| (19) |
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(11) |
EP 3 085 847 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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17.04.2024 Bulletin 2024/16 |
| (22) |
Date of filing: 22.04.2016 |
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| (51) |
International Patent Classification (IPC):
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| (54) |
SYSTEM FOR INTERNAL INSULATION OF BUILDINGS, IN PARTICULAR OF SLANTED ROOFS AND MOUNTING
METHOD FOR THE INTERNAL INSULATION
SYSTEM FÜR DIE INNENDÄMMUNG VON GEBÄUDEN, INSBESONDERE VON SCHRÄGDÄCHERN, SOWIE MONTAGEVERFAHREN
FÜR EINE SOLCHE INNENDÄMMUNG
SYSTÈME D'ISOLATION INTERNE DE BÂTIMENTS, NOTAMMENT DE TOITS INCLINÉS ET PROCÉDÉ DE
MONTAGE POUR L'ISOLATION INTERNE
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| (84) |
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 |
| (30) |
Priority: |
23.04.2015 DE 102015106285 22.01.2016 DE 202016100283 U
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| (43) |
Date of publication of application: |
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26.10.2016 Bulletin 2016/43 |
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Proprietor: SAINT-GOBAIN ISOVER |
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92400 Courbevoie (FR) |
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| (72) |
Inventors: |
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- Langkau, Michael
68535 Edingen-Neckarhausen (DE)
- Fabian, Felix
68219 Mannheim (DE)
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| (74) |
Representative: Bockhorni & Brüntjen Partnerschaft
Patentanwälte mbB |
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Agnes-Bernauer-Straße 88 80687 München 80687 München (DE) |
| (56) |
References cited: :
EP-A1- 0 924 365 BE-A- 562 356 DE-A1- 19 963 028 FR-A1- 2 858 824 GB-A- 2 194 261 US-A- 3 857 216
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WO-A2-2009/103911 DE-A1- 4 339 979 FR-A1- 2 636 657 GB-A- 1 144 450 US-A- 3 263 388
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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).
|
[0001] The invention relates to a system for the internal insulation of buildings, in particular
of slanted roofs according to the preamble of patent claim 1. The invention furthermore
relates to a respective mounting method for applying an internal insulation, advantageously
in the field of slanted roofs.
[0002] In the field of building insulation so called on rafter insulation is known for slanted
roofs wherein the insulation material is applied to rafters extending perpendicular
to a ridge beam of a roof, wherein the rafters are arranged at a distance from one
another and extend according to the slant of the roof. Thereafter a lower cover web
forming a water repellent outer layer is placed on the insulation material, thereafter
there is counter and support lattice work forming a support structure for the roof
tiles. Optionally a vapor barrier foil or a similar suitable climate membrane can
be provided in particular in a remodeling situation.
[0003] Additionally, also the portion between the rafters arranged at a distance from one
another can be filled with insulation material. So called clamping felts are typically
used for this purpose. Clamping felts are typically delivered on rolls and are provided
with evenly spaced marking lines. For insulation purposes, sections are cut off by
a knife or similar on site from the unwound clamping felt roll, wherein a length of
the clamping felt rolls corresponds to a clear width between the rafters and a predetermined
oversize. These clamping felt sections are accordingly inserted between the rafters
under pressure which builds up a reset spring force within the clamping felt so that
the clamping felt is firmly supported between the rafters. Due to a considerable thickness
of the rafters a large amount of damping material can be arranged between the rafters
due to a considerable thickness of the rafters when providing between rafters insulation
which naturally increases the insulation effect.
[0004] The subsequently described invention does not relate to external insulation of buildings
but to an internal insulation of buildings wherein the insulation material is arranged
from an inside under the inward oriented faces of the rafters (so called under rafter
insulation). Also for under rafter insulation a support lattice structure is used
which is formed by slats or metal profiles attached at the rafters at a distance from
one another like in on rafter insulation. This support lattice structure/metal substructure
is arranged from an inside on the respectively deployed insulation materials and attached
at the rafters with attachment device elements, as an alternative thereto, the support
lattice structure is applied first and the insulation materials are introduced thereafter.
The support lattice structure is used for receiving the inner covering for which typically
sheet rock is used which is attached at the support lattice structure with screws.
Insofar a force introduced through the support lattice structure has to be received
overall by the attachment device elements.
[0005] When there are walls made from a beam construction, either in the field of slanted
roofs or when there are walls that extend over the entire height of a story and which
have a wooden structure, the internal insulation is analogously applied to the rafter
wherein also here an intermediary rafter insulation is typically, this means insulation
material is arranged between the offset support rafters. Since this configuration
differentiates on the one hand side between rafters for roof construction and on the
other hand side beams for walls the term rafter element is subsequently uniformly
used for beams and rafters like the term slat element typically includes slats made
from wood and also optionally used profile strips made from plastic or sheet metal,
in particular so called C or CD profile strips. Also the term under rafter insulation
is uniformly used for the internal insulation placed in front of the rafter elements
in a slanted roof and also in a vertical wall.
[0006] A system of this type for internal insulation of slanted roofs formed by rafters
is known from
WO 2009 / 103 911 A2. Thus insulation plates made from mineral wool for heat and/or sound insulation are
placed onto the rafters from an inside and supported by anchor elements which are
configured like bolts. These bolt type anchor elements are attached at the rafters
by an integrally formed base portion and respectively include a head piece which is
configured for receiving U-profile bars, wherein the head piece can be furthermore
clipped onto an anchor element and which is furthermore also provided with clip in
grooves for clipping on the profile bar. After arranging the insulation elements at
the rafters the U-profile strips are clipped onto the head pieces of the anchor elements
transversal to the longitudinal direction of the rafters, so that a support lattice
structure is formed which is eventually used for receiving the cover elements, in
particular sheet rock plates. These sheet rock plates are typically attached by self
cutting bolts at the support lattice structure from an inside of the room wherein
the support lattice structure is made from suitable profile strips.
[0007] The insulation material plates are thus arranged between the rafter and the head
element of the anchoring elements, optionally with a vapor barrier or a similar climate
membrane arranged there between. The anchoring elements are arranged at an inside
of the rafters through the integrally formed base pieces through a bolted connection.
An adaptation through thermal insulation plates with different thickness is either
provided through a respective offset of the bolted connection of the anchor elements
at the rafter through the base element or the base element is formed from plural sections
arranged behind each other which are connected with one another through weak sections,
so that respective sections are separable from the base element as a function of the
thickness of the thermal insulation plate. This system however causes a certain assembly
complexity, in particular with respect to adaptation to heat insulation plates with
various thickness. Also during assembly the insulation elements arranged at the rafters
are not secured against falling off which makes insulating large surface roofs more
difficult.
[0008] A system for internally insulating buildings is known from
WO 2006 / 061 538 A1 for insulating walls formed from bricks or wall elements, wherein mineral wool insulation
elements are arranged at an inside of the wall made from wall elements which is oriented
towards the interior space of the building, wherein an inner covering is applied to
the mineral wool insulation elements. Also here sheet rock plates are used in particular
for the inner covering.
