FILTER DEVICE
20200206657 ยท 2020-07-02
Inventors
- Matthias Schwender (Kirkel, DE)
- Edwin Koch (Tholey, DE)
- Daniel Kleemann (Alsting, FR)
- Ute Lehmann (Spiesen/ Elversberg, DE)
- Alexander Nenno (Marpingen, DE)
- Andre Michael Schneider (Mandelbachtal, DE)
Cpc classification
B01D29/54
PERFORMING OPERATIONS; TRANSPORTING
B01D29/21
PERFORMING OPERATIONS; TRANSPORTING
B01D2201/34
PERFORMING OPERATIONS; TRANSPORTING
B01D2201/295
PERFORMING OPERATIONS; TRANSPORTING
B01D35/0273
PERFORMING OPERATIONS; TRANSPORTING
B01D29/58
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A filter device for transmission oil, having a filter element (24) which can be inserted into a transmission oil pan (70) and the filter medium (32) of which separates an unfiltered side from a filtrate chamber, which is connected in a fluid-conveying manner to an outlet (38, 50, 72), to which a negative-pressure device such as a suction oil pump, can be connected, wherein the filter medium (32) of the filter element (24) has at least one structural layer (46) having a predetermined surface area and predeterminable filter properties and having at least one further structural layer (44, 60) having predeterminable filter properties, wherein the surface area of the further structural layer (44; 60) is different from the surface area of the first structural layer (46), and wherein the respective structural layers (44, 46, 60) encompass an inner filter cavity (30), is characterized in that the respective structural layers (44, 46, 60) are pleated having the same type of pleats, in that the pleated structural layers (44, 46, 60) [extend] in axial alignment between two end caps (22, 34) of the filter element (24), [and in that,] viewed in the flow direction of the fluid flow to be cleaned, the respective structural layers (44, 60) having the higher filtration grade are downstream of an upstream structural layer (46) each having a lower filtration grade.
Claims
1. A filter device for transmission oil, having a filter element (24), which can be inserted into a transmission oil pan (70) and whose filter medium (32) separates an unfiltered side from a filtrate chamber, which is connected in a fluid-conveying manner to an outlet (38, 50, 72), to which a negative-pressure device such as a suction oil pump, can be connected, wherein the filter medium (32) of the filter element (24) has at least one structural layer (46) having a predetermined surface area and predeterminable filter properties and having at least one further structural layer (44, 60) having predeterminable filter properties, wherein the surface area of the further structural layer (44; 60) is different from the surface area of the first structural layer (46), and wherein the respective structural layers (44, 46, 60) encompass an inner filter cavity (30), characterized in that the respective structural layers (44, 46, 60) are pleated having the same type of pleats, in that the pleated structural layers (44, 46, 60) extend in axial alignment between two end caps (22, 34) of the filter element (24), and in that, viewed in the flow direction of the fluid flow to be cleaned, the respective structural layers (44, 60) having the higher filtration grade is downstream of an upstream structural layer (46) each having a lower filtration grade.
2. The filter device according to claim 1, characterized in that the structural layers (44, 46, 60) are single-layer or multi-layered.
3. The filter device according to claim 1, characterized in that, in order to flow through the filter mat (32) from the inside to the outside, the inner filter cavity (30) is connected the oil sump of the assigned oil pan (70) as an unfiltered side in a fluid conveying manner, and in that the filter mat (32) has a supporting structure (42) on the outside encompassing the respective outer structural layers (44, 46, 60).
4. The filter device according to claim 1, characterized in that, when the suction flow passes through the filter mat (32) from the outside to the inside, wherein the inner filter cavity (30) forms the filtrate side, the filter mat (32) has an inner supporting structure (96), which bears against the inner structural layers (44, 46, 60).
5. The filter device according to claim 1, characterized in that a filter element (24) in the form of a flat filter is provided, whose filter mat (32), which encompasses the filter cavity (30), has a flat cross-sectional shape having large-area plane long sides (52, 54) and narrow, rounded short sides (56, 58) in relation to a section plane extending in parallel to the end caps (22, 34), and that one long side (54) of the filter element (24) faces the bottom of the assigned transmission oil pan (70).
6. The filter device according to claim 1, characterized in that the filter element (24) in the oil pan (70) is accommodated in an inner housing (68), which has an inlet (62) routed to the inner filter cavity (30), the filtrate chamber (36) encompassing the filter element (24) and a fluid outlet (72) routed to a suction port.
7. The filter device according to claim 1, characterized in that the fluid inlet is formed by an opening (28) in the bottom (18) of the housing (2).
