FILTER ELEMENT
20180161703 ยท 2018-06-14
Inventors
Cpc classification
B01D29/232
PERFORMING OPERATIONS; TRANSPORTING
B01D2201/122
PERFORMING OPERATIONS; TRANSPORTING
B01D35/0276
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D29/23
PERFORMING OPERATIONS; TRANSPORTING
B01D35/027
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a filter element consisting of at least two end caps (3, 5), between which extends a filter material (7), characterized in that the end caps (3, 5) have connection geometries (11, 13) for the connection to third components, the connection geometries differing from one another.
Claims
1. A filter element, comprised of at least two end caps (3, 5), between which a filter material (7) extends, characterized in that the end caps (3, 5) are provided with differing connection geometries (11, 13) for connection with third-party components (47, 49).
2. The filter element according to claim 1, characterized in that the respective end cap (3, 5) is provided with an inner edge (11, 13) and an outer edge (9), wherein the filter material (7) engages with one of its free end sections between said inner and outer edge, and wherein at least a part (13) of the edges (9, 11, 13) of the one end cap (3) is different from correspondingly arranged edges (9, 11) of the other end cap (5).
3. The filter element according to claim 1, characterized in that the one end cap (5) has a cylindrical inner (11) and outer edge (9), wherein the inner and outer edges extend coaxially to each other.
4. The filter element according to claim 1, characterized in that the other end cap (3) with its inner (13) and/or outer edge is non-circular, taking the form of a polygon or a type of curve of constant width or is made in the manner of a Reuleaux polygon.
5. The filter element according to claim 1, characterized in that the other end cap (5) is provided with a cylindrical outer edge (9) and has an inner edge in the form of a Reuleaux triangle.
6. The filter element according to claim 1, characterized in that the respective end cap (3, 5) is made from a solid material.
7. The filter element according to claim 1, characterized in that on at least one of the two end caps (3, 5) a circumferential seal (15, 17) from an elastomeric material is applied through injection moulding or is attached to said end cap.
8. The filter element according to claim 1, characterized in that the other (3) of the two end caps (3, 5) is pulled into the inside of the filter element (1) in a dome-shape (71), and that said dome-end is provided with fluid passages (73).
9. A filter device comprising two attachment parts (39, 47), which are connected to each other through a perforated support tube (43) that also maintains a certain distance between them and which serve the purpose of accepting the filter element (1) according to claim 1 as separate component.
10. The filter device according to claim 9, characterized in that, by means of a further attachment part (53), which can be connected to the one attachment part (39), preferably by means of a bayonet lock (65, 67), the filter element (1) is pressed against the other attachment part (47) through the effect of an energy accumulator (61).
11. The filter device according to claim 9, characterized in that the other attachment part (47) comprises a bypass valve (49).
Description
[0013] The invention will now be described by way of an exemplary embodiment depicted in the drawing.
[0014] Shown are in:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] In the attached drawings, in which the
[0024] However, the filter material 7 does not necessarily have to be in contact with an edge of the end cap 3, 5. Whilst the upper end cap 5 is also provided with a circular-cylindrical inner edge 11, the lower end cap 3 (see
[0025] Both end caps 3 and 5 are provided with a circumferential seal 17 and 15 respectively, which are injected as an elastic material onto the rigid material that forms the end cap 3, 5. As depicted in
[0026] The exemplary embodiment of the filter element 1 described here is designed for use with a so-called in-tank filter device, which (see
[0027] When comparing
[0028] In order to form a type of lock-and-key system, the outer circumference of the bypass valve housing 49 has a polygonal form in the connection or sealing section 51, which corresponds to the Reuleaux triangle at the inner edge 13 of the end cap 3, so that the seal 17 with the radial sealing surface 23 in the connection section of the end cap 3 forms the seal in the sealing section 51 of the attachment part that is formed by bottom section 47 and bypass valve housing 49 (see
[0029] Provided as a further, third attachment part, with which the filter element 1 is retained in the installed operating position at the lower, second attachment part, that is, the bottom section 47 with bypass valve housing 49, is a retaining ring 53 that engages with the stepped inner circumference of the annular body 39 that forms the first, upper attachment part. Said retaining ring 53 is provided with a stepped shape that corresponds with the inside of the annular body 39 and is in contact with its inner, lower edge 55 with the sealing surface 19 of the end cap 5 when in operating position. Single-piece web sections 57 extend from the inside of the retaining ring 53 in radial direction towards the inside and at an angle upwards to a centrally located spring support 59, against which a compression spring 61 is braced, wherein the other end of said spring presses against the housing cover 32 and thus applies pressure onto the retaining ring 53 axially downwards, moving it in this direction to a maximum possible position where a step of the retaining ring 53 makes contact with a step 66 of the annular body 39. The annular body 39 that forms the upper attachment part, and thus with it the inner housing formed by the support tube 43, is secured to the outer filter housing 25 via the step that is formed on the outside of the retaining ring 53, wherein the sealing ring 41 provides the seal. At the same time the lower edge 55 of the retaining ring 53, through contact with the sealing surface 19 of the end cap 5, positions the filter element 1 at the lower attachment part under the effect of the spring force of the compression spring 61.