[0009] In this system horizontally extending profile strips are attached at the built up
wall into which support elements are clipped at a uniform distance from one another
wherein the support elements protrude from the profile bars to an interior of the
room. Horizontally extending profile strips are also arranged at the upper and at
the lower end of the built up wall. Eventually the insulation material elements are
placed onto bolt shaped support elements. Thereafter respective locking elements are
placed onto the protruding bolts of the support elements, wherein the locking elements
are provided with head elements with clip in grooves into which in particular vertically
oriented C profile strips are clipped. The bolt of the support element and also a
respective inner borehole of each locking element are provided with opposite engagement
profiles in the form of rib bands with free spaces in between in which a longitudinally
extending rib shaped bar is configured. Depending on the rotational orientation of
the locking elements, they can be moved together with the vertical C profile strips
clipped thereto on the bolts of the support element in a direction towards the applied
damper element. In the desired position the locking elements are then locked by rotating
a lever arranged at the locking element, so that the vertical profile bars are fixated
in the desired insertion position at a distance to the horizontal profile strip on
the support elements. Thereafter the sheet rock plates are placed onto the vertical
profile bars and threaded together with screws with self cutting thread with these
profile strips in order to form the inner covering.
[0010] Various quick attachment elements are furthermore known from (
EP 2 476 921 A1,
EP 2 476 922 A1) through which profiles strips are connectable with each other with an adjustable
distance, in particular for connecting thermal insulation and/or sound insulation
elements for building walls. These quick connecting elements are provided with an
anchor bolt provided with a head piece for connecting to a C-profile and an insertion
bolt insert able therein, wherein both elements are provided with corresponding rib
bands over a partial circumference. In one orientation the insertion bolt can be moved
relative to the anchor bolt and can interlock in a desired plug in position or insertion
position by a rotation by 90° similar to
WO 2006 061 538 A1.
[0011] In particular in the field of slanted roofs increasingly an under rafter insulation
is used, thus always in combination with a between rafter insulation. This type of
insulation is used for new construction and also for renovating buildings. Thus, it
is important that the support lattice structure is leveled as precisely as possible
over the entire roof surface in order to receive the fairing elements so that the
covering arranged on the support lattice structure is flat and level over the entire
roof portion, in particular to provide an optically appealing surface configuration
for the inner spaces provided under the roof portion. This leveling is very complex
and time intensive, in particular due to the fact that the support lattice structure
is attached at the rafters by a plurality of anchoring or attachment elements which
overall have to be adjusted and set accordingly for leveling, e.g., by placing wood,
veneer or plastic plates with different thickness behind the slats/profiles. Furthermore
the inner insulation of slanted roofs is advantageously provided with insulation elements
with different thickness which typically has the consequence that a plurality of different
attachment elements has to be used for inner insulations of this type which are to
be attached at the rafter in a suitable manner and respectively at a correct position
for receiving the slats for the support lattice work and furthermore with a respective
distance from the rafter in order to be able to receive the insulation elements arranged
between support lattice work and rafters and vapor retarder foils or similar climate
membranes. Thus, the assembly of insulation elements for this type becomes very complex
for an internal insulation of this type and based on errors during assembly difficulties
occur thereafter when cover plates are applied in a separate process step because
sufficient leveling of the support lattice work is missing. This requires additional
complex measures, wherein damping can become time consuming and also expensive. Practical
applications have shown that errors during such internal insulations are quite frequently
caused by a deficient execution of the so that there is a need for a suitable mounting
system for an internal insulation of this type, in particular in the slanted roof
field.
[0012] EP 0 924 365 A1 describes a system for internally insolating buildings according to the preamble
of claim 1. The system comprises a sleeve-like attachment element which can be arranged
on a tongue-like base element. The sleeve-like attachment element is largely encircling
the tongue-like part of the base element, with the exception of a longitudinal or
slot-like opening at one of the main faces of the sleeve. This is detrimental for
a quick assembly.
[0013] GB 1 144 450 A discloses a system for internally insulating buildings, wherein slat elements are
transversally arranged at rafter elements at a distance from the rafter elements and
insulation elements arranged from an interior of a room between the rafter elements
and the slat elements for thermal and/or sound insulation in the form of an under
rafter insulation. Referring to the embodiment shown in figures 9 and 10 therein,
the system comprises attachment devices formed from a base element attachable at the
rafter element and an attachment element which is adjustable relative to the base
element and interlockable at the rafter element in a predetermined adjustment position,
wherein the base element is configured as an overreaching element placeable on the
attachment element in an overreaching arrangement, the base element being configured
from two parallel longitudinal arms which define a receiving cavity between each other
for a penetration by the upper section of the attachment element. The attachment element
comprises a receiving element for receiving the slat element as an integral part of
the attachment element. The system requires a finishing element to be inserted in
recesses of the receiving element of the attachment element to provide a finish between
edges and membranes.
[0014] US 3,857,216 A describes a ceiling suspension system for supporting panels in a horizontal plane,
specifically insulation elements arranged from an interior of a room for thermal and/or
sound insulation. The system comprises attachment devices formed from a base element
that is attachable at a rafter element and an attachment element that is adjustable
relative to the base element and interlockable at the rafter element in a predetermined
adjustment position. The attachment element is configured as an overreaching element
placeable on the base element and configured from two parallel longitudinal arms defining
a receiving cavity for being penetrated by the upper section of the base element.
The system described in
US 3,857,216 A is not meant to bear the weight of slats.
[0015] Thus it is an object of the invention to provide a suitable system for an internal
insulation of this type which can be used for mounting the insulation elements in
a quick, simple and safe manner and in order to facilitate the execution of the insulation
work and in order to prevent or avoid a deficient execution of the insulation caused
by the mounting. It is another aspect of the invention to not only provide quick assembly
but in particular also a precise assembly which in a simple manner facilitates an
even leveling for subsequent layup of covering plates.
[0016] This object is achieved according to the invention by a system with the features
of claim 1.
[0017] According to the invention, the receiving element is not integrally configured with
the attachment element but forms a separate piece.
[0018] Subsequently advantageous embodiments of the invention are described to schematic
drawing figures, wherein:
- FIG. 1
- illustrates a portion of a slanted roof with rafters from an interior;
- FIG. 2
- illustrates a detail view of the slanted roof of FIG. 1 with an assembly tool with
a graphic marker;
- FIG. 3
- illustrates an embodiment of an attachment device in an exploded view;
- FIG. 4
- illustrates a detail view of the attachment device illustrated in FIG. 3;
- FIG. 5
- illustrates a view of the attachment device according to FIG. 4 with an applicable
receiver element for a wooden bar;
- FIG. 6
- illustrates a lateral view of the embodiment illustrated in FIGs. 3 - 5;
- FIG. 7
- illustrates a front view of the embodiment with a sheet metal profile strip received
therein;
- FIG. 8 - 13
- illustrates plural views of various sequential steps of a mounting method using a
system which is not the system of the invention.
[0019] Subsequently the invention is described with reference to a slanted roof configuration
with rafters, wherein this embodiment is also implementable for beam structures of
vertical walls.
