The invention relates to a method of manufacturing a sealing gasket, in particular a window run for a motor vehicle, and to a gasket manufactured in this way.
In general, three major families of window runs or gaskets can be distinguished, e.g. for providing sealing between a window and the window frame of a motor vehicle door, namely: channel-section runs; single-rabbet runs; and hidden frame runs. Hidden frame runs present a mounting clip of U-shaped right section which fits over the window frame of the door and which comprises a metal strength member for strengthening the clip, two asymmetrical legs fitted with sealing lips, and one or two additional lips providing two sealing functions.
Such a window run or gasket is made of rubber, being manufactured by extrusion, and after being extruded and cooling down, it presents flexibility enabling it to be deformed so as to fit the shape of the window frame of the door onto which it is engaged. Although such window gaskets provide satisfactory performance, they nevertheless present drawbacks of weight and cost.
In order to reduce the weight and the cost of such gaskets, it is advantageous to make them out of thermoplastic materials (thermoplastic elastomer (TPE), thermoplastic olefins (TPO), polypropylene, for example). Nevertheless, under such circumstances, it becomes very difficult, if not impossible, to mount the gasket on a motor vehicle door insofar as the rigidity of thermoplastic materials, and in particular polypropylene for example, does not enable the gasket to match the shape of the door without deforming said gasket in harmful manner, e.g. forming wrinkles or folds.
An object of the invention is to mitigate the above-mentioned drawbacks and to propose a novel method of manufacturing such gaskets which enables gaskets to be obtained after extrusion and cooling that are automatically and naturally curved.
To this end, the invention provides a method of manufacturing a sealing gasket, in particular a hidden frame type window run for a motor vehicle, the method consisting in placing in the gasket that is made from thermoplastic materials, at least one anti-shrinkage element that is placed in a position that is determined so as to obtain automatically and naturally a gasket that is curved after it has been extruded and has cooled down, and the method further consisting in acting on the shrinkage ability of the materials constituting the gasket in order to obtain varying amounts of curvature.
Advantageously, the anti-shrinkage element is positioned in the gasket in such a manner as to obtain curvature automatically in at least two different planes.
By making the sealing gasket out of thermoplastic materials, it is possible to reduce the cost and the weight thereof, but with the drawback that once cooled after being extruded it presents a shape that is substantially rectilinear and more rigid than a gasket made of rubber. However, the anti-shrinkage element placed in the gasket can enable the lack of gasket flexibility to be compensated because, depending on its position, it makes it possible to obtain automatic and natural curving of the gasket which can be optimized as a function of the shrinkage ability of the materials constituting the gasket.
In general, a sealing gasket forming a hidden frame type window run, for example, presents a mounting clip of U-shaped right section with first and second limbs that are parallel to each other, a main leg and a secondary leg which extend perpendicularly to the second limb of the clip, and sealing lips towards the ends of said legs.
In the method of the invention, the anti-shrinkage element is placed in the clip of the gasket, and the thermoplastic materials used for manufacturing the gasket preferably have a decreasing shrinkage gradient going from the clip towards the sealing lips, and, for example, polypropylene is used to make the clip, a TPO for making the main leg, and a TPE for making the sealing lips.
The anti-shrinkage element may be constituted by a reinforcing member or at least one metal wire or glass fiber, for example.
The invention also provides a sealing gasket, in particular of the hidden frame run type, in which the anti-shrinkage element is positioned in the first limb of the clip to provide a top segment for the run, and in which the anti-shrinkage element is positioned in the web of the clip to constitute a vertical segment of the run.
Other advantages, characteristics, and details of the invention appear from the additional description below made with reference to the accompanying drawings, given purely as examples, and in which:
a,
2
b, and 2c are diagrammatic side views for showing respectively a front door and a back door of a “Sedan” type vehicle, and a front door of a “people carrier” type vehicle;
The window gasket 1 shown in
a,
2
b, and 2c are diagrams showing various different doors P for motor vehicles, showing the general shapes of the window gaskets that form window runs.
In the examples shown in
More precisely, the gasket 10 presents a structure similar to that of the gasket shown in
By way of example, with a gasket 10 of the kind shown in
In order to control the curvature of the curved gasket, action is taken on the shrinkage ability of the thermoplastic materials used for making the gasket, it being understood that it is necessary to have a shrinkage gradient that increases going away from the neutral fiber of the gasket which is formed by the anti-shrinkage element 12. For this purpose, and by way of example, the clip 3 of the gasket 10 is made of polypropylene which is a material that shrinks little, the main leg 5 of the gasket 10 is made of a TPO that shrinks somewhat more, and the main sealing lip 9 at the end of the main leg 5 is made of a TPE that shrinks even more. The secondary leg 7 of the gasket is considerably shorter than the main leg 5 and can be made out of the same material as the clip 3. In a variant, the clip can be made of a material such as polypropylene, and the main leg 5 and the sealing lip 9 can be made of TPE, for example.
Such a gasket 10 can be used to make the top segment 1a of the run 1 shown in
However, to make the top segment 1a of the run 1 shown in
With reference to
With reference to a vertical segment 10a of the run 10, this segment may present curvature solely in the YOZ plane. Under such circumstances, as shown in
However, if the shape of the door requires curvature both in the YOZ plane and in the XOZ plane, then the anti-shrinkage element 12 is narrower so as to lie solely in the web 3c of the clip, as shown in
For a vertical segment 10a of a run of the kind shown in
In general, it is advantageous for the anti-shrinkage element to be covered in an adhesion promoter to ensure that it bonds well with the material coating it.
In a preferred embodiment, shown in
In the embodiment shown in
Finally, the embodiment shown in
Number | Date | Country | Kind |
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0314406 | Dec 2003 | FR | national |