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EP 2 456 928 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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02.09.2015 Bulletin 2015/36 |
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Date of filing: 22.07.2010 |
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International Patent Classification (IPC):
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International application number: |
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PCT/IE2010/000042 |
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International publication number: |
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WO 2011/010300 (27.01.2011 Gazette 2011/04) |
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A STRUCTURAL MODULE FOR CONSTRUCTION OF BUILDINGS
BAUMODUL ZUR KONSTRUKTION VON GEBÄUDEN
MODULE STRUCTURAL POUR CONSTRUCTION DE BÂTIMENTS
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO SE SI SK SM TR |
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Priority: |
23.07.2009 IE 20090575
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Date of publication of application: |
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30.05.2012 Bulletin 2012/22 |
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Proprietor: BIOMEDY LIMITED |
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Bandon, County Cork (IE) |
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Inventors: |
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- FLEMING, Denis
County Cork (IE)
- FLEMING, John Joseph
County Cork (IE)
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Representative: Weldon, Michael James et al |
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John A. O'Brien & Associates
Third Floor,
Duncairn House,
14 Carysfort Avenue Blackrock, Co. Dublin Blackrock, Co. Dublin (IE) |
| (56) |
References cited: :
WO-A1-93/23632 FR-A- 1 520 408 GB-A- 1 021 664
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WO-A1-2007/080561 FR-A1- 2 376 924
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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).
|
INTRODUCTION
Field of the Invention
[0001] The invention relates to structural modules for construction of buildings.
Prior Art Discussion
[0002] Our published specification no.
WO2007080561 describes a structural module, its manufacture, and construction of a multi-storey
building by placing one module atop the other.
[0003] This invention is directed towards achieving improved technical features to such
modules such as superior robustness, greater fire resistance, improved acoustical
performance, and improved sustainability, particularly in terms of materials used.
Another objective is to achieve a more efficient manufacturing process. A further
objective is to achieve improved resistance to hurricane forces and seismic activity.
Another structural module for the construction of multi-story buildings is described
in
GB 1021664.
SUMMARY OF THE INVENTION
[0004] According to the invention, there is provided a structural module comprising a structural
floor, load bearing walls, and a structural ceiling, arranged to support a plurality
of other structural modules in a multi-storey building, wherein at least one load
bearing wall comprises a structural frame and lightweight concrete having a density
in the range of 400kg/m
3 to 600kg/m
3 between frame members of said structural frame, the concrete being cellular, including
air entrainment, the concrete being moulded between the frame members, completely
filling voids between the frame members along the plane of the wall.
[0005] In one embodiment, the wall is configured so that when two modules are juxtaposed
there is a combined wall comprising a cavity between the modules.
[0006] In one embodiment, the wall is lined on at least one side by boards, the lightweight
concrete and the boards providing at least two hours fire resistance.
[0007] In one embodiment, the wall boards include MgO.
[0008] In one embodiment, the concrete is cast against the steel frame and boards.
[0009] In one embodiment, at least part of the ceiling includes lightweight cellular concrete
between structural members in trusses.
[0010] In one embodiment, the floor includes a perimeter structural steel frame and includes
lightweight concrete with reinforcing steel.
[0011] In one embodiment, the module includes at a corner a vertical dowel pin for engagement
in a socket in a corner of another module, and wherein
the module comprises a substantially vertical socket at a corner for engagement with
a substantially vertical dowel pin of an upper or lower adjoining module, and
wherein the module comprises a tie plate configured to be secured to a plurality of
other modules at a corner, and wherein
the plate comprises a through hole for receiving a dowel pin of an adjoining module
In one embodiment, the module comprises an internal wall connected to a structural
wall by a releasable joint, and wherein
the releasable joint comprises a joint of a flexible filler extending in a vertical
direction.
[0012] In another aspect, the invention provides an assembly of a plurality of modules as
defined above in any embodiment mounted one atop another.
[0013] In one embodiment, at least some of the modules adjoin a reinforced concrete core
and abut it in a vertical plane, and wherein
at least one module has a tie with a head engaging behind a vertical slot in the core,
and wherein
the vertical slot is in an embedded insert within the core.
[0014] In one embodiment, the insert comprises flanges parallel to the plane of an outer
surface of the core facing the module, and side walls connecting the flanges to a
front wall incorporating the slot, and wherein
a plurality of the modules are tied together at adjoining corners by a tie plate and
at least one dowel pin extending through the tie plate and into a socket of an upper
or lower module.
