[0001] The present invention relates to an insulating block assembly for buildings comprising
the characteristics expressed in the preamble to claim 13.
[0002] The present invention further relates to a method for the realisation of an insulating
block assembly for buildings comprising the characteristics expressed in the preamble
to claim 1.
[0003] In particular, the present invention is suitable for use in the construction industry
and specifically for constructions such as houses, buildings and similar infrastructures
requiring adequate thermal and/or acoustic insulation with respect to the surrounding
environment.
[0004] Normally, the construction of the peripheral walls of the aforementioned buildings
is accomplished by forming primarily a first wall destined to constitute the inner
face of the wall, comprising bricks stacked vertically according to horizontal courses.
On the outer side of the first wall is subsequently applied, with appropriate fastening
means, a series of insulating panels in such a way as to define a substantially continuous
insulating layer. A second wall of bricks is then erected, destined to constitute
the outer face of the wall. The second brick wall can be realised directly against
the insulating panels forming a single body, as disclosed for example in DE 8 809
461 U, or it can be realised at a pre-set distance from the insulating panel so as
to define a gap for aeration and/or the placement of electrical elements or elements
of other kinds.
[0005] Another known and widely used technique for the realisation of insulating walls entails
forming an inner wall of bricks and, subsequently, an outer wall of bricks distanced
therefrom, to define a gap between the two. In the gap is then poured an expandable
insulating material which solidifies, consequently defining an insulating layer.
[0006] To obtain a better insulation and simplify construction operations, the Applicant
has introduced on the market a type of insulating block assembly for buildings substantially
comprising two small blocks usually made of tile material such as mixed clay, between
which is interposed a body of insulating material constituted by polystyrene foam.
[0007] Such insulating block assemblies are realised by positioning a first and a second
clay block at a pre-set mutual distance so as to define a gap between them. Into the
gap is poured a predefined quantity of insulating material in granular form which
is expanded by means of a flow of steam made to pass through the insulating material
itself. Simultaneously with its expansion, the insulating material solidifies defining
a solid insulating block which remains permanently engaged to the blocks. The union
between the insulating body and the blocks of the insulating block assembly is assured
by suitable undercuts defined by dovetail grooves provided on the mutually opposite
sides of the blocks.
[0008] The aforementioned insulating block assembly allow the realisation of insulating
peripheral walls with a single laying operation of the insulating block assemblies
themselves, stacked and fastened one adjacently to the other according to successively
superposed courses.
[0009] Once the masonry is completed, it can be distinguished in three parts. A first part
and a second part, respectively oriented towards the interior and the exterior of
the construction, are defined respectively by the first and by the second clay block
of each insulating block assembly, and a third part, interposed between the first
and the second part, is defined by the set of insulating bodies which consequently
form an insulating layer extending according to the entire extension of the wall.
Such a kind of insulating block assembly is disclosed in the document EP0041417A.
[0010] Although the insulating block assemblies indicated above are particularly well suited
to realise in a practical and easy manner thermo-insulating walls with very good physical,
chemical and mechanical qualities, such insulating block assemblies are nonetheless
not wholly free of some drawbacks.
[0011] In particular, the current method for the realisation of insulating block assemblies
presents a series of limitations relating to the time required for production since
it is necessary, after forming the two clay blocks, to position them at a precise
mutual distance, and then to proceed with forming the insulating body. The precise
positioning of a block with respect to the other entails, in itself, a slowdown in
the production cycle of the insulating block assembly which is further slowed by the
insulating body formation stage. The formation of the insulating body requires relatively
high waiting times to allow for the expansion of the insulating material and its subsequent
solidification.
[0012] The Applicant has observed that it is possible to improve the production of the insulating
block assembly described above, considerably reducing their realisation time.
[0013] In addition to the problem described above, it should be considered that for the
realisation of the insulating block assemblies it is necessary to have available complex
production facilities calling for the presence of expensive and bulky machinery.
[0014] It should further be considered that the production of insulating block assemblies
provided with insulating body like the one described does not allow the use of insulating
materials other than polystyrene foam. This is a considerable disadvantage since it
is not possible to produce items presenting different heat-insulating and/or sound-insulating
characteristics, forcing the manufacturer to market only one kind of item.
[0015] The technical task constituting the basis for the present invention is to devise
an insulating block assembly for buildings that is able substantially to overcome
the aforementioned drawbacks.
[0016] Within the scope of said technical task, an important aim of the invention is to
devise an insulating block assembly for buildings that presents optimal heat-insulating
and sound-insulating characteristics and that can be manufactured rapidly with modest
production costs.
[0017] Another important aim of the invention is to devise an insulating block assembly
for buildings that can be realised with an insulating layer of any material and/or
thickness without entailing particular complications for the adaptation of the machinery
to the type of item in production.
[0018] The technical task set out herein and the specified aims are substantially attained
by a method for the realisation of an insulating block assembly for buildings comprising
the characteristics expressed in the characterising part of claim 1.
[0019] The technical task set out herein and the specified aims are further attained by
an insulating block assembly for buildings comprising the characteristics expressed
in the characterising part of claim 13.
