FILTER ELEMENT FOR FILTER DISC COMPRISING ELEVATED RESTRICTION EDGES

20220161164 · 2022-05-26

Assignee

Inventors

Cpc classification

International classification

Abstract

In a filter element for use in a filter disc, a plurality of filter elements are arranged on a rotor shaft in a manner allowing liquid communication between the inside of the filter elements and the inside of the rotor shaft. The filter element has at least one passage in an edge structure for liquid communication between the inside of adjacent filter elements when the filter elements are assembled forming a filter disc. The passage has an elevated retention edge extending along at least one edge of the passage. Transportation of particles between filter elements in a disc filter is thereby minimized.

Claims

1. A filter element for use in a filter disc, wherein a plurality of filter elements are arranged on a rotor shaft in a manner allowing liquid communication between the inside of the filter elements and an inside of the rotor shaft, wherein each filter element has at least one passage in an edge structure for liquid communication between the inside of an adjacent filter element when the filter elements are assembled forming a filter disc, wherein the passage has an elevated retention edge extending along at least one edge of the passage.

2. The filter element according to claim 1, wherein the elevated retention edge extends inwards towards the inside of the filter element.

3. The filter element according to claim 1, wherein the elevated retention edge extends into the inside of the filter element in a rotation direction of the filter disc.

4. The filter element according to claim 1, wherein the elevated retention edge is tilted inwards towards the passage.

5. The filter element according to claim 1, wherein the elevated retention edge is a separate insert adapted to fit in the passage.

6. The filter element according to claim 1, wherein the elevated retention edge comprises openings to reduce liquid disturbance.

7. The filter element according to claim 1, wherein the elevated retention edge extends along the edges of multiple passages.

8. An insert for a passage in the filter element according to claim 1, wherein the elevated retention edge is part of the insert and the insert is a separate part being adapted to fit in the passage of a filter element.

9. The insert according to claim 8, wherein the insert further comprises attachment means for securing the insert in the passage.

10. The filter element according to claim 2, wherein the elevated retention edge extends into the inside of the filter element in a rotation direction of the filter disc.

11. The filter element according to claim 2, wherein the elevated retention edge is tilted inwards towards the passage.

12. The filter element according to claim 3, wherein the elevated retention edge is tilted inwards towards the passage.

13. The filter element according to claim 2, wherein the elevated retention edge is a separate insert adapted to fit in the passage.

14. The filter element according to claim 3, wherein the elevated retention edge is a separate insert adapted to fit in the passage.

15. The filter element according to claim 4, wherein the elevated retention edge is a separate insert adapted to fit in the passage.

16. The filter element according to claim 2, wherein the elevated retention edge comprises openings to reduce liquid disturbance.

17. The filter element according to claim 3, wherein the elevated retention edge comprises openings to reduce liquid disturbance.

18. The filter element according to claim 4, wherein the elevated retention edge comprises openings to reduce liquid disturbance.

19. The filter element according to claim 5, wherein the elevated retention edge comprises openings to reduce liquid disturbance.

20. The filter element according to claim 2, wherein the elevated retention edge extends along the edges of multiple passages.

Description

BRIEF DESCRIPTION OF DRAWINGS

[0023] The invention is now described, by way of example, with reference to the accompanying drawings, in which:

[0024] FIG. 1 illustrates a filter assembly comprising multiple filter discs with filter elements.

[0025] FIG. 2 illustrates one embodiment of a filter element comprising elevated retention edges according to the invention.

[0026] FIG. 3 illustrates one embodiment of a filter element with inserts comprising elevated retention edges according to the invention.

[0027] FIG. 4 illustrates a prior art solution of a disc filter.

[0028] FIG. 5 illustrates how elevated retention edges of a filter element direct particles into the rotary shaft of a disc filter according to the invention.

[0029] FIG. 6 illustrates another embodiment of a filter element according to the invention.

[0030] FIG. 7 illustrates an embodiment of an insert for a filter element passage in a filter element according to the invention.

[0031] FIG. 8 illustrates an embodiment of an insert for a filter element passage.