[0015] In another aspect, the invention provides a method of manufacturing a structural
module as defined above in any embodiment, the method comprising manufacturing the
structural floor, structural walls, and structural ceiling and interconnecting them
together, the method including the steps of choosing a concrete composition and/or
density for each structural wall according to intended location and function of the
structural wall in a building to be constructed using the module, and casting in the
chosen lightweight concrete into said wall.
[0016] In one embodiment, the concrete is prepared with choice of proportion of the materials
and a foam agent in a concrete mix before casting the concrete within the wall structural
frame.
[0017] In another aspect, the invention provides a method of constructing a building comprising
the steps of manufacturing a structural module in a method as defined above in any
embodiment, transporting the modules to a site with an erected core, placing at least
some of the modules in position butting the core, and tying at least some of said
modules to the core.
[0018] In one embodiment, said modules are tied by engagement of a tie within a vertical
slot in the core and securing the tie to the module by welding or fasteners, and wherein
a plurality of said modules are tied at adjoining corners by engagement of a substantially
vertical dowel pin on a module with a substantially vertical socket in an upper or
lower module.
DETAILED DESCRIPTION OF THE INVENTION
Brief Description of the Drawings
[0019] The invention will be more clearly understood from the following description of some
embodiments thereof, given by way of example only with reference to the accompanying
drawings in which:-
Fig. 1 is a perspective view of structural members of a structural module of the invention,
and Fig. 2 is a perspective view showing a number of such modules arranged to form
a building, again only showing the structural frameworks of the modules;
Fig. 3 is a cross-sectional plan view through adjoining structural walls when two
modules are placed side by side;
Figs. 4 and 5 are perspective views at corners of modules, showing how they are tied
together for enhanced seismic resistance;
Fig. 6 is a plan view showing connection of a non-load bearing internal wall to a
load-bearing external wall of a module; and
Figs. 7 and 8 are perspective views of tie parts for tying a module to a building
core, Figs. 9(a) to (c) are side views showing use of the tie parts for tying a module
at the floor level, and Figs. 10(a) to 10(c) are side views showing their use for
tying at ceiling level.
Description of the Embodiments
[0020] Referring to Fig. 1 a structural module 1 comprises a floor 2 having a perimeter
structural steel frame and reinforced concrete. Structural walls 3 are supported on
the floor 2 and they comprise box-section structural steel studs 4. A ceiling 5 comprises
structural steel trusses 6 spanning the walls 3. The walls 3 have sufficient structural
strength to support many modules in a multi-storey building such as a hotel or apartment
block, as shown in Fig. 2. The wall studs 4 are 60 x 60 x 3 SHS steel at 600mm centres,
supported on a flanged edge frame member 7 of the structural floor 2. The trusses
6 have bearing plates 8 on the walls 3, directly overlying the studs 4. The arrangements
of the structural walls, floor, and ceiling are as described in
WO2007080561 in terms of their structural frameworks.
[0021] There are braces 9 extending from a central location of an end wall 10 and longitudinal
walls 3.
[0022] Fig. 2 shows how there may be a break in a module 1, in this example 2.25 times the
height of the module 1. Such a break in a structural wall 3 may occur due to any of
a range of accidental events such as a vehicle crash or a gas explosion. The floor
2, the structural walls 3 and 10, and the structural ceiling 5 provide sufficient
strength to prevent collapse in the event of an accidental event effectively removing
a section of a structural wall up to 2.25 times the module height.
[0023] Referring to Fig. 3 the structural walls 3 comprise the steel studs 4 which are square
hollow sections or rectangular sections typically 60 x 60 x 3 SHS at varying design
centres. Where two modules are installed adjacent to each other there are two module
walls 3 and 16, with two aligned studs 4 separated by a cavity 15. Each of the walls
3 and 16 has moulded-in lightweight cellular concrete 20, produced using foam to provide
air entrainment, resulting in a very low density. An example is that marketed by Neopor™
and referred to as cellular lightweight concrete. The density in this embodiment is
about 500 kg/m
3.
[0024] The structural strength of the module walls 3 and 16 is provided by the steel studs
4 assisted by the cast-in concrete 20. The cellular concrete 20 fills up the voids
between the studs 4 and MgO facing board 21 on the internal surfaces. There are strips
23 of MgO board between the studs 4 and the MgO panels 21.
