| (19) |
 |
|
(11) |
EP 0 996 796 B1 |
| (12) |
EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
|
01.10.2003 Bulletin 2003/40 |
| (22) |
Date of filing: 06.07.1998 |
|
| (51) |
International Patent Classification (IPC)7: E04D 5/10 |
| (86) |
International application number: |
|
PCT/DK9800/309 |
| (87) |
International publication number: |
|
WO 9900/4114 (28.01.1999 Gazette 1999/04) |
|
| (54) |
A ROOF ASSEMBLY AND A METHOD FOR PRODUCING SUCH ROOF ASSEMBLY
DACHAUFBAU UND VERFAHREN ZUM HERSTELLEN EINES SOLCHEN DACHAUFBAUS
ENSEMBLE TOIT ET PROCEDE DE PRODUCTION D'UN TEL ENSEMBLE TOIT
|
| (84) |
Designated Contracting States: |
|
FI GB |
| (30) |
Priority: |
18.07.1997 DK 88097
|
| (43) |
Date of publication of application: |
|
03.05.2000 Bulletin 2000/18 |
| (73) |
Proprietor: ICOPAL A/S |
|
DK-2730 Herlev (DK) |
|
| (72) |
Inventors: |
|
- BORST, Jan
DK-3000 Helsingor (DK)
- HOLBEK, John, Valdemar
DK-2800 Lyngby (DK)
|
| (74) |
Representative: Sundien, Thomas et al |
|
Zacco Denmark A/S,
Hans Bekkevolds Allé 7 2900 Hellerup 2900 Hellerup (DK) |
| (56) |
References cited: :
EP-A- 0 269 989 SE-B- 460 982 US-A- 4 239 581
|
DK-B- 136 374 SE-B- 462 221
|
|
| |
|
|
|
|
| |
|
| 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).
|
[0001] The invention relates to a roof assembly comprising a structural support, a waterproof
membrane comprising sheets of bituminous membrane material arranged on said support
with overlay; wherein the lower layer of the overlay is, exclusively in the peripheral
portion of the sheet, in permanent connection with the support; and wherein the upper
layer of the overlay is in permanent connection with the lower layer of the overlay.
[0002] Roof constructions with a roofing of a bituminous roofing material are well known.
For the formation of such, a structural support is provided which is usually made
of a sheet material that can be secured on a rafter construction or the like structural
support. The support may also be a supporting sheet material and eg an overlaying
heat-insulating layer. This support serves as support for a bituminous roofing layer
which is permanently connected thereto, eg by welding. In that context, it may be
a full-surface connection, as described eg in DK 136 374 and SE 460 982; or eg elongate
connecting strips or the like positioned at intervals transversally to a roofing sheet
so as to establish a connection to the support. The roofing layer can consist of a
single- or multi-layered bituminous roofing material and is typically coated on its
top surface with crushed slate, but it may also have another surface. Often, a need
subsequently arises for covering this roofing layer with a waterproof membrane which
is usually, like the roofing material proper, made of a bituminous material. Such
subsequent coverings with a waterproof membrane can be made eg in accordance with
the prior art, wherein membrane sheets are mounted with an overlay and secured to
the support. In this context it is known to use two different principles for the attachment
of the membrane sheets relative to the roof construction, viz a peripheral connection
or full-surface welding/strip welding of the membrane sheets.
[0003] The peripheral attachment is generally considerably more expediently established
than a full-surface/strip welding. Furthermore, compared to the principle of full-surface/strip
welding, the principle of peripheral attachment involves the considerable advantage
that a subsequent dismounting of the membrane sheets is considerably less difficult.
This is significant in connection with the increasing re-use of such membrane material.
For the peripheral attachment, the membrane sheets must generally be dimensioned with
more strength. The drawback associated with this in the form of an increased material
consumption, however, is amply balanced by the advantage of more expedient mounting
and the convenient properties in connection with dismounting. An example of peripheral
attachment is shown in SE 460 982.
