FILTER DEVICE HAVING A FLOW FITTING

20200276539 ยท 2020-09-03

    Inventors

    Cpc classification

    International classification

    Abstract

    A filter device (10), in particular for a tangential flow filtration device, has at least one fluid inlet (22), at least one retentate outlet (24) and at least one permeate outlet (26). The filter device (10) further has at least one membrane (16) which separates a retentate section (18) from a permeate section (20) in the filter device (10). Arranged in the retentate section (18) and/or in the permeate section (20) is at least one flow fitting (28) which is not formed from a woven or non-woven fabric, but from a structured plastic part, silicone part, metal part or ceramic part.

    Claims

    1. A filter device for a tangential flow filtration device, comprising at least one fluid inlet, at least one retentate outlet and at least one permeate outlet kW, as well as at least one membrane which separates a retentate section from a permeate section in the filter device, at least one flow fitting being arranged in the retentate section and/or in the permeate section characterized in that the flow fitting is formed from a structured plastic part, silicone part, metal part or ceramic part.

    2. The filter device according to claim 1, characterized in that the at least one flow fitting kW is formed as a mat with structures that are raised relative to the mat.

    3. The filter device according to claim 2, characterized in that the mat has at least one of the following structures: cuboid structure, cube structure with cubes of equal height, cube structure with cubes of different height, semicircular structure, hemispherical structure, herringbone structure, wave structure, cone zigzag structure or sinusoidal structure.

    4. The filter device according to claim 1, characterized in that the at least one flow fitting is an injection molded part.

    5. The filter device according to claim 1, characterized in that the at least one flow fitting is a separate component of the filter device.

    6. The filter device according to claim 1, characterized in that the at least one flow fitting is formed integrally with another component of the filter device.

    7. The filter device according to claim 1, characterized in that the at least one flow fitting forms a flow channel in the retentate section and/or in the permeate section.

    8. The filter device according to claim 1, characterized in that the at least one flow fitting comprises an integrated sealing contour.

    9. The filter device according to claim 1, characterized in that at least one of the fluid inlet, the retentate outlet and the permeate outlet is formed in a housing of the filter device.

    10. The filter device according to claim 1, characterized in that a plurality of filter cells each having a respective retentate section and a respective permeate section separated by a membrane are stacked one on top of the other, at least one flow fitting being arranged in each retentate section and/or in each permeate section of the filter cell.

    11. The filter device according to claim 10, characterized in that the flow fittings have passages for forming connecting channels in the filter device.

    12. The filter device according to claim 1, characterized in that the filter device is realized as a prefabricated module, in particular in the form of a filter cartridge or a spiral wound module.

    13. The filter device according to claim 12, characterized in that the filter device is realized as a prefabricated module in the form of a filter cartridge or a spiral-wound module.

    14. The filter device according claim 6, characterized in that the at least one flow fitting is formed integrally with a housing component.

    Description

    [0019] 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:

    [0020] FIG. 1 shows a sectional side view of a filter device according to the invention with a membrane and two flow fittings;

    [0021] FIG. 2 shows a top view of a flow fitting formed as part of a housing component of the filter device of FIG. 1;

    [0022] FIG. 3 shows a top view of a flow fitting with an integrated sealing contour;

    [0023] FIGS. 4a to 4i show various structures of flow fittings;

    [0024] FIG. 5 shows a sectional side view of a filter device according to the invention with a plurality of membranes and flow fittings without a housing;

    [0025] FIG. 6 shows a top view of a flow fitting of the filter device of FIG. 5;

    [0026] FIG. 7 shows a detail of a flow fitting made from a fabric according to the prior art;

    [0027] FIG. 8 shows a chart on the filtration performance when various flow fittings according to the invention are used, in comparison to the prior art; and

    [0028] FIG. 9 shows a chart on the pressure drop when various flow fittings according to the invention are used, in comparison to the prior art.

    [0029] FIG. 1 shows, by way of example, the construction of a filter device 10 configured as a module, here in the form of a filter cartridge, which is intended for use in a tangential flow filtration device. A membrane 16 is clamped in a housing, which here is composed of two housing components (top plate and bottom plate) 12, 14. The membrane 16 separates a retentate section 18 from a permeate section 20 in the filter device 10. A fluid inlet 22, which opens into the retentate section 18, is formed in the housing. Moreover, two separate fluid outlets 24, 26 are formed in the housing. A retentate outlet 24 leads out of the retentate section 18, while the permeate outlet 26 is an exit from the permeate section 20.

    [0030] In the exemplary embodiment illustrated in FIG. 1, flow fittings 28 are inserted in both the retentate section 18 and the permeate section 20 of the filter device 10. The flow fittings 28 form a respective flow channel on both sides of the membrane 16. In this way, a first flow fitting 28 forms a retentate channel in the retentate section 18, which leads from the fluid inlet 22 over the membrane 16 to the retentate outlet 24, and a second flow fitting 28 forms a retentate channel in the permeate section 20, which leads below the membrane 16 to the permeate outlet 26.

    [0031] The flow fittings 28 may each be inserted as a separate component into the housing of the filter device 10, or, as shown in FIG. 2, may be constructed as an integral part of the housing or of a housing component 12, 14.

    [0032] FIG. 3 shows a special embodiment of the flow fitting 28 with an integrated sealing contour 30, i.e. the flow fitting 28 was manufactured together with the sealing contour 30 in the same production process. The sealing contour 30, which completely surrounds the flow fitting 28 on the outside, takes over the sealing of the filter device 10.