[0025] This combination of materials and their physical arrangement provides the following
properties:
- Fire resistance. The MgO board 21 has excellent fire resistance properties. The cellular
concrete 20 reduces transfer of heat to the steel, and it has a thermal conductivity
significantly lower than conventional concrete, which is a contributing factor to
its improved fire performance. The delay in temperature rise of the steel to the critical
level of about 500°C is very advantageous for fire safety of a multi-storey building.
With EN1365-1 loaded fire testing, over 120 mins Fire Resistance has been achieved,
despite the fact that the wall is relatively thin, in this example 82mm.
- High strength to weight ratio. With the low density cellular concrete a similar dead
weight of structure can be achieved compared to the module of WO2007080561, which can be about 15% lighter than traditional build.
- Excellent acoustic performance. The acoustic performance of the module is significantly
improved due to the wall composition as the wall is designed to deal with a wider
range of sound frequencies. A compartment wall formed by two module walls has been
tested in a laboratory and has achieved 62dB Rw and Rw + Ctr of 57dB. This is approximately
9dB better than the current Building Regulations in Ireland and 12 dB better than
the current UK Building Regulations.
- Robustness.
- Improved thermal insulation in comparison to conventional concrete. The cellular lightweight
concrete (CLC) at about 500 kg/m3 has on average 14 times better thermal insulation than that of conventional concrete.
This reduces the requirement for insulation for external walls.
- Sustainability. There are no man-made or manufactured aggregates needed. The foaming
agent used in the mix is made from natural ingredients and is biodegradable and non-polluting
to water courses. Eco-cement can also be used with the product It reduces the need
for additional manufactured insulation.
[0026] It will be appreciated that the wall construction contributes very significantly
to the required properties of a structural module both in terms of its manufacture,
its use in constructing a building, and its ongoing use for residential or business
purposes.
[0027] The wall properties can be varied in the factory according to the intended nature
of use of the module 1. This is achieved by adjustment of the cellular concrete density
20 during off-site (factory) manufacture of the module 1. The cellular concrete preparation
is as follows in one embodiment:
- In a mechanical rotating drum mixer river run sand of the correct grading is firstly
mixed with cement in the required proportions. Optionally, polypropylene fibres can
be mixed in to reduce shrinkage. Then water is added to the required volume and mix
consistency. Once this is reached the required volume of foam is added to produce
the desired wet density of the mix.
- The foam is produced in a machine that takes water, compressed air, and a biological
foaming agent that produces lightweight foam which encapsulates small air bubbles.
This enables the foam to be mixed into a sand-cement-water mortar without the bubbles
collapsing, thus keeping the mix at a stable density. Once the foam is fully integrated
in the mixture, it is transferred into a hopper before being cast into the wall panels
on a horizontal bed and screeded off level.
[0028] There are many advantages to the wall construction both in terms of the building
constructed from the module and the method of manufacturing the module. One of the
most important advantages is that the module solves a particular acoustic problem
which is generally associated with modular construction.
[0029] It will also be appreciated that the process of manufacture is more efficient because
of avoidance of manual infill of insulation, the lightweight concrete being cast by
machine. In the factory the casting machine pours, levels, and screeds the infill
concrete automatically.
[0030] Referring to Figs. 4 and 5 a joint at corners if formed by a tie plate 30 with four
corner holes 31, a socket 32, and a dowel pin 33. These interconnect eight modules
1 at a corner, four below and four above. The tie plate 30 is welded at a joint 37
to a corner member 32 of the module 1 below. Chamfered top edges 34 of the tie plate
30 facilitate the required amount of weld for securing the plate 30 directly to the
bearing plates 8 of ceiling trusses 6 of the adjoining modules 1. This secures the
plate to the four underneath modules 1, and these edges are accessible from above.
These welds are indicated as numeral 36 in the drawings.
[0031] The next module 1 above is welded to the tie plate 30 at a weld 37 around the corner
angle of the upper module floor 2. The tie plate 30 has four holes 31, one at each
corner. The next two upper modules 1 are then placed and secured in a similar manner.
