PROTECTING BODY FOR A FLEXIBLE POUCH, SYSTEM FOR CONTAINING A BIOPHARMACEUTICAL FLUID AND METHODS FOR USING SUCH A SYSTEM
20180128707 ยท 2018-05-10
Inventors
Cpc classification
A61J1/165
HUMAN NECESSITIES
A61J1/1468
HUMAN NECESSITIES
International classification
Abstract
The leak test for a flexible pouch specifically designed to contain a biopharmaceutical fluid includes the following steps: the flexible pouch is sandwiched between two plates which have an internal surface able to allow gas which escape from a hole on the flexible pouch flowing out of an external surface of the flexible pouch, a gas is introduced within the flexible pouch, and the pressure within the flexible pouch is measured.
Claims
1. Leak test for a flexible pouch specifically designed to contain a biopharmaceutical fluid characterized in that it comprises the following steps: the flexible pouch is sandwiched between two plates which have an internal surface able to allow gas which escape from a hole on the flexible pouch flowing out of an external surface of the flexible pouch, a gas is introduced within the flexible pouch, and the pressure within the flexible pouch is measured.
2. Leak test according to claim 1, wherein two frames are fixed to each other such that they surround the two plates.
3. Leak test according to claim 1, wherein after the gas has been introduced within the flexible pouch, a pressure change is measured in the flexible pouch during a predetermined duration.
4. Leak test according to claim 1, wherein an expansion of the flexible pouch and the two plates is limited by two compressing bodies, in a direction perpendicular to a main plane of the two plates.
5. Leak test according claim 4, wherein a dimension, in the direction perpendicular to the main plane of the two plates, between two respective internal surfaces of the two compressing bodies is between 5 millimeters and 15 millimeters.
6. Leak test according to claim 4, wherein the two compressing bodies are respectively in touch with a portion of the part of the two plates which is in touch with the flexible pouch.
7. Leak test according to claim 6, wherein the portion is 70% or 80% or 90% or 100%.
8. Leak test according to claim 1, wherein at least one of the two plates has an internal surface which is rough or corrugated.
9. Leak test according to claim 1, wherein at least one of the two plates have an internal surface which comprises a fumed silica coating.
10. Leak test according to claim 1, wherein at least one of the two plates has an internal surface which is porous.
11. Leak test according to claim 1, wherein at least one of the two plates has an internal surface which comprises a porous fleece material.
12. Leak test according to claim 2, wherein after the gas has been introduced within the flexible pouch, a pressure change is measured in the flexible pouch during a predetermined duration.
13. Leak test according to claim 2, wherein an expansion of the flexible pouch and the two plates is limited by two compressing bodies, in a direction perpendicular to a main plane of the two plates.
14. Leak test according to claim 5, wherein the two compressing bodies are respectively in touch with a portion of the part of the two plates which is in touch with the flexible pouch.
15. Leak test according to claim 2, wherein at least one of the two plates has an internal surface which is rough or corrugated.
16. Leak test according to claim 2, wherein at least one of the two plates have an internal surface which comprises a fumed silica coating.
17. Leak test according to claim 2, wherein at least one of the two plates has an internal surface which is porous.
18. Leak test according to claim 2, wherein at least one of the two plates has an internal surface which comprises a porous fleece material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0109] The accompanying drawings illustrate an embodiment of the invention and, together with a general description of the invention given above, and the detailed description of the embodiments given below, serve to explain the principles of the invention.
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DETAILED DESCRIPTION OF THE INVENTION
[0125] Protecting Body
[0126]
[0127] The first system 10 comprises a protecting body 12, a flexible pouch 14 and two hoses 16 connected to the flexible pouch 14. The protecting body 12 and the flexible pouch 14 comprise a longitudinal direction (X) and a transversal direction (Y). The protecting body 12 and the flexible pouch 14 comprise longitudinal and transversal sides.
[0128] The flexible pouch 14 is substantially planar, has a substantially rectangular shape, and extends in a main plane (XY) which is here the horizontal plane. The flexible pouch 14 is specifically designed to be able to contain up to 100 liters of the biopharmaceutical fluid. The two hoses 16 are connected to a front longitudinal edge 14A of the flexible pouch 14. An opposite longitudinal edge of the flexible pouch 14 to the front longitudinal edge 14A is a rear longitudinal edge 14B.
[0129] As one can see on
[0130] The protecting body 12 comprises two substantially planar plates 12A, 12B. The planar plates 12A, 12B extend also in a plane parallel to the main plane (XY). The plate 12A forms a lower surface and the plate 12B forms an upper surface, with respect to a vertical axis (Z).
[0131] The two hoses 16 are connected to the flexible pouch 14 on the front longitudinal side of the protecting body 12, each extends along one transversal side of the protecting body 12, and each comprises a connector 17. The connectors 17 make it possible to fluidly connect the flexible pouch 14 to another element, for example a tank. The longitudinal rear side of the protecting body extends between the two connectors 17.
