WIPER MOTOR AND METHOD FOR THE PRODUCTION OF A WIPER MOTOR
20180166944 · 2018-06-14
Assignee
Inventors
Cpc classification
B60S1/3493
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a wiper motor (10), with a shaft (28) for driving a wiper arm (1), wherein the shaft (28) projects through an opening (29) of a housing (15) and wherein in the region of the opening (29) the shaft (28) is mounted radially in a bore in an at least substantially sleeve-shaped element (30; 30a), wherein the sleeve-shaped element (30; 30a) is fixed at least axially in the region of the housing (15), and wherein the sleeve-shaped element (30; 30a) has at least two different cross-sections (33; 33a, 34), a first cross-section (33; 33a) which is designed to protrude axially at least through the opening (29) and a second cross-section (34) which is designed to be axially fixed within said opening (29) or within a receiving space (25) of said housing (15).
Claims
1. A wiper motor, comprising: a shaft for driving a wiper arm, wherein the shaft projects through an opening of a housing and in a region of the opening the shaft is mounted radially in a bore in an at least substantially sleeve-shaped element, wherein the sleeve-shaped element is fixed at least axially in the region of the housing, and whereby the sleeve-shaped element has at least two different cross-sections, a first crosssection which protrudes axially at least through the opening and a second cross-section which is axially fixed within said opening or within a receiving space of said housing, wherein an elastically deforming compensating element is located between the sleeve-shaped element and the housing, whereby the compensating element compensates an axial play located in a longitudinal direction of the sleeve-shaped element between the sleeve-shaped element and the housing.
2. The wiper motor according to claim 1, wherein the compensating element is ring-shaped and radially embraces the sleeve-shaped element in the area of the first cross-section or is located at a front side of the sleeve-shaped element.
3. The wiper motor according to claim 1, wherein the compensating element consists of metal and is formed as a spring washer.
4. The wiper motor according to claim 1, whereincharacterized in that the compensating element is formed as an Oring.
5. The wiper motor according to claim 1, wherein the compensating element lies against an end face of the second cross-section located towards the first cross-section.
6. The wiper motor according to claim 1, wherein the opening is formed by a part of the receiving space of the housing on the side of the sleeve-shaped element located towards the second cross-section.
7. The wiper motor according to claim 6, wherein the receiving space has a fastening area for the second cross-section of the sleeve-shaped element, and that the fastening area has at least one projection which extends radially inwards, preferably formed as a rib, which projection cooperates in a foim-fitting manner with a reception located at the second cross-section of the sleeve-shaped element.
8. The wiper motor according to claim 7, wherein the at least one projection extends only over a part of the height of the receiving space.
9. The wiper motor according to claim 7, wherein the second cross-section with the at least one reception on the sleeve-shaped element is formed on a front side of the sleeve-shaped element.
10. The wiper motor according to claim 1, wherein sleeve-shaped element is formed as a plastic injection moulded part.
11. The wiper motor according to claim 1, wherein the sleeve-shaped element is fully located within the housing.
12. The wiper motor according to claim 1, wherein the sleeve-shaped element extends partially out of the housing.
13. The wiper motor according to claim 1, wherein the compensating element is axially loaded at least indirectly with a deforming force from a housing element, especially from a housing cover.
14. A method for the production of a wiper motor, which is constructed according to claim 1, the method comprising: introducing the sleeve-shaped element into the opening of the housing up to an axial intermediate position, wherein the introducing of the sleeve-shaped element takes place from an inner side of the housing; and before the introducing step, the compensating element is positioned on the first cross-section of the sleeve-shaped element or the compensating element is introduced into the opening.
15. The method according to claim 14, wherein after the introducing of the sleeve-shaped element into its axial intermediate position the compensating element is deformed elastically by mounting a housing element, especially in form of a housing cover, thereby moving the sleeve-shaped element into an axial end Position.
Description
[0017] In the drawing:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024] Identical elements or elements with the same function are provided with the same reference numbers in the figures.
[0025] The wiper motor 10 illustrated in an exploded illustration in
[0026] The wiper motor 10 has an electric motor 11 which is flange-mounted on a gear housing 15 which is at least partially composed of metal. In the exemplary embodiment illustrated, the gear housing 15 has a cup-like first housing element 16, onto which the electric motor 11 is flanged-mounted, and a second housing element 17 in the form of a housing cover 18. In the exemplary embodiment illustrated, the two housing elements 16, 17 are formed from metal, wherein the first housing element 16 is designed as a pressure casting composed of aluminium, and a second housing element 17 or the housing cover 18 is designed as a punched/bent part composed of sheet metal. The housing cover 18 or the second housing element 17 is connected to the first housing element 16 by way of example via four fastening screws 19 which can be seen in
[0027] The first housing element 16 forms a receiving space 25 for receiving a gear which is of single-stage or multi-stage design and is driven by the electric motor 11. The gear (not illustrated specifically) acts on a lever mechanism 26 which is connected to a shaft 28 serving as an output element. That end of the shaft 28 which lies opposite the lever mechanism 26 is connected in turn outside the gearing housing 15 to the wiper arm 1.