The final upper module is secured in place by insertion of the dowel pin 33 through
a hole 31 in the plate 30. It extends into the socket 32 which is directly below and
has been filled with non-shrink and high-strength grout. The depth of the pocket and
the length of the dowel are determined by the forces it needs to cater for. In some
circumstances this grout may also need to be of the type which hardens quickly, in
order to achieve the desired strength in the connection as soon as possible. This
is particularly true for high-rise buildings, where the structure needs to take wind
and other final loads prior to building completion. In one embodiment, the grout is
Sikadur-42 HE high performance epoxy grout, for example. This dowel connection has
the same capabilities as the welds between the upper module and the tie plate to cater
for all relevant forces.
[0032] This arrangement allows a fourth module 1 to be tied in even though access to weld
to the plate 30 is not possible after three upper modules have been put in place.
Also, it allows at each corner a combination of both welding and dowel pin engagement.
By providing four holes 31 in the plate it is possible to choose on site which upper
module to lower into position last.
[0033] This arrangement is designed to take the static and dynamic forces of a seismic event.
Compressive loading is taken primarily by the vertical studs 4. Vertical tension loads
are resisted by the corner ties 40 which are specifically designed for such loading.
The horizontal forces are transferred via diaphragm action, utilizing the floor slabs
and the corner connections, to the reinforced concrete building cores. These corner
module connections use welding and/or grouted pins to achieve the structural design
requirements.
[0034] Referring to Fig. 6 a non load-bearing internal wall 50 of the module 1 is connected
to the structural floor 2 and the ceiling 5 by fastening the structural members. Connection
of the internal wall 50 to a structural wall 3 is achieved by a rail 52 of channel
configuration in cross-section fastened by screws 53 to the wall 3. Strips 54 of plasterboard
are secured to the rail 52. The internal wall 50 is then moved into position butting
against the plasterboard 54 at the side edges. The plasterboard 54 fixed to the channel
bears onto the first stud of the internal wall panel but is not mechanically fixed
to it. A joint 55 of flexible material is then made between the plasterboard strips
54 and the plasterboard panels 56 of the internal wall 50.
[0035] In the event of significant seismic activity causing movement of a structural wall
3, the internal wall 50 will not be forced to move with it due to the joint characteristics.
The joint may open or become damaged, but all damage will be cosmetic and easily repaired.
The main advantage is that the internal wall 50 will maintain its own stability and
integrity and will not incur forces which could cause further damage to property or
more significantly cause injury to inhabitants.
[0036] Figs. 7 to 10 are views showing connection of a module 1 to a reinforced concrete
core 61 which had previously been erected on site. The core 61 typically includes
a lift shaft and stairwell of the building. A slotted insert 60 is embedded in the
core 61 at an exactly vertical orientation and in predetermined locations to coincide
with module floor and ceiling levels. The number of inserts is determined by the magnitude
of the forces calculated. The slotted insert 60 comprises lateral flanges 62, angled
side walls 67 converging to a front wall 63 with a vertical slot 64.
[0037] A tie 65 comprises a flat plate with one end notched to provide a head 66 configured
to suit the core slotted insert 60. The tie 65 is engaged to the slotted insert 60
in a vertical orientation and is then rotated through about 90° until the tie 65 is
in a horizontal orientation. The tie 65 is then slid vertically until it engages either
the floor 2 of a module (Figs. 9(a) to 9(c)) or the top of the module 1 (Figs. 10(a)
to 10(c)). The tie 65 is then welded to the module and is free to slide within the
core wall slotted insert 60 in a vertical direction only. This enables it to resist
both shear and tension forces but cater for any differential settlement between the
modules and the core, particularly in multi-storey buildings. It also allows the transfer
of horizontal forces from the modules 1 into the core structure 61. This detail is
also significant in catering for static and dynamic forces during a seismic event.
The extent of differential settlement in a 25-storey building can be in the region
of 8mm to 15mm, due to the concrete of the building core shrinking whereas there is
no appreciable shrinkage of the modules 1 because of the steel bearing the load.
[0038] As shown in Figs 9 and 10 welding of the tie 65 may involve initially welding a buffer
plate (Figs 10(a) to 10(c)) so that the top surface of the tie 65 is brought up to
the level of the top surface of the bearing plates 8. Alternatively, the method may
involve removing a plate section to create space for the tie (Figs. 9(a) to 9(c)).
The latter connection is made between a lateral extension of the floor provided by
the inverted U-shaped channel as shown.
