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EP 2 832 947 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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15.04.2020 Bulletin 2020/16 |
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Date of filing: 02.08.2013 |
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International Patent Classification (IPC):
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Slider element, assembly method for a guiding device and guiding device
Schieberelement, Montageverfahren für eine Führungsvorrichtung und Führungsvorrichtung
Élément coulissant, procédé de montage pour un dispositif de guidage et dispositif
de guidage
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Date of publication of application: |
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04.02.2015 Bulletin 2015/06 |
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Proprietor: dormakaba Deutschland GmbH |
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58256 Ennepetal (DE) |
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Inventors: |
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- Leong, Jackson
SG-619285 Jurong (SG)
- Leong, Yeong Fu
SG-619285 Jurong (SG)
- Shyam, Suresh Krishnan
SG-619285 Jurong (SG)
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Representative: Balder IP Law, S.L. |
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Paseo de la Castellana 93
5ª planta 28046 Madrid 28046 Madrid (ES) |
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References cited: :
DE-A1-102005 000 195 DE-U1-202005 015 034
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DE-B3-102007 021 979
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The present invention is related to a slider element for a sliding channel of a guiding
device, an assembly method for a guiding device of a door closer as well as a guiding
device for a door closer.
[0002] It is already known that doors comprise so called door closers. These are used after
opening of the door to automatically close the door in a further step. These door
closers usually comprise a guiding arm as well as a guiding or sliding channel. A
slider element, which is configured to be placed within the sliding channel, comprises
a bearing area for rotational bearing of the guiding arm of the guiding device. Therefore,
the closing movement of the door can be guided by respective rotational movement of
the guiding arm relatively to the slider element in a sliding movement of the slider
element within the sliding channel.
DE 10 2007 021979 B3 discloses a slider element for a sliding channel of a guiding device of a door.
[0003] One disadvantage of commonly known slider elements is the complexity of mounting
the slider element. Known assembly methods for the guiding device comprise the step
of inserting the slider element into the sliding channel and in a second step mounting
the guiding arm at a bearing area of the slider element. This mounting step is carried
out by the use of fixing elements, for example in the form of screws. Therefore, the
mounting of the guiding arm at the slider element takes the respective time for fixing
the screw at the respective position. Moreover, it is a disadvantage to provide the
respective internal thread at the slider element to be configured to correspond to
the external thread of the screw. Typical materials for the slider elements are plastic
materials. To comprise an internal thread in the plastic material is of disadvantage
due to the fact that the plastic material sometimes does not give the necessary stiffness
for such internal thread. Therefore, the risk occurs that a fixing element in form
of a screw is detached by a demounting force by destroying the respective internal
thread of the slider element.
[0004] It is an object of the present invention to solve the problems of commonly known
slider elements, guiding devices and respective assembly methods. In particular, it
is an object of the present invention to reduce the costs of the assembly of the slider
element and the guiding device, in particular within an easy manner.
[0005] Aforesaid problem is solved by a slider element with the features of independent
claim 1, an assembly method with the features of independent claim 9 and by a guiding
device with the features of independent claim 10. Further features and details of
the invention result from the dependent claims. Features and details, discussed in
relation to the inventive slider element, are also related to the inventive assembly
method as well as the inventive guiding device and the other way around such that
it can be related to the disclosure of each singular invention aspect.
[0006] An inventive slider element is in use for a sliding channel of a guiding device of
a door closer. The slider element comprises at least two sliding surfaces to contact
respective channel surfaces of the sliding channel. Further, the slider element comprises
one bearing area for rotational bearing of a guiding arm of the guiding device. The
bearing area comprises at least one snap fit section for snap fit assembly with the
guiding arm.
[0007] In contrast to commonly known slider elements, the assembly method of the slider
element and the guiding arm can now take place by a snap fit movement. Compared to
the use of fixing elements in form of a screw, the assembly method with a snap fit
is carried out a lot faster and safer. It does not relate to a predefined and necessary
mounting force for the fixing element but is only in need for carrying out a snap
fit movement. Therefore, the rotational bearing of the guiding arm at the bearing
area is received in a more safe manner.
