, second segment, and / or third segment is shaped and / or dimensioned to correspond to an interior wall of the bioreactor vessel, and at least one other of the first segment, second segment, and / or third segment is shaped and dimensioned to accommodate an internal baffle of the bioreactor vessel.In one embodiment, the frame has a peripheral shape corresponding to the interior sidewall and internal baffles of the bioreactor vessel. In one embodiment, at least one of the segments is movable to extend from an opening in the bioreactor vessel to which the frame is connected. In one embodiment, the apparatus also includes a filter heater mounted to the filter heater mounting bracket, the filter heater including at least a first casing portion and a second casing portion hingedly connected to the first casing portion, the second casing portion movable between a closed position in which the filter heater receives a filter and an open position that allows for installation or removal of the filter. In one embodiment, the apparatus further includes a filter heater holder mounted to the filter heater mounting bracket, the filter heater holder including a plurality of interconnected sleeve elements forming a sleeve having a top opening, the sleeve having a cross-sectional area that is greatest at the top opening and decreases away from the top opening, the sleeve elements configured to be biased outward upon insertion of the filter heater or filter through the top opening.

[0045] In another embodiment, a bioprocessing system is provided. The bioprocessing system includes a vessel defining an interior space for receiving a flexible bioprocessing bag, the vessel having an access door in a sidewall of the vessel providing access to the interior space, and a tubing and component management device operably connected to the vessel for mounting at least one component of the bioprocessing system. The tubing and component management device includes a frame having multiple segments, including at least a first segment and a second segment pivotally connected to the first segment, the at least second segment being movable between a closed position and an open position, and at least one mounting bracket connected to the frame for connecting at least one component. In one embodiment, the frame is vertically movable into and out of the interior space. In one embodiment, the tubing and component management device further includes a connection mechanism configured to maintain the second segment in a closed position, the connection mechanism being a mechanical lock or a magnetic coupling. In one embodiment, the at least one mounting bracket is a plurality of mounting brackets, the plurality of mounting brackets including a plurality of filter heater mounting brackets configured to mount the filter heater in a generally upper position of the frame, the plurality of mounting brackets further including a plurality of pinch valve mounting brackets configured to receive pinch valves, the plurality of pinch valve mounting brackets depending downwardly from the frame. In one embodiment, the frame has a peripheral shape corresponding to the interior sidewall of the bioreactor vessel and the interior baffles of the bioreactor vessel. In one embodiment, at least one of the segments is movable to extend from an access door opening in the bioreactor vessel. In one embodiment, the bioprocessing system can include a filter heater having a first casing portion and a second casing portion hingedly connected to the first casing portion, the second casing portion being movable between a closed position in which the filter heater receives a filter and an open position to allow for installation or removal of the filter.In one embodiment, the first and second casing portions each include a top cap member and a bottom cap member, and a heat distributor extending between the top and bottom cap members. In one embodiment, the heat distributor is formed from anodized aluminum. In one embodiment, the filter heater assembly further includes a magnetic coupling configured to hold the second casing portion in a closed position. In one embodiment, the filter heater further includes a heating blanket receivable around the casing. In one embodiment, the heating blanket includes a mechanical or magnetic coupling for holding the heating blanket to the casing. In one embodiment, the bioprocessing system can also include a filter holder assembly having a plurality of interconnected sleeve elements and a sleeve having a top opening, the sleeve having a cross-sectional area that is greatest at the top opening and decreases away from the top opening, the sleeve elements configured to be biased outward upon insertion of the filter heater through the top opening. In one embodiment, the plurality of sleeve elements are interconnected by a web of material adjacent the top opening, and distal portions of the plurality of sleeve elements opposite the top opening are configured to be resiliently biased by the filter heater.

[0046] As used herein, elements or steps defined in the singular and preceded by the word "a" or "an" should be understood not to exclude a plurality of such elements or steps, unless such exclusion is expressly stated. Furthermore, references to "one embodiment" of the invention are not intended to be interpreted as excluding the existence of additional embodiments that incorporate the specified features. Also, unless expressly stated to the contrary, embodiments "comprising," "including," or "having" an element or elements having a particular characteristic can include additional such elements that do not have that characteristic.

[0047] This written description uses examples to disclose some embodiments of the invention, including the best mode, and will enable any person skilled in the art to practice the embodiments of the 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 those skilled 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 claim language, or if they include equivalent structural elements that do not differ substantially from the claim language. [Explanation of symbols]

[0048] 10 Bioprocessing Systems 12 containers 14 base 16 legs 18 Interior Space 20 Windows 22 Windows 24 doors 26 Handle 28 Baffle 100 Component Management Device 102 frames 104 Support 106 Top Plate 108 First Segment 110 first end 112 second end 114 Second Segment 116 Third Segment 118 Bushing 120 nylon 122 Connection mechanism 124 Filter heater mounting bracket 126 Pinch valve mounting bracket 128 Mounting Bracket 130 Hanger Bracket 134 Filter heater 136 Pinch valve 138 Stack Light 140 Hanger Strap 160 first casing portion 162 second casing part 164 Third casing part 166 Top cap member 168 Bottom cap member 170 filters 172 Thermal Jacket 200 Component Management Device 202 frames 204 First Segment 206 Second Segment 208 Third Segment 210 Fourth Segment 212 Fifth Segment 214 Pivot point 216 Magnetic Coupling 216 axes 250 Filter Heater 252 first casing part 254 Second casing part 256 bracket 258 Thermal Jacket 260 Snap 262 Magnetic Coupling 266 Removable Cable 300 Filter Heater Holder 302 Sleeve 304 Top opening 306 Sleeve Element 308 Sleeve Element 310 Sleeve Element 312 Web