[0039] It will also be appreciated that the cellular concrete in the module walls 3 adds
significantly to its overall stiffness. This in turn improves the capacity of the
wall 3 to resist racking forces. This is particularly advantageous in hurricane and
seismic zones where braced frames and/or shear walls may otherwise be required to
resist such forces.
[0040] It will also be appreciated that the modules cater for the avoidance of disproportionate
collapse which could occur during an accidental event. The modules have the capacity
to deal with the removal of up to 2.25h in metres in length on the long wall of the
module at one level without the modules above collapsing (h = height of module). Similarly
whole short walls of modules can be removed at one level without the danger of collapse
of those modules above. This will be appreciated from Fig. 2
[0041] The invention is not limited to the embodiments described but may be varied in construction
and detail. For example, the wall construction technique of casting in lightweight
cellular concrete may also be used for ceilings, roofs and floors. Also, in the embodiments
described, there is a cavity between walls of two adjoining modules, however, it is
envisaged that a wall such as an internal wall of a single module may incorporate
a cavity. If so, there may be a structural frame on both sides of the cavity. Also,
the tie arrangement for tying a module to a core may be reversed, with the core having
ties which engage slots in the modules.
1. A structural module (1) comprising a structural floor (2), load bearing walls (3),
and a structural ceiling (5), arranged to support a plurality of other structural
modules (1) in a multi-storey building, wherein at least one load bearing wall (3)
comprises a structural frame (4) and lightweight concrete (20) between frame members
of said structural frame, the concrete (20) being cellular, including air entrainment,
characterized in that,
the concrete density is in the range of 400 to 600 kg/m3, and
the concrete (20) is moulded between the frame members, completely filling voids between
the frame members along the plane of the wall.
2. A structural module as claimed in claim 1, wherein the wall (3) is configured so that
when two modules (1) are juxtaposed there is a combined wall comprising a cavity (15)
between the modules.
3. A structural module as claimed in any preceding claim, wherein the wall (3) is lined
on at least one side by boards, the lightweight concrete and the boards providing
at least two hours fire resistance.
4. A structural module as claimed in claim 3, wherein the wall boards include MgO.
5. A structural module as claimed in either of claims 3 or 4, wherein the concrete (20)
is cast against the steel frame and boards.
6. A structural module as claimed in any preceding claim, wherein at least part of the
ceiling (5) includes lightweight cellular concrete (20) between structural members
in trusses.
7. A structural module as claimed in any preceding claim, wherein the floor (2) includes
a perimeter structural steel frame and includes lightweight concrete (20) with reinforcing
steel.
8. A structural module as claimed in any preceding claim, wherein the module (1) includes
at a corner a vertical dowel pin (33) for engagement in a socket (32) in a corner
of another module, and wherein the module (1) comprises a vertical socket (32) at
a corner for engagement with a dowel pin of an upper or lower adjoining module, and
wherein the module comprises a tie plate (30) configured to be secured to a plurality
of other modules at a corner, and wherein the plate (30) comprises a through hole
(31) for receiving a dowel pin (32) of an adjoining module.
9. A structural module as claimed in any preceding claim, wherein the module (1) comprises
an internal wall (50) connected to a structural wall (3) by a releasable joint (54,
55), and wherein the releasable joint comprises a joint of a flexible filler (55)
extending in a vertical direction.
10. An assembly of a plurality of modules of any preceding claim mounted one atop another.
11. An assembly of a plurality of modules as claimed in claim 10, wherein at least some
of the modules adjoin a reinforced concrete core (61) and abut it in a vertical plane,
and wherein at least one module has a tie (65) with a head (66) engaging behind a
vertical slot (64) in the core, and wherein the vertical slot is in an embedded insert
(60) within the core.
12. An assembly of a plurality of modules as claimed in claim 11, wherein the insert (60)
comprises flanges (62) parallel to the plane of an outer surface of the core facing
the module, and side walls (67) connecting the flanges to a front wall (63) incorporating
the slot (64), and wherein a plurality of the modules (1) are tied together at adjoining
corners by a tie plate (30) and at least one dowel pin (33) extending through the
tie plate (30) and into a socket (32) of an upper or lower module.
13. A method of manufacturing a structural module as claimed in any of claims 1 to 9,
the method comprising manufacturing the structural floor, structural walls, and structural
ceiling and interconnecting them together, the method including the steps of choosing
a concrete composition and/or density for each structural wall according to intended
location and function of the structural wall in a building to be constructed using
the module, and casting in the chosen lightweight concrete into said wall.