[0004] The prior art within the field of peripheral attachment of the membrane sheets teaches
that that a lower part of the overlay, ie the lower moisture-barrier membrane sheet,
is secured to the support by means of attachment meanss, such as nails, which - in
case an intermediate roofing layer is present - must be mounted through the roofing
layer. It is necessary in such construction that the lower membrane layer in the overlay
is, with regard to surface impacts, dimensioned in accordance with the attachment
means used and the spacing there between. Thus, any pull in the membrane will have
to be absorbed in the area covered by the attachment means in the lower layer of the
overlay. Obviously, due to the usually small expanse of an attachment means and the
usually sharp edge area of such, either a small mutual spacing between such attachment
means or else a high strength of the membrane material is required to resist pulling-through
of the attachment meanss by influences, eg by wind. The required insertion of the
attachment means through a roofing layer, if any, involves an increased risk of moisture
penetration below such roofing layer. Despite the fact that the use of separate mechanical
attachment meanss is considerably more expedient than the full-surface welding or
strip welding otherwise employed, a significant amount of time, however, is consumed
in this attachment process in the establishment of the membrane covering.
[0005] It is therefore an object of the present invention to form a roof covering of the
type described above which will, while maintaining the properties of a peripheral
connection that are advantageous with a view to dismounting and re-use, yield improved
strength of the connection between support and membrane thereby reducing the risk
of moisture penetration below a roofing layer, and which is substantially more expedient
to accomplish.
[0006] In accordance with the invention this is accomplished by the permanent connection
between the lower membrane layer in the overlay and the lower layer consisting of
a permanent, mutual welded or adhesive connection between support and a peripheral
area of the lower membrane layer in the overlay.
[0007] Since this is a case of a welded or adhesive connection, power influences that may
occur on the membrane layer relative to the support are not associated with large,
local concentrations of tension as is the case around the edge of the mechanical attachment
means used so far. Furthermore, it is possible in a simple manner to distribute power
influences across a larger area without hereby substantially influencing the time
consumed in the mounting. Thus, it is hereby obtained that corresponding material
dimensions yield improved strength of the membrane layer compared to the prior art
peripheral attachment, or else a corresponding strength is obtained with smaller material
dimensions. In the roof construction in accordance with the invention, no holes occur
in a roofing layer, if any, when the membrane material is connected to the support,
and thus no passage for moisture to the area below the roofing layer is created as
a consequence of the mounting of the membrane. Permanent connection between the support
and the lower part of the overlay can be established substantially more expediently
by an adhesive or welded connection than by permanent connection by means of attachment
means. Hereby a considerable rationalisation of the roof construction is obtained
from a manufacturing point of view, and considerably improved strength conditions
are also obtained therefor while maintaining the advantageous properties of the peripheral
attachment as regards dismounting. When re-using membrane material or roofing material
with a membrane mounted there across it is no longer required to separate the attachment
means, which may be eg metallic, from the remaining material. This entails a considerable
rationalisation of the re-use.
[0008] Preferably the roofing layer comprises a bituminous top layer coated with crushed
slate or other surface coating, and the side of lower portion of the overlay that
faces the bituminous top layer preferably comprises a heat-activatable adhesive layer
which will, by the welding connection, establish the permanent connection between
the lower membrane layer in the overlay and the roofing layer and hence the permanent
connection with the remaining support.
[0009] As also mentioned, a substantial amount of the time it takes to establish the membrane
layer covering is consumed by the use of separate mechanical attachment means as is
commonly known in the prior art for peripheral attachment. It is therefore a further
object of the invention to accomplish a method of connecting a waterproof membrane
by peripheral attachment to a support, which method is considerably more expediently
exercised that the prior art.
[0010] Therefore, the invention also relates to a method for use in the construction of
a roof as described above by connecting a lower layer of a membrane material in an
overlay with a lower layer. The method is characterised in that the lower layer in
the overlay is in the overlay area connected to the support in a heating process;
and in a subsequent depression of the membrane layer towards the roofing layer.