[0020] The description of some preferred but not exclusive embodiments of an insulating
block assembly for buildings according to the present invention is provided below,
purely by way of non limiting indicative example, and illustrated in the accompanying
drawings, wherein:
- Figure 1 is a partially sectioned plan view of an insulating block assembly for buildings
according to a first embodiment;
- Figure 2 is a partially sectioned top view of the insulating block assembly in accordance
with a second embodiment;
- Figure 3 is a partially sectioned top view of the insulating block assembly according
to the present invention in accordance with a third embodiment;
- Figure 4 is a partially sectioned top view of the insulating block assembly in accordance
with a fourth embodiment;
- Figures 5 through 10 are sectioned views of a series of phases of a preferential method
for fastening mechanical attachment elements to an insulating body of the insulating
block assembly
With reference to the aforementioned figures, the number 1 indicates in its entirety
an insulating block assembly for buildings in accordance with the present invention.
[0021] As Figures 1 through 4 show, the insulating block assembly 1 comprises a first block
2 preferably made of clay presenting a plurality of lightening through openings 2a
oriented vertically. The insulating block assembly 1 further comprises a second block
3 engaged to the first block 2, also preferably made of clay and presenting a series
of lightening through openings 3a.
[0022] The first and the second block 2, 3 are mutually engaged by means of the interposition
of at least an insulating body 4 which can be made of different materials depending
on the technical requirements to be met. In particular, for the rigid engagement of
the first block 2 and of the second block 3 to the insulating body 4 the insulating
block assembly 1 provides for the presence of at least a first and a second mechanical
coupling elements 5 fastened respectively in correspondence with opposite sides of
the insulating body 4. More specifically it is preferable for each block 2, 3 to be
fastened to the insulating body 4 by means of at least two mechanical coupling elements
5 appropriately distanced from each other.
[0023] Each mechanical coupling element 5 presents at least an attachment portion 5a for
fastening itself to the insulating body 4 and at least a coupling portion 5b destined
to engage at least a respective coupling seat 6 obtained in the corresponding block
2, 3. The rigid junction between each mechanical coupling element 5 and the insulating
body 4 is secured by means of at least a mechanical fastening element 7 operatively
engaged between the insulating body 4 and the attachment portion 5a of the mechanical
fastening element itself.
[0024] In the embodiments illustrated in the accompanying figures, each mechanical fastening
element 7 is set to make fast, with respect to the insulating body 4, in correspondence
with opposite sides thereof, two mechanical coupling elements 5. More specifically,
each mechanical fastening element 7 extends through the insulating body 4 and presents
a first and a second extremity 7a, 7b set to retain the respective mechanical coupling
elements 5 with respect to the insulating body 4.
[0025] It is also possible, depending on the requirements, for the mechanical, coupling
element 5 not to be fastened to the insulating body 4 in pairs, but to be individually
fastened thereto. In this situation, an extremity 7a, 7b of the mechanical fastening
element 7 retains, with respect to the insulating body 4, the respective mechanical
coupling element 5, whereas the other extremity 7a, 7b is positioned directly against
the insulating body 4, with the possible interposition of a rigid plate or the like.
[0026] Preferably, each mechanical coupling element 5 is rigidly associated to the insulating
body 4 by means of two mechanical fastening elements 7 set parallel and mutually distanced
in such a way as to prevent the fastening element from rotating in undesirable manners.
[0027] To ensure the correct and precise mutual distancing between the mechanical coupling
elements, tubular spacers 8 can be provided, each positioned around a respective mechanical
fastening element 7.
[0028] More specifically each spacer 8 is co-axially inserted on the respective mechanical
fastening element 7 and presents a length substantially no lesser than the thickness
of the insulating body 4.
[0029] Each spacer 8 further presents respective opposite extremities 8a in contact relationship
with the attachment portions 5a of the respective mechanical coupling elements 5.
Consequently, when the mechanical coupling elements 5 are fastened to the insulating
body 4, the mechanical coupling elements 5 are set directly against the extremities
8a of the spacer 8 without any risk of damaging the insulating body 4 during the assembly
phases effected to construct the insulating block assembly 1.
[0030] It is also possible for each spacer 8 associated to the respective mechanical fastening
element 7 to be realised in such a way as to have a length greater than the thickness
of the insulating body 4 (see Figure 2). In this way it is possible to obtain between
the insulating body 4 and at least one of the blocks 2, 3, a gap 9 for aeration and/or
for inserting - as required - pipelines, electrical cables, or other elements into
the wall to be built.
[0031] It should further be noted that the gap 9 can be realised between the first block
and the insulating body 4 or, if necessary, two gaps 9 can be realised, respectively
interposed between the blocks 2, 3 and the insulating body 4.
[0032] As shown in Figure 2, when the insulating block assembly 1 is provided with at least
a gap 9, at least a known securing element 9a is externally engaged to each spacer
8 to prevent the insulating body 4 from sliding along the spacers themselves. More
specifically, the securing elements 9a are engaged to the spacers 8 in correspondence
with the side of the insulating body 4 that faces the gap 9. When two gaps 9 are provided,
on each spacer 8 are engaged two securing elements 9a situated respectively against
the opposite sides of the insulating body 4. These securing elements 9a hold the insulating
body fast with respect to the spacers themselves in the desired position.