    [0033] FIGS. 4a to 4i show details of differently structured flow fittings 28 by way of example. FIG. 4a shows a cuboid structure, FIG. 4b a cube structure with cubes of equal height, FIG. 4c a cube structure with cubes of different heights, FIG. 4d a semicircular structure, FIG. 4e a hemispherical structure, FIG. 4f a herringbone structure, FIG. 4g a wave structure, FIG. 4h a cone zigzag structure, and FIG. 4i a sinusoidal structure. The flow fittings 28 may be formed as mats with raised structural elements, as shown in the individual Figures. Specific structural parameters of the flow fittings 28, such as shape, height, width and spacing of the structural elements as well as the distance thereof from the filter medium, may vary. Furthermore, different structures may be combined with each other.

    [0034] The manufacture of the flow fittings 28 is preferably carried out in an injection molding process using a suitable plastic material or, preferably, silicone. A configuration using metal or ceramics is also possible.

    [0035] Basically, it is possible to construct the flow fittings 28 in one piece with other components, in particular with housing components 12, 14 of the filter device 10 (cf. FIG. 2). If, for example, the housing is formed from a particular material such as, e.g., PPTA, the flow fitting that is incorporated also consists of this material.

    [0036] Alternatively, the flow fittings 28 may be subsequently applied onto other components of the filter device 10 and connected to them. Well-established additive production processes, such as multi-component injection molding, are suitable for this purpose.

    [0037] FIG. 5 shows a multi-layer structure for a filter device 10. A plurality of filter cells 32, each including a membrane 16 as well as a retentate section 18 and a permeate section 20, are stacked on top of each other. The retentate section 18 and/or the permeate section 20 are provided with a flow fitting 28 and thereby constitute a retentate channel and/or a permeate channel, respectively. At least the inner flow fittings 28 each separate a retentate channel from a permeate channel of a neighboring filter cell.

    [0038] As shown in FIG. 6, the flow fitting 28 may have additional passages 34, 36, 38, 40, which in the filter device 10 constitute parts of connecting channels in the filter device 10 for the supply and discharge of the liquid flows.

    [0039] In the following, two of the above described flow fittings 28 having different structures and a flow fitting from the prior art are compared with each other as regards the filtration performance. FIG. 7 shows such a conventional prior art flow fitting formed from a woven fabric.

    [0040] For the comparison, a filter device 10 having a membrane 16 with an effective filter area of 10 cm.sup.2 was inserted into a tangential flow filtration device. The filtration performance was measured with the retentate section 18 equipped as follows: (1) no flow fitting (empty channel, 450 m in height) as a reference; (2) flow fitting made from a woven fabric according to the prior art; (3) flow fitting 28 having a herringbone structure (cf. FIG. 4f); and (4) flow fitting 28 having a sinusoidal structure (cf. FIG. 4i). In the permeate section 20, the flow fitting was identical for all measurements. The filtration parameters were also the same for all measurements. A flow rate of 10 ml/min over the retentate channel was applied in each case. The transmembrane pressure was 2.2 bar. The filtration solution used was a solution with 50 g/l or 10 g/l bovine serum albumin in 10 mM phosphate buffer. The permeate flow was measured for 5 minutes.

    [0041] FIG. 8 shows a chart of the amount of filtration vs. time for the different measurement setups. The left bars show the result for the solution concentration of 50 g/l and the right bars show the result for the solution concentration of 10 g/l. For both solution concentrations the flow fitting 28 with the sinusoidal structure (4) exhibits the highest filtration performance. While the filtration performance of the flow fitting 28 having the herringbone structure (3) is slightly lower than that of the flow fitting made from woven fabric according to the prior art, it is still higher than in the reference measurement without a flow fitting in the retentate section 18.

    [0042] Furthermore, the pressure drop was determined for each measurement setup. To this end, a 78% glycerin/water mixture having a viscosity of approx. 50 mPas at 20 C. was pumped through the retentate channel at a volume flow rate of 3 ml/min. This viscosity also corresponds to protein solutions of higher concentrations (for example, 150-300 g/l of an antibody-containing solution).

    [0043] FIG. 9 shows a chart of the pressure drop for the different measurement setups. The result is that the pressure drop of the flow fittings 28 (3) and (4) is considerably lower compared to the flow fitting made from a woven fabric according to the prior art.

    [0044] Looking at both tests, it becomes apparent that in particular by using the flow fitting 28 with the sinusoidal structure, a high filtration performance in combination with a low pressure drop can be achieved.

    [0045] The flow fittings 28 presented here are not only suitable for use in filter cartridges, but also in spiral-wound modules. The flow fittings 28 and the filter devices 10 with such flow fittings 28 may be employed not only in tangential flow filtration, but also in other filtration processes, in particular in the biopharmaceutical industry, but also in the food industry.

    LIST OF REFERENCE NUMBERS

    [0046] 10 filter device [0047] 12 housing component [0048] 14 housing component [0049] 16 membrane [0050] 18 retentate section [0051] 20 permeate section [0052] 22 fluid inlet [0053] 24 retentate outlet [0054] 26 permeate outlet [0055] 28 flow fitting [0056] 30 sealing contour [0057] 32 filter cell [0058] 34 passage [0059] 36 passage [0060] 38 passage [0061] 40 passage