[0132] As can be seen on
[0133] As illustrated on
[0134] Thus, each of the two plates 12A, 12B has a substantially rectangular shape with two cut-outs respectively on one corner.
[0135] As shown on
[0136] The two plates 12A, 12B are more rigid than the flexible pouch 14. Consequently, when the two plates 12A, 12B sandwich the flexible pouch 14, they constrain the flexible pouch 14. Thus, the protective body 12 and the flexible pouch 12 are substantially planar.
[0137] As illustrated on
[0138] The two plates 12A, 12B are identical and symmetrically face each other, with respect to the main plane (XY). Moreover, they are removably fixed to each other by an attachment system 18 that can be specifically seen on
[0139] The attachment system 18 comprises a plurality of snap buttons 20. As can be seen on
[0140] In this embodiment, the protecting body 12 comprises snap buttons 20 on transversal and longitudinal sides. As one can see on
[0141] Furthermore, the protecting body 12 comprises an assembly 22 for holding the two hoses 16 which is specifically illustrated on
[0142] As shown on
[0143] As shown in
[0144] Thus, each hose 16 is hold by the assembly 22 for holding the hose 16 along the front longitudinal side 14A and one transversal side of the flexible pouch 14.
[0145] The protecting body 12 also comprises a handle system 32 to allow a user to carry easily the first system 10 for containing a biopharmaceutical fluid.
[0146] As depicted on
[0147] The two plates 12A, 12B are rigid enough to constrain the shape of the flexible pouch 14 such that the first system 10 for containing the biopharmaceutical fluid occupies a minimum volume. This is particularly advantageous for storage or shipping. For example, on
[0148] However, the two plates 12A, 12B are also flexible enough to allow the protective body 12 to have a thickness in a central area greater than in a circumferential area. The latter comprises the longitudinal and transversal sides. Thus, when the biopharmaceutical fluid is frozen, the central area of the flexible pouch is slightly curved. Hence, a dimension on the longitudinal direction (X) of the protecting body 12 slightly decreases. In this case, the biopharmaceutical fluid slightly constrains the two plates 12A, 12B.
[0149] Protecting Package
[0150] A second system 110 for containing the biopharmaceutical fluid will now be described in reference to
[0151] The second system 110 comprises a first system 10 as above described. The first system 10 comprises the two plates 12A, 12B and the flexible pouch 14, comprising the biopharmaceutical fluid, sandwiched between the two plates 12A, 12B. Moreover, the second system 110 also comprises a protecting package 112. The protecting package 112 comprises two frames 112A, 112B. As illustrated on among others
[0152] The frame 112A forms a lower frame and the frame 112B forms an upper frame with respect to a vertical axis (Z). Each frame 112A, 112B has a main plane (XY) which is also the main plane of the protecting body 12. The two frames 112A, 112B have a longitudinal direction (X) and a transversal direction (Y) which are the same as the ones of the protecting body 12. The two frames 112A, 112B also have a longitudinal front side 113A and a longitudinal rear side 113B and two transversal sides which link the longitudinal front side 113A and the longitudinal rear side 113B.
[0153] The two frames 112A, 112B have a peripheral area as shown on
[0154] Moreover, each frame 112A, 112B have a peripheral inner edge 114 and a peripheral outer edge 116, with respect to the opening. The peripheral inner 114 and outer 116 edges do not belong to a same plane parallel to the main plane (XY). Between these peripheral inner 114 and outer 116 edges, each frame 112A, 112B comprises a plurality of structural reinforcement bodies 118 which link the two edges and which are regularly arranged on longitudinal and transversal sides of an external surface, with respect to the flexible pouch 14, of each frame 112A, 112B. These structural reinforcement bodies 118 can be seen on the frame 112B on
[0155] The two frames 112A, 112B are fixed to each other such that they respectively surround the two plates 12A, 12B which sandwich the flexible pouch 14 as can be seen on
[0156] As illustrated on
[0157] Furthermore, as shown on
[0158] Moreover, as can be seen on
[0159] The longitudinal front side 113A and longitudinal rear side 113B comprise also a plurality of bodies 123, as can be seen on
[0160] Further, the two frames 112A, 112B are fixed to each other by an attachment system which is in this embodiment non removable. The attachment system is not in one piece with the two frames 112A, 112B. Indeed, preferably, the attachment system comprises at least one assembly comprising two complementary bodies. These complementary bodies can respectively be a male component and a female component. Preferably, the attachment system comprises a plurality of male and female components which are regularly arranged around the peripheral sides of the two frames 112A, 112B.