[0033] Preferably, each mechanical fastening element 7 comprises a rivet which is fastened
to the insulating body 4 and to the respective mechanical coupling elements 5 according
to a method which will be described farther on.
[0034] As Figures 1 and 2 show, each mechanical coupling element 5 can comprise an elastically
yielding deformed laminar element, whose coupling portion is defined by lateral tabs
5b converging symmetrically away from the attachment portion 5a, according to a substantially
transverse orientation. The lateral tabs 5b are provided with folded back terminal
portions 5c presenting for instance a rounded profile (Figure 1) or an acute angle
profile (Figure 2), set to engage respective strike portions 6a obtained in the coupling
seat 6 substantially defined by a recess provided with receiving surfaces 6b diverging
externally with respect to block 2, 3, towards the insulating body 4. More in detail,
when the insulating body 4 is made fast to the respective block 2, 3, the lateral
tabs 5b of each coupling element 5 are elastically pressed against one another by
sliding with interference on the receiving surfaces 6b of the coupling seat 6. When
the terminal portions of the lateral tabs 5b reach the strike portions 6a they snap
elastically, engaging the strike portions 6a as stated above. Once they have snapped,
the lateral tabs 5b interact with the strike portions 6a of the respective coupling
seat 6 to hold the insulating body fast to the respective block 2, 3.
[0035] Figure 3 shows a third embodiment which provides for each mechanical coupling element
5 to comprise a laminar element which may be rigid, set to be inserted by sliding
into the respective coupling seat 6.
[0036] In this case, the coupling seat is shaped in the manner of a through groove with
two lateral surfaces 6b converging externally to the respective block 2, 3 i.e. towards
the insulating body 4, to form an undercut in the coupling seat itself.
[0037] Each rigid laminar element presents as a coupling portion 5b interference tabs which
diverge symmetrically away from the attachment portion 5a according to a substantially
transverse orientation with respect thereto. The insulating body 4 is made fast to
the respective blocks 2, 3 by inserting the laminar elements 5 into the corresponding
coupling seats 6, determining a relative sliding between the insulating body 4 and
the blocks themselves on the plane of their sides that face each other.
[0038] Figure 4 shows a fourth embodiment wherein each mechanical coupling element 5 comprises
a laminar element, elastically yielding, presenting lateral tabs 5b extending symmetrically
from the attachment portion 5a and provided with respective terminal appendices 5c
substantially oriented one towards the other. In this solution, the coupling seats
6 comprise coupling projections 6c destined operatively to engage the respective laminar
element 5.
[0039] In detail, when the insulating body 4 is made fast to the respective block 2, 3 each
coupling projection 6c is inserted between the lateral tabs 5b of the respective laminar
elements 5 spreading the lateral tabs themselves.
[0040] Subsequently, such lateral tabs 5b are coupled by snapping in appropriate cavities
6b obtained on the coupling projection 6c securing the junction between the insulating
body 4 and the respective block 2, 3.
[0041] The realisation of the insulating block assembly 1 requires first the formation of
the first and second block 2,3, usually obtainable by extruding a clay mixture and
subsequently drying and baking, as well as of the insulating body 4.
[0042] The insulating body 4, formed as a distinct, separate element from the blocks 2,
3, is preferably realised in the form of a rectangular panel, for instance made of
polystyrene, cork or any other insulating material, obtained for instance by means
of moulding, calendering or any other conventional technique.
[0043] Advantageously, a plurality of insulating bodies 4 can be obtained by a simple cutting
or die-cutting operation of a single previously formed panel.
[0044] The mechanical coupling elements 5 and the mechanical fastening elements 7 are also
realised separately from the insulating body 4 and from the blocks 2, 3.
[0045] The insulating body 4 is readied for assembly with the blocks 2, 3 by fastening the
mechanical coupling elements 5 on the opposite sides of the insulating body itself.
[0046] For purposes of fastening each mechanical coupling element 5, it is preferably provided
for the rivets or equivalent mechanical fastening elements 7 to be first fitted onto
respective centring stems 10 set on an assembling apparatus. A first mechanical coupling
element 5 is then engaged on the rivets 7 in such a way that each of the rivets is
inserted in a through hole obtained in the attachment portion 5a of the coupling element
itself, bringing its head 7a in contact relationship with the aforesaid attachment
portion, as per Figure 6.
[0047] Subsequently, on each rivet 7 is fitted the respective tubular spacer 8, in such
a way that a strike extremity 8a thereof is positioned in contact against the attachment
portion 5a on the side opposite to the head 7a of the rivet 7, as per Figure 6.
[0048] The insulating body 4 is then fitted onto the spacer 8 in such a way as to determine
its engagement with the rivets 7 and the mechanical coupling element 5. More specifically,
in this phase each rivet 7 with the respective spacer 8 are inserted in a through
hole provided in the insulating body 4, as per Figure 7.
