FILTER DEVICE
20180043290 ยท 2018-02-15
Inventors
Cpc classification
B01D29/232
PERFORMING OPERATIONS; TRANSPORTING
B01D2201/122
PERFORMING OPERATIONS; TRANSPORTING
B01D35/0276
PERFORMING OPERATIONS; TRANSPORTING
B01D29/21
PERFORMING OPERATIONS; TRANSPORTING
B01D29/58
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D29/23
PERFORMING OPERATIONS; TRANSPORTING
B01D29/58
PERFORMING OPERATIONS; TRANSPORTING
B01D35/027
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A filter device, having a support part (39, 43) and a filter part (1) that can be received therein, having at least one sealing device (17) that acts between the support part (39, 43) and the filter part (1), and having a securing device (53, 57, 61) for releasably connecting the support part (43) to the filter part (1), which securing device has a circumferential collar part (53) and, under the action of at least one energy store (61), exerts a force on the sealing device (17), which force seals the support part (39, 43) and the filter part (1) in a fluid-tight manner with respect to one another, wherein the support part (39, 43) has, at least on its end region oriented toward the securing device (53, 57, 61), another circumferential collar part (39), is characterized in that the collar part (53) of the securing device (53, 57, 61) is guided concentrically within the collar part (39) of the support part (39, 43) which is provided with a sealing system (41, 72).
Claims
1. A filter device having a support part (39, 43) and a filter part (1) capable of being received therein, having at least one sealing mechanism (15, 17) that acts between the support part (39, 43) and the filter part (1), and also having a securing mechanism (53, 57, 61) for releasably connecting the support part (43) to the filter part (1), which securing mechanism has a circumferential collar part (53) and which under the action of at least one energy store (61) exerts a force on the sealing mechanism (15, 17), which force seals the support part (39, 43) and the filter part (1) in a fluid-tight manner with respect to each other, wherein the support part (39, 43) has, at least on its end region facing the securing mechanism (53, 57, 61), another circumferential collar part (39), characterized in that the collar part (53) of the securing mechanism (53, 57, 61) is guided concentrically within the collar part (39) of the support part (39, 43), which is provided with a sealing system (41, 72).
2. The filter device according to claim 1, characterized in that in the filtration mode of said device, the energy store (61) applies the collar part (53) of the securing mechanism (53, 57, 61) with settable sealing force against a sealing element (15) of the adjacently arranged one end cap (5) of the filter part (1).
3. The filter device according to claim 1, characterized in that this one end cap (5) moves the other end cap (3) of the filter part (1) via the filter medium (7), under the action of the energy store (61), against the sealing mechanism (17) that acts between the support part (39, 43) and the filter part (1), resulting in an increased effect of the sealing force.
4. The filter device according to claim 1, characterized in that the action of the energy store (61) of the securing mechanism (53, 57, 61) is transferred via the sealing mechanism (17) between the filter part (1) and the support part (39, 43) onto the collar part (39) of the support part (39, 43), which abuts with at least parts (41) of its sealing system (41, 72) on housing parts (37) of a receiving housing (25) for the support part (39, 43) and the filter part (1) together with the securing mechanism (53, 57, 61), resulting in an increased effect of the sealing force.
5. The filter device according to claim 1, characterized in that the sealing mechanism (17) that acts between the support part (39, 43) and the filter part (1) is arranged, in particular molded, on the other end cap (3) of the filter part (1), which other end cap presses on an adjacently arranged end cap (71) of the support part (39, 43) under the action of the energy store (61) of the securing mechanism (53, 57, 61).
6. The filter device according to claim 1, characterized in that the collar part (39) of the support part (39, 43) is graduated and that the inwardly folded, in particular inwardly crimped end (44) of a perforated support tube (43) of the support part (39, 43) rests on a step (66) of this collar part (39).
7. The filter device according to claim 1, characterized in that the collar part (39) of the support part (39, 43) is provided, on its inner circumference, with another sealing mechanism (72) serving as part of the sealing system (41, 72), on which the collar part (53) of the securing mechanism (53, 57, 61) that is graduated correspondingly to the collar part (39) of the support part (39, 43) rests in a sealing manner.
8. The filter device according to claim 1, characterized in that, in the filtering mode and with all sealing mechanisms (15, 17, 41, 72) exerting a sealing effect, when viewed in the axial direction parallel to the longitudinal axis of the filter device, there is essentially a virtually force-free contact between each of the correspondingly graduated inner wall surfaces (66, 68) of the two collar parts (39, 53), which are guided concentrically into one another.
9. The filter device according to claim 1, characterized in that the collar part (53) of the securing mechanism (53, 57, 61) has outwardly oriented latching bolts (74) projecting above its upper rim which, as the securing mechanism (53, 57, 61) is twisted with respect to the support part (39, 43), can be brought into lateral engagement with assignable latching hooks (65) of the other collar part (39), of which the axial extension is dimensioned in such a way that the latching bolts (74) in engagement with the latching hooks (65), guided in a contact-free manner under the action of the energy store (61), execute an axial, force-transferring feed motion on the sealing mechanism (15) of the one upper end cap (5) of the filter part (1).
