DEVICE AND METHOD FOR COMPENSATING SHORT-TERM PRESSURE OR VOLUME FLUCTUATIONS OF A MEDIUM IN A CONTINUOUS BIOPHARMACEUTICAL PROCESS
20220062842 · 2022-03-03
Inventors
Cpc classification
F16L55/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A device for compensating short-term pressure or volume fluctuations of a medium in a continuously managed biopharmaceutical process including a receiving space in fluid communication with a process line through which a medium flows, an equalizing space, which is separated from the receiving space by a deflectable element, and a counter-pressure mechanism in the equalizing space for applying a counter-pressure to the deflectable element towards the receiving space. A method of compensating short-term pressure or volume fluctuations of a medium in a continuously managed biopharmaceutical process including providing a receiving space in fluid communication with a process line through which a medium flows, receiving an excess amount of the medium flowing into the receiving space, charging an energy storage device by the medium flowing into the receiving space, and expelling at least part of the excess amount if the pressure or flow rate falls below a set amount.
Claims
1. A device for compensating short-term pressure or volume fluctuations of a medium in a continuously managed biopharmaceutical process, comprising: a receiving space in fluid communication with a process line through which a medium flows, for temporarily storing an excess amount of the medium flowing into the receiving space; an equalizing space, which is separated from the receiving space by a deflectable element; a counter-pressure means arranged in the equalizing space for applying a counter-pressure to the deflectable element towards the receiving space, wherein all media-contacting components of the device are designed as disposable components.
2. The device according to claim 1, characterized in that the counter-pressure means comprises an energy storage device which is charged by the medium flowing into the receiving space.
3. The device according to claim 1, characterized in that the deflectable element is a diaphragm.
4. The device according to claim 1, characterized in that the deflectable element is a receiving body.
5. The device according to claim 1, characterized in that the deflectable element is semipermeable.
6. The device according to claim 1, characterized in that the receiving space is arranged in a reusable container and is delimited at least in part by a disposable insert.
7. The device according to claim 1, characterized in that the counter-pressure means comprises a gas under positive pressure and/or a liquid and/or an elastic solid body.
8. The device according to claim 1, characterized in that a connection opening into the equalizing space is provided for a supply or a withdrawal of fluid.
9. The device according to claim 8, characterized in that a constant pressure source or a syringe with a syringe driver is connected to the connection.
10. The device according to claim 9, characterized by a controller for closed-loop control of the counter-pressure in the equalizing space as a function of measured pressure or volume fluctuations.
11. The device according to claim 8, characterized in that the receiving space and the equalizing space are arranged in a disposable filter capsule housing or in a disposable filter cartridge housing, and at least one of existing connections of the housing is connected to the process line and/or at least one of the existing connections of the housing is provided for a supply or a withdrawal of fluid into or from the equalizing space.
12. The device according to claim 1, characterized in that the receiving space and the equalizing space are arranged in a housing, and are separated by a piston which is displaceable in the housing and sealed from the housing.
13. The device according to claim 12, characterized in that the piston is urged towards the receiving space by a force, in particular by an adjustable or variable force.
14. The device according to claim 1, characterized by a medium inlet into the receiving space and a medium outlet from the receiving space, the receiving space being surrounded by the equalizing space so that the device can be arranged in a through-flow.
15. The device according to claim 14, characterized in that the receiving space between the inlet and the outlet is formed by an elastically expansible, disposable tube section and is surrounded by a rigid or flexible container which is sturdier than the tube section.
16. A method of compensating short-term pressure or volume fluctuations of a medium in a continuously managed biopharmaceutical process, using a device according to claim 1, the method comprising the following steps: providing a receiving space in fluid communication with a process line through which a medium flows; receiving, in an event of an excess pressure or an excess volume in the process line, an excess amount of the medium flowing into the receiving space; charging an energy storage device by the medium flowing into the receiving space; and expelling at least part of the received excess amount of the medium out of the receiving space in the event that a pressure falls below a set pressure range or a flow rate falls below a set flow rate range by conversion of energy stored in the energy storage device.
17. The method according to claim 16, characterized in that the energy storage device is additionally supplied with energy from outside.
18. The method according to claim 17, characterized in that the energy input is closed-loop controlled by means of a controller as a function of measured pressure or volume fluctuations.
19. The device according to claim 4, wherein the receiving body is a balloon, or an expansible tube section which constitutes an entirety of the receiving space.
20. The device according to claim 12, where the housing is a cylinder.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Further features and advantages of the invention will be apparent from the description below and from the accompanying drawings, to which reference is made and in which:
[0031]
[0032]
[0033]
[0034]
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[0036]
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[0039]
[0040]
DETAILED DESCRIPTION
[0041]
[0042] The equalizing space 26, which according to
[0043] While those components of the device 10 that contact the medium, such as, e.g., the diaphragm 22, are pre-sterilized disposable components made of plastic, the other components of the device 10, in particular the container 12, may be reusable components made of stainless steel or an easy-to-clean plastic material. Of course, the other components or some of them may also be designed as disposable components.