[0032] FIG. 9 illustrates one embodiment of an edge structure and framework for a filter element with passages comprising elevated retention edges.

[0033] FIG. 10 illustrates another embodiment of a filter element comprising elevated retention edges according to the invention.

DESCRIPTION OF EMBODIMENTS

[0034] In the following, a detailed description of the different embodiments of the solution is disclosed under reference to the accompanying drawings. All examples herein should be seen as part of the general description and are therefore possible to combine in any way of general terms. Individual features of the various embodiments and aspects may be combined or exchanged unless such combination or exchange is clearly contradictory to the overall function of the filter disc and/or filter elements.

[0035] Briefly described the solution relates to a filter element for use in a filter disc. A plurality of filter elements is arranged on a rotor shaft in a manner allowing liquid communication between the inside of the filter elements and the inside of the rotor shaft. The filter elements are further adapted to allow liquid communication between adjacent filter elements via passages in edge structures of said filter elements. The passages have elevated retention edges to reduce the number of particles that passes through the passages.

[0036] FIG. 1 illustrates a disc filter 1 comprising a plurality of filter discs 25 arranged on a rotor shaft 3. The plurality of filter discs 25 together creates a disc filter 1 being the assembled structure used for filtering liquids. The filter discs 25 each comprises multiple filter elements 2 that are arranged around the rotor shaft 3. Normally, each filter element 2 is attached to the rotor shaft 3 via some form of attachment means 18. However, the attachment looks different depending on the model of disc filter. The number of filter elements 2 in each filter disc 25 as illustrated in FIG. 1 is only an example and any number of filter elements 2 can be arranged on the rotor shaft 3 creating a filter disc 25. However, it should be noted that a filter disc 25 based on a filter element 2 according to the present solution comprise at least two filter elements 2.

[0037] FIG. 1 further illustrates the rotor shaft 3 with openings 9 for liquid communication between filter elements 2 and rotor shaft 3. The rotor shaft 3 is any form of drum or hollow shaft that can host liquid and is illustrated for example in FIG. 1. When liquid is filtered from the inside and out the rotor shaft 3 first receives the liquid and the liquid is thereafter passed through the openings 9 into filter elements 2. In different embodiments different numbers of openings 9 could be adapted for liquid connection between a filter element 2 and the rotor shaft 3. The number of openings 9 may in different embodiments be for example one, two, or three openings 9 per filter element 2. However, any number of opening 9 suitable for the solution could be used. The rotor shaft 3 is at least in part hollow and thereby has an inside 5 wherein liquid can flow.

[0038] The filter elements 2 can be fastened in different ways to the rotor shaft 3, for example in one embodiment via a long bolt fastened into a threaded opening 20 in the shaft. In one embodiment a fastening means 18, such as a nut or bolt, is further arranged in the opposite end of the long bolt to secure the filter element 2.

[0039] According to another embodiment multiple bolts are used to attach each filter element 2. According to some embodiments a gasket is arranged between the filter element 2 and the rotor shaft 3.

[0040] With reference to FIGS. 2 and 3, a filter element 2 is according to one embodiment a single component comprising a framework 6, a filter cloth 7 (not shown in FIGS. 2 and 3), two edge structures 22 and in in this embodiment a central edge structure 22a, and a number of passages 21a, 21b, 21c, 21d, 21e, and 21f adapted to allow liquid connections to adjacent filter elements 2 and if a central edge structure 22a exists also allow liquid connection within a filter element 2. In some embodiments the central edge structure 22a comprises no passages and instead comprises a single open area, as shown in the embodiment of FIG. 10. The inside 4 of a filter element 2 is a compartment created by the space between two edge structures 22 of a filter element 2 independently if said edge structures 22 are part of the same unit as illustrated in FIG. 3 or if it is comprised by two units as illustrated in FIG. 9 wherein the unit only has one edge structure 22. The framework 6 is covered with the filtration cloth (not shown) covering the open areas in the framework 6 and enclosing the inside 4.