[0161] For instance, the assembly can comprise a snap assembly in two pieces. One piece is the male component and the other one is the female component. This assembly is advantageous since the two frames 112A, 112B can be fixed to each other by pressing the male component into the female component. Similarly, the assembly can also comprise a two pieces clip assembly wherein for instance one component is rotated with respect to the other one to lock the two frames 112A, 112B fixed to each other. The assembly can comprise a two pieces assembly wherein the male component comprises a protrusion which is complementary to a recess of the female component.
[0162] More generally, in the two pieces assembly above described, one of the male components can be arranged on the free space provided by the through hole 14C of the protecting body 12 as above described. Thus, the longitudinal axis of the male component is perpendicular to the main plane (XY) of the two frames 112A, 112B.
[0163] If the attachment system comprises a plurality of male and female components regularly arranged around the peripheral sides of the two frames 112A, 112B, the bodies 123, 122 can comprise through holes 130 to receive the male components as one can see on
[0164] The assembly can also comprise only one piece. For example, the two frames 112A, 112B can be fixed to each other by at least one rivet or preferably a plurality of rivets. One of the rivet can be arranged on the free space provided by the through hole 14C of the protecting body 12 as above described. Thus, the longitudinal axis of the rivet is perpendicular to the main plane (XY) of the two frames 112A, 112B. The rivets can also be arranged on the through holes 130.
[0165] Optionally, the attachment system can be removable and comprises for instance at least one assembly comprising two complementary bodies such as a screw/nut assembly. However, the nut can also be in one piece with one the two frames 112A, 112B, preferably the lower frame 112A. The screw can be arranged on the free space provided by the through hole 14C of the protecting body 12 as above described. Thus, the longitudinal axis of the screw is perpendicular to the main plane (XY) of the two frames 112A, 112B. Once more, the attachment system can comprise a plurality of screw/nut assemblies wherein the screws are arranged on the through holes 130.
[0166] Moreover, as depicted on
[0167] Moreover, as illustrated on
[0168] Hence, these volumes are delineated by two complementary bodies 122 or 123 respectively carried by the two frames 112A, 112B.
[0169] Furthermore, several systems 100 can be stacked one on each other even if the flexible pouch 14 is filled with biopharmaceutical fluid. Indeed, as one can see on
[0170] In this embodiment, the two frames 112A, 112B comprise high-density polyethylene (HDPE). So, these frames 112A, 112B are particularly suitable for freezing of the biopharmaceutical fluid. The two frames 112A, 112B, could also comprise polyethylene terephthalate (PET) and be particularly suitable for shipping of the biopharmaceutical fluid.
[0171] Method of Manufacturing, Filling and Draining
[0172] A method for manufacturing the first system 10 for containing a biopharmaceutical fluid will now be described in reference to
[0173] Firstly, the flexible pouch 14 is arranged on the substantially planar plate 12A which forms the lower surface of the protective body 12.
[0174] Then, the substantially planar plate 12B, which forms an upper surface of the protecting body 12, is attached to the plate 12A by means of the attachment system 18. The flexible pouch 14 is consequently sandwiched between the two plates 12A, 12B as illustrated on
[0175] Then, the system 10 is sterilized, preferably by means of gamma radiations. Alternatively, the two plates 12A, 12B and the flexible pouch 14 are sterilized separately before the system 10 is assembled.
[0176] The system 10 is manufactured.
[0177] A method for manufacturing the second system 100 comprises the above mentioned steps except the step about sterilization.
[0178] Then, the two frames 112A, 112B are arranged around the two plates 12A, 12B. The two frames 112A, 112B are fixed to each other such that they surround the two plates 12A, 12B and consequently the flexible pouch 14. Thus, the upper frame 112A surrounds the plate 12A which forms the upper surface and the lower frame 112B surrounds the plate 12B which forms the lower surface.
[0179] Once the second system 100 is manufactured, it is sterilized preferably by means of gamma radiations.
[0180] After the first system 10 or the second system 100 for containing the biopharmaceutical fluid is manufactured, the flexible pouch 14 is progressively filled with the biopharmaceutical fluid. Thus, the protecting body 12 has a thickness in the central area which becomes progressively greater than in the circumferential area, in reference to the main plane (XY). Then, if the biopharmaceutical fluid is frozen, as described above, the thickness, in the central area of the protecting body 12, is still progressively greater than in a circumferential area, in reference to the main plane (XY).
[0181] Similarly, to drain the first system 10 or the second system 100 containing the biopharmaceutical fluid, the flexible pouch 14 is progressively emptied with the biopharmaceutical fluid. the thickness of the protecting body 12 in the central area progressively decreases until the protecting body is substantially planar.
[0182] If the biopharmaceutical fluid is frozen, before draining, it is thawed. Thus, progressively, the thickness of the protecting body 12 in the central area also progressively decreases until the protecting body 12 is substantially planar.