14. A method of manufacturing a structural module as claimed in claim 13, wherein the
concrete is prepared with choice of proportion of the materials and a foam agent in
a concrete mix before casting the concrete within the wall structural frame.
15. A method of constructing a building comprising the steps of manufacturing a structural
module in a method as claimed in any of claims 13 or 14, transporting the modules
to a site with an erected core, placing at least some of the modules in position butting
the core (61), and tying at least some of said modules to the core.
16. A method as claimed in claim 15, wherein said modules are tied by engagement of a
tie within a vertical slot (64) in the core and securing the tie to the module by
welding or fasteners, and wherein a plurality of said modules are tied at adjoining
corners by engagement of a substantially vertical dowel pin on a module with a substantially
vertical socket in an upper or lower module.
1. Baumodul (1), das Folgendes umfasst: einen Bauboden (2), Tragwände (3) und eine Baudecke
(5), die dafür ausgelegt ist, eine Vielzahl von anderen Baumodulen (1) in einem mehrstöckigen
Gebäude zu stützen, wobei mindestens eine Tragwand (3) einen Baurahmen (4) und Leichtbeton
(20) zwischen den Rahmenelementen des Baurahmens umfasst,
wobei der Beton (20) zellulär ist und Lufteinschlüsse umfasst, dadurch gekennzeichnet, dass
die Betondichte im Bereich von 400 bis 600 kg/m3 liegt und
der Beton (20) zwischen die Rahmenelemente gegossen wird und die Hohlräume zwischen
den Rahmenelementen entlang der Ebene der Wand vollständig ausfüllt.
2. Baumodul nach Anspruch 1, wobei die Wand (3) so konfiguriert ist, dass, wenn zwei
Module (1) nebeneinander angeordnet sind, eine kombinierte Wand vorhanden ist, die
einen Hohlraum (15) zwischen den Modulen umfasst.
3. Baumodul nach einem der vorhergehenden Ansprüche, wobei die Wand (3) auf mindestens
einer Seite mit Platten ausgekleidet ist, wobei der Leichtbeton und die Platten eine
Feuerfestigkeit von mindestens zwei Stunden bereitstellen.
4. Baumodul nach Anspruch 3, wobei die Wandplatten MgO umfassen.
5. Baumodul nach einem der Ansprüche 3 oder 4, wobei der Beton (20) gegen den Stahlrahmen
und die Platten gegossen wird.
6. Baumodul nach einem der vorhergehenden Ansprüche, wobei mindestens ein Teil der Decke
(5) zellulären Leichtbeton (20) zwischen Bauelementen in Trägern umfasst.
7. Baumodul nach einem der vorhergehenden Ansprüche, wobei der Boden (2) einen umfänglichen
Baustahlrahmen und Leichtbeton (20) mit Bewehrungsstahl umfasst.
8. Baumodul nach einem der vorhergehenden Ansprüche, wobei das Modul (1) an einer Ecke
einen vertikalen Fixierstift (33) für den Eingriff in eine Buchse (32) an einer Ecke
eines anderen Moduls umfasst und wobei das Modul (1) eine vertikale Buchse (32) an
einer Ecke für den Eingriff in einen Fixierstift eines oberen oder unteren benachbarten
Moduls umfasst und wobei das Modul eine Verbindungsplatte (30) umfasst, die dafür
konfiguriert ist, an einer Vielzahl von anderen Modulen an einer Ecke befestigt zu
werden und wobei die Platte (30) eine Durchgangsbohrung (31) zur Aufnahme eines Fixierstifts
(32) eines benachbarten Moduls umfasst.
9. Baumodul nach einem der vorhergehenden Ansprüche, wobei das Modul (1) eine Innenwand
(50) umfasst, die mit einer Bauwand (3) durch eine lösbare Verbindung (54, 55) verbunden
ist, und wobei die lösbare Verbindung eine Verbindung eines flexiblen Füllers (55)
umfasst, der sich in einer vertikalen Richtung erstreckt.
10. Baugruppe aus einer Vielzahl von Modulen nach einem der vorhergehenden Ansprüche,
wobei die Modulen übereinander angeordnet sind.
