NL2004119C2 - Modular utility service system. - Google Patents

Modular utility service system. Download PDF

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Publication number
NL2004119C2
NL2004119C2 NL2004119A NL2004119A NL2004119C2 NL 2004119 C2 NL2004119 C2 NL 2004119C2 NL 2004119 A NL2004119 A NL 2004119A NL 2004119 A NL2004119 A NL 2004119A NL 2004119 C2 NL2004119 C2 NL 2004119C2
Authority
NL
Netherlands
Prior art keywords
modules
module
holding devices
lines
longitudinal supports
Prior art date
Application number
NL2004119A
Other languages
Dutch (nl)
Inventor
Hendrikus Wilhelmus Jansen
Original Assignee
Jansen Molenhoek Beheer B V
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Jansen Molenhoek Beheer B V filed Critical Jansen Molenhoek Beheer B V
Priority to NL2004119A priority Critical patent/NL2004119C2/en
Priority to PCT/NL2011/050035 priority patent/WO2011090378A1/en
Priority to EP11703272.2A priority patent/EP2526236B1/en
Application granted granted Critical
Publication of NL2004119C2 publication Critical patent/NL2004119C2/en

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Classifications

    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B9/00Ceilings; Construction of ceilings, e.g. false ceilings; Ceiling construction with regard to insulation
    • E04B9/04Ceilings; Construction of ceilings, e.g. false ceilings; Ceiling construction with regard to insulation comprising slabs, panels, sheets or the like
    • E04B9/0421Ceilings; Construction of ceilings, e.g. false ceilings; Ceiling construction with regard to insulation comprising slabs, panels, sheets or the like comprising ducts
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24DDOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
    • F24D3/00Hot-water central heating systems
    • F24D3/12Tube and panel arrangements for ceiling, wall, or underfloor heating
    • F24D3/16Tube and panel arrangements for ceiling, wall, or underfloor heating mounted on, or adjacent to, a ceiling, wall or floor
    • F24D3/165Suspended radiant heating ceiling
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F5/00Air-conditioning systems or apparatus not covered by F24F1/00 or F24F3/00, e.g. using solar heat or combined with household units such as an oven or water heater
    • F24F5/0089Systems using radiation from walls or panels
    • F24F5/0092Systems using radiation from walls or panels ceilings, e.g. cool ceilings
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02GINSTALLATION OF ELECTRIC CABLES OR LINES, OR OF COMBINED OPTICAL AND ELECTRIC CABLES OR LINES
    • H02G3/00Installations of electric cables or lines or protective tubing therefor in or on buildings, equivalent structures or vehicles
    • H02G3/02Details
    • H02G3/04Protective tubing or conduits, e.g. cable ladders or cable troughs
    • H02G3/0437Channels
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04FFINISHING WORK ON BUILDINGS, e.g. STAIRS, FLOORS
    • E04F21/00Implements for finishing work on buildings
    • E04F21/18Implements for finishing work on buildings for setting wall or ceiling slabs or plates
    • E04F21/1805Ceiling panel lifting devices
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02GINSTALLATION OF ELECTRIC CABLES OR LINES, OR OF COMBINED OPTICAL AND ELECTRIC CABLES OR LINES
    • H02G3/00Installations of electric cables or lines or protective tubing therefor in or on buildings, equivalent structures or vehicles
    • H02G3/02Details
    • H02G3/04Protective tubing or conduits, e.g. cable ladders or cable troughs
    • H02G3/0406Details thereof
    • H02G3/0418Covers or lids; Their fastenings
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02GINSTALLATION OF ELECTRIC CABLES OR LINES, OR OF COMBINED OPTICAL AND ELECTRIC CABLES OR LINES