[0011] This heating process is conveniently effected by heat being supplied to the underside
of an outer periphery of the membrane layer which forms the lower portion of the overlay,
following deposition of the membrane portion on the support, and to the top surface
of the lower layer while the heat source is moved in the longitudinal direction of
the sheet, and in that, successively, in the same direction and at essentially the
same velocity, a depression of the membrane layer towards the lower layer is carried
out.
[0012] Particularly conveniently the method can be exercised in that the heat supply can
be effected by use of a hot-air generator with a mouthpiece introduced between the
membrane layer and the support, said hot air being blown in at a high velocity. In
case the support comprises a roofing layer with a bituminous top layer coated with
crushed slate or a similar coating material and the side of the lower portion of the
top layer that faces towards the bituminous top layer preferably comprises a heat-activatable
adhesive layer, this is particularly convenient since it has surprisingly been found
that the blowing-in and subsequent depression causes the coating material to be shifted
from the central area of the zone of peripheral welding, whereby a substantially improved
connection is obtained between the bituminous material in the roofing layer and the
heat-activatable adhesive layer than was otherwise known by welding of membrane sheets
with a coated surface.
[0013] Use of a hot-air generator, preferably an electrical hot-air generator, allows for
substantial energy savings compared to eg use of a gas burner. Use of an electric
hot-air generator also results in a considerable reduction of the risk of fires erupting
compared to the use of gas burners.
[0014] Depression of the membrane layer towards the roofing layer is preferably effected
by means of a roll which is conveyed either by hand or in a rack that also carries
the heat source. In this context, the pressure force constitutes 0.4-4.0 N/mm, preferably
0.8-3.0 N/mm. The rate of advancement for the heat supplier is preferably such that,
at the side of the membrane edge, a bead of heat-activatable adhesive substance will
emerge, having a magnitude of 2-20 mm. Hereby a surprisingly high strength of the
connection is obtained in a simple manner. The width of the welding area at the edge
corresponds approximately to the width of the overlay, ie it is within the range of
5-15 cm.
[0015] The invention will now be explained in further detail with reference to the drawings
which illustrate partly the prior art, partly a preferred embodiment of the roof construction
according to the invention, and wherein
Figure 1 is a sectional view of an exemplary membrane material for mounting on top
of an existing roofing;
Figure 2 is a sectional view through a roof construction wherein the lower membrane
layer in an overlay, cf the prior art known before the invention, is attached to a
lower layer by means of attachment meanss;
Figure 3 is a sectional view through a roof construction according to the invention;
Figure 4 illustrates a roof construction according to the invention, seen from above,
by connection of the membrane material to the roofing layer and thus to the support;
Figure 5 is a sectional view along line 5-5 in Figure 4;
Figure 6 illustrates use of an alternative tool for a roof construction in accordance
with the invention, seen from above, for the connection of the membrane material to
the roofing layer and thus the support;
Figure 7 is a sectional view along line 7-7 in Figure 6.
[0016] Figure 1 illustrates combining of a membrane layer 3 for mounting on an existing
roofing 2 (Figures 2 and 3). The membrane layer comprises a reinforcing layer 11 which
has been impregnated and coated with a mixture 12 of bitumen, filler and thermoplastic
elastomer; and wherein a layer of crushed slate 13 is arranged on top of this. On
the underside of the reinforcing layer 11, a heat-activatable adhesive substance 14
is provided consisting of bitumen, filler and thermoplastic elastomer. On its underside
the membrane layer is provided with a readily meltable plastics film 15.
[0017] Figure 2 shows an example of prior art wherein an existing roofing layer 2 mounted
on a support 1 of sheet material is coated with a membrane 3,4. The roofing material
2 is permanently attached to the support 1 by full-surface welding. However, it may
be discrete welding areas, such as elongate connecting strips or peripheral attachment.