11. Baugruppe aus einer Vielzahl von Modulen nach Anspruch 10, wobei mindestens einige
der Module an einen Stahlbetonkern (61) angrenzen und in einer vertikalen Ebene daran
anliegen und wobei mindestens ein Modul eine Verbindung (65) mit einem Kopf (66) aufweist,
der hinter einen vertikalen Schlitz (64) in dem Kern eingreift, und wobei der vertikale
Schlitz in einem eingebetteten Einsatz (60) innerhalb des Kerns angeordnet ist.
12. Baugruppe aus einer Vielzahl von Modulen nach Anspruch 11, wobei der Einsatz (60)
Folgendes umfasst: Flansche (62) parallel zu der Ebene einer Außenfläche des Kerns
gegenüber dem Modul und Seitenwände (67), die die Flansche mit einer Vorderwand (63)
verbinden, die den Schlitz (64) umfasst, und wobei eine Vielzahl der Module (1) an
benachbarten Ecken durch eine Verbindungsplatte (30) miteinander verbunden sind und
wobei sich mindestens ein Fixierstift (33) durch die Verbindungsplatte (30) und in
eine Buchse (32) eines oberen oder unteren Moduls erstreckt.
13. Verfahren zur Herstellung eines Baumoduls nach einem der Ansprüche 1 bis 9, wobei
das Verfahren das Herstellen des Baubodens, der Bauwände und der Baudecke und das
miteinander Verbinden derselben umfasst, wobei das Verfahren folgende Schritte umfasst:
Wählen einer Betonzusammensetzung und/oder Dichte für die einzelnen Bauwände gemäß
der beabsichtigten Position und Funktion der Bauwand in einem Gebäude, das mit Hilfe
des Moduls gebaut werden soll, und Eingießen des gewählten Leichtbetons in die Wand.
14. Verfahren zur Herstellung eines Baumoduls nach Anspruch 13, wobei der Beton mit einer
Auswahl der Anteile der Materialien und einem Schaummittel in einer Betonmischung
hergestellt wird, bevor der Beton in den Baurahmen der Wand gegossen wird.
15. Verfahren zum Bauen eines Gebäudes, das Folgendes Schritte umfasst: Herstellen eines
Baumoduls in einem Verfahren nach einem der Ansprüche 13 oder 14, Transportieren der
Module zu einer Baustelle mit einem aufgestellten Kern, Anordnen mindestens einiger
der Module in eine Position, in der sie an den Kern (61) anstoßen, und Verbinden mindestens
einiger der Module mit dem Kern.
16. Verfahren nach Anspruch 15, wobei die Module durch Folgendes verbunden werden: durch
Eingriff einer Verbindung in einen vertikalen Schlitz (64) in dem Kern und Befestigen
der Verbindung mit dem Modul durch Schweißen oder Befestigungselemente und wobei eine
Vielzahl der Module an benachbarten Ecken durch Eingreifen eines im Wesentlichen vertikalen
Fixiertstifts an einem Modul in einen im Wesentlichen vertikalen Sockel in einem oberen
oder unteren Modul verbunden wird.
1. Module de structure (1) comportant un plancher de structure (2), des murs porteurs
(3), et un plafond de structure (5), selon un agencement permettant de supporter une
pluralité d'autres modules de structure (1) dans un bâtiment à plusieurs étages, dans
lequel au moins un mur porteur (3) comporte une ossature de structure (4) et du béton
léger (20) entre des éléments d'ossature de ladite ossature de structure, le béton
(20) étant cellulaire, comprenant un entraînement d'air, caractérisé en ce que
la densité du béton se situe dans une plage de 400 à 600 kg/m3, et
le béton (20) est moulé entre les éléments d'ossature, remplissant entièrement les
vides entre les éléments d'ossature le long du plan du mur.
2. Module de structure selon la revendication 1, dans lequel le mur (3) est configuré
de telle sorte que, quand deux modules (1) sont juxtaposés, il y a un mur combiné
comportant une cavité (15) entre les modules.
3. Module de structure selon l'une quelconque des revendications précédentes, dans lequel
le mur (3) est revêtu sur au moins un côté au moyen de panneaux, le béton léger et
les panneaux permettant une résistance au feu d'au moins deux heures.
4. Module de structure selon la revendication 3, dans lequel les panneaux du mur comprennent
de l'oxyde de magnésium.
5. Module de structure selon l'une ou l'autre des revendications 3 ou 4, dans lequel
le béton (20) est coulé contre l'ossature en acier et les panneaux.