[0049] Alternatively, the spacers 8 can first be inserted through the insulating body 4,
then fitted onto the rivets 7 together with the insulating body itself.
[0050] As Figure 8 shows, the second coupling element 5 is then engaged on the insulating
body 4, causing the insertion of the second extremity 7b of each rivet 7 through the
attachment portion 5a of the coupling element itself.
[0051] A terminal edge of the second extremity 7b of each rivet 7, opposite to the first
coupling element 5 is then folded back, to determine the definitive fastening of the
coupling element 5 to the insulating body 4.
[0052] This phase can be implemented, for instance, using a cold-forming punch towards an
insulating body 4 to determine the plastic deformation of the second extremity 7b
of the rivet 7. In this circumstance, the presence of the spacers 8 eliminates the
risk that the structure of the insulating body 4 may collapse as an effect of the
thrusts transmitted to the mechanical coupling elements 5, with consequent partial
sinking thereof into the surface of the insulating body itself.
[0053] In a preferential embodiment, however, at least one mill 11 is used, presenting a
conical working portion 11a, eccentric with respect to the axis of rotation of the
mill itself. The eccentric rotation of the conical working portion 11a determines
the terminal portion of the rivet 7 to be bent as a result of the axial approach of
the mill 11 towards the rivet itself, as clearly visible in Figures 9 and 10, without
transmitting relevant thrust actions on the mechanical coupling elements 5.
[0054] Once the mechanical coupling elements 5 are completely made fast to the insulating
body 4, the latter is removed from the centring stems 10, proceeding to engage the
first and the second block 2, 3 to the insulating body itself.
[0055] For this purpose, with reference to the embodiments illustrated in Figures 1, 2 and
4, the insulating body 4 is interposed between the blocks 2, 3 previously positioned
one in front of the other, at a greater mutual distance than the distance measurable
between the attachment portions 5a of the coupling elements 5 situated to the opposite
sides of the insulating body 4. The blocks 2, 3 are then forcibly approached to the
insulating body 4, determining the snapping engagement of the lateral tabs 5b into
the respective coupling seats 6. In this phase as well, the presence of the spacers
8 is useful in protecting the insulating body 4 against excessive stresses, eliminating
all risks of penetration by the mechanical coupling elements 5 into the surface of
the insulating body itself which would compromise the correct engagement of the coupling
elements in the respective seats 6.
[0056] With reference to the embodiment of Figure 3, the blocks 2, 3 are first positioned
one in front of the other at a mutual distance substantially corresponding to the
thickness of the insulating body 4, i.e. to the distance measurable between the attachment
portions 5a of the coupling elements 5.
[0057] The insulating body 4 is then inserted between the blocks 2, 3, determining the sliding
engagement of the coupling elements 5 in the respective seats 6.
[0058] As is readily apparent from the above description, the engagement of the blocks 2,
to the insulating body 4 is preferably effected simultaneously in a single phase,
but the possibility of determining the engagement of the individual blocks 3 in successive
phases is not excluded.
[0059] The present invention attains important advantages.
[0060] In particular, the invention brings about considerable improvements in relation to
the time required to produce the insulating block assembly. In this regard it should
be noted that the subject method does not call for productive phases that require
long waiting times for the realisation of the insulating phase. All the phases of
the assembly of the insulating block assembly can instead be executed in an extremely
simple and fast manner.
[0061] In other words, making available an insulating block assembly whose components are
made independently from each other and then assembled at a later time by means of
extremely simple operations entails considerable advantages in terms of economy and
flexibility of the productive cycles, as well as in terms of investment cost for the
production facilities.
[0062] It is advantageously possible to prepare different types of insulating body 4, for
instance of different materials and/or thickness, already provided with the respective
coupling elements. The capability is thereby achieved of replacing in a nearly immediate
manner the type of insulating body to be used to realise different enbloc types, in
order to meet even requirements for the delivery of small batches.
[0063] It should further be noted that the invention allows to provide an aeration gap inside
the insulating block assembly which could not be achieved in the prior art, where
the insulating layer was formed directly by filling the space defined between the
blocks positioned one in front of the other.
1. Method for the realisation of an insulating block assembly for buildings comprising
the following phases:
- realising a first block (2);
- realising a second block (3);
- interposing an insulating body (4) between the first block (2) and the second block
(3), characterised in that the interposition of the insulating body (4) between the blocks (2, 3) calls for
the following phases:
- forming the insulating body (4);
- associating at least a first and a second mechanical coupling element (5) to the
insulating body (4) respectively in correspondance with opposite side thereof by means
of at least a mechanical fastening element (7). operatively engaged between the insulating
body (4) and an attachment portion of the mechanical coupling elements (5)
- positioning the previously formed insulating body (4) between the first and the
second block (2, 3);
- engaging the first and the second block (2, 3) to the insulating body (4) by engaging
at least a coupling portion (5b) of each mechanical coupling elements (5) with a respective
coupling seat (6) obtained in said block (2,3).
2. Method according to claim 1, wherein the engagement of the blocks (2, 3) to the respective
mechanical coupling elements (5) is achieved by forcibly approaching the blocks (2,
3) to the insulating body (4).