[0008] Moreover, the use of a snap fit section to enable the snap fit assembly with the
guiding arm allows the production of the slider element in an easier and cost efficient
manner. In particular, the slider element can be produced within an injection molding
process for example with a plastic material or thermoplastic material. This leads
to an easy and cost efficient way of production of the slider element.
[0009] The bearing area comprises a bearing element which is detachable from the body of
the slider element and comprises the at least one snap fit section. The bearing element
is detachable by a separate fixing element which comprises the at least one snap fit
section. In contrast to commonly known slider elements this fixing element in form
of a bearing element is not a screw for a screw contact or screw assembly but is part
of the snap fit assembly which will be discussed in detail below. After placing the
guiding arm in the area of the bearing area, the bearing element can be put on top
of the guiding arm and therefore fixes the guiding arm in the snap fit position. The
snap fit section can therefore get into snap fit contact with respective contact surfaces
of the bearing area. The bearing element is configured to be a cap to be placed on
top of the bearing area and therefore fixing the guiding arm in the snap fit position.
This is carried out in combination with a bushing which comprises rotational bearing
of the guiding arm relatively to the bearing area.
[0010] The slider element can be formed by one single body, forming different kinds of functional
areas. In particular, the sliding surfaces as well as the bearing area. Therefore,
the whole slider element is in particular produced in one single body out of one single
material.
[0011] The bearing area is located spaced apart from the sliding surfaces. In particular,
the two sliding surfaces are arranged parallel to each other, while the at least one
snap fit section comprises a snap fit axis which is also configured to be parallel
to the sliding surfaces.
[0012] The snap fit section comprises at least one elastic part section elastically deformable
during assembly with the guiding arm. This leads to a more easy production step of
the at least one snap fit section. The elastic part section can take its elastic functionality
from the material of the slider element. For example, the geometrical dimension of
the snap fit section comprises the elastic part section such that the material parameters
of the snap fit section allow the elastic deformability of the elastic part section.
In an embodiment not forming part of the invention, a slider element which is produced
in an integral uniform body can comprise such elastic part section. Moreover, one
integral uniform body leads to a further reduced cost of the production of the slider
element. During the assembly process of this non-inventive embodiment, the guiding
arm is placed over the bearing area. During the movement into the snap fit position
of the guiding arm, the bearing area is deformed in an elastic way by deforming elastically
the elastic part section. After the guiding arm has arrived at the snap fit position,
the elastic forces within the elastic part section form the snap fit section back
into the original position such that the snap fit process is finalized.
[0013] It is further of advantage, if an inventive slider element is characterized in that
it comprises a body which integrally forms at least one of the sliding surfaces and
the bearing area. As it has already been discussed in detail, such a uniform body
can be produced in an easy and cost efficient way. In particular, it can be produced
during an injection molding process and can be made of plastic, in particular thermoplastic
material. Therefore, the slider element is further configured with a reduced complexity.
All different functional sections of the slider element are part of one single and
uniform body. This leads further to cost efficiency of the slider element.
[0014] It is further of advantage, if the bearing element comprises at least two snap fit
sections and if the snap fit sections are separated from each other at least partly
by a gap. Comprising at least two snap fit sections gives the possibility to reduce
the elastic deformability of each of the snap fit sections and in the same way providing
enough elastic deformability for the assembly movement of the guiding arm. The use
of a gap is a very easy and cost efficient way to separate each of the snap fit sections
from each other. In particular, the gap comprises geometric dimensions, which are
greater or at least equal to the necessary elastic movement of the top end of the
snap fit sections. Therefore, it is possible that the snap fit sections can deform
inwardly during the snap fit assembly step. After the guiding arm has arrived at its
snap position, the respective snap fit sections can snap back in an elastic way and
therefore finalize the snap fit movement. During the snap fit movement, the gap gives
enough space to allow this snap fit deflection of each of the snap fit sections. In
particular, the gap is a full gap which extends between the top end of the bearing
area until the most bottom end of the snap fit section.