6. Module de structure selon l'une quelconque des revendications précédentes, dans lequel
au moins une partie du plafond (5) comprend du béton cellulaire léger (20) entre des
éléments de structure dans des fermes.
7. Module de structure selon l'une quelconque des revendications précédentes, dans lequel
le plancher (2) comprend une ossature en acier de structure de périmètre et comprend
du béton léger (20) avec de l'acier d'armature.
8. Module de structure selon l'une quelconque des revendications précédentes, dans lequel
le module (1) comprend au niveau d'un angle une goupille de positionnement verticale
(33) à des fins de mise en prise dans une douille (32) dans un angle d'un autre module,
et dans lequel le module (1) comporte une douille verticale (32) au niveau d'un angle
à des fins de mise en prise avec une goupille de positionnement d'un module contigu
supérieur ou inférieur, et dans lequel le module comporte une plaque d'attache (30)
configurée à des fins d'assujettissement sur une pluralité d'autres modules au niveau
d'un angle, et dans lequel la plaque (30) comporte un trou traversant (31) à des fins
de réception d'une goupille de positionnement (32) d'un module contigu.
9. Module de structure selon l'une quelconque des revendications précédentes, dans lequel
le module (1) comporte un mur intérieur (50) connecté à un mur de structure (3) par
un joint libérable (54, 55), et dans lequel le joint libérable comporte un joint d'une
charge flexible (55) s'étendant dans une direction verticale.
10. Ensemble d'une pluralité de modules selon l'une quelconque des revendications précédentes
montés les uns sur les autres.
11. Ensemble d'une pluralité de modules selon la revendication 10, dans lequel au moins
certains des modules sont contigus par rapport à un noyau en béton armé (61) et viennent
prendre appui contre lui dans un plan vertical, et dans lequel au moins un module
a une attache (65) ayant une tête (66) entrant en prise derrière une fente verticale
(64) dans le noyau, et dans lequel la fente verticale est dans une pièce rapportée
encastrée (60) à l'intérieur du noyau.
12. Ensemble d'une pluralité de modules selon la revendication 11, dans lequel la pièce
rapportée (60) comporte des brides (62) parallèles par rapport au plan d'une surface
extérieure du noyau faisant face au module, et des murs latéraux (67) connectant les
brides au niveau d'un mur avant (63) incorporant la fente (64), et dans lequel une
pluralité de modules (1) sont attachés ensemble au niveau d'angles contigus par une
plaque d'attache (30) et au moins une goupille de positionnement (33) s'étendant au
travers de la plaque d'attache (30) et dans une douille (32) d'un module supérieur
ou inférieur.
13. Procédé de fabrication d'un module de structure selon l'une quelconque des revendications
1 à 9, le procédé comportant l'étape consistant à fabriquer le plancher de structure,
les murs de structure, et le plafond de structure et l'étape consistant à les connecter
ensemble, le procédé comportant l'étape consistant à choisir une composition et/ou
densité de béton pour chaque mur de structure en fonction de l'emplacement et de la
fonction prévus du mur de structure dans un bâtiment devant être construit au moyen
du module, et l'étape consistant à faire couler le béton léger choisi dans ledit mur.
14. Procédé de fabrication d'un module de structure selon la revendication 13, dans lequel
le béton est préparé avec un choix de proportion des matériaux et un agent de gonflement
dans un mélange de béton avant de faire couler le béton dans l'ossature de structure
du mur.
15. Procédé de construction d'un bâtiment comportant les étapes consistant à fabriquer
un module de structure d'après un procédé selon l'une quelconque des revendications
13 ou 14, transporter les modules jusque sur un site ayant un noyau érigé, placer
au moins certains des modules en position en appui contre le noyau (61), et attacher
au moins certains desdits modules au niveau du noyau.
16. Procédé selon la revendication 15, dans lequel lesdits modules sont attachés par la
mise en prise d'une attache à l'intérieur d'une fente verticale (64) dans le noyau
et l'assujettissement de l'attache au niveau du module par soudage ou par des éléments
de fixation, et dans lequel une pluralité desdits modules sont attachés au niveau
d'angle contigus par la mise en prise d'une goupille de positionnement sensiblement
verticale sur un module ayant une douille sensiblement verticale dans un module supérieur
ou inférieur.
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