Distribution plate for crossflow filtration cassettes
09718028 · 2017-08-01
Assignee
Inventors
- Karl Ekstrom (Uppsala, SE)
- Klaus Gebauer (Uppsala, SE)
- Hakan Lundstrom (Uppsala, SE)
- Patrik Akerstrom (Uppsala, SE)
Cpc classification
B01D2313/54
PERFORMING OPERATIONS; TRANSPORTING
Y10T408/03
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
The invention discloses a distribution plate for supplying crossflow filtration cassettes, which comprises a surface, two opposite end walls, two opposite side walls, a feed channel in fluid communication with a feed inlet port and with a plurality of feed apertures; a retentate channel in fluid communication with a retentate outlet port, and with a plurality of retentate apertures; and a permeate channel in fluid communication with two permeate outlet ports and with a plurality of permeate apertures; wherein the feed channel, the retentate channel and the permeate channel extend in a direction essentially parallel with one or both side walls; wherein the feed apertures are grouped at a first area on the surface, the retentate apertures are grouped at a second area on the surface; wherein the permeate apertures are located at the first and/or the second area; and wherein a plurality of permeate connector channels extend inside the plate from at least one region of the permeate channel, adjacent the permeate outlet ports and the permeate connector channels provide fluidic communication between the permeate apertures and the permeate channel.
Claims
1. A distribution plate for supplying crossflow filtration cassettes, the plate comprising a front surface and a rear surface, two opposite end walls, two opposite side walls, a feed channel in fluid communication with a feed inlet port and with a plurality of feed apertures which open into the front surface; a retentate channel in fluid communication with a retentate outlet port, and with a plurality of retentate apertures which open into the front surface; and a permeate channel in fluid communication with two permeate outlet ports located on opposite end walls and with a plurality of permeate apertures which open into the front surface; wherein said feed channel, said retentate channel and said permeate channel extend in a direction essentially parallel with one or both side walls; wherein the distribution plate is upstanding with said front surface, said rear surface and side walls vertically oriented; wherein said feed apertures are aligned along a first straight line on the front surface, said retentate apertures are aligned along a second straight line on the front surface; wherein said permeate apertures are aligned along at least one of the first and the second straight lines; and the plate further comprising a plurality of permeate connector channels, each permeate connector channel extending inside the plate from a region of the permeate channel adjacent the permeate outlet ports to one of the plurality of permeate apertures, wherein said permeate connector channels provide fluidic communication between the permeate apertures and the permeate channel.
2. The distribution plate of claim 1, wherein said feed inlet port, said retentate outlet port and said permeate outlet ports are located on the end walls.
3. The distribution plate of claim 1, wherein the permeate connector channels are acutely angled towards the permeate channel.
4. The distribution plate of claim 1, wherein said permeate connector channels each comprise two legs: an aperture leg essentially perpendicular to the front surface and ending in one of said plurality of permeate apertures, and a connector leg, connecting the aperture leg with the permeate channel.
5. The distribution plate of claim 1, wherein said permeate apertures are circular.
6. The distribution plate of claim 1, wherein said feed channel, said retentate channel, said permeate channel and said permeate connector channels have essentially circular cross sections or are composed of segments having essentially circular cross sections.
7. The distribution plate of claim 1, wherein said feed channel, said retentate channel, said permeate channel and said first and second straight lines are essentially parallel.
8. The distribution plate of claim 1, wherein said feed apertures, said retentate apertures and said permeate apertures are all located on the front surface.
9. The distribution plate of claim 1, wherein the front surface and the rear surface are planar and parallel and wherein said feed apertures, said retentate apertures and said permeate apertures are located on both the front and the rear surfaces.
10. The distribution plate of claim 1, wherein the region of the permeate channel is located within a distance of two permeate channel diameters from the end walls.
11. The distribution plate of claim 1, wherein the angle between each permeate connector channel and the permeate channel is 20-80 degrees.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(6) In a first aspect illustrated by
(7) In some embodiments, the feed inlet port, the retentate outlet port and the permeate outlet ports are located on the end walls. The permeate outlet ports 9,10 can suitably be located on opposite end walls. An advantage of locating ports 9,10 on opposite end walls is that it facilitates draining and deaeration and it also facilitates the assembly of several plates in a stack of housings.
(8) In certain embodiments, the permeate connector channels 14 are acutely angled towards the permeate channel 8. The angle between each permeate connector and the permeate channel can suitably be 20-80 degrees, such as 30-70 degrees. During use with an upstanding plate the acute angles facilitate draining and deaeration. The permeate connector channels can further be acutely angled with respect to the surface 17, such as with an angle of 1-30 degrees, e.g. 5-15 degrees.
(9) In some embodiments, at least one, such as at least two of the permeate connector channels originate from each of the regions 15,16. An advantage of this is that during use with an upstanding plate, at least one or two permeate connector channels will be available for draining or deaeration—the draining occurring through the connector channel(s) near the bottom and the deaeration through the connector channel(s) near the top.