The lower layer of the membrane material 3 is connected to the support 1 by means
of an attachment means 21. The upper layer of the membrane material 4 is subsequently
arranged in overlay relative to the lower membrane material layer 3, and is herein
welded thereto by peripheral welding 5. Obviously the head of such attachment means
covers a limited area and therefore, with a view to the power influences exerted thereon,
the membrane layer 3 must be dimensioned in accordance with the size of the head of
the attachment means or the number thereof. Equally obviously, this known method of
attachment involves penetration of the existing roofing material 2 which creates access
for moisture below the roofing material.
[0018] Figure 3 illustrates an example of the roof construction according to the invention
wherein a support 1 has a roofing material 2 mounted thereon by full welding; and
wherein the attachment of membrane material 3 relative to the support 1 has been accomplished
by peripheral welding relative to the existing roofing material 2, thus producing
an indirect connection. The superjacent membrane sheet 4 is, like in the prior art,
connected by welding to the lower membrane sheet 3 in an overlay.
[0019] Figure 4 shows a section of a roof construction while exercising the method for forming
the roof construction illustrated in Figure 3. Herein the membrane layer 3 has been
rolled onto the roofing material 2 and the mouthpiece 8 of a heat supplier 7 has been
inserted into the peripheral area below the membrane layer 3 where it is conveyed
to the left in Figures 4 and 5 during the welding process. Following activation of
the adhesive substance on the underside of the membrane material 3, a roll 9 is conveyed
manually across the welding area and the welding area is compressed.
[0020] This will appear more clearly from Figure 5 which illustrates the support 1, the
existing roofing material 2 and the membrane material 3. It also appears that the
mouthpiece 8 of the hot-air supplier 7 blows the hot air in a direction towards the
welding site, ie to the right in Figures 4 and 5.
[0021] Correspondingly, Figure 6 illustrates an alternative embodiment of the method according
to the invention wherein the subsequent compression of the welding place is effected
by means of a more heavy roll 10 mounted on a not shown rack which also carries the
hot-air supplier 7. Owing to the mounting on a rack which is advanced to the left
in the drawing, there is a need for a heavier roll, since it is not possible to exert
a manual pressure on the welding site. The same will appear from Figure 7 which is
a sectional view through the construction shown in Figure 6.
[0022] The roofing layer preferably comprises a bituminous top layer coated with crushed
slate or the like coated material, and the side of the lower portion of the overlay
which faces towards the bituminous top layer preferably comprises a heat-activatable
adhesive layer. This coated coating presents particularly difficult conditions in
a welding connection. In the method according to the invention and as shown in Figures
4-7, the blowing-in of hot air and the subsequent depression effects a shifting of
the coating material in the welding area, and this enables a tear strength in the
connecting area which substantially exceeds the tear strengths otherwise obtainable
between roofing and membrane.
1. A roof construction comprising a support (1) and a waterproof membrane (3,4) comprising
sheets of bituminous membrane material arranged on the support with overlay, wherein
the lower layer (3) of the overlay is exclusively at the outer periphery of said sheet
in permanent connection with the support; and wherein the upper layer of the overlay
is in permanent connection (5) with the lower layer (3) of the overlay, characterized in that the permanent connection between the lower membrane layer (3) in the overlay and
the lower layer (1) consists in a permanent, mutual welded or adhesive connection
(6) at the periphery of the lower membrane layer (3).
2. A roof construction according to claim 1, characterized in that the structural support (1) is composed of a lower structural part and a heat-insulating
upper part.
3. A roof construction according to claim 1 or 2, characterized in that the support (1) comprises a bituminous roofing layer (2) arranged on the lower structural
portion or on an insulating layer in direct or indirect permanent connection with
the structural portion of the support; wherein the permanent peripheral connection
between the support and the bituminous membrane is formed between the roofing layer
(2) and the membrane layer (3).