3. Method according to claim 2, wherein the engagement of the blocks (2, 3) to the respective
mechanical coupling elements (5) is achieved by means of relative sliding between
each block (2, 3) and the insulating body (4) in the plane of the sides bearing the
mechanical coupling elements (5).
4. Method according to claims 2 or 3, wherein the engagement of the first and of the
second block (2, 3) to the respective mechanical coupling elements (5) is performed
simultaneously.
5. Method according to claim 1, wherein the association of each mechanical coupling element
(5) to the insulating body (4) takes place by means of riveting.
6. Method according to claim 5, wherein the riveting process is carried out by means
of the following phase:
- inserting at least a rivet (7) into a through hole of a first mechanical coupling
element (5);
- inserting said rivet (7) in a through hole of the insulating body (4);
- folding back a terminal edge of the rivet (7) to the opposite side from the first
coupling element (5) to make the latter fast to the insulating body (4).
7. Method according to claim 6, wherein before the phase of inserting the rivet (7) into
the through bole of the insulating body (4) at least a spacer (8) is fitted onto the
rivet (7), said spacer (8) having an axial dimension that is at least equal to the
thickness of the insulating body (4).
8. Method according to claim 6, wherein before the folding-back phase the rivet (7) is
inserted into a through hole of a second mechanical coupling element (5).
9. Method according to claim 6, wherein said folding back phase of the terminal edge
of the rivet (7) is accomplished by means of a mill (11) presenting a conical portion
(11a) eccentric with respect to the axis of rotation of the mill (11), the latter
operating on the terminal edge of the rivet (7) in such a way that its conical portion
(11a) folds the terminal edge of the rivet (7).
10. Insulating block assembly for buildings comprising:
- a first block (2);
- a second block (3);
- at least an insulating body (4) interposed between the first block (2) and the second
block (3), characterised in that it further comprises:
at least a first and a second mechanical coupling element (5) engaged respectively
in correspondence with opposite sides of the insulating body (4), each mechanical
coupling element (5) presenting at least an attachment portion (5a) fastened to the
insulating body (4) and at least a coupling portion (5b) engaging at least a respective
coupling seat (6) obtained in each of said blocks (2, 3) to fasten the first and the
second block (2, 3) to the insulating body itself;
- at least a mechanical fastening element (7) operatively engaged between the insulating
body (4) and said attachment portion (5a) and fastening rigidly said at least first
and second mechanical coupling element (5) to the insulating body itself.
11. Insulating block assembly according to claim 10, characterised in that said at least one mechanical fastening element (7) extends through the insulating
body (4) and presents a first and a second extremity (7a, 7b) which retain respectively
the first and the second coupling elements (5) with respect to the insulating body
itself.
12. Insulating block assembly according to claim 10, characterised in that it further comprises at least a tubular spacer (8) positioned around said fastening
element (7).
13. Insulating block assembly according to claim 12, characterised in that said spacer (8) presents a length substantially equal to the thickness of the insulating
element (4).
14. Insulating block assembly according to claim 12, characterised in that said spacer (8) presents a length greater than the thickness of the insulating element
(4).
15. Insulating block assembly according to claim 12, characterised in that the spacer (8) presents respective opposite extremities (8a) in contact relationship
with the attachment portions (5a) of a first and a second mechanical coupling elements
(2,3 ) engaged respectively in correspondence with opposite sides of the insulating
body (4).
16. Insulating block assembly according to claim 10, characterised in that said mechanical fastening element (7) comprises at least a rivet.
17. Insulating block assembly according to claim 10, characterised in that for each mechanical coupling element (5) at least two mechanical fastening elements
7 are provided.
18. Insulating block assembly according to claim 10, characterised in that said at least one mechanical coupling element (5) is realised separately from the
insulating body (4) and joined thereto by means of said at least an element
19. insulating block assembly according to claim 10, wherein each mechanical coupling
element (5) comprises at least an elastically yielding laminar element able to be
engaged by snapping into the respective coupling seat (6) of the corresponding block
(2, 3), said coupling portion comprising at least a pair of lateral tabs (5b) presenting
respective folded back terminal portions (5c) set to engage respective undercuts obtained
in the coupling seat (6).
20. Insulating block assembly according to claim 10, wherein each mechanical coupling
element (5) comprises at least a rigid laminar element destined to be inserted by
sliding into the respective coupling seat (6), said coupling portion comprising at
least a pair of interference tabs (5b) able to be inserted by sliding into said coupling
seat (6), shaped in the manner of a through groove.