10. The filter device according to claim 1, characterized in that the collar part (39) of the support part (39, 43) has, at least partially adjacent to the free opening of the latching hooks (65), a control cam (63) provided with a ramp-like rise to facilitate the disengagement of the filter part (1) from the support part (39, 43).
11. A tank device having a tubular housing part (25), into which a filter device according to the configuration of features of claim 1 can be inserted via a housing opening that can be closed with a tank lid (32), which lid exerts a force on a compression spring (61) of a securing mechanism (53, 57, 61) of the filter device in such a way that the filter device is sealingly received in the tubular housing part (25).
Description
[0016] In the following, the invention is explained in detail with reference to an exemplary embodiment depicted in the drawings.
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] With reference to the drawings, the filter device of the invention is explained using a so-called in-tank filter device as an example, which receives a filter element 1 in a relatively thin-walled, circular cylinder-shaped filter housing 25, which has on its upper end a flange part 27, with which it is secured on an upper tank opening (not illustrated) in such a way that the lower open end 29 of the housing 25 extends into the tank concerned up to a height that lies below the operating fluid level. On the upper end, the housing 25 can be closed with a lid 32 screwed to the flange part 27. At a short distance from the flange part 27, a supply pipe 31 opens into the housing 25 via an inlet opening 33.
[0024] As can be clearly discerned in
[0025] Both end caps 3 and 5 each have a circumferential seal 17 and 15, respectively, which seals are molded from an elastic material onto the rigid material that forms the end caps 3, 5. As
[0026] Below the inlet opening 33, an inward crimp 35 is formed in the wall of the filter housing 25, which inward crimp is shaped in such a way that a sort of step or flank 37 is formed on a radially recessed area (
[0027] As already indicated, in order to form a sort of key/lock system, the outer circumference of the bypass valve housing 49 has a polygonal shape in the contact or sealing area 51 that corresponds to the Reuleaux triangle on the inner rim 13 of the end cap 3, see
[0028] As another collar part which is associated with the securing mechanism and by means of which the filter element 1 is kept in the installed functional position on the lower securing part, i.e. the bottom part 47 with the bypass valve housing 49, a retaining ring 53 is provided that engages in the graduated inner circumference of the annular body 39 that forms the collar part of the support part, which retaining ring has a graduated shape corresponding to the inside of the annular body 39 and which, in its functional position, rests with its inner, lower end rim 55 on the sealing surface 19 of the end cap 5. One-piece bars 57 extend radially inwardly in an upwardly inclined manner from the inside of the retaining ring 53 to a centrally located spring bearing 59 supporting a compression spring 61, the other end of which rests in contact on the housing lid 32 and thus exerts a downward axial pretensioning force on the retaining ring 53 and generates the sealing force with which the end rim 55 rests in contact on the sealing surface 19 of the end cap 5.
[0029] As already mentioned, the support tube 43, in combination with the bottom part 47 connected thereto on the lower end by means of the inward crimp 45, forms an inner housing for the filter element 1, wherein the bottom part 47 forms a securing part for the filter part. As can best be discerned from
[0030] As can be discerned most clearly from
[0031] If the housing lid 32 is loosened, the compression spring 61 is decompressed so that the securing mechanism can be removed without any tension, for example in order to take the filter element 1 out of the inner housing of the support part in order to change it. In order to keep the support part, i.e. the inner housing with the support tube 43 plus the annular body 39 forming its collar part, in the housing 25, the retaining ring 53 and the annular body 39 must be moved apart axially. This can be effected in an expedient manner by turning the latching bolts 74 clockwise by means of a clockwise rotary movement of the bars 57 with the retaining ring 53, wherein the latching bolts are forcibly actuated in axially upward movement along the cam tracks 63 and a relative axial movement takes place between the retaining ring 53 and the annular body 39. It is furthermore possible to effect the rotary movement by means of a tool such as a ratchet wrench, which engages on a hex head to which the spring 61 is also coupled. The sequential movement phases of this rotary movement are shown in
[0032] As can be discerned most clearly in
[0033] With the filter element 1 in the filtration mode in the illustrated in-tank filter device, the fluid flows through the inlet opening 33 on the front side of the filter element 1 and reaches the inner filter cavity that forms the crude or non-filtrate side through the opening on the inner rim 11 of the end cap 5. After flowing through the filter material 7 from the inside to the outside to the clean or filtrate side in the space between the support tube 43 and the housing wall 25, the filtrate exits into the tank via the open lower end of the housing 25. Obviously, the filter element 1 cannot only be advantageously used with an in-tank filter device, but with all types of filter devices in which corresponding securing parts are provided for connections to end caps, the filter elements of which are shaped in a special non-circular manner.
[0034] Although a Reuleaux polygon is shown here, in which the polygonal shape is located on the lower end cap 3 and the connection area of the upper end cap 5 is circular cylindrical, both end caps 3 and 5 could each be provided with a different polygonal shape, or the lower end cap 3 could have a circular cylindrical connection geometry and the polygonal shape could be provided on the upper end cap 5. The polygonal connection geometry could be provided on an outer rim of one or both end caps or on the inner rim of one end cap and on the outer rim of the other end cap, rather than on the inner rim 13 of the end cap 3 as in the present example. Furthermore, use could be made of end caps having characteristic polygonal shapes that differ from one another.