[0020] It is well known that slanted roofs in a simple embodiment are made from an upper
bridge beam at which rafters are attached on both sides in uniform intervals, thus
on a left and on a right side of the bridge beam. At a lower end the rafters are attached
at so called base beams. In case of an under beam insulation slats are arranged at
an inside of the rafters, thus on an inward oriented side of the rafters transversal
to the rafters wherein the slats are attached at the rafters which in turn are arranged
along the rafters at a distance from one another and which form the horizontal support
lattice work for receiving the inner fairing. The slats of the support lattice work
do not only have to be able to carry the load but also have to be leveled precisely.
Between this support lattice work the under spar insulation is advantageously attached
with a thickness that corresponds to the slat depth wherein the so called inter slat
insulation can be additionally arranged between the slats.
[0021] FIG. 1 schematically illustrates the configuration of one half of a slanted roof
1 with rafters 2 that are arranged at a distance to one another, a between rafters
insulation 4 which is typically arranged flush with the rafters between the rafters
2, this means whose thickness corresponds to the height of the rafters and which completely
fills the space between the rafters, a ridge beam 6 extending transversal to the rafters
2 and a bottom beam or threshold 8 and support lattice work arranged there between
which is formed from slats 10 arranged at a distance from one another and extending
transversal to the rafter.
[0022] In the embodiment illustrated in FIG. 1 eight slats 10 are provided in an exemplary
manner between the ridge beam and the base beam 8 and wherein the slats 10 are attached
at six rafters 2.
[0023] For a slanted roof half with a total of 6 rafters according to FIG. 1 this means
that the slats have to be screwed down in a complex manner at 48 attachment points
12 and that they also have to be leveled. Thus FIG. 1 illustrates the slats 10 which
extend horizontally and transversal to the rafters and which are not illustrated in
a three dimensional manner but only has transversal bands for simplification purposes.
[0024] In case of the under rafter insulation described in an exemplary manner for description
purposes the slats 6 have to be arranged at a distance to the rafters 2 so that respective
insulation elements can be arranged in the space between the rafters and the rear
side of the slats 6. Thus according to the invention special attachment devices are
attached which on the one hand side support the slat 6 respectively at a respective
distance to the rafters 2 attach them at the rafters and furthermore are also configured
so that they receive the slat 6 or can alternatively also receive C-profile bars and
can be leveled in elevation which then forms the lattice work for the fairing that
is eventually to be applied and which is mostly made from sheet rock plates. Attachment
devices of this type are subsequently illustrated and described in different advantageous
embodiments.
[0025] It is self-evident that this assembly work is complex, namely FIG. 1 only shows a
roof half with 6 rafters in an exemplary manner. However typically many more rafters
are provided per roof half of a roof thus also more attachment points for anchoring
the support lattice work at the rafters.
[0026] In order to precisely attach these attachment devices at the provided attachment
positions 12 which can be provided by a screw connection assembly aids are advantageously
provided. For this purpose an adhesive tape is particularly suited wherein the adhesive
tape can be wound from a roll and can be used for an adhesive attachment along each
rafter 2 and wherein the adhesive tape is marked with markings 14 at a visible side
that is oriented away from the adhesive joint with the rafters wherein the markings
are arranged at even distances over the length of the adhesive tape 16 thus according
to the nominal distance of the slats 10 of the support lattice work of the roof. A
respective embodiment is illustrated based on FIG. 2 in which the respective adhesive
tape 16 are already glued against the face of the rafters 2 oriented towards the interior
of the room. The markings 14 which are provided on the visible side of the adhesive
tape 16 and arranged at even distances from one another over the length of the adhesive
tape are also clearly visible wherein the markers in this embodiment are formed in
an exemplary manner by a cross marking. Other markings are also possible. For an even
orientation of all attachment points along the rafters of a roof half a thread 18
can be advantageously run horizontally on the rafters under tension so that all tapes
for a roof half can be attached exactly in a line guided by the first markings and
glued on the rafters on in another manner for example by staples. Alternatively this
horizontal orientation axis is visualized by a construction laser. This yields an
even pattern for all attachment points so that the attachment devices can be fixated
exactly at the provided attachment points at the rafters.
[0027] The embodiment according to FIG. 3 illustrates a base element 28 and an attachment
element 30 which are both made from metal or plastic material in particular from extruded
cast profiles by simply cutting off respective sections. In the illustrated embodiment
the base element 28 and also the attachment element 30 have been cut off from an extruded
cast aluminum profile as sections. As illustrated in FIG. 3 with the illustration
of the attachment device in an exploded view also for this attachment device optionally
a receiving shoe 50 for receiving a wooden slat 10 or a head 78 for receiving a profile
bar can be used for receiving the inner fairing. The head 78 and also the receiving
shoe 50 can thus the cut off from an extruded profile, in particular an aluminum extruded
profile so that producing the attachment device is cost effective and simple. The
variant is characterized by robust instruction.
[0028] In particular the base element illustrated in FIG. 3 is attached on a rafter 2 by
attachment flanges protruding on both sides from the pedestal 34 and using an assembly
aide including a band 16 with markings 14. Wherein the attachment is provided by two
screws 30b.
[0029] The single wall pedestal 34 with the advantageous attachment flanges 36 on both sides
is advantageously tapered at its upper edge for easier attachment of the attachment
element 30 in particular the pedestal has a conical cross section in order to facilitate
attachment of the attachment element 30. Furthermore the pedestal 34 is provided with
an engagement profile for the attachment element 30 wherein the engagement profile
extends over most of the elevation of the pedestal 34, in particular from an upper
edge of the pedestal 34 until proximal to the attachment flanges. The height of length
of the wave profile can certainly be configured suitable for the degree of elevation
adjustment of the attachment element relative to the pedestal. In the illustrated
embodiment the engagement profile 150 is configured as a fine wave profile, wherein
the waves extend transversally and in particular perpendicular to the two vertical
side edges of the pedestal 34.
[0030] The attachment element 30 is made from two offset longitudinal arms 152 and 154 which
include two inward oriented inner flanges 156 which are arranged opposite to one another
at a lower end of the attachment 30 which is oriented toward the pedestal 34 wherein
the inner flanges 156 define a plug in pass through 158 between each other wherein
the plug in pass through is in particular configured channel shaped and facilitates
inserting the attachment element 30 onto the pedestal 34. In the portion of the plug
in pass through 158 the inner flanges 156 are advantageously provided with a complementary
engagement profile 160 towards the pedestal 34, thus with a respective wave profile.
[0031] Herein the width of the insertion pass through 158 is slightly less than the thickness
of the pedestal 34 so that the attachment element 30 has to be placed onto the pedestal
34 in order to facilitate a penetration of the pedestal 34 into the profile cavity
160 defined between the two longitudinal arms 152 and 154.
[0032] Since the two inner flanges 156 are advantageously provided at a lower end portion
of the attachment end of the longitudinal arms 152, 154 a spring effect is advantageously
generated when attaching the attachment element 30 on the pedestal 34. This means
the two longitudinal arms 152, 154 are slightly pressed in outward direction away
from one another in a lower end portion of the attachment element so that a spring
loaded reset force is built up which then provides a very firm attachment of the attachment
element 30 on the pedestal 34 when the attachment element 30 is arranged on the pedestal
34 at the desired elevation wherein the firm attachment is reached due to the engagement
of both wave profiles and a respectively high load bearing capability of the attachment
device is assured in its interlocking positions. The two longitudinal arms 152, 154
are connected with one another slightly above a center of the arms by a continuous
transversal bar 162 so that the two longitudinal arms are kept at a distance from
one another. This transversal bar 162 in this embodiment separates the upper profile
cavity 160 from an upper receiving cavity 164.
