Method for producing a spindle drive for an adjusting element of a motor vehicle
09765809 · 2017-09-19
Assignee
Inventors
Cpc classification
F16J15/3204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E05Y2600/40
FIXED CONSTRUCTIONS
Y10T403/32729
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
F16C11/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/2037
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C11/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method for producing a spindle drive for an adjustable element of a vehicle, wherein the spindle drive has a substantially tubular spindle drive housing and two connections for diverting driving movements, wherein at least one connection of the spindle drive has a connection head which is connected to the spindle drive via a connection neck which is thinner than the connection head. A sealing cap for the spindle drive housing is provided with a sealing opening, in order to install the sealing cap, the sealing cap is pulled with the sealing opening thereof over the connection head of a connection of the spindle drive, and the peripheral region of the sealing opening is elastically deformed by the engagement with the connection head and is therefore widened, and that the peripheral region of the sealing opening is subsequently deformed back elastically in frictionally sealing engagement with the connection neck.
Claims
1. A method for producing a spindle drive for an adjustable element of a motor vehicle, wherein the spindle drive has, along a geometrical spindle drive axis, a substantially tubular spindle drive housing and two connections for diverting driving movements, wherein at least one connection of the spindle drive has a connection head which is furthermore connected to the spindle drive via a connection neck which is thinner than the connection head, wherein a sealing cap for the spindle drive housing is provided with a sealing opening, in that, in order to install the sealing cap, in an installation step the sealing cap is pulled with the sealing opening thereof over the connection head of the at least one connection of the spindle drive, and in that, in the process, a peripheral region of the sealing opening is elastically deformed by the engagement with the connection head and is therefore widened, and in that the peripheral region of the sealing opening is subsequently deformed back elastically in frictionally sealing engagement with the connection neck.
2. The method as claimed in claim 1, wherein the sealing cap has a cover-like section receiving the sealing opening and, subsequent thereto, a sleeve-like section, and in that the sleeve section is pulled or pushed in particular in a sealing manner over the tubular spindle drive housing.
3. The method as claimed in claim 1, wherein an encircling web with an axial height extent with respect to the spindle drive axis is provided on the sealing cap around the sealing opening, said web furthermore being brought during the installation step into correspondingly axial, supporting and/or sealing engagement with the spindle drive.
4. The method as claimed in claim 1, wherein, before the installation step, the sealing cap is produced by 2-component plastics injection molding.
5. A spindle drive for an adjustable element of a motor vehicle, wherein the spindle drive has, along a geometrical spindle drive axis, a substantially tubular spindle drive housing and two connections for diverting driving movements, wherein at least one connection of the spindle drive has a connection head which is furthermore connected to the spindle drive via a connection neck which is thinner than the connection head, wherein a sealing cap for the spindle drive housing is provided with a sealing opening, and wherein a peripheral region of the sealing opening is configured to be elastically deformed by an engagement with the connection head and the seal opening is configured to be widened from the engagement, and in that the peripheral region of the sealing opening is configured to subsequently deform back elastically in frictionally sealing engagement with the connection neck.
6. The spindle drive as claimed in claim 5, wherein the sealing opening forms an expansion fit with the connection head and/or the connection neck.
7. The spindle drive as claimed in claim 6, wherein the sealing opening is circular and, in the unfitted, undeformed state, has a diameter which is at least 10% smaller, than the maximum diameter of the connection head perpendicularly to the spindle drive axis.
8. The spindle drive as claimed in claim 5, wherein the connection head is rotatably coupled to the spindle drive via the connection neck.
9. The spindle drive as claimed in claim 5, wherein the sealing cap has a cover-like section receiving the sealing opening and, subsequent thereto, a sleeve-like section, and in that the sleeve section is pulled or pushed over the tubular spindle drive housing.
10. The spindle drive as claimed in claim 9, wherein the sealing cap is composed of a different material in the cover section than in the sleeve section.
11. The spindle drive as claimed in claim 10, wherein the material of the sleeve section is harder and/or stiffer than the material of the cover section.
12. The spindle drive as claimed in claim 10, wherein the sealing cap is produced by 2-component plastics injection molding.
13. The spindle drive as claimed in claim 9, wherein the cover section is connected to the sleeve section in an integrally bonded, form-fitting or friction manner.
14. The spindle drive as claimed in claim 9, wherein the sleeve section is pulled or pushed in particular in a sealing manner over the tubular spindle drive housing.
15. The spindle drive as claimed in claim 5, wherein an encircling web with an axial height extent with respect to the spindle drive axis is provided on the sealing cap around the sealing opening, said web furthermore being supported in a correspondingly axial manner on the spindle drive.
16. The spindle drive as claimed in claim 5, wherein the web is furthermore supported in a sealing manner on the spindle drive.
17. The spindle drive as claimed in claim 16, wherein the connection is mounted in a connection bearing, and in that the associated bearing point is sealed off from the outside firstly by a sealing peripheral region of the sealing opening and secondly by the sealing web.
18. The spindle drive as claimed in claim 5, wherein the sealing cap is composed of an elastic material, in particular of an elastomer, at least in the region of the sealing opening.
19. The spindle drive as claimed in claim 18, wherein the sealing cap is composed in its entirety of an elastic material, in particular of an elastomer.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The invention is explained in more detail below with reference to exemplary embodiments. In the drawing:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) The spindle drive illustrated in the drawing serves for the motorized adjustment of an adjustable element 1, which is configured as a tailgate, of a motor vehicle. However, the spindle drive according to the proposal can be used for all possible adjustable elements 1 of a motor vehicle. Examples which may be mentioned here include a rear cover, an engine hood, a side door, a loading compartment flap, a sunroof or the like of a motor vehicle.