4. A roof construction according to claim 3, characterized in that the roofing layer (2) comprises a bituminous top layer coated with slate or other
surface coating; and in that the side of the lower portion (3) of the overlay that faces towards the support comprises
a heat-activatable adhesive layer.
5. A roof construction according to any one of claims 1-4, characterized in that transversally to the permanent peripheral connection (6) between support (1) and
the lower membrane layer (3) of the overlay is provided with passages so as to establish
flow-connection through the peripheral connection (6) for pressure equalisation between
the spaces between membrane and support that are covered by the membrane sheets (3,4).
6. A method for use in the formation of a roof construction according to claims 1-5,
wherein a lower membrane sheet (3) in an overlay is to be connected to a support (1)
exclusively at a peripheral area, characterized in that the connection of the lower membrane sheet in the overlay to the support is effected
by the lower membrane sheet in a peripheral area being permanently connected to the
support by a heating process; and a subsequent depression of the membrane sheet (3).
7. A method according to claim 6, characterized in that the membrane sheet (3) of which an outer peripheral area forms the lower part of
the overlay is laid onto the support; and in that heat is supplied to the underside of this outer periphery and to the top surface
of the support, the heat source being moved in the longitudinal direction of the sheet;
and in that, successively and in the same direction and with substantially the same rate, a depression
of the membrane sheet (3) is performed.
8. A method according to claim 7, characterized in that the heat supply is effected by use of a hot-air generator with a mouthpiece introduced
between membrane layer (3) and support (2), wherein the hot air is blown out at a
high rate.
9. A method according to claim 7, characterized in that the depression is carried out by means of a roll which is conveyed either by hand
or in a rack which also carries the heat supplier.
10. A method according to claims 6-9, characterized in that the depression is effected by a linear pressure within the range of 0.4-4.0 N/mm,
preferably within the range of 0.8-3.0 N/mm.
11. A method according to any one of claims 6-10, characterized in that, at discrete locations in the permanent peripheral connection between lower layer
(2) and the lower membrane sheet (3), passages are provided over the entire width
of the permanent peripheral connection, wherein the passage-forming material is eg
a felt material.
1. Dachkonstruktion, welche ein Trägermaterial (1) und eine wasserdichte Membran (3,
4) beinhaltet, welche Bahnen aus bituminösem Membranmaterial beinhaltet, die auf dem
Trägermaterial mit Überlappung angeordnet sind, wobei sich die untere Schicht (3)
der Überlappung ausschließlich in der äußeren Randzone der Bahn in dauerhafter Verbindung
mit dem Trägermaterial befindet; und wobei sich die obere Schicht der Überlappung
in dauerhafter Verbindung (5) mit der unteren Schicht (3) der Überlappung befindet,
dadurch gekennzeichnet, dass die dauerhafte Verbindung zwischen unterer Membranschicht (3) der Überlappung und
unterer Schicht (1) aus einer in der Randzone der unteren Membranschicht (3) vorhandenen
dauerhaft miteinander verschweißten oder verklebten Verbindung (6) besteht.
2. Dachkonstruktion nach Anspruch 1, dadurch gekennzeichnet, dass das Strukturträgermaterial (1) aus einem unteren Strukturteil und einem wärmeisolierenden
oberen Teil besteht.
3. Dachkonstruktion nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass das Trägermaterial (1) eine bituminöse Dachbelagschicht (2) aufweist, die auf dem
unteren Strukturabschnitt oder auf einer Isolierschicht in direkter oder indirekter
dauerhafter Verbindung mit dem Strukturabschnitt des Trägermaterials angeordnet ist;
wobei die in der Randzone befindliche dauerhafte Verbindung von Trägermaterial und
bituminöser Membran zwischen der Dachbelagschicht (2) und der Membranschicht (3) hergestellt
ist.