[0041] The embodiment as shown in FIG. 2 has elevated retention edges 30a, 30b both in the passages 21a, 21b that are in liquid communication with an adjacent filter element being subsequent in a flow direction of liquid and elevated retention edges 30c, 30d in the passages 21c, 21d in a center member 22a of the filter element 2. The elevated retention edges 30a-d could be either produced as part of the framework 6 or as a separate part. In one embodiment the elevated retention edges each surround the passages, in another embodiment an elevated retention edge extends along the edge of multiple passages 21. In yet another embodiment the elevated retention edges extend along the entire length of an edge structure 22. In yet another embodiment the elevated retention edges extend along multiple passages 21. In one embodiment the elevated retention edges extend in the extension direction of the edge structure, preferably as one retention edge at each side of the passages 21.

[0042] FIG. 3 illustrates an embodiment wherein the elevated retention edges are part of an insert 31 being a separate part adapted to fit in the passages 21a-f of filter element 2. The elevated retention edges can thus be retrofitted to already existing filter elements 2.

[0043] FIG. 4 is an overall view that illustrates a prior art solution without any elevated retention edges. For illustrative purposes, only one filter element 2 is shown but the person skilled in the art understands that the filter element 2 is part of a filter disc 25 as illustrated for example in FIG. 1. The rotor shaft 3 rotates in a rotation direction R as illustrated in FIG. 2. The water level (or level of liquid, not shown) is such that the filter element 2 is submerged during part of the rotary shaft 3 revolution, in the position as illustrated in FIG. 2 the filter element 2 is emerging through the surface of the liquid. Particles 35 fall both into the rotary shaft 3 where they are collected by a sludge collector and into the next filter element 2. In FIG. 2, the next filter element 2 is actually another inside 4 of the same filter element 2, as in the embodiment shown in FIGS. 2 and 3. However, as understood by the person skilled in the art, the filter elements 2 can have different shapes and forms within the scope of the solution as disclosed herein.

[0044] FIG. 5 illustrates an embodiment of the present solution wherein elevated retention edges 30 as disclosed herein have been implemented to the prior art solution as illustrated in FIG. 4. The elevated retention edges 30 are arranged in a center member of the filter element 2. As can be seen, the number of particles 35 passing through the passages 21 is significantly reduced. Instead, the particles 35 are restricted by the elevated retention edges 30 and slide down into the rotary shaft 3 wherein they are collected and separated from the filtration liquid.

[0045] FIG. 6 illustrates another embodiment of a filter element 2, wherein elevated retention edges 30a, 30b only are arranged for the passages 21a, 21b that are in liquid communication with an adjacent filter element being subsequent in a flow direction of liquid.

[0046] FIG. 7 illustrates one embodiment of an insert 31 adapted to fit in a passage. The insert 31 has elevated edges 30 arranged at an angle.

[0047] FIG. 8 illustrates another embodiment of an insert 31 adapted to fit in a passage 21, wherein the insert 31 comprises an aperture 33 for attachment means 18, such as a long bolt. It shall be noted that the appended figures only disclose examples of possible embodiments of the solution as disclosed herein.

[0048] FIG. 9 illustrates a module 36 that, when put together with another module 36, creates a filter element. In this embodiment, the space delimited by two modules is covered by two filter cloth frames (not shown), one on each side of the space, thereby creating the filter element. Thereby, in the embodiment as illustrated in FIG. 9, the edge structure is arranged as a center member 22a. As understood by the person skilled in the art the filter elements may have different shape and form within the scope of the solution as disclosed herein.

[0049] FIG. 10 illustrates a filter element 2 wherein elevated retention edges 30a, 30b, 30c, and 30d are provided in passages 21a, 21b, 21c, and 21d, respectively, only for the passages that are in liquid communication with an adjacent filter element being subsequent in a flow direction of liquid. This filter element has one single inside 4 since the central structure 22a is essentially an opening, allowing free flow of water within the space defined by the edge structure 22 and the filter cloths (not shown) attached thereto. Thus, this design is similar to the one shown in the overall view of FIG. 1.