[0015] It is further of advantage, if an inventive slider element is characterized in that
the bearing area is formed in a rotational symmetric way. Due to the fact that the
bearing area is made for a rotation bearing of the guiding arm, the rotational symmetric
way of a bearing area is directed to that rotational movement of the guiding arm.
Therefore, the rotational movement of the guiding arm can take place directly at the
bearing area. Therefore, the bearing area can be used for direct or indirect contact
to the guiding arm. A further element between the guiding arm and the bearing area
can be avoided by the rotational symmetric construction of the bearing area. For example,
the bearing area is configured to comprise at least in general a cylindrical geometrical
dimension.
[0016] It is further possible that an inventive slider element is characterized in that
all snap fit sections are formed identical or almost identical. That leads to almost
identical snap fit movements for all snap fit sections. During the assembly of the
guiding arm each snap fit section therefore comprises almost identical snap fit deflections
and therefore almost identical elastic deformations. This leads to in general symmetrical
snap fit movement of the guiding arm. Unwilling tilting of the guiding arm during
the assembly step is avoided by such a geometrical expression of each of the snap
fit sections. Moreover, this comprises an easy way of manufacturing all the snap fit
sections and thereby comprises a cost efficient production possibility.
[0017] It is further of advantage, if an inventive slider element is characterized in that
at the bearing area at least one sealing element is provided for sealing the contact
between the guiding arm and the slider element. The sealing element is in particular
used by the use of fluids for example hydraulic oils. If there is a lubricant used
for example in the guiding channels, the sealing element avoids this lubricant for
introduction into the gap between the snap fit sections respectively the bearing area
and the guiding arm.
[0018] It is further of advantage, if the at least one snap fit section comprises at least
one assembly interface for elastic deformation of the snap fit section. This assembly
interface can be used as an interface for a mounting tool. Therefore it is more easy
to elastically deform the snap fit section and therefore to carry out the assembly
as well as the disassembly process. For example, the assembly interface can comprise
recess sections for introducing parts of a mounting tool.
[0019] A further object of the present invention is to provide an assembly method for a
guiding device of a door closer. Such an inventive assembly method comprises the following
steps:
- Providing a slider element with the features of the present invention,
- Moving a guiding arm over the bearing area by causing elastic deformation of a snap
fit section,
- Finalizing the snap fit assembly by moving the guiding arm in its final position causing
the snap fit section to snap back in its assembled position.
[0020] Due to the use of an inventive slider element, an inventive assembly method comprises
the same advantages which have been discussed in detail with respect to an inventive
slider element.
[0021] A further object of the present invention is a guiding device for a door closer,
comprising a sliding channel, a slider element and a guiding arm. The inventive guiding
device is characterized in that the slider element comprises the features according
to the present invention. Therefore, the inventive guiding device comes with the same
advantages which have been discussed in detail with respect to the inventive slider
element.
[0022] The present invention is discussed in more detail with respect to the accompanying
drawings. The figures show in schematic way:
- Fig. 1
- an embodiment of a slider element not being part of the invention,
- Fig. 2
- the embodiment of Fig. 1 in a birds eye view,
- Fig. 3
- another embodiment of a slider element not being part of the invention,
- Fig. 4
- an embodiment of an inventive slider element in an exploded view,
- Fig. 5
- a further embodiment of a slider element not being part of the invention,
- Fig. 6
- a further embodiment of a slider element not being part of the invention,
- Fig. 7
- the embodiment of Fig. 6 in a birds eye view.
[0023] Figs. 1 and 2 show a guiding device 100 of a door closer which is not part of the
present invention. It comprises a sliding channel 110 and a guiding arm 120. Within
the sliding channel 110 a slider element 10 is located. The slider element 10 comprises
two sliding surfaces 12, which slide along channel surfaces 112 of the sliding channel
110. Moreover, it can be seen that the slider element 10 comprises a bearing area
20, which is used for rotational bearing of the guiding arm 120. During movement inside
of the sliding channel 110, the guiding arm 120 can be moved in a rotational manner
around the bearing area 20.