1. Verfahren zum Herstellen einer Isoliereinheit für Bauwerke, umfassend die folgenden
Schritte:
- Herstellen eines ersten Blockes (2);
- Herstellen eines zweiten Blockes (3);
- Zwischenschalten eines Isolierkörpers (4) zwischen dem ersten Block (2) und dem
zweiten Block (3)
dadurch gekennzeichnet, dass das Zwischenschalten des Isolierkörpers (4) zwischen den Blöcken (2, 3) die Schritte
umfasst:
- Bilden des Isolierkörpers (4);
- Zuordnen dem Isolierkörper (4), jeweils im Bereich seiner abgewandten Seiten, mindestens
eines ersten und eines zweiten mechanischen Hakenelementes (5) über mindestens ein
mechanisches Befestigungselement (7), das wirksam zwischen dem Isolierkörper (4) und
einem Anschlussabschnitt der mechanischen Hakenelemente (5) in Eingriff steht;
- Positionieren zwischen dem ersten und den zweiten Block (2, 3) des zuerst gebildeten
Isolierkörpers (4);
- in Eingriffbringen des ersten und des zweiten Blockes (2, 3) am Isolierkörper (4),
indem mindestens ein Hakenabschnitt (5b) eines jeden mechanischen Hakenelementes (5)
mit einer entsprechenden in den genannten Blöcken (2, 3) erhaltenen Hakenaufnahme
(6) in Eingriff gebracht wird.
2. Verfahren nach Anspruch 1, bei dem das Eingreifen der Blöcke (2, 3) an den entsprechenden
mechanischen Hakenelementen (5) durch eine zwangsweise Annäherung der Blöcke (2, 3)
an den Isolierkörper (4) durchgeführt wird.
3. Verfahren nach Anspruch 2, bei dem das Eingreifen der Blöcke (2, 3) an den entsprechenden
mechanischen Hakenelementen (5) über eine relative Verstellung zwischen einem jeden
Block (2, 3) und dem Isolierkörper (4) in der Ebene erfolgt, in der die Seiten liegen,
welche die mechanischen Hakenelemente (5) tragen.
4. Verfahren nach Anspruch 2 oder 3, bei dem das Eingreifen des ersten und des zweiten
Blockes (2, 3) an den entsprechenden mechanischen Hakenelementen (5) gleichzeitig
durchgeführt wird.
5. Verfahren nach Anspruch 1, bei dem die Zuordnung eines jeden mechanischen Hakenelementes
(5) dem Isolierkörper (4) durch Vernietung erfolgt.
6. Verfahren nach Anspruch 5, bei dem die Vernietung über die folgenden Schritte erfolgt:
- Einführen mindestens einer Niete (7) in eine durchgehende Bohrung eines ersten mechanischen
Hakenelementes (5);
- Einführen der Niete (7) in eine durchgehende Bohrung des Isolierkörpers (4) ;
- Umstülpen eines Endrandes der Niete (7) auf der dem ersten Hakenelement (5) abgewandten
Seite, um dieses letztere zusammen am Isolierkörper (4) zu befestigen.
7. Verfahren nach Anspruch 6, bei dem vor dem Einführschritt der Niete (7) in die durchgehende
Bohrung des Isolierkörpers (4) mindestens ein Abstandhalter (8) auf die Niete (7)
aufgeschoben wird, wobei der Abstandhalter (8) eine Axialabmessung besitzt, die mindestens
gleich der Dicke des Isolierkörpers (4) ist.
8. Verfahren nach Anspruch 6, bei dem vor dem Umstülpschritt die Niete (7) in eine durchgehende
Bohrung eines zweiten mechanischen Hakenelementes (5) eingebracht wird.
9. Verfahren nach Anspruch 6, bei dem der Umstülpschritt des Endrandes der Niete (7)
über eine Fräse (7) erfolgt, die einen gegenüber der Drehachse der Fräse (11) außermittigen
Kegelabschnitt (11a) aufweist, wobei die Fräse auf den Endrand der Niete (7) derart
wirkt, dass ihr Kegelabschnitt (11) den Endrand der Niete (7) umgibt.
10. Isoliereinheit für Bauwerke, umfassend:
- einen ersten Block (2);
- einen zweiten Block (3);
- mindestens einen Isolierkörper (4), der zwischen dem ersten Block (2) und dem zweiten
Block (3) zwischengeschaltet ist,
dadurch gekennzeichnet, dass sie überdies umfasst:
- mindestens ein erstes und ein zweites Hakenelement (5), die jeweils im Bereich von
abgewandten Seiten des Isolierkörpers (4) in Eingriff stehen, wobei jedes mechanische
Hakenelement (5) mindestens einen am Isolierkörper (4) befestigen Anschlussabschnitt
(5a) und mindestens einen Hakenabschnitt (5b) aufweist, der mindestens eine entsprechende
Hakenaufnahme (6) ergreift, die in jedem der Blöcke (2, 3) ausgenommen ist, um den
ersten und den zweiten Block (2, 3) am Isolierkörper selbst zu befestigen;
- mindestens ein mechanisches Befestigungselement (7), das wirksam zwischen dem Isolierkörper
(4) und dem Anschlussabschnitt (5a) in Eingriff steht und das erste und zweite mechanische
Hakenelement (5) starr an den Isolierkörper selbst bindet.
11. Isoliereinheit nach Anspruch 10, dadurch gekennzeichnet, dass das mindestens eine mechanische Befestigungselement (7) sich durch den Isolierkörper
(4) hindurch erstreckt und ein erstes und ein zweites Ende (7a, 7b) aufweist, die
jeweils das erste und das zweite Hakenelement (5) gegenüber dem Isolierkörper selbst
halten.