[0033] In an upper portion of the receiving cavity 164 the two longitudinal arms 152, 154
are advantageously provided at their opposite insides with another substantially corresponding
engagement profile thus in turn in wave shape.
[0034] Instead of a wave profile certainly any suitable engagement profile, thus a tooth
or groove profile can be used which facilitates a respective interlocking between
the two plug in components thus under a spring load. As required, in particular for
stiffening but also for securing against a fall out of the insulation elements of
the below rafter insulation to be inserted support flanges 168 protruding on both
sides from the arm are provided in the upper portion of the attachment element 30
and at the upper end wherein the support flanges 170 protrude on both sides. The support
flanges 168 secure the insulation elements of the below rafter insulation against
falling down during assembly and the support flanges 170 can be used as a support
for a vapor retarder to be introduced or for the same climate membrane. Thus for support
respective adhesive pads (not illustrated) can be provided on the support flanges
170 or alternatively also hook and loop tapes wherein respective hook and loop structures
can be arranged at the climate membrane.
[0035] After applying the attachment element 30 on the pedestal 34 optionally a receiving
shoe 50 (FIG. 5) can be applied to the support flanges 170 which is then attached
in a suitable manner at the attachment element 30 thus respectively with a sheet metal
screw 172 or similar which comes into engagement with the respective engagement profile
166 at the upper end of the two longitudinal arms 152, 154 so that the receiving shoe
50 can be respectively fixated on the attachment element 30. Advantageously two offset
support ribs 174 are provided at the bottom side of the receiving shoe 50 wherein
the support ribs 174 can provide a preload relative to the support flanges 170 for
increasing the fixation when the screw 172 is turned in.
[0036] The engagement position of the sheet metal screw 172 into the engagement profile
166 comes from the sectional view in FIG. 6 which illustrates a receiving head 78
for receiving the profile strip 32 instead of the receiving shoe 50 illustrated in
FIG. 5 wherein the profile strip is clipped on through its inward protruding arm into
respective grooves 80 of the receiving head 78.
[0037] As an alternative to an optional clamping over the support ribs 174 described in
conjunction with FIG. 5 the support ribs 174 as illustrated in FIG. 6 can be moved
apart far enough so that they reach over the upper support flanges 170 on both sides
when attaching the receiving head 78 or the receiving shoe 50 so that they chamber
the upper portion of the attachment element 30 between each other.
[0038] FIG. 7 illustrates the attachment device in mounted position wherein initially the
base elements 28 are attached on the rafters 2 with respective assembly aides that
are described supra and the attachment elements 30 are applied. Thereafter the insulation
elements of the under rafter insulation are applied, in particular using clamping
felts, eventually a suitable climate membrane or vapor retarder foil 44 is applied
to the support flanges 170 and eventually the receiving shoe 50 or the receiving head
78 are applied with a fixation by a suitable screw 172, thus a sheet metal screw which
tightens against the interlocking of the engagement profile that is provided in an
upper portion of the attachment element 30. The suitable adjustment in elevation is
simply provided by respective sliding of the attachment element onto the pedestal,
wherein the spring elastic aluminum profile interlocks on the pedestal 34 in the desired
position so that a simple leveling can be provided without tools.
[0039] FIG. 7 eventually illustrates clipping on the support lattice work formed herein
by sheet metal profile bars 32 which can eventually be provided with the covering
thus in the form of sheet rock plates by respective attachment devices like e.g. sheet
metal screws.
[0040] Subsequently the complete assembly of a below rafter insulation using an alternative
attachment device comprising an insertion sleeve 140 with a circumferentially protruding
flange 40, and therefore not illustrating a method of mounting of the claimed system,
is described. Thus, starting from a roof half corresponding to FIG. 1 with 6 rafters
and a between rafter insulation 4 introduced between the rafters 2 initially according
to FIG. 8 a guide thread 18 is pulled taunt over the rafters wherein optionally already
a vapor retarder foil or a respective climate membrane was already mounted on the
between rafter insulation as required.
[0041] In a second step using the taunt guide thread 18 accordingly the adhesive tapes are
glued perpendicular to the taunt guide threads 18 onto the rafters 2 after pulling
a release foil from the adhesive tape, in case of an optionally mounted vapor retarder
foil the tapes are glued onto the foil. An adhesive tape with a cross marking 14 is
used for this purpose.
[0042] Multiple assembly tests have shown that only a few minutes are required for pulling
the guide thread 18 and for gluing the adhesive tapes onto the rafters or the vapor
retarder foil.
[0043] Subsequently the assembly of the base elements which are configured as sheet metal
angles with an insertion sleeve 140 and thus using a screw connection at the rafters,
wherein time requirements for a total of 48 attachment points are low. The attachment
devices mounted on the roof in this step are evident from FIG. 10 where they are illustrated
as rectangular insertion sleeves 140.
[0044] Thereafter the under rafter insulation is introduced thus by clamping felts or similar
with a width of for example 400 mm as illustrated in FIG. 11. In this assembly condition
the clamping felts 190 used as insulations elements are secured by circumferentially
protruding flanges 40 of the insertion sleeves 140 against falling down. Also this
step is performed rather quickly. Thereafter also a vapor retarder foil or a suitable
climate membrane can be applied to the under rafter insulation. For this purpose the
circumferentially protruding flanges 40 of the insertion sleeves 140 are used for
support.
[0045] Starting from the assembly condition in FIG. 11, thus applying the clamping felts
between the base elements the attachment elements 30 are then applied according to
FIG. 12 with the receiving shoes or optionally respective receiving heads 78. The
of the attachment element per attachment point is performed quickly: little time is
required for the assembly process.
[0046] The final assembly condition with C,D profiles clicked into the supports. is illustrated
in FIG. 13.
[0047] Thus, this is an integrated mounting system which facilitates exact positioning of
the attachment elements in a quick and simple manner, a secure mounting of the below
rafter insulation between the attachment elements and which provides a flat mounting
surface for the subsequent covering for a simple and quick leveling by attaching the
lattice work on the receiving shoes or receiving heads.
[0048] Through the attachment elements with integrated support elements arranged with uniform
row spacing and used as mounting aides for temporary fixation of the insulation elements
or by the previously attached support lattice work. The insulation material can be
advantageously mounted in roll off direction for a predetermined width without the
insulation material falling out of the intermediary space during assembly. This installation
is not possible with known types of below rafter insulation due to the lacking clamping
effect transversal to the direction of production. It is appreciated that this generates
substantial time savings when installing insulation material.