[0024] In Fig. 3, one embodiment of a slider element 10 which is not part of the present
invention is shown. At the top end of the uniform body 30 of the slider element 10
the bearing area 20 is located. It comprises two snap fit sections 22 which are configured
to have the geometrical dimensions in a cylindrical manner. The central axis of these
snap fit sections 22 is arranged almost parallel to the sliding surfaces 12.
[0025] The two snap fit sections 22 comprise each one elastic part section 24, which are
able for elastic deformation of the whole snap fit section 22 inwardly. Both snap
fit sections 22 are separated fully by a gap 26.
[0026] During the mounting assembly steps of guiding arm 120, the guiding arm 120 is placed
on top of the two snap fit sections 22. During the downward movement of the guiding
arm 120, the two snap fit sections 22 move inwardly, thereby giving way for the guiding
arm 120. When the guiding arm 120 arrives at its snap fit position at the lowest end,
the two snap fit sections 22 can snap back into their original position thereby finalizing
the snap fit fixation. This can in particular also be understood in comparison to
Fig. 5 which shows the slider element 10 in a side cross sectional view.
[0027] Fig. 4 shows an embodiment of a slider element 10 according to the present invention.
In this particular embodiment, the bearing area 20 comprises a separate bearing element
28 comprising the snap fit section 22. Moreover, a bushing can be seen, which is placed
over the cylindrical bearing area 20. In a further step, the guiding arm 120 is placed
around the bushing. In a finalizing step, the cap formed bearing element 28 is placed
on top of the guiding arm 120, thereby getting the snap fit section 22 into internal
contact with the bearing area 20. Thereby, the snap fit process is finalized.
[0028] Figs. 6 and 7 show a further embodiment of a slider element 10 which is not part
of the present invention. In particular this embodiment comprises a recess for every
snap fit section 22 which is configured to form an assembly interface 23. One can
use a mounting tool to interact geometrically with the assembly interface 23 and therefore
elastically deform the snap fit section 22. The assembly process as well as the disassembly
process can be handled faster, easier and in a more convenient way.
[0029] The aforesaid discussion of the figures describes the invention only by the way of
one example.
Reference signs
[0030]
- 10
- slider element
- 12
- sliding surface
- 20
- bearing area
- 22
- snap fit section
- 23
- assembly interface
- 24
- elastic part section
- 26
- gap
- 28
- bearing element
- 30
- body
- 100
- guiding device
- 110
- sliding channel
- 112
- channel surface
- 120
- guiding arm
1. Slider element (10) for a sliding channel (110) of a guiding device (100) of a door
closer, comprising at least two sliding surfaces (12) to contact respective channel
surfaces (112) of the sliding channel (110), further comprising one bearing area (20)
for rotational bearing of a guiding arm (120) of the guiding device (100), further
comprising a bushing that is placed over the cylindrical bearing area (20) such that
the guiding arm (120) can be placed around the bushing, wherein the bearing area (20)
comprises a separate bearing element (28) which is detachable from the body (30) of
the slider element (10) and comprises a snap fit section (22), and wherein the bearing
element (28) is configured to be a cap to be placed on top of the guiding arm (120)
and thereby fixing the guiding arm (120) in the snap fit position, by getting the
snap fit section (22) into internal contact with the bearing area (20).
2. Slider element (10) according to claim 1, characterized in that the snap fit section (22) comprises at least one elastic part section (24) elastically
deformable during assembly with the guiding arm (120).
3. Slider element (10) according to any of the preceding claims, characterized in that it comprises a body (30) which integrally forms at least one of the sliding surfaces
(12) and the bearing area (20).
4. Slider element (10) according to any of the preceding claims, characterized in that the bearing element (28) comprises at least two snap fit sections (22) whereas the
snap fit sections (22) are separated from each other at least partly by a gap (26).