12. Isoliereinheit nach Anspruch 10, dadurch gekennzeichnet, dass sie überdies mindestens einen rohrförmigen Abstandhalter (8) vorsieht, der um den
Befestigungselement (7) herum angeordnet ist.
13. Isoliereinheit nach Anspruch 12, dadurch gekennzeichnet, dass der Abstandhalter (8) eine Länge aufweist, die im wesentlichen gleich der Dicke des
Isolierelementes(4) ist.
14. Isoliereinheit nach Anspruch 12, dadurch gekennzeichnet, dass der Abstandhalter (8) eine Länge aufweist, die größer als die Dicke des Isolierelementes
(4) ist.
15. Isoliereinheit nach Anspruch 12, dadurch gekennzeichnet, dass der Abstandhalter (8) entsprechende, abgewandte Enden (8a) aufweist, die an den Anschlussabschnitten
(5a) eines ersten und eines zweiten mechanischen Hakenelementes (2, 3) anschlagen,
die jeweils im Bereich der abgewandten Seiten des Isolierkörpers (4) in Eingriff stehen.
16. Isoliereinheit nach Anspruch 10, dadurch gekennzeichnet, dass das mechanische Befestigungselement (7) mindestens eine Niete umfasst.
17. Isoliereinheit nach Anspruch 10, dadurch gekennzeichnet, dass für jedes mechanische Hakenelement (5) mindestens zwei mechanische Befestigungselemente
(7) vorgesehen sind.
18. Isoliereinheit nach Anspruch 10, dadurch gekennzeichnet, dass das mindestens eine mechanische Hakenelement (5) getrennt vom Isolierkörper (4) ausgeführt
und mit diesem letzteren über das mindestens eine Hakenelement vereint ist.
19. Isoliereinheit nach Anspruch 10, bei dem jedes mechanische Hakenelement (5) mindestens
ein elastisch nachgiebiges Blattelement umfasst, das schnappartig in der entsprechenden
Hakenaufnahme (6) des entsprechenden Blockes (2, 3) in Eingriff kommt, wobei der Hakenabschnitt
mindestens ein Paar von Seitenklappen (5a) umfasst, die jeweilige umgebogene Endabschnitte
(5c) aufweisen, die bereitgestellt sind, die jeweiligen in der Hakenaufnahme (6) ausgenommenen
Hinterschneidungen zu ergreifen.
20. Isoliereinheit nach Anspruch 10, bei der jedes mechanische Hakenelement (5) mindestens
ein starres Blattelement umfasst, das dazu bestimmt ist, zur Verstellung in die jeweilige
Hakenaufnahme (6) eingeführt zu werden, wobei der Hakenabschnitt mindestens ein Paar
von überschneidenden Lappen (5b) umfasst, die durch Verstellung in die als durchgehende
Nut ausgebildete Hakenaufnahme (6) einführbar sind.
1. Méthode pour la réalisation d'un assemblage de blocs de constructions isolants comprenant
les étapes suivantes:
- réalisation d'un premier block (2);
- réalisation d'un deuxième block (3);
- interposition d'un corps isolant (4) entre le premier bloc (2) et le deuxième bloc
(3),
caractérisée en ce que l'interposition du corps isolant (4) entre les blocs (2, 3) prévoit les étapes suivantes:
- formation du corps isolant (4);
- association d'au moins un premier et un deuxième élément d'accouplement mécanique
(5) au corps isolant (4), respectivement en correspondance de ses côtés opposés, par
au moins un élément de fixation mécanique (7) engagé de manière opérationnelle entre
le corps isolant (4) et une portion de jonction des éléments d'accouplement mécanique
(5);
- mise en place du corps isolant (4) formé précédemment entre les premier et deuxième
blocs (2, 3);
- engagement des premier et deuxième blocs (2, 3) au corps isolant (4) en engageant
au moins une portion d'accouplement (5b) de chaque élément d'accouplement mécanique
(5) à un siège d'accouplement respectif (6) obtenu dans ledit bloc (2, 3).
2. Méthode selon la revendication 1, dans laquelle l'engagement des blocs (2, 3) aux
éléments d'accouplement mécanique respectifs est obtenu par rapprochement forcé entre
les blocs (2, 3) et le corps isolant (4).
3. Méthode selon la revendication 2, dans laquelle l'engagement des blocs (2, 3) aux
éléments d'accouplement mécanique respectifs (5) est obtenu par glissement relatif
entre chaque bloc (2, 3) et le corps isolant (4) dans le plan de disposition des côtés
portant les éléments d'accouplement mécanique (5).
4. Méthode selon les revendications 2 ou 3, dans laquelle l'engagement des premier et
deuxième blocs (2, 3) aux éléments d'accouplement mécanique respectifs (5) est effectué
simultanément.
5. Méthode selon la revendication 1, dans laquelle l'association de chaque élément d'accouplement
mécanique (5) au corps isolant (4) a lieu par rivetage.