1. A system for internally insulating buildings in particular slanted roofs, the system
comprising:
a particularly wooden base structure including rafters (2) or beams, the rafters (2)
and beams being subsequently referred to as rafter elements (2),
slats (10) and/or profile strips (32), the slats (10) and the profile strips (32)
being subsequently referred to as slat elements (10, 32),
which slat elements (10, 32) are transversally arranged at the rafter elements (2)
and at a distance from the rafter elements (2) and at a distance from each other,
insulation elements (42) arranged from an interior of a room at the rafter elements
(2) and between the rafter elements (2) and the slat elements (10, 32) for thermal
and/or sound insulation, in particular made from mineral wool forming an inner insulation
placed in front of the rafter elements (2), which is subsequently referred to as an
under rafter insulation, and
attachment devices for supporting the insulation elements (42) and for attaching the
slat elements (10, 32) at the rafter elements (2) offset therefrom for forming a support
lattice structure at which a covering towards an interior of the room that is in particular
made from sheet rock plates is attachable,
wherein each attachment device is formed from a base element (28) that is attachable
at the rafter element (2) and an attachment element (30) that is adjustable relative
to the base element (28) and interlockable at the rafter element (2) in a predetermined
adjustment position, and
wherein a receiving element (50, 78) for receiving the slat element (10, 32) is arranged
at the end of the attachment element (30) that is remote from the rafter element (2),
characterized in that
the attachment element (30) is configured as an overreaching element placeable on
the base element (28) in an overreaching arrangement, and that
the attachment element (30) is configured as a section of an extruded profile which
is configured from two parallel longitudinal arms (152, 154) which define a receiving
cavity between each other for a penetration by the upper section of the base element
(28),
wherein in a portion of the two parallel longitudinal arms (152, 154) which define
the receiving cavity between each other, an engagement profile is provided at the
longitudinal arms (152, 154)
and a complementary engagement profile is provided at the base element (28),
such that by placing the attachment element (30) onto the base element (28) under
respective pressure a relative elevational adjustment between the attachment element
(30) and the base element (28) is performed such that the attachment element (30)
and the base element (28) are anchored to each other due to the spring force of both
longitudinal arms (152, 154) when both engagement profiles mesh.
2. The system according to claim 1,
characterized in that
a band shaped mounting aide is provided for attaching the base element (28) at the
rafter element (2), wherein the mounting aid is provided along the rafter element
(2) attachable thereto and with positioning elements (14, 22) for a predetermined
positioned arrangement of the base elements (28) at the rafter element (2), wherein
the base elements (28) are respectively provided at a distance from one another at
the mounting aide, wherein the distance corresponds to a distance between the slat
elements (10, 32) of the support lattice structure, wherein the positioning elements
(14, 22) are advantageously respectively formed by a graphic marking (14) on a mounting
aide that is formed as an adhesive tape (16) for a glue connection along the rafter
element (2) and/or which are respectively formed by a pedestal element (22) which
are arranged at a band that is attachable at a rafter element (2), by screws, nails
and similar and which are respectively configured for a quick coupling connection
with a base element (28), which are in particular configured as a bayonet closure
or clip element.
3. The system according to one of the preceding claims,
characterized in that
the base element (28) includes a pedestal (34) which is provided at one end with at
least one attachment flange (36) angled away from the pedestal (34), advantageously
two opposite attachment flanges (36) for attachment at the rafter element (2).
4. The system according to claim 3,
characterized in that
the attachment element (30) is configured as a component that is insertable onto the
pedestal (34), wherein the attachment element (30) at its end portion remote from
the rafter element (2) includes a flange (170) protruding in outward direction at
least at two opposite sides from the attachment element (30) for securing the insulation
elements (42), wherein the flange (170) includes a flat contact surface for arranging
a vapor retarder foil or a similar climate membrane (44).
5. The system according to one of the preceding claims,
characterized in that
the attachment element (30) is configured as a section of an extruded profile, with
the two offset longitudinal arms (152, 154) connected with one another by at least
one transversal bar (162), wherein inward protruding flanges (156) are provided at
an end of the attachment element (30) at both longitudinal arms (152, 154) which end
is remote from the rafter elements (2), wherein the two inward protruding flanges
(156) define an insertion pass through (158) for a penetration of the pedestal (34)
between each other, wherein a width of the insertion pass through (158) is less than
a width of the penetrating pedestal (34) and wherein the two inward protruding flanges
(156) are respectively provided with the engagement profile, and in that the pedestal (34) is provided with the complementary engagement profile (150) at
least in the penetration portion opposite to the attachment element (30) so that the
attachment element (30) is applicable under pressure on the pedestal (34) and fixable
in the desired elevation position of the receiving element (50, 78) relative to the
pedestal (34) under a spring preload through the longitudinal arms (152, 154) relative
to the pedestal (34), wherein the two longitudinal arms (152, 154) are pressed apart.
6. The system according to claim 5,
characterized in that
a wave or a tooth or a groove profile is used as engagement profile (150).
7. The system according to one of the preceding claims,
characterized in that
the upper edge of the pedestal (34) is provided with an insertion tip with conical
cross section and in that at the end of the attachment element (30) remote from the rafter elements (2), the
two longitudinal arms (152, 154) are provided with an engagement profile (160)for
an interconnection element for fixating the receiving element (50, 78) that is applicable
on the attachment element (30).
8. The system according to one of the preceding claims,
characterized in that
the receiving element (50, 78) arranged at the end of the attachment element (30)
remote from the rafter elements (2) is configured as a U-shaped receiving shoe (50)
for receiving a slat element (10, 32) or configured as a head (78) with lateral grooves
(80) for clipping in a profile strip (32), wherein in particular the receiving element
(50, 78) is insertable onto the end of the attachment element (30) that is remote
from the rafter element (2) and interlockable, in particular through a clip connection.
9. The system according to one of the preceding claims,
characterized in that
a flange (170) of the attachment device is configured so that it is suitable as a
contact for flat mounting of a foil and is used as an assembly aide which prevents
a drop out of the insulation elements (42) arranged between the attachment devices
during assembly, wherein the flange (170) laterally protrudes from the pedestal (34)
at least over part of its circumference, and forms a flat contact surface for a contact
of a vapor retarder foil or a similar climate membrane (44) and for supporting the
insulation elements (42) arranged between the attachment devices.
10. Method for mounting an interior insulation of building of using a system according
to one of the preceding claims 1 to 9,
characterized in that
bands that are provided with positioning elements (14, 22) are attached at the rafters
(2) in a longitudinal direction of the rafters (2), base elements (28) are placed
onto the positioning elements (14, 22) and fixated with the rafters (2), subsequently
attachment elements (30) are placed onto the base elements (28) and eventually slat
elements (10, 32) are attached at the attachment elements (30) in order to form the
support slatting of the roof, wherein the insulation elements (42) for under rafter
insulation are placed accordingly and that a guide thread (18) is horizontally pulled
against the rafters (2), at which guide thread (18) the bands including the positioning
elements (14, 22) are aligned for an even arrangement of the positioning elements
(14, 22) along the rafters (2) and thereafter the bands are attached at the rafters
(2).
11. Method according to claim 10,
characterized in that
a vapor retarder foil or a climate membrane (44) is applied and fixated relative to
the attachment elements (30) after attaching the base elements (28) at the rafters
(2) and after arranging the insulation elements (42) between the base elements (28).