[0044] If, while carrying out the continuous process, an excess pressure (exceeding a set pressure range) or an excess volume (exceeding a set flow rate range) occurs in the process line through which the medium flows, a corresponding excess quantity of the medium is pressed into the receiving space 24 of the device 10. This causes the diaphragm 22 to be deflected, in this case upward, against the resistance of the counter-pressure means 30 located in the equalizing space 26. The counter-pressure means 30 can be understood as an energy storage device that is (further) charged by the medium flowing into the receiving space 24.
[0045] The counter-pressure means 30 applies a counter-pressure via the diaphragm 22 to the medium temporarily stored in the receiving space 24, the counter-pressure means 30 and the diaphragm 22 being coordinated in such a way that the temporarily stored medium is expelled from the receiving space 24 again, ideally as soon as the pressure falls below the set pressure range or the flow rate falls below the set flow rate range in the process line. The energy required for expelling the medium from the receiving space 24 originates from the counter-pressure means 30 serving as an energy storage device, i.e. the energy storage device discharges again.
[0046] In the variants shown in
[0047] Where required, the diaphragm 22 selected may be a semipermeable diaphragm that is arranged to be permeable to gas towards the equalizing space 26. In this case, the device 10 may additionally be made use of for degassing the medium, since gas contained in the medium in the container escapes from the receiving space 24 into the equalizing space 26 through the diaphragm.
[0048]
[0049]
[0050] In the variant shown in
[0051] In all variants of the second embodiment, the basic options for selecting the counter-pressure means 30 and the fundamental operating mode of the device 10, including the options for adjusting the counter-pressure in the equalizing space 26, are the same as those for the first embodiment.
[0052]
[0053] A special feature of all variants of the second embodiment is the high process reliability. Even in the event of leakage of the diaphragm 22 or the receiving body 42, the sterilized disposable housing 38, 40 of the filter capsule or, respectively, of the filter cartridge will keep the medium sterile, and the process will remain closed, i.e., no medium will exit the process in an uncontrolled manner.
[0054]
[0055] Unlike the embodiments described so far, the fourth embodiment of the compensating device 10 shown in
[0056] The compensating device 10 may be integrated in a main line or a secondary line. The two ends of the device 10 may, for example, be formed as connecting ends that fit a common tri-clamp connector, as in the variant shown in
[0057] Between the inlet 52 and the outlet 54, the process line is formed as an elastically expansible, sterilized, disposable tube section 56, e.g., made from rubber. This portion is surrounded by a sturdy and tight container 12, which need not necessarily be designed as a disposable container.
[0058] The tube section 56 can expand when there is an excess pressure in the process line or when there is an excess volume, thus acting as an additional receiving space 24 for the medium. The area between the outer wall of the expansible tube section 56 and the inner wall of the container 12 acts as an equalizing space 26. The container 12 may include an outer connection 36. Providing and, if required, adjusting or controlling the counter-pressure may again be achieved in a variety of ways, as described above.
[0059] Rather than a rigid container 12, a hard or flexible sleeve, for example made from a hard or strong plastic such as PE, can also serve as the container 12 and be arranged around the expansible tube section 56 and fastened tightly to it. However, the sleeve should be more rigid or less expansible than the tube section 56 to allow a sufficient counter-pressure to be provided. The cavity between the expansible hose section 56 and the sleeve then constitutes the equalizing space 26.
[0060] Any pressure fluctuations can thus be smoothed by widening or narrowing the tube section 56 and therefore by a change in volume.
[0061] Just as in the first embodiment, in all other embodiments the diaphragm 22 or the respective deflectable element (receiving body 42, expansible tube section 56, etc.) that separates the receiving space 24 from the equalizing space 26 can be configured as a semipermeable element that is gas-permeable towards the equalizing space 26 to allow degassing of the medium in the device 10.
LIST OF REFERENCE NUMBERS
[0062] 10 device
[0063] 12 container
[0064] 14 bottom part
[0065] 16 top part
[0066] 18 edge
[0067] 20 film
[0068] 22 diaphragm
[0069] 24 receiving space
[0070] 26 equalizing space
[0071] 28 connection
[0072] 30 counter-pressure means
[0073] 32 fluid
[0074] 34 elastic solid body
[0075] 36 connection
[0076] 38 filter capsule housing
[0077] 40 filter cartridge housing
[0078] 42 receiving body
[0079] 44 opening
[0080] 46 cylinder
[0081] 48 piston
[0082] 50 sealing elements
[0083] 52 inlet
[0084] 54 outlet
[0085] 56 tube section