6. Méthode selon la revendication 5, dans laquelle l'opération de rivetage est effectuée
par les étapes suivantes:
- insertion d'au moins un rivet (7) dans un trou de passage d'un premier élément d'accouplement
mécanique (5);
- insertion dudit rivet (7) dans un trou de passage du corps isolant (4);
- repliement d'un bord terminal du rivet (7) du côté opposé par rapport au premier
élément d'accouplement (5) en vue de fixer ce dernier au corps isolant (4).
7. Méthode selon la revendication 6, dans laquelle avant l'étape d'insérer le rivet (7)
dans le trou de passage du corps isolant (4), on introduit sur le rivet (7) au moins
une entretoise (8) ayant une dimension axiale au moins égale à l'épaisseur du corps
isolant (4).
8. Méthode selon la revendication 6, dans laquelle avant l'étape de repliement, le rivet
(7) est introduit dans un trou de passage d'un deuxième élément d'accouplement mécanique
(5).
9. Méthode selon la revendication 6, dans laquelle ladite étape de repliement du bord
terminal du rivet (7) est effectuée par une fraise (11) présentant une portion conique
(11a) excentrique par rapport à l'axe de rotation de la fraise (11), cette dernière
opérant sur le bord terminal du rivet (7) de telle sorte que sa portion conique (11a)
plie le bord terminal du rivet (7).
10. Assemblage de blocs de construction isolants comprenant:
- un premier bloc (2);
- un deuxième bloc (3);
- au moins un corps isolant (4) interposé entre le premier bloc (2) et le deuxième
bloc (3), caractérisé en ce qu'il comporte en outre:
- au moins un premier et un deuxième éléments d'accouplement mécanique (5) engagés
respectivement en correspondance de côtés opposés du corps isolant (4), chaque élément
d'accouplement mécanique (5) présentant au moins une portion de jonction (5a) fixée
au corps isolant (4) et au moins une portion d'accouplement (5b) engageant au moins
un siège d'accouplement respectif (6) obtenu dans chacun desdits blocs (2, 3) dans
le but de fixer les premier et deuxième blocs (2, 3) au corps isolant lui-même;
- au moins un élément de fixation mécanique (7) engagé de manière opérationnelle entre
le corps isolant (4) et ladite portion de jonction (5a) et fixant rigidement lesdits
premier et deuxième éléments d'accouplement mécanique (5) au corps isolant lui-même.
11. Assemblage de blocs isolants selon la revendication 10, caractérisé en ce que ledit au moins un élément de fixation mécanique (7) s'étend à travers le corps isolant
(4) et présente une première et une deuxième extrémités (7a, 7b) qui retiennent respectivement
les premier et deuxième éléments d'accouplement (5) par rapport au corps isolant lui-même.
12. Assemblage de blocs isolants selon la revendication 10, caractérisé en ce qu'il comporte en outre au moins une entretoise tubulaire (8) mise en place autour dudit
élément de fixation (7).
13. Assemblage de blocs isolants selon la revendication 12, caractérisé en ce que ladite entretoise (8) a une longueur sensiblement égale à l'épaisseur de l'élément
isolant (4).
14. Assemblage de blocs isolants selon la revendication 12, caractérisé en ce que ladite entretoise (8) a une longueur supérieure à l'épaisseur de l'élément isolant
(4).
15. Assemblage de blocs isolants selon la revendication 12, caractérisé en ce que l'entretoise (9) a des extrémités opposées respectives (8a) en contact avec les portions
de jonction (5a) d'un premier et d'un deuxième éléments d'accouplement mécanique (2,
3) engagés respectivement en correspondance de côtés opposés du corps isolant (4).
16. Assemblage de blocs isolants selon la revendication 10, caractérisé en ce que ledit élément de fixation mécanique (7) comporte au moins un rivet.
17. Assemblage de blocs isolants selon la revendication 10, caractérisé en ce qu'on prévoit au moins deux éléments de fixation mécaniques (7) pour chaque élément d'accouplement
(5).
18. Assemblage de blocs isolants selon la revendication 10, caractérisé en ce que ledit au moins un élément d'accouplement mécanique (5) est réalisé séparément du
corps isolant (4) et uni à ce dernier par ledit au moins un élément.
19. Assemblage de blocs isolants selon la revendication 10, dans lequel chaque élément
d'accouplement mécanique (5) comporte au moins un élément laminaire qui fléchit élastiquement,
lequel est apte à s'engager à déclic dans le siège d'accouplement respectif (6) du
bloc correspondant (2, 3), ladite portion d'accouplement comprenant au moins une paire
de languettes latérales (5b) présentant des portions terminales repliées respectives
(5c) destinées à engager des creux respectifs obtenus dans le siège d'accouplement
(6).
20. Assemblage de blocs isolants selon la revendication 10, dans lequel chaque élément
d'accouplement mécanique (5) comporte au moins un élément laminaire rigide destiné
à être introduit par glissement dans le siège d'accouplement respectif (6), ladite
portion d'accouplement comprenant au moins une paire de languettes d'interférence
(5b) aptes à être insérées par glissement dans ledit siège d'accouplement (6) ayant
la forme d'une rainure traversante.