[0030] The step 66 on the annular body 39 serves, moreover, as a contact point for the support tube 43 at its upper free end which, for this purpose, is folded outwards 90 degrees. Moreover, the support tube 43 is provided below the annular body 39 with an outward-pointing circumferential flange, so that the support tube 43 has a positive seat on the annular body 39 above and below the same and to that extent forms with it a functional unit into which the filter element 1 can be inserted or placed into in particular.
[0031] As can be most clearly seen in
[0032] The attachment web sections 57 are thus connected to the retaining ring 53 in one piece, and assigned to each attachment web section 57 is a lobe 67 (
[0033] There are in particular three attachment web sections 57 besides lobes 67 and locking hooks 65. The centres of the individual attachment web sections 57 are connected to each other by a single-piece plate that extends horizontally in installation position and, due to the force of the compression spring 61, which when installed is braced under tension against the inside of the tank housing lid 32, according to the depiction in
[0034]
[0035] In the instance that the housing cover 32 is removed, the compression spring 61 expands and the lobes 61 [sic] move inside the free lock opening of the locking hooks 65 upwards (not shown) under the tension of the sealing rings 15, 17 at the end caps 5 and 3 respectively. To this extent it is possible to remove the retaining ring 53 with its step from the annular body 39 in axial direction upwards. Through a subsequent, simple twisting movement by hand, now in clockwise direction, the latching lobes 65 [sic] disengage from the associated locking hook 65 that overlaps each lobe and move subsequently with a further twisting movement towards the adjoining cams 64 of the cam track 63, which causes the retaining ring 53 to follow a kind of forced movement seen in axial direction, so that the retaining ring 53 moves further away from the annular body 39 which, as a component of the housing 25, still remains in said housing. If the retaining ring 53 is completely removed from the housing 25, the filter element 1 can be removed by hand from the support tube housing 43, which for example is necessary when replacing a dirty, used element with a clean, new element. To that extent the cams 64 of the cam track 63 serve the purpose of a removal aid for the filter element 1. As is further depicted in
[0036] As can be seen most clearly in
[0037] The bypass valve housing 49, which extends into the dome 71 when filter element 1 is in its inserted operating position, has an external shape that corresponds to the inner shape of dome 71 and is provided on the outside with a groove-like wall recess 77, which (see
[0038] With the filter element 1 in operation in the depicted in-tank filter device, the fluid flows via the inflow opening 33 at the front of the filter element 1 to the internal filter cavity, which forms the raw filtrate or unfiltrate side, via the opening at the inner edge 11 of end cap 5. After flowing through the filter material 7 from inside to outside to the clean side or filtrate side in the space between the support tube 43 and the housing wall 25, the filtrate is discharged at the open, lower end of the housing 25 into the tank. It is clear that the filter element 1 may not only be advantageously applicable for in-tank filter devices, but also for filters of every kind in which corresponding attachment parts for connection to end caps are provided, which have a special non-circular shape at the filter element.
[0039] Whilst the present example shows a Reuleaux polygon in which the polygon shape is provided at the lower end cap 3 and the connection at the upper end cap 5 is circular-cylindrical, both end caps 3 and 5 may be provided with polygonal shapes that differ from each other, or the lower end cap 3 may have a circular-cylindrical connection geometry, whilst the polygonal shape is provided at the upper end cap 5. In contrast to the present example it is possible to provide the polygon-shaped connection geometry not at the inner edge 13 of the end cap 3, but it may be provided at the outer edge of one or both end caps, or at one end cap at the inner edge and at the other end cap at the outer edge. Moreover, it is possible to provide end caps with characteristic, from each other differing polygonal shapes.