[0028] For the guiding of the shaft 28 out of the gear housing 15 or the first housing element 16, the first housing element 16 has an opening 29 which is designed in the form of a passage opening, wherein the shaft 28 projects through the opening 29. Furthermore, a sleeve-shaped element 30 which radially surrounds the shaft 28 and is in the form of a bearing sleeve 31 is provided between the opening 29 and the shaft 28.
[0029] The element 30 which is designed as a plastic injection-moulded part has at least two different cross-sections 33, 34. While the first cross-section 33 is of round design and has a diameter which is matched to the diameter of the opening 29 in the first housing element 16 in such a manner that a fit is formed between the outer circumference of the first cross-section 33 and the opening 29, said fit (loose fit) permitting manual introduction of the element 30 into the opening 29 without increased effort, the second cross-section 34 has a larger cross-section at least in regions. The second cross-section 34 is arranged here on the front side 36 of the element 30, said front side facing the receiving space 25 or the housing cover 18. The second cross-section 34 has, by way of example, an edge 38 which is radially encircling in the manner of a flange and preferably has, at equal angular distances from one another, a plurality of receptions 39 which are formed in the longitudinal direction as longitudinal slots 40. Said receptions 39 or longitudinal slots 40 cooperate with mating projections 42 in the form of longitudinal ribs 43 which are formed in the region of an inner wall 44 of the first housing element 16 in the receiving space 25. Also formed between the receptions 39 and the elevations 42 is, for example, a loose fit in order to permit simple manual mounting of the element 30 without effort. The height h of the longitudinal ribs 43 is smaller here than the height H of the receiving space 25 in the region of the longitudinal ribs 43. The longitudinal ribs 43 reach here as far as a bottom region 45 of the receiving space 25 or emerge from the bottom region 45 (
[0030] When the element 30 is introduced axially or guided through the opening 29, the element 30 can be pushed with its first cross-section 33 through the opening 29 from the direction of the receiving space 25, i.e. from the interior space of the gear housing 15, until the second cross-section 34 with its receptions 39 enters into operative connection with the longitudinal ribs 43 which firstly position the element 30 radially within the first housing element 16 and secondly, upon indirect contact of the edge 38 against the bottom region 45 or in the region of the front side of the longitudinal ribs 43 facing the edge, limit the axial displaceability of the element 30 or ensure that the element 30 is axially fixed within the opening 29 via the second cross-section 34.
[0031] In order to compensate for component tolerances or in order to prevent the element 30 being arranged along its longitudinal axis 47 with movement play (axial play) in the end position of the element 30 when the wiper motor 10 is mounted, an elastically deformable compensating element 50 is provided which, in the case of the exemplary embodiment illustrated in
[0032] The element 30a illustrated in
[0033] It can be seen with reference to
[0034] It can moreover be seen in particular with reference to
[0035]
[0036]
[0037] Finally,
[0038] During the mounting of the wiper motor 10, the compensating element 50 is either pushed over the first cross-section 33, 33a of the element 30, 30a, or else, according to the exemplary embodiment according to
[0039] The wiper motor 10 described to this extent or the element 30, 30a and the compensating element 50 can be modified in various ways without departing from the inventive concept.
LIST OF REFERENCE SIGNS
[0040] 1 Wiper arm
[0041] 10 Wiper motor
[0042] 11 Electric motor
[0043] 15 Gear housing
[0044] 16 First housing element
[0045] 17 Second housing element
[0046] 18 Housing cover
[0047] 19 Fastening screw
[0048] 21 Fastening arm
[0049] 22 Bearing block
[0050] 25 Receiving space
[0051] 26 Lever mechanism
[0052] 28 Shaft
[0053] 29 Opening
[0054] 30, 30a Element
[0055] 31 Bearing sleeve
[0056] 33, 33a Cross-section
[0057] 34 Cross-section
[0058] 36 Front side
[0059] 38 Edge
[0060] 39 Reception
[0061] 40 Longitudinal slot
[0062] 42 Projection
[0063] 43 Longitudinal rib
[0064] 44 Inner wall
[0065] 45 Bottom region
[0066] 47 Longitudinal axis
[0067] 49 End face
[0068] 50 Compensating element
[0069] 51 O-ring
[0070] 52 Spring washer
[0071] 55 Projection
[0072] 56 Upper side
[0073] 58 Reception
[0074] 59 Bearing body
[0075] 61 Portion
[0076] 62 Passage opening
[0077] 64 Radial gap
[0078] 65 End surface
[0079] 67 Region
[0080] 68 Inner wall
[0081] 69 outlet region
[0082] 71 Sealing element
[0083] 72 Recess
[0084] 73 Closure element
[0085] 75 End surface
[0086] 76 Portion
[0087] h Height
[0088] H Height