12. Method according to claim 10 or 11,
characterized in that
a levelling is performed by relative adjustment of the attachment element (30) relative
to the base element (28) and subsequent arresting of the attachment element (30) after
applying the slat elements (10, 32) onto the attachment elements (30).
1. System zur Innendämmung von Gebäuden, insbesondere von Schrägdächern, wobei das System
Folgendes umfasst:
eine insbesondere hölzerne Grundkonstruktion mit Sparren (2) oder Balken, wobei die
Sparren (2) und Balken nachfolgend als Sparrenelemente (2) bezeichnet werden,
Latten (10) und/oder Profilleisten (32), wobei die Latten (10) und die Profilleisten
(32) im Folgenden als Lattenelemente (10, 32) bezeichnet werden,
welche Lattenelemente (10, 32) quer an den Sparrenelementen (2) und in einem Abstand
zu den Sparrenelementen (2) und in einem Abstand zueinander angeordnet sind,
von einem Rauminneren aus an den Sparrenelementen (2) und zwischen den Sparrenelementen
(2) und den Lattenelementen (10, 32) angeordnete Dämmelemente (42) zur Wärme- und/oder
Schalldämmung, insbesondere aus Mineralwolle, die eine vor den Sparrenelementen (2)
angeordnete Innendämmung bilden, die nachfolgend als Untersparrendämmung bezeichnet
wird, und
Befestigungsvorrichtungen zum Abstützen der Dämmelemente (42) und zum Befestigen der
Lattenelemente (10, 32) an den von diesen abgesetzten Sparrenelementen (2) zur Bildung
einer Traggitterstruktur, an der eine insbesondere aus Rigipsplatten bestehende Abdeckung
zum Rauminneren hin befestigbar ist,
wobei jede Befestigungsvorrichtung aus einem am Sparrenelement (2) befestigbaren Basiselement
(28) und einem relativ zum Basiselement (28) verstellbaren und am Sparrenelement (2)
in einer vorgegebenen Verstellposition verriegelbaren Befestigungselement (30) gebildet
ist, und
wobei an dem dem Sparrenelement (2) abgewandten Ende des Befestigungselements (30)
ein Aufnahmeelement (50, 78) zur Aufnahme des Lattenelemente (10, 32) angeordnet ist,
dadurch gekennzeichnet, dass
das Befestigungselement (30) als übergreifendes Element ausgebildet ist, das auf dem
Basiselement (28) in einer übergreifenden Anordnung platzierbar ist, und dass
das Befestigungselement (30) als Abschnitt eines Strangpressprofils ausgebildet ist,
das aus zwei parallelen Längsschenkeln (152, 154) gebildet ist, die zwischen sich
einen Aufnahmehohlraum für eine Durchdringung durch den oberen Abschnitt des Basiselements
(28) definieren,
wobei in einem Abschnitt der beiden parallelen Längsschenkel (152, 154), die den Aufnahmehohlraum
zwischen sich begrenzen, ein Eingriffsprofil an den Längsschenkeln (152, 154) vorgesehen
ist
und am Basiselement (28) ein komplementäres Eingriffsprofil vorgesehen ist,
so dass durch Aufsetzen des Befestigungselementes (30) auf das Basiselement (28) unter
entsprechendem Druck eine relative Höhenverstellung zwischen dem Befestigungselement
(30) und dem Basiselement (28) erfolgt, so dass das Befestigungselement (30) und das
Basiselement (28) durch die Federkraft der beiden Längsarme (152, 154) miteinander
verankert werden, wenn beide Eingriffsprofile ineinander greifen.
2. System nach Anspruch 1,
dadurch gekennzeichnet, dass
eine bandförmige Montagehilfe zur Befestigung des Basiselements (28) am Sparrenelement
(2) vorgesehen ist, wobei die Montagehilfe entlang des daran befestigbaren Sparrenelements
(2) mit Positionierungselementen (14, 22) für eine vorgegebene positionierte Anordnung
der Basiselemente (28) am Sparrenelement (2) versehen ist, wobei die Basiselemente
(28) jeweils in einem Abstand voneinander an der Montagehilfe vorgesehen sind, wobei
der Abstand einem Abstand zwischen den Lattenelementen (10, 32) der Tragwerkskonstruktion
entspricht, wobei die Positionierungselemente (14, 22) vorteilhaft jeweils durch eine
grafische Markierung (14) auf einer Montagehilfe gebildet sind, die als Klebeband
(16) für eine Klebeverbindung entlang des Sparrenelements (2) ausgebildet ist und/oder
die jeweils durch ein Sockelelement (22) gebildet sind, die an einem an einem Sparrenelement
(2) befestigbaren Band, durch Schrauben, Nägel und dergleichen angeordnet sind und
die jeweils für eine Schnellkupplungsverbindung mit einem Sockelelement (28) ausgebildet
sind, die insbesondere als Bajonettverschluss oder Clipelement ausgebildet sind.
3. System nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass
das Basiselement (28) einen Sockel (34) aufweist, der an einem Ende mit mindestens
einem vom Sockel (34) abgewinkelten Befestigungsflansch (36) versehen ist, vorteilhafterweise
zwei gegenüberliegende Befestigungsflansche (36) zur Befestigung am Sparrenelement
(2).
4. System nach Anspruch 3,
dadurch gekennzeichnet, dass
das Befestigungselement (30) als ein auf den Sockel (34) aufsteckbares Bauteil ausgebildet
ist, wobei das Befestigungselement (30) an seinem dem Sparrenelement (2) abgewandten
Endabschnitt einen zumindest an zwei gegenüberliegenden Seiten des Befestigungselements
(30) nach außen vorstehenden Flansch (170) zur Befestigung der Dämmelemente (42) aufweist,
wobei der Flansch (170) eine ebene Anlagefläche zur Anordnung einer Dampfbremsfolie
oder einer ähnlichen Klimamembran (44) aufweist.
5. System nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass
das Befestigungselement (30) als Abschnitt eines Strangpressprofils ausgebildet ist,
wobei die beiden versetzten Längsschenkel (152, 154) durch mindestens einen Quersteg
(162) miteinander verbunden sind, wobei an einem von den Sparrenelementen (2) abgewandten
Ende des Befestigungselements (30) an beiden Längsschenkeln (152, 154) nach innen
vorspringende Flansche (156) vorgesehen sind, wobei die beiden nach innen vorstehenden
Flansche (156) einen Einschubdurchgang (158) für eine Durchdringung des Sockels (34)
untereinander definieren, wobei eine Breite des Einschubdurchgangs (158) geringer
ist als eine Breite des durchdringenden Sockels (34) und wobei die beiden nach innen
vorstehenden Flansche (156) jeweils mit dem Eingriffsprofil versehen sind, und dass
der Sockel (34) zumindest in dem dem Befestigungselement (30) gegenüberliegenden Durchdringungsabschnitt
mit dem komplementären Eingriffsprofil (150) versehen ist, so dass das Befestigungselement
(30) unter Druck auf den Sockel (34) aufbringbar und in der gewünschten Höhenposition
des Aufnahmeelements (50, 78) relativ zum Sockel (34) unter einer Federvorspannung
durch die Längsarme (152, 154) relativ zum Sockel (34) fixierbar ist, wobei die beiden
Längsarme (152, 154) auseinandergedrückt werden.