(6) The spindle drive has a substantially tubular spindle drive housing 3 along a geometrical spindle drive axis 2 and two connections 4, 5 for diverting linear driving movements.
(7) The spindle drive housing 3 is of two-part configuration and is composed of an upper housing part 3a and a lower housing part 3b. The two housing parts 3a, 3b are of tubular configuration with a substantially round cross section. The two housing parts 3a, 3b run telescopically one into the other in a manner known per se during adjustment of the spindle drive.
(8) The two connections 4, 5 of the spindle drive are respectively provided with a connection head 4a which is furthermore connected to the spindle drive via a connection neck 4b which is thinner than the connection head 4a. In the present case, the detail “thinner” should always be understood as meaning with regard to the respective extent perpendicular to the spindle drive axis 2. The connection neck 4b is aligned with the drive axis 2.
(9) The fact that the spindle drive always has a sealing cap 6 for the spindle drive housing 3, said sealing cap being provided with a sealing opening 7, is essential. The peripheral region 7a of the sealing opening 7 here is in frictionally sealing engagement with the connection neck 4b. In principle, the two connections 4, 5 can each be assigned such a sealing cap 6. The proposal according to the invention is explained below by way of the upper connection 4 in
(10) The linear driving movements which are diverted via the connections 4, 5 are produced by a spindle drive motor (not illustrated) and a spindle/spindle-nut mechanism (likewise not illustrated) connected downstream of the spindle drive motor. With regard to the basic construction of the spindle drive, reference should be made to this extent to EP 1 862 628 A1 which belongs to the applicant and the contents of which are hereby fully incorporated in the subject matter of this application.
(11) In the present case, the installation of the above sealing cap 6 obtains very particular importance. The installation step for installing the sealing cap 6 is illustrated in three sub-steps a), b), d) in
(12) It can be gathered from the illustration according to
(13) The design of the connection 4 and of the associated sealing cap 6 obtains very particular importance to the solution according to the invention. The sealing opening 7 can form an expansion fit with the connection head 4a. In the present case, this means that the connection head 4a can be guided through the sealing opening 7 only with an expansion of the peripheral region 7a of the sealing opening 7. It is additionally provided that the sealing opening 7 also forms a corresponding expansion fit with the connection neck 4b, and therefore the frictional connection between the peripheral region 7a of the sealing opening 7 and the connection neck 4b is ensured.
(14) In the configurations illustrated in
(15) In the unfitted and undeformed state illustrated in
(16) Furthermore, provision can be made for the minimum diameter 9 of the connection neck 4b to be at least 10% smaller, in particular at least 25% smaller, than the maximum diameter 8 of the connection head 4a in each case perpendicular to the spindle drive axis 2. Accordingly, “minimum diameter 9 of the connection neck” means the minimum extent of the connection neck 4b perpendicular to the spindle drive axis 2.
(17) It can be gathered from the illustration according to
(18) The basic construction of the sealing cap 6 that is illustrated in
(19) It can be gathered from the illustration according to
(20) In the embodiment of the sealing cap 6 illustrated in
(21) However, in some cases of use, an ideal sealing between the housing part 3a and the sealing cap 6 is not desired at all. This is the case, for example, if a certain lack of tightness for the automatic drainage of liquid out from the spindle drive housing 3 is required. In such a case, provision can be made for the housing according to
(22) The illustration of the detail according to
(23) After the installation step, the web 15 is then furthermore supported in a sealing manner on the spindle drive and thereby acts in respect of the sealing effect thereof in series with the sealing opening 7.
(24) Furthermore, the above web 15 also has very particular importance in conjunction with the coupling of the connection 4 to the spindle drive. The connection 4 is namely mounted in a connection bearing 17, wherein the associated bearing point 18 is sealed off from the outside by the sealing peripheral region 7a of the sealing opening 7 and by the sealing web 15. The web 15 here acts on the connection bearing 17 substantially in the axial direction with respect to the drive axis 2, while the peripheral region 7a of the sealing opening 7 acts on the connection neck 4b substantially in the radial direction with respect to the drive axis 2. This can best be seen in the illustration according to
(25) The sealing cap 6 can be configured in different materials. In an embodiment, the sealing cap 6 in the cover section 11 always consists of a different material than in the sleeve section 12, wherein, in an embodiment, the sealing cap 6 is produced by 2-component plastics injection molding. In principle, multi-layered materials, in particular sandwich materials, can also be used here as the materials.
(26) In principle, it is conceivable for the cover section 11 to be connected to the sleeve section 12 in an integrally bonded, form-fitting or frictional manner. In particular, adhesive bonds are conceivable here.
(27) The sealing cap 6 should be composed of an elastic material, in particular of an elastomer, at least in the region of the sealing opening 7. However, it is also conceivable for the sealing cap 6 as a whole to be composed of an elastic material, in particular of an elastomer. An example which may be mentioned here is the elastomer PTS-Thermoflex-60 HH. The hardness (Shore A, ISO 868) can be between 50 and 65, in particular around 61.
(28) In an embodiment, provision is finally made for the material of the sleeve section 12 to be designed to be harder and/or stiffer than the material of the cover section 11. This takes into account the fact that, depending on the case of use, the sleeve section 12 may have less of a sealing function and more of a fastening function.