[0183] Leak Test Methods
[0184] With respect to
[0185] As shown schematically, the flexible pouch 14 is sandwiched between two plates 40, 42, which have an internal surface which is corrugated. Thus, external surfaces of the flexible pouch 14 are in touch with the corrugated internal surfaces of the two plates 40, 42.
[0186] Then, as illustrated by the arrows, a gas is introduced into the flexible pouch 14 by means of a pump 44 linked to an inlet of the flexible pouch 14 by means of a hose 46.
[0187] Then, after the gas has been introduced within the flexible pouch 14 such that the flexible pouch 14 is pressurized at a pressure value, the inlet of the flexible pouch 14 is closed. The pressure within the flexible pouch 14 is measured. Since, the internal surfaces of the two plates 40, 42 are rough, if there is a leak caused by a through hole on the flexible pouch 14, the gas can escape from the flexible pouch 14 and flow out of the external surface of the flexible pouch 14.
[0188] Thus, a pressure drop is measured. An operator can define a pressure drop threshold. If the measured drop pressure is above this threshold, the flexible pouch is regarded as being defective. Otherwise, the flexible pouch is regarded as being non-defective.
[0189] Indeed, since the internal surfaces of the two plates 40, 42 are rough, the flexible pouch 14 does not adhere to them. Hence, the gas introduced into the flexible pouch 14 can escape from it if the flexible pouch 14 is punctured.
[0190] Alternatively, the two plates 40, 42 have an internal surface which comprise a porous material, for example a porous fleece material. The fleece can be for example a non-woven fabric which comprises wires of polypropylene, the thickness of the fleece is about 440 micrometers. The fleece can also be a woven fabric which comprises wires of stainless steel whose diameter is less than 90 micrometers. The fleece can be for example non-woven fabric which comprises wires of polyamide whose diameter is less than 100 micrometers. The internal surfaces of the two plates 40, 42 can also comprise a fumed silica coating which provides a rough surface.
[0191] The above mentioned internal surfaces of the two plates 40, 42 are able to allow a gas which escape from a hole on the flexible pouch 14 flowing between the internal surface of at least one plate 40, 42 and an external surface of the flexible pouch 14.
[0192] The two plates 40, 42 can be the two plates 12A, 12B of the protecting body 12. Hence, the internal surfaces of the two plates 12A, 12B have the features of the two plates 40, 42. The leak test method can also be performed with the second system 100 as above described. Hence, the two plates 12A, 12B are surrounded by the two frames 112A, 112B as above described.
[0193] Another method for detecting a leak in the flexible pouch 14 will be now described with respect to
[0194] The test is performed on the second system 100 but could also be performed on system 10. Only the difference with the first method will be described.
[0195] As one can see on
[0196] Then, as illustrated on
[0197] Next, as previously described, a gas is introduced within the flexible pouch 14 and after the gas has been introduced, the pressure is measured within the flexible pouch 14 during a predetermined duration.
[0198] An operator can define a pressure drop threshold. If the measured drop pressure is above this threshold, the flexible pouch is regarded as being defective and a leak is considered as being detected. Otherwise, the flexible pouch is regarded as being non-defective.
[0199] For example, for if the above mentioned dimension between the two compressing bodies 132, 134 is 7 millimeters and the predetermined duration is 300 seconds, the pressure drop threshold is 3.1 mbar. If the above mentioned dimension between the two compressing bodies 132, 134 is 5 millimeters and the time during which the gas in introduced into the flexible pouch is 600 seconds, the pressure drop threshold is 7.2 mbar.
[0200] When the leak test method is performed with the system 100, as illustrated on
[0201] When leak test method is performed with the system 10, as illustrated on
[0202] Of course, the invention in its broadest aspects is not limited to the specific detail above shown and described. Consequently, departures may be made from the details described herein without departing from the spirit and scope of the invention.
[0203] In this embodiment, the flexible pouch 14 is specifically designed to be able to contain up to 100 liters of biopharmaceutical fluid. However, the flexible pouch 14 can have a maximum volume capacity which is different, for example of 10 liters or 50 liters. The strength of the attachment system 18 can thus be adjusted by varying the number of snap buttons 20.
[0204] The attachment system 18 can also be a removable attachment system 18. Thus, an operator can, if needed, detach the two plates 12A, 12B from each other.
[0205] In this embodiment, the two plates 12A, 12B are opaque. More broadly, only one of the two plates 12A, 12B can be opaque. Alternatively, at least one of the two plates 12A, 12B can be transparent. The two plates 12A, 12B can be made of plastic material, and more particularly one and/or more of copolyester or polyethylene terephthalate.
[0206] Moreover, to increase the adherence between the two plates 12A, 12B of the protective body 12, the internal surfaces of the two plates 12A, 12B can be coated with an adhesive.