Filter with dual pleat pack
10753241 ยท 2020-08-25
Assignee
Inventors
Cpc classification
B01D35/303
PERFORMING OPERATIONS; TRANSPORTING
B01D29/07
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49826
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
F01M11/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B01D29/07
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A fluid filter apparatus comprising an upper housing shell; a lower housing shell; a pleat pack element comprising a peripheral frame and a folded pleated media. The frame is at least partially molded over the media to secure the media in the frame, and the media comprises two or more types of media of different densities from each other. A flow control element is disposed for changing the proportion of flow between the first media and the second media responsive to changes in at least one of temperature, pressure, flow rate and/or viscosity of the fluid.
Claims
1. A fluid filter apparatus comprising: an upper housing shell comprising an outlet and a first inward facing surface; a lower housing shell comprising an inlet and a second inward facing surface; a pleat pack element comprising a peripheral frame, a first pleated media, a second pleated media, the peripheral frame comprising a first pair of sidewalls and a second pair of sidewalls; and a flow control element coupled to or integral with the pleat pack element, the flow control element positioned between at least the first pair of sidewalls; wherein: at least two of the upper housing shell, the lower housing shell, and the peripheral frame of are joined to one another to define a chamber, with the first and second pleated media and the flow control element disposed in the chamber and between the first and second inward facing surfaces; and the flow control element extends from the pleat pack towards the upper housing shell, such that at least a portion of the flow control element contacts the first inward facing surface.
2. The fluid filter of claim 1, wherein the flow control element is coupled to the pleat pack.
3. The fluid filter according to claim 1, wherein the flow control element is integral with the pleat pack element.
4. The fluid filter according to claim 1, wherein the flow control element is a coupled to or integral with the peripheral frame between the first and second pairs of sidewalls.
5. The fluid filter according to claim 1, further comprising a supplemental filter material disposed separate from the pleat pack, and having a media density different than the density of media in the pleat pack.
6. The fluid filter according to claim 5, wherein the supplemental filter material comprises at least one aperture therethrough.
7. The fluid filter according to claim 5, wherein the supplemental filter material comprises a plurality of apertures therethrough.
8. The fluid filter according to claim 5, wherein the supplemental filter material is disposed adjacent to the pleat pack and in the direction of fluid flow before the pleat pack.
9. The fluid filter according to claim 1, wherein the upper housing shell and lower housing shell are joined to a frame of the pleat pack by one of vibration welding, laser welding, bonding, ultrasonic welding or infrared welding.
10. The fluid filter according to claim 1, wherein the flow control element is a flexible resilient member in the shape of a blade.
11. The fluid filter according to claim 1, wherein the flow control element comprises a member having plurality of apertures.
12. The fluid filter according to claim 11, wherein the flow control element comprises a comb shape that at least partially abuts the upper cover to at least partially define the apertures.
13. The fluid filter according to claim 1, wherein the flow control element changes the proportion of flow between the first media and the second media responsive to changes in at least one of temperature, pressure, flow rate and/or viscosity of the fluid.
14. The fluid filter according to claim 1, wherein the peripheral frame is at least partially molded over at least some edges of the first pleated media and the second pleated media.
15. The fluid filter of claim 1, wherein the first pleated media has a first filtration density and the second pleated media has a second filtration density that differs from the first filtration density.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order to better understand various exemplary embodiments, reference is made to the accompanying drawings, wherein:
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DETAILED DESCRIPTION
(21) Some embodiments of the present invention relate to filters, such as automotive transmission fluid filters. Some embodiments will now be described with reference to the drawing figures in which like numbers generally designate like parts throughout.
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(23) A filter 10 includes a lower cover 12 having a fluid inlet opening 14. An upper cover 15 is provided. A filter pack 16 has a pleated first media 18 and a pleated second media 20. The media are separated by a flow control element 22. The flow control element 22 determines (along with the types and surface area of media as described below) the amount of fluid that will flow through each of the various media sections, as a function of temperature, viscosity and/or fluid pressure as described in more detail below. In this example the element 22 is passive, it is rigid and does not change configuration based on fluid pressure differential of fluid flowing through the filter 10; yet the small gaps for fluid it provides do control the ratio of fluid flow through the first media 18 and second media 20. In this example the element 22 (which may also be considered as a flow-restriction plate) is a vertical wall or web with one or more controlled sized permanent holes 23 as seen best in
(24) The housing 24 can be attached to the lower cover 12 and the upper cover 15 by one or more of vibration welding, laser welding, bonding, ultrasonic welding or infrared welding. The housing 24 can also have mounting bosses 30 and 32 for attachment of the filter 10 to a device such as a vehicle transmission. In this embodiment the lower cover 12 and upper cover 15 form a chamber that encloses the media types. The fluid outlet 44 is part of the housing 24. However, in other embodiments the fluid outlet 44 may be provided as an opening in the upper cover 15. Also, in other embodiments the lower cover 12 and upper cover 15 may be attached to each other and completely surround the pleat pack. The selection of the size, shape and total surface area of the holes in the element 22 affect the ratio of fluid flow between the two media. The selection of surface area of each media 18 and 20 will also be a factor in the relative flow amounts through each media in all embodiments. The top shell 15 may have stiffening and spacing dimples 42. The dimples 42 may also be arranged to correspond to bolt heads in the surrounding transmission components, this allowing a more compact mounting of the filter 10 adjacent the surrounding components. The housing 24 of the pack 16 also incorporates the fluid outlet 44. The top shell 15 and bottom shell 12 are attached, respectively, to the top and bottom of the housing portion 24 by suitable attachment, such as by one or more of vibration welding, laser welding, bonding, ultrasonic welding or infrared welding.
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(29) It will be appreciated that some embodiments provide a filter system that provides control of the ratio or proportion of fluid that passes through a first media as compared to the ratio or proportion that passes through a second media. This control phenomenon may dynamically vary depending on factors such as for example, fluid supply flow rate and/or supply pressure and/or viscosity of the fluid and/or temperature of the fluid. Some embodiments provide types of active biased flow control element that deflect, and some other embodiments provide types of passive flow control elements in the form of apertures such as gaps, slots or circular or otherwise shaped holes in a flow control plate or other flow control structure. In some embodiments the flow control element is thermally activated in that change in temperature of fluid affects fluid viscosity which changes the proportion of fluid flow through the respective filter media. Alternatively, or in addition, the flow control element could change its shape, properties, or behavior with temperature, hence effecting flow properties through the media.
(30) From the above description and drawings, it will be appreciated that several embodiments are shown with various types of flow control element disposed in the flow path on the outlet side of the pleat pack, and one embodiment is shown with a type of flow control element on the inlet side. However, it will also be clear that any type of flow control element can be provided on either the inlet side and/or the outlet side flow path. That is, an active element and/or a passive element can be placed on either side of the pleat pack, either towards the inlet side or the outlet side.
(31) Although the various exemplary embodiments have been described in detail with particular reference to certain exemplary aspects thereof, it should be understood that the invention is capable of other embodiments and its details are capable of modifications in various obvious respects. As is readily apparent to those skilled in the art, variations and modifications can be affected while remaining within the spirit and scope of the invention. Accordingly, the foregoing disclosure, description, and figures are for illustrative purposes only and do not in any way limit the invention, which is defined only by the claims.