4. Dachkonstruktion nach Anspruch 3, dadurch gekennzeichnet, dass die Dachbelagschicht (2) eine bituminöse obere Schicht aufweist, die mit Schiefer
oder einem anderen Oberflächenbelag bedeckt ist; und dass die Seite des unteren Abschnitts
(3) der Überlappung, die dem Trägermaterial zugewandt ist, eine wärmeaktivierbare
Klebstoffschicht aufweist.
5. Dachkonstruktion nach einem der Ansprüche 1 bis 4, dadurch gekennzeichnet, dass in Querrichtung zu der in der Randzone befindlichen dauerhaften Verbindung (6) zwischen
Trägermaterial (1) und unterer Membranschicht (3) der Überlappung Durchlässe vorgesehen
sind, um so eine Strömungsverbindung, die durch die in der Randzone befindliche Verbindung
(6) hindurch verläuft, herzustellen, um für einen Druckausgleich zwischen den zwischen
Membran und Trägermaterial befindlichen Räumen zu sorgen, die von den Membranbahnen
(3, 4) überzogen sind.
6. Verfahren, das bei der Erzeugung einer Dachkonstruktion nach den Ansprüchen 1 bis
5 Anwendung findet, bei welchem eine untere Membranbahn (3) einer Überlappung ausschließlich
bei einer Randzone mit einem Trägermaterial (1) zu verbinden ist, dadurch gekennzeichnet, dass das Verbinden mit der Trägermaterial der unteren Membranbahn der Überlappung dadurch
erfolgt, dass die untere Membranbahn in einer Randzone durch einen Heizprozess mit
dem Trägermaterial dauerhaft verbunden wird; und dass ein anschließendes Herunterdrücken
der Membranbahn (3) erfolgt.
7. Verfahren nach Anspruch 6, dadurch gekennzeichnet, dass die Membranbahn (3), deren äußere Randzone den unteren Teil der Überlappung bildet,
auf das Trägermaterial aufgelegt wird; und dass der Unterseite dieser äußeren Randzone
und der Oberseite des Trägermaterials Wärme zugeführt wird, wobei die Wärmequelle
in Längsrichtung der Bahn bewegt wird; und dass, sukzessive und in gleicher Richtung,
und mit im Wesentlichen gleicher Geschwindigkeit ein Herunterdrücken der Membranbahn
(3) durchgeführt wird.
8. Verfahren nach Anspruch 7, dadurch gekennzeichnet, dass die Wärmezufuhr unter Verwendung eines Heißluftgenerators erfolgt, wobei ein Mundstück
zwischen Membranschicht (3) und Trägermaterial (2) eingeführt wird und die heiße Luft
mit hoher Geschwindigkeit ausgeblasen wird.
9. Verfahren nach Anspruch 7, dadurch gekennzeichnet, dass das Herunterdrücken mittels einer Walze erfolgt, die entweder von Hand oder in einem
Gestell vorwärts transportiert wird, das auch die Wärmezufuhreinrichtung trägt.
10. Verfahren nach einem der Ansprüche 6 bis 9, dadurch gekennzeichnet, dass das Herunterdrücken mit einem Lineardruck zwischen 0,4 und 4,0 N/mm und vorzugsweise
zwischen 0,8 und 3,0 N/mm erfolgt.
11. Verfahren nach einem der Ansprüche 6 bis 10, dadurch gekennzeichnet, dass an voneinander getrennten Stellen der dauerhaften Randzonenverbindung zwischen unterer
Schicht (2) und unterer Membranbahn (3) über die gesamte Breite der dauerhaften Randzonenverbindung
Durchlässe vorgesehen sind, wobei es sich bei dem den Durchlass bildenden Material
z. B. um ein Filzmaterial handelt.