6. System nach Anspruch 5,
dadurch gekennzeichnet, dass
eine Welle, ein Zahn oder ein Rillenprofil als Eingriffsprofil (150) verwendet wird.
7. System nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass
der obere Rand des Sockels (34) mit einer Einführspitze mit konischem Querschnitt
versehen ist und dass an dem den Sparrenelementen (2) abgewandten Ende des Befestigungselements
(30) die beiden Längsarme (152, 154) mit einem Eingriffsprofil (160) für ein Verbindungselement
zur Fixierung des am Befestigungselement (30) einsetzbaren Aufnahmeelements (50, 78)
versehen sind.
8. System nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass
das an dem den Sparrenelementen (2) abgewandten Ende des Befestigungselements (30)
angeordnete Aufnahmeelement (50, 78) als U-förmiger Aufnahmeschuh (50) zur Aufnahme
eines Lattenelements (10, 32) oder als Kopf (78) mit seitlichen Nuten (80) zum Einklipsen
einer Profilleiste (32) ausgebildet ist, wobei insbesondere das Aufnahmeelement (50,
78) auf das dem Sparrenelement (2) abgewandte Ende des Befestigungselements (30) aufsteckbar
und verriegelbar ist, insbesondere durch eine Klippverbindung.
9. System nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass
ein Flansch (170) der Befestigungsvorrichtung so ausgebildet ist, dass er als Kontakt
für eine flächige Montage einer Folie geeignet ist und als Montagehilfe dient, die
ein Herausfallen der zwischen den Befestigungsvorrichtungen angeordneten Dämmelemente
(42) bei der Montage verhindert, wobei der Flansch (170) zumindest über einen Teil
seines Umfangs seitlich aus dem Sockel (34) herausragt und eine flächige Kontaktfläche
für einen Kontakt einer Dampfbremsfolie oder einer ähnlichen Klimamembran (44) und
zur Abstützung der zwischen den Befestigungsvorrichtungen angeordneten Dämmelemente
(42) bildet.
10. Verfahren zur Montage einer Innenisolierung eines Gebäudes unter Verwendung eines
Systems nach einem der vorhergehenden Ansprüche 1 bis 9,
dadurch gekennzeichnet, dass
dass an den Sparren (2) in Längsrichtung der Sparren (2) Bänder befestigt werden,
die mit Positionierungselementen (14, 22) versehen sind, dass auf die Positionierungselemente
(14, 22) Basiselemente (28) aufgesetzt und mit den Sparren (2) fixiert werden, dass
anschließend Befestigungselemente (30) auf die Basiselemente (28) aufgesetzt werden
und dass schließlich an den Befestigungselementen (30) Lattenelemente (10, 32) befestigt
werden, um die Traglattung des Daches zu bilden, wobei die Dämmelemente (42) zur Untersparrendämmung
entsprechend platziert werden und dass ein Führungsfaden (18) horizontal gegen die
Sparren (2) gezogen wird, an welchem Führungsfaden (18) die Bänder mit den Positionierungselementen
(14, 22) zur gleichmäßigen Anordnung der Positionierungselemente (14, 22) entlang
der Sparren (2) ausgerichtet werden und danach die Bänder an den Sparren (2) befestigt
werden.
11. Verfahren nach Anspruch 10,
dadurch gekennzeichnet, dass
nach der Befestigung der Basiselemente (28) an den Sparren (2) und nach der Anordnung
der Dämmelemente (42) zwischen den Basiselementen (28) eine Dampfbremsfolie oder eine
Klimamembran (44) aufgebracht und gegenüber den Befestigungselementen (30) fixiert
wird.
12. Verfahren nach Anspruch 10 oder 11,
dadurch gekennzeichnet, dass
eine Nivellierung durch Relativverstellung des Befestigungselementes (30) gegenüber
dem Basiselement (28) und anschließende Arretierung des Befestigungselementes (30)
nach Aufbringen der Lattenelemente (10, 32) auf die Befestigungselemente (30) erfolgt.
1. Un système d'isolation intérieure des bâtiments, en particulier des toits en pente,
comprenant
une structure de base particulièrement en bois comprenant des chevrons (2) ou des
poutres, les chevrons (2) et les poutres étant dénommés par la suite éléments de chevrons
(2),
des lamelles (10) et/ou des bandes profilées (32), les lamelles (10) et les bandes
profilées (32) étant ci-après dénommées éléments de lattes (10, 32),
ces éléments de lattes (10, 32) sont disposés transversalement aux éléments de chevrons
(2) et à une certaine distance des éléments de chevrons (2) et à une certaine distance
l'un de l'autre,
des éléments d'isolation (42) disposés depuis l'intérieur d'une pièce au niveau des
éléments de chevrons (2) et entre les éléments de chevrons (2) et les éléments de
lattes (10, 32) pour l'isolation thermique et/ou phonique, notamment en laine minérale
formant une isolation intérieure placée devant les éléments de chevrons (2), appelée
par la suite isolation sous chevrons, et
des dispositifs de fixation pour supporter les éléments d'isolation (42) et pour fixer
les éléments de lattes (10, 32) aux éléments de chevrons (2) décalés de ceux-ci pour
former une structure de support en treillis à laquelle peut être fixée une couverture
vers l'intérieur de la pièce qui est en particulier faite de plaques de tôle,
dans lequel chaque dispositif de fixation est formé d'un élément de base (28) qui
peut être fixé à l'élément de chevron (2) et d'un élément de fixation (30) qui est
réglable par rapport à l'élément de base (28) et qui peut être verrouillé à l'élément
de chevron (2) dans une position de réglage prédéterminée, et
dans lequel un élément de réception (50, 78) destiné à recevoir l'élément de latte
(10, 32) est disposé à l'extrémité de l'élément de fixation (30) qui est éloignée
de l'élément de chevron (2),
caractérisé par le fait que
l'élément de fixation (30) est configuré comme un élément de rattrapage pouvant être
placé sur l'élément de base (28) dans une disposition de rattrapage, et que
l'élément de fixation (30) est configuré comme une section d'un profilé extrudé qui
est configuré à partir de deux bras longitudinaux parallèles (152, 154) qui définissent
une cavité de réception entre eux pour une pénétration par la section supérieure de
l'élément de base (28),
dans lequel, dans une partie des deux bras longitudinaux parallèles (152, 154) qui
définissent la cavité de réception l'un par rapport à l'autre, un profil d'engagement
est prévu au niveau des bras longitudinaux (152, 154)
et un profil d'engagement complémentaire est fourni à l'élément de base (28),
Ainsi, en plaçant l'élément de fixation (30) sur l'élément de base (28) sous une pression
respective, un ajustement relatif de l'élévation entre l'élément de fixation (30)
et l'élément de base (28) est effectué de telle sorte que l'élément de fixation (30)
et l'élément de base (28) sont ancrés l'un à l'autre en raison de la force du ressort
des deux bras longitudinaux (152, 154) lorsque les deux profils d'engagement s'engrènent.