Claims

1. a frame having a plurality of segments, including at least a first segment and a second segment pivotally connected to the first segment, the at least second segment being movable between a closed position and an open position; at least one mounting bracket connected to the frame for connection of a bioprocess component; Including, the plurality of segments further comprising at least a third segment; the first segment is arcuate in shape and has a first end and a second end; the second segment is pivotally connected to the first end of the first segment; A component management apparatus for a bioprocessing system, wherein the third segment is pivotally connected to the second end of the first segment.

2. The component management apparatus of claim 1 , further comprising a connection mechanism configured to maintain the second segment in the closed position.

3. The component management device of claim 2 , wherein the connection mechanism is a mechanical lock or a magnetic coupling.

4. The component management apparatus of claim 1 , wherein the at least one mounting bracket is a filter heater mounting bracket configured for mounting a filter heater at a location above the frame.

5. 5. The component management apparatus of claim 1, wherein the at least one mounting bracket is a pinch valve mounting bracket configured to receive a pinch valve, the pinch valve mounting bracket depending downwardly from the frame.

6. the at least one mounting bracket is a plurality of mounting brackets; the plurality of mounting brackets including a plurality of filter heater mounting brackets configured to mount a filter heater at a location above the frame; 6. The component management device of claim 1, wherein the plurality of mounting brackets further includes a plurality of pinch valve mounting brackets configured to receive pinch valves, the plurality of pinch valve mounting brackets depending downwardly from the frame.

7. at least one of the first segment, the second segment, and / or the third segment is shaped and / or sized to correspond to an interior wall of a bioreactor vessel; 2. The component management device of claim 1, wherein at least one other of the first segment, the second segment, and / or the third segment is shaped and dimensioned to accommodate an internal baffle of the bioreactor vessel.

8. 8. The component management apparatus of claim 1, wherein the frame has a peripheral shape that corresponds to an interior sidewall of a bioreactor vessel and an interior baffle of the bioreactor vessel.

9. 9. The component management apparatus of claim 1, wherein at least one of the segments is movable to extend from an opening in a bioreactor vessel to which the frame is connected.

10. a filter heater holder mounted to the filter heater mounting bracket, the filter heater holder including a plurality of interconnected sleeve elements forming a sleeve having a top opening, the sleeve having a cross-sectional area that is greatest at the top opening and that decreases away from the top opening; The component management device of claim 4 or 6, wherein the sleeve element is configured to be biased outward upon insertion of a filter heater or a filter through the top opening.

11. 1. A bioprocessing system comprising: a container defining an interior space for receiving a flexible bioprocessing bag, the container having an access door in a sidewall of the container providing access to the interior space; a tubing and component management device operably connected to the vessel for loading at least one component of the bioprocessing system; Including, the tubing and component management device includes a frame having a plurality of segments, the frame including at least a first segment and a second segment pivotally connected to the first segment, the at least second segment being movable between a closed position and an open position; at least one mounting bracket connected to the frame for connection of the at least one component; Including, the plurality of segments further comprising at least a third segment; the first segment is arcuate in shape and has a first end and a second end; the second segment is pivotally connected to the first end of the first segment; The third segment is pivotally connected to the second end of the first segment.

12. 12. The bioprocessing system of claim 11, wherein said frame is vertically movable into and out of said interior space.

13. The bioprocessing system of claim 11 , wherein the frame is fixed to the vessel.

14. the tubing and component management device further includes a connection mechanism configured to maintain the second segment in the closed position; The bioprocessing system of any one of claims 11 to 13, wherein the connection mechanism is a mechanical lock or a magnetic coupling.

15. the at least one mounting bracket is a plurality of mounting brackets; the plurality of mounting brackets including a plurality of filter heater mounting brackets configured to mount a filter heater at a location above the frame; 15. The bioprocessing system of claim 11, wherein the plurality of mounting brackets further comprises a plurality of pinch valve mounting brackets configured to receive pinch valves, the plurality of pinch valve mounting brackets depending downwardly from the frame.

16. 16. The bioprocessing system of claim 11, wherein the frame has a peripheral shape corresponding to an interior sidewall of a bioreactor vessel and an interior baffle of the bioreactor vessel.

17. 17. The bioprocessing system of any one of claims 11 to 16, wherein at least one of said segments is movable to extend from an access door opening in a bioreactor vessel.

18. Further comprising a filter heater, the filter heater comprising: a sleeve having a plurality of interconnected sleeve elements, said sleeve having a top opening; the sleeve has a cross-sectional area that is greatest at the top opening and decreases with increasing distance from the top opening; 18. The bioprocessing system of claim 11, wherein the sleeve element is configured to be biased outward upon insertion of a filter heater through the top opening.

19. the plurality of sleeve elements are interconnected by a web of material adjacent the top opening; 20. The bioprocessing system of claim 18, wherein a distal portion of said plurality of sleeve elements opposite said top opening is configured to be resiliently biased by said filter heater.

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