8. The filter device according to claim 1, characterized in that the fluid inlet is formed by a flat tubing (62) routed to the oil sump of the oil pan (70), which is arranged on a side wall (8) of the housing (2) or inner housing (68) and with which a connecting piece (64) of the filter element (24) engages, which connecting piece is arranged eccentrically on the facing end cap (22) of the filter element (24) and which forms the connection to the filter cavity (30).
9. The filter device according to claim 1, characterized in that the fluid outlet of the inner housing (68) is formed by a housing part (72) located next to the flat tubing (62) at the side wall (8) of the inner housing (68), which housing part forms a passage between the filtrate chamber (36) of the inner housing (68) encompassing the filter element (24) and the suction port (38).
10. The filter device according to claim 1, characterized in that for the flow through the filter mat (32) from the outside to the inside, the filter element (24) in the oil pan (70) is arranged in an inner housing (80), which is open towards the oil sump, encompasses a rectangular receiving space (84) for the filter element (24) having longitudinal sides (88) and short sides (86) and has an end wall (90) extending along one short side (86), and that the suction port (38) is located at this end wall, with which suction port a connecting piece (92) is engaged, which at one end cap (22) of the filter element (24) forms a passage (82) to the filter cavity (30) and thus a support part for one end of the filter element (24).
11. The filter device according to claim 1, characterized in that the end cap (34) at the other end of the filter element (24) forms a protruding foot part (94), which forms a support part of one end of the filter element (24) at the bottom of the oil pan (70).
Description
[0018] Below the invention is explained in detail with reference to exemplary embodiments shown in the drawing. In the Figures:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030] The first exemplary embodiment shown in
[0031] The ring body 14 is part of a lower end cap 22 of the filter element 24 that is inserted into the housing 2. Due to the contact of the annular body 14 with the end rim 12, which is at a distance from the base plate 18, a free space is formed between the filter element 24 and the base plate 18, which free space forms a filter operation of the chamber holding the unfiltered medium 26, into which the unfiltered medium flows via a fluid inlet 28 formed in the base plate 18. In the case of an injection-molded housing 2 made of a plastic material such as PA6 and an end cap 22 made of plastic, the connection of the annular body 14 of the filter element 24 inserted into the housing 2 can be made by welding or gluing before the connection with the peripheral edge 16 of the base plate 18 is formed. If the housing parts are made of metallic material, these joints may also be formed by gluing or welding.
[0032] As
[0033] Each filter element 24 of the solution presented here has two end caps 22, 34 at the ends, forming an insertable unit, but these are not always shown in the figures for the sake of a clear illustration, or only partly in the form of showing only one end cap 22 or 34.
[0034] The spacers 40 safeguard an unobstructed flow from the oil sump to the inner filter cavity 30 during suction filter operation. The structural layers of the filter mat 32 are supported against the suction flow running from the inside to the outside by a support tube 42 shown only in
[0035]
[0036] As in the first exemplary embodiment, the housing 2 is formed by a hood, the cover 6 of which is omitted in
[0037] As
[0038]
[0039]
[0040] In the installed state of the inner housing 80, the connecting piece 92 engages with the suction port 38, which in this exemplary embodiment is located on an end wall 90 of the inner housing 80, which end wall forms a support part of the inner housing 80, which can be used to immobilize the inner housing 80 in the relevant oil pan.
[0041] As
[0042] The end cap 34 of the filter element 24, which is opposite from the end cap 22 having the passage 82, forms a flat closing plate of the hollow body formed by the filter mat 32. In contrast to the exemplary embodiment of
[0043] A prefilter formed of the individual superimposed structural layers can be designed in terms of fluid permeability such that it permits high fluid quantities to pass through at an acceptable dirt holding capacity, which is improved by a higher filtration grade of the main filter, formed by a further structural layer, with the result that the fluid permeability of the prefilter is reduced to a minimum during a so-called cold start of the engine when the transmission oil to be filtered is still cold and correspondingly highly viscous, the flow resistance of the prefilter is low and the main filter in conjunction with parts of the prefilter then provides the desired dirt pick-up capacity.
[0044] Several structural layers having different filter properties and different areas of the superimposed layers can be combined, resulting in a variety of design options for the individual filter element. For instance, very high separation rates (beta values) at different differential pressures of the fluid to be filtered or the filtration of certain fluid components of a fluid to be filtered, which can only be detected from a certain structural position, can be implemented. The filter element can be individually adapted to the individual transmission situation functions by replacing and using structural layers in a self-explanatory manner when creating a new filter element in the way of a kind of modular system, which is without parallel in the prior art. It is particularly advantageous to select the respective overlap in such a way that the edge of a structural layer placed on another structural layer is equidistant to both longitudinal sides of the other structural layer, which improves the fluid flow behavior of the filter element. It is irrelevant whether the fine filter layer forming the main filter is adjacent to one of the end caps or at a distance from both end caps.