2. Le système selon la revendication 1,
caractérisé par le fait que
une aide de montage en forme de bande est prévue pour fixer l'élément de base (28)
à l'élément de chevron (2), dans laquelle l'aide de montage est prévue le long de
l'élément de chevron (2) qui peut y être fixé et avec des éléments de positionnement
(14, 22) pour une disposition positionnée prédéterminée des éléments de base (28)
à l'élément de chevron (2), dans laquelle les éléments de base (28) sont respectivement
prévus à une distance l'un de l'autre à l'aide de montage, dans laquelle la distance
correspond à une distance entre les éléments de lattes (10, 32) de la structure de
support en treillis, dans lequel les éléments de positionnement (14, 22) sont avantageusement
formés respectivement par un marquage graphique (14) sur une aide de montage qui est
formé comme une bande adhésive (16) pour une liaison par collage le long de l'élément
de chevron (2) et/ou qui sont formés respectivement par un élément de socle (22) qui
sont disposés sur une bande qui peut être fixée à un élément de chevron (2), par des
vis, des clous et similaires et qui sont configurés respectivement pour une liaison
par couplage rapide avec un élément de base (28), qui sont en particulier configurés
comme une fermeture à baïonnette ou un élément d'agrafe.
3. Le système selon l'une des revendications précédentes,
caractérisé par le fait que
l'élément de base (28) comprend un socle (34) pourvu à une extrémité d'au moins une
bride de fixation (36) inclinée par rapport au socle (34), avantageusement deux brides
de fixation opposées (36) pour la fixation à l'élément de chevron (2).
4. Le système selon la revendication 3,
caractérisé par le fait que
l'élément de fixation (30) est configuré comme un composant pouvant être inséré sur
le socle (34), dans lequel l'élément de fixation (30), dans sa partie terminale éloignée
de l'élément de chevron (2), comprend une bride (170) faisant saillie vers l'extérieur
au moins sur deux côtés opposés de l'élément de fixation (30) pour fixer les éléments
d'isolation (42), dans lequel la bride (170) comprend une surface de contact plate
pour disposer une feuille de retardateur de vapeur ou une membrane climatique similaire
(44).
5. Le système selon l'une des revendications précédentes,
caractérisé par le fait que
l'élément de fixation (30) est configuré comme une section d'un profilé extrudé, avec
les deux bras longitudinaux décalés (152, 154) reliés l'un à l'autre par au moins
une barre transversale (162), dans lequel des brides saillantes vers l'intérieur (156)
sont fournies à une extrémité de l'élément de fixation (30) au niveau des deux bras
longitudinaux (152, 154) dont l'extrémité est éloignée des éléments de chevron (2),
dans lequel les deux brides saillantes vers l'intérieur (156) définissent un passage
d'insertion (158) pour une pénétration du socle (34) l'un entre l'autre, dans lequel
une largeur du passage d'insertion (158) est inférieure à une largeur du socle pénétrant
(34) et dans lequel les deux brides saillantes vers l'intérieur (156) sont respectivement
pourvues d'un profil d'engagement, et en ce que le socle (34) est pourvu du profil
d'engagement complémentaire (150) au moins dans la partie de pénétration opposée à
l'élément de fixation (30) de sorte que l'élément de fixation (30) est applicable
sous pression sur le socle (34) et peut être fixé dans la position d'élévation souhaitée
de l'élément de réception (50, 78) par rapport au socle (34) sous une précharge de
ressort par les bras longitudinaux (152, 154) par rapport au socle (34), dans lequel
les deux bras longitudinaux (152, 154) sont pressés l'un contre l'autre.
6. Le système selon la revendication 5,
caractérisé par le fait que
un profil de vague, de dent ou de rainure est utilisé comme profil d'engagement (150).
7. Le système selon l'une des revendications précédentes,
caractérisé par le fait que
le bord supérieur du socle (34) est pourvu d'une pointe d'insertion à section conique
et, à l'extrémité de l'élément de fixation (30) éloignée des éléments de chevron (2),
les deux bras longitudinaux (152, 154) sont pourvus d'un profil d'engagement (160)
pour un élément d'interconnexion destiné à fixer l'élément récepteur (50, 78) applicable
sur l'élément de fixation (30).
8. le système selon l'une des revendications précédentes,
caractérisé par le fait que
l'élément de réception (50, 78) disposé à l'extrémité de l'élément de fixation (30)
éloignée des éléments de chevron (2) est configuré comme un sabot de réception en
forme de U (50) pour recevoir un élément de latte (10, 32) ou configuré comme une
tête (78) avec des rainures latérales (80) pour le clipsage d'une bande de profilé
(32), où en particulier l'élément de réception (50, 78) est insérable sur l'extrémité
de l'élément de fixation (30) qui est éloignée de l'élément de chevron (2) et interverrouillable,
en particulier par une connexion de clip.
9. Le système selon l'une des revendications précédentes,
caractérisé par le fait que
une bride (170) du dispositif de fixation est configurée de manière à pouvoir servir
de contact pour le montage à plat d'une feuille et est utilisée comme aide au montage
pour empêcher la chute des éléments d'isolation (42) disposés entre les dispositifs
de fixation pendant le montage, la bride (170) dépassant latéralement du socle (34)
au moins sur une partie de sa circonférence et formant une surface de contact plane
pour le contact d'une feuille pare-vapeur ou d'une membrane climatique similaire (44)
et pour soutenir les éléments d'isolation (42) disposés entre les dispositifs de fixation.
10. Procédé de montage d'une isolation intérieure de bâtiment utilisant un système selon
l'une des revendications précédentes 1 à 9,
caractérisé par le fait que
des bandes munies d'éléments de positionnement (14, 22) sont fixées aux chevrons (2)
dans le sens longitudinal des chevrons (2), des éléments de base (28) sont placés
sur les éléments de positionnement (14, 22) et fixés aux chevrons (2), ensuite des
éléments de fixation (30) sont placés sur les éléments de base (28) et enfin des éléments
de lattes (10, 32) sont fixés aux éléments de fixation (30) afin de former la latte
de support du toit, où les éléments d'isolation (42) pour l'isolation sous les chevrons
sont placés en conséquence et où un fil de guidage (18) est tiré horizontalement contre
les chevrons (2), sur lequel le fil de guidage (18) les bandes comprenant les éléments
de positionnement (14, 22) sont alignées pour une disposition régulière des éléments
de positionnement (14, 22) le long des chevrons (2) et ensuite les bandes sont attachées
aux chevrons (2).
11. Méthode selon la revendication 10,
caractérisé par le fait que
une feuille pare-vapeur ou une membrane climatique (44) est appliquée et fixée par
rapport aux éléments de fixation (30) après avoir fixé les éléments de base (28) aux
chevrons (2) et après avoir disposé les éléments d'isolation (42) entre les éléments
de base (28).
12. Méthode selon la revendication 10 ou 11,
caractérisé par le fait que
un nivellement est effectué par l'ajustement relatif de l'élément de fixation (30)
par rapport à l'élément de base (28) et l'arrêt ultérieur de l'élément de fixation
(30) après avoir appliqué les éléments de lattes (10, 32) sur les éléments de fixation
(30).
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