(10) In certain embodiments, the feed apertures are aligned along a first straight line 12 and the retentate apertures are aligned along a second straight line 13. The permeate apertures 11 can be aligned with the feed and/or retentate apertures along one or both of the first or second straight line. They can also be aligned with an offset, e.g. at a distance of less than 5 mm from the first or second line.
(11) In some embodiments, the permeate connector channels 14 each comprise two legs: an aperture leg 19 which is essentially perpendicular to the surface 17 and which ends in a permeate aperture; and a connector leg 20, which fluidically connects the aperture leg with the permeate channel 8. An advantage of this is that the two legs can be drilled from different directions, the connector leg from the permeate channel and the aperture leg from the surface. This has the effect that the apertures can be made circular as opposed to elongated in the prior art plates. An advantage of having circular apertures is that the circular shape allows higher flow rates. A further advantage is that cassettes typically have circular apertures and the alignment between two circular apertures provides a sanitary flow-path without dead-legs.
(12) In certain embodiments, the feed channel, the retentate channel, the permeate channel and the permeate connector channels have essentially circular cross sections or are composed of segments having essentially circular cross sections. Channels with circular cross sections provide high flow rates for a given diameter and are also advantageous from a sanitation point of view. The channel segments can e.g. be either cylindrical or frustoconical.
(13) In some embodiments, the feed channel, the retentate channel, the permeate channel and the first and second lines are essentially parallel. They can be completely parallel or they may be angled less than 20 degrees, such as less than 10 degrees, in relation to each other.
(14) In certain embodiments, the feed apertures, the retentate apertures and the permeate apertures are all located on the surface 17. If the surface 17 is a front surface, all the apertures will then be located on the same side of the plate. Such a single-faced distributor plate is easy to manufacture and handle and is useful in many different scales of processes. Single-faced distributor plates can be used e.g. in the housing shown in
(15) In some embodiments, the surface includes a front surface 17 and a rear surface 18 which are planar and parallel and wherein the feed apertures, the retentate apertures and the permeate apertures are located on both the front 17 and the rear 18 surfaces. The distributor plate will then be double-sided, which can be advantageous particularly in large scale processes where one plate can then supply a larger number of cassettes. Double-faced distributor plates can be used e.g. in the housing shown in
(16) In certain embodiments, the plate may comprise pressure sensors. These can be mounted inside any of the channels in order to monitor e.g. the transmembrane pressure during filtration. The sensors can be wireless and may communicate with a receiver or control unit via radiofrequency signals.
(17) In a second aspect, illustrated by
(18) In certain embodiments the housing further comprises at least one pneumatic or hydraulic piston affixed to the base frame to move at least one end plate towards and away from the distributor plate. The piston(s) can e.g. be attached to the support plate(s) 34;44.
(19) In some embodiments the distributor plate is upstanding with the surface and the side walls vertically oriented. The feed, retentate and permeate channels will then extend in a vertical direction and drainage and aeration can take place through them and the angled permeate connector channels.
(20) In certain embodiments the housing comprises at least one filtration cassette clamped between the distributor plate and an end plate. The cassette should have feed, retentate and permeate apertures in a pattern corresponding to the pattern of apertures on the distributor plate surface. The number of cassettes clamped between a distributor plate and an end plate can be from 1 to 20, such as 1 to 10 cassettes.
(21) In a third aspect, illustrated by
(22) In a fourth aspect, the invention discloses a method of manufacturing a distributor plate as described above. The method comprises the steps of:
(23) a) providing a solid plate body,
(24) b) drilling the feed, retentate and permeate channels in the solid plate body,
(25) c) drilling the permeate connector channels and the feed and retentate connector channels in the plate body. The solid plate body can be manufactured from metal, e.g. a corrosion resistant metal of high modulus, such as e.g. stainless steel or titanium. It can also be manufactured from plastics, in particular for smaller scale plates where lower clamping forces are required.
(26) In some embodiments, the method further comprises a step d) of mounting the feed inlet port, the retentate outlet port and the permeate outlet port(s). The ports can e.g. be mounted by welding. The welding can then be performed so that no pores are formed in the flow-path. The plate can e.g. be machined to provide a tubular protrusion around each channel opening and the ports can be butt welded on the protrusions. Alternatively, the ports can be threaded and mounted using corresponding threads located in the channel openings, optionally with sealing gaskets. An alternative to mounted ports can be that the ports are shaped integrally in the plate body at the channel openings. This can be done e.g. by machining flanges directly from the plate body.
(27) In certain embodiments, in step c) of the method, the connector legs 20 of the permeate connector channels are drilled acutely from the permeate channel in the regions 15,16 adjacent to a permeate outlet port.
(28) This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice 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 literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims. It is pointed out that any feature described in relation to one embodiment may be used also in combination with one or more features of any other of the aspects and embodiments described.