This disclosure relates to filter media constructions, filter elements formed from such media constructions, and method for constructing and filtering.
It is known to construct filter elements in a way to have straight through, or axial, flow. One example of such types of filter elements include a corrugated sheet of filter media secured to a flat or uncorrugated sheet of media. The corrugated sheet secured to the flat sheet can be rolled into a coiled construction to result in a filter element having flutes, with selected ones of the flutes being open at an upstream end and closed at a downstream end, while selected ones of the flutes are closed at the upstream end and open at the downstream end.
Sometimes, it is desirable to use filter media that cannot easily be corrugated. Either the media lacks being able to hold a corrugation shape, or it is too fragile to run through a corrugation machine. Improvements are desirable.
Filter media is provided including alternate layers of media and screen rolled into a coiled construction. Alternating ends of the roll are secured together.
In one embodiment, filter media is provided including a first layer of porous filter media having first and second opposite sides and first and second edges; the first porous screen oriented on the second side of the first layer of porous filter media, the first porous screen having first and second edges; a second layer of porous filter media having first and second opposite sides and first and second edges, the second side of the second layer of porous media oriented on the first porous screen; a first sealant securing the first layer, first screen, and second layer together adjacent to the first edges of the first layer, first screen, and second layer; a second screen oriented on the first side of the second layer, the second screen having first and second edges; and a second sealant securing the second screen and second layer adjacent to the second edges of the second screen and second layer.
In one embodiment, the first layer of porous filter media includes cellulose material, or synthetic material, or a blend thereof and includes a meltblown polymer on the second side of the first layer. The second layer of porous filter media, in one embodiment, includes cellulose material, or synthetic material, or a blend thereof and includes a meltblown polymer on the second side of the second layer.
In one embodiment, the first and second screens comprise metal or plastic.
A filter element is provided including filter media, as characterized above, being rolled into a coiled filter element. The second layer first side and second screen are secured to the first layer first side by the second sealant to form a filter element having a plurality of dirty fluid inlets between the first layer second side and second layer second side; and a plurality of clean fluid outlets between the first layer first side and the second layer first side.
In one embodiment, the first and second sealant each comprises an adhesive or urethane.
In another aspect, a method of making a filter element includes providing a media construction, as characterized above, and coiling the media construction to secure the second layer first side and second screen to the first layer first side to form a filter element having a plurality of dirty fluid inlets between the first layer second side and second layer second side; and a plurality of clean fluid outlets between the first layer first side and the second layer first side.
The media construction 10 also includes a second layer of media 22. The second layer of media 22 has first and second opposite sides 24, 26. The first side 24, in the embodiment shown, is depicted in the orientation of
A first porous screen 32 is provided. In the embodiment shown, the first screen 32 is oriented on the second side 16 of the first layer 12. The first screen 32 also has first and second edges 34, 36. In the embodiment of
A second screen 38 is oriented on the first side 24 of the second layer 22. The second screen 38 has first and second edges 40, 42. The first edge 40 corresponds to a downstream edge, while the second edge 42 corresponds to an upstream edge. The second edge 42 is not viewable in
The first layer 12, first screen 32, and the second layer 22 are secured together adjacent to the first edges 18, 28, and 34, of the first layer 12, second layer 22, and first screen 32, respectively. As can be seen in
The second screen 38 and the second layer 22 are secured together adjacent to the second edges 30 and 42. In the embodiment shown, a bead 46 secures together the second screen 38 and the first side 24 of the second layer 22. The bead 46 can be various types of adhesive or urethane.
In
The filter element 50 also has a plurality of clean fluid outlets 58 defined between the first layer first side 14 and the second layer first side 24. The clean fluid outlets 58 have their channels blocked by bead 46 at the upstream end 54 of the element 50. With such a construction, fluid to be filtered, as it approaches the upstream end 54 of the element 50 is prevented from flowing into the clean fluid outlets 58 by the adhesive bead 46. Instead, the fluid must flow through the dirty fluid inlets 52, which have their upstream ends open and unblocked. The fluid enters the element 50 through the dirty fluid inlets 52, but is prevented from exiting the element 50 through the dirty fluid inlets 52 because of the presence of the adhesive bead 44 blocking the dirty fluid inlet channels 52 at the downstream end 56. Instead, the fluid is forced to flow through at least one of the first and second layers 12, 22 in order to get to one of the clean fluid outlets 58 in order to exit through the downstream end 56. The clean fluid outlets 58 have an open downstream end 56 that allows the fluid to exit the filter element 50. When the fluid flows through at least one of the layers 12, 22, the media layers 12, 22 clean or filter the fluid.
The element 50 is made by providing the first layer 12, orienting the first screen 32 on the second side 16 of the first layer 12; applying adhesive bead 44 along the first edge 18, 34; and then orienting the second layer 22 on the first screen 32 and first layer 12. The second layer 22 will be secured to the first screen 32 and the first layer 12 with the adhesive bead 44. Next, the second screen 38 is oriented on the first side 24 of the second layer 22, and the adhesive bead 46 is applied adjacent to the second edge 30 and second edge 42. This results in the four layer construction 48. This four layer construction 48 is then coiled or rolled such that the second screen 38 and first side 24 of the second layer 22 is secured to and against the first side 14 of the first layer 12.
In some embodiments, including the embodiment of
Alternatively, the core member 60 can be elongated to result in an obround, an oval, or a racetrack shaped filter element. A racetrack shaped element has generally straight sides joined by curved ends, for example, semi-circular ends.
Various types of material are useable for media construction 10. The first and second media layers 12, 22 may include cellulose material, or synthetic material, or a blend of cellulose and synthetic material. In one embodiment, there will be a meltblown polymer, such as a felt, on one of the sides of the first and second layers 12, 22. In certain systems, the second side 16 of the first layer 12 and the second side 26 of the second layer 22 will have the meltblown polymer. This corresponds to the plurality of dirty fluid inlets 52 of the filter element 50. Other types of media are useable.
The first and second screens 32, 38 may include metal, or plastic, or a composite.
The adhesive beads 44, 46 can include a variety of adhesives or sealants. For example, they can be various types of glue, epoxies, or urethane. In some systems, hot melt may also be used.
The filter element 50 can be used in a variety of applications including fuel filters, lube filters, hydraulic fluid filters, transmission fluid filters, and other liquids. It is also possible to use the filter element 50 for filtration of air or other gases.
Many embodiments are contemplated utilizing the principles described herein.
Priority is claimed under 35 U.S.C. § 119(e) to provisional patent application Ser. No. 60/804,477 filed Jun. 12, 2006, incorporated herein by reference in its entirety.
Number | Date | Country | |
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60804477 | Jun 2006 | US |