5. Slider element (10) according to any of the preceding claims, characterized in that the bearing area (20) is formed in a rotational symmetric way.
6. Slider element (10) according to any of the preceding claims, characterized in that all snap fit sections (22) are formed identical or almost identical.
7. Slider element (10) according to any of the preceding claims, characterized in that at the bearing area (20) at least one sealing element is provided for sealing the
contact between the guiding arm (120) and the slider element (10).
8. Slider element (10) according to any of the preceding claims, characterized in that the at least one snap fit section (22) comprises at least one assembly interface
(23) for elastic deformation of the snap fit section (22).
9. Assembly method for a guiding device (100) of a door closer, comprising the following
steps:
- Providing a slider element (10) with the features of any of claims 1 to 8,
- Moving a guiding arm (120) over the bearing area (20) by causing elastic deformation
of a snap fit section (22),
- Finalizing the snap fit assembly by moving the guiding arm (120) in its final position
causing the snap fit section (22) to snap back in its assembled position.
10. Guiding device (100) for a door closer, comprising a sliding channel (110), a slider
element (10) and a guiding arm (120), characterized in that the slider element (10) comprises the features of any of claims 1 to 8.
1. Gleitelement (10) für einen Gleitkanal (110) einer Führungsvorrichtung (100) eines
Türschließers, umfassend mindestens zwei Gleitflächen (12), um jeweilige Kanaloberflächen
(112) des Gleitkanals (110) zu kontaktieren, ferner umfassend einen Lagerbereich (20)
zur drehenden Lagerung eines Führungsarms (120) der Führungsvorrichtung (100), ferner
umfassend eine Buchse, die über den zylindrischen Lagerbereich (20) dergestalt platziert
ist, dass der Führungsarm (120) um die Buchse herum platziert werden kann, wobei der
Lagerbereich (20) ein separates Lagerelement (28) umfasst, das von dem Körper (30)
des Gleitelements (10) abnehmbar ist und einen Schnappverbindungsabschnitt (22) umfasst,
und wobei das Lagerelement (28) als Aufsatz ausgestaltet ist, der auf den Führungsarm
(120) platziert wird und dadurch den Führungsarm (120) in der Schnappverbindungsposition
festlegt, indem der Schnappverbindungsabschnitt (22) mit dem Lagerbereich (20) innen
in Kontakt tritt.
2. Gleitelement (10) nach Anspruch 1, dadurch gekennzeichnet, dass der Schnappverbindungsabschnitt (22) mindestens einen elastischen Teilabschnitt (24)
umfasst, der während der Montage mit dem Führungsarm (120) elastisch verformbar ist.
3. Gleitelement (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass es einen Körper (30) umfasst, der mindestens eine der Gleitflächen (12) und dem Lagerbereich
(20) einstückig ausbildet.
4. Gleitelement (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das Lagerelement (28) mindestens zwei Schnappverbindungsabschnitte (22) umfasst,
wohingegen die Schnappverbindungsabschnitte (22) voneinander durch mindestens einen
Spalt (26) getrennt sind.
5. Gleitelement (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der Lagerbereich (20) rotationssymmetrisch ausgebildet ist.
6. Gleitelement (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass alle Schnappverbindungsabschnitte (22) identisch oder fast identisch ausgebildet
sind.
7. Gleitelement (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass an dem Lagerbereich (20) mindestens ein Dichtelement zum Abdichten des Kontakts zwischen
dem Führungsarm (120) und dem Gleitelement (10) bereitgestellt ist.
8. Gleitelement (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass mindestens ein Schnappverbindungsabschnitt (22) mindestens eine Montageschnittstelle
(23) zur elastischen Verformung des Schnappverbindungsabschnitts (22) umfasst.