1. Construction de toit comprenant un support (1) et une membrane étanche à l'eau (3,4)
comprenant des feuilles d'un matériau de membrane bitumineux disposées sur le support
avec un chevauchement, où la couche inférieure (3) du chevauchement se situe exclusivement
à la périphérie extérieure de ladite feuille en une connexion permanente avec le support
; et où la couche supérieure du chevauchement est en connexion permanente (5) avec
la couche inférieure (3) du chevauchement, caractérisée en ce que la connexion permanente entre la couche de membrane inférieure (3) dans le chevauchement
et la couche inférieure (1) consiste en une connexion permanente, mutuellement soudée
ou adhésive (6) à la périphérie de la couche de membrane inférieure (3).
2. Construction de toit selon la revendication 1, caractérisée en ce que le support structurel (1) est constitué d'une partie structurelle inférieure et d'une
partie supérieure calorifuge.
3. Construction de toit selon la revendication 1 ou 2, caractérisée en ce que le support (1) comprend une couche de toit bitumineuse (2) disposée sur la portion
structurelle inférieure ou sur une couche isolante en une connexion permanente directe
ou indirecte avec la portion structurelle du support ; où la connexion périphérique
permanente entre le support et la membrane bitumineuse est formée entre la couche
de toit (2) et la couche de membrane (3).
4. Construction de toit selon la revendication 3, caractérisée en ce que la couche de toit (2) comprend une couche supérieure bitumineuse revêtue d'ardoise
ou d'un autre revêtement de surface ; et en ce que le côté de la portion inférieure (3) du chevauchement qui est orienté vers le support
comprend une couche adhésive activable par la chaleur.
5. Construction de toit selon l'une des revendications 1 à 4, caractérisée en ce que sont prévus transversalement à la connexion périphérique permanente (6) entre le
support (1) et la couche de membrane inférieure (3) du chevauchement des passages
de manière à établir une connexion d'écoulement à travers la connexion périphérique
(6) en vue d'une égalisation de la pression entre les espaces entre la membrane et
le support qui sont recouverts par les feuilles de membrane (3,4).
6. Procédé pour utilisation dans la formation d'une construction de toit selon les revendications
1 à 5, où une feuille de membrane inférieure (3) dans un chevauchement doit être reliée
à un support (1) exclusivement à une zone périphérique, caractérisé en ce que la connexion de la feuille de membrane inférieure dans le chevauchement au support
est effectuée par la feuille de membrane inférieure dans une zone périphérique reliée
en permanence au support par un processus de chauffage ; et un enfoncement suivant
de la feuille de membrane (3).
7. Procédé selon la revendication 6, caractérisé en ce que la feuille de membrane (3) dont une zone périphérique extérieure forme la partie
inférieure du chevauchement est placée sur le support ; et en ce que de la chaleur est amenée au côté inférieur de cette périphérie extérieure et à la
surface supérieure du support, la source de chaleur étant déplacée dans la direction
longitudinale de la feuille ; et en ce que, successivement et dans la même direction et sensiblement à la même vitesse, un enfoncement
de la feuille de membrane (3) est effectué.
8. Procédé selon la revendication 7, caractérisé en ce que l'amenée de chaleur est effectuée en utilisant un générateur d'air chaud avec une
embouchure introduite entre la couche de membrane (3) et le support (2), où l'air
chaud est expulsé selon un débit élevé.
9. Procédé selon la revendication 7, caractérisé en ce que l'enfoncement est exécuté au moyen d'un rouleau qui est déplacé soit à la main soit
dans une crémaillère qui porte également l'organe fournissant la chaleur.
10. Procédé selon les revendications 6 à 9, caractérisé en ce que l'enfoncement est effectué par une pression linéaire dans la plage de 0,4-4,0 N/mm,
de préférence dans la plage de 0,8-3,0 N/mm.
11. Procédé selon l'une des revendications 6 à 10, caractérisé en ce que, à des emplacements discrets dans la connexion périphérique permanente entre la couche
inférieure (2) et la feuille de membrane inférieure (3), des passages sont prévus
sur toute la largeur de la connexion périphérique permanente, où le matériau de formation
des passages est par exemple un matériau de feutre.