9. Montageverfahren für eine Führungsvorrichtung (100) eines Türschließers, umfassend
die folgenden Schritte:
- Bereitstellen eines Gleitelements (10) mit den Merkmalen nach einem der Ansprüche
1 bis 8,
- Bewegen eines Führungsarms (120) über den Lagerbereich (20) durch Veranlassen elastischer
Verformung eines Schnappverbindungsabschnitts (22),
- Abschließen der Schnappverbindungsmontage durch Bewegen des Führungsarms (120) in
seine Endposition, wodurch der Schnappverbindungsabschnitt (22) veranlasst wird, in
seine montierte Position zurückzuschnappen.
10. Führungsvorrichtung (100) für einen Türschließer, umfassend eine Gleitkanal (110),
ein Gleitelement (10) und einen Führungsarm (120), dadurch gekennzeichnet, dass das Gleitelement (10) die Merkmale nach einem der Ansprüche 1 bis 8 umfasst.
1. Elément coulissant (10) pour un canal coulissant (110) d'un élément de guidage (100)
d'un ferme-porte, comportant au moins deux surfaces coulissantes (12) pour contacter
des surfaces de canal (112) respectives du canal coulissant (110), comportant par
ailleurs une région de support (20) pour un support rotatif d'un bras de guidage (120)
du dispositif de guidage (100), comportant par ailleurs une douille qui est placée
sur une région de support (20) cylindrique de sorte que le bras de guidage (120) peut
être placé autour de la douille, dans lequel la région de support (20) comporte un
élément de support (28) séparé, lequel est détachable du corps (30) de l'élément coulissant
(10) et comporte une section d'encastrement (22), dans lequel l'élément de support
(28) est aménagé comme un capuchon à être placé par dessus du bras de guidage (120)
et par-là immobilise le bras de guidage (120) dans la position d'encastrement en amenant
la section d'encastrement (22) en contact intérieur avec la région de support (20).
2. Elément coulissant (10) selon la revendication 1, caractérisé en ce que la section d'encastrement (22) comporte au moins une section de pièce élastique (24)
qui est élastiquement déformable pendant l'assemblage au bras de guidage (120).
3. Elément coulissant (10) selon l'une des revendications précédentes, caractérisé en ce qu'il comporte un corps (30), qui intégralement aménage au moins une des surfaces coulissantes
(12) et la région de support (20).
4. Elément coulissant (10) selon l'une des revendications précédentes, caractérisé en ce que l'élément de support (28) comporte au moins deux sections d'encastrement (22), dans
lequel les sections d'encastrement (22) sont séparées l'une de l'autre au moins partiellement
par une interstice (26).
5. Elément coulissant (10) selon l'une des revendications précédentes, caractérisé en ce que la région de support (20) est aménagée à symétrie de révolution.
6. Elément coulissant (10) selon l'une des revendications précédentes, caractérisé en ce que toutes les sections d'encastrement (22) sont aménagées de façon identique ou presque
identique.
7. Elément coulissant (10) selon l'une des revendications précédentes, caractérisé en ce qu'est prévu à la région de support (20) au moins une élément d'étanchéité pour étanchéifier
le contact entre le bras de guidage (120) et l'élément coulissant (10).
8. Elément coulissant (10) selon l'une des revendications précédentes, caractérisé en ce que ladite au moins une section d'encastrement (22) comporte au moins une interface d'assemblage
(23) pour la déformation élastique de la section d'encastrement (22).
9. Méthode d'assemblage pour un dispositif de guidage (100) d'un ferme-porte, comportant
les étapes suivantes :
- mettre à disposition un élément coulissant (10) ayant les caractéristiques de l'une
des revendications 1 à 8,
- mouvoir un bras de guidage (120) par dessus la région de support (20) en causant
une déformation élastique d'une section d'encastrement (22),
- compléter l'assemblage d'encastrement en mouvant le bras de guidage (120) vers sa
position finale en faisant la section d'encastrement (22) retourner s'encastrer dans
sa position assemblée.
10. Dispositif de guidage (100) pour un ferme-porte, comportant un canal coulissant (110),
un élément coulissant (10) et un bras de guidage (120), caractérisé en ce que l'élément coulissant (10) comporte les caractéristiques de l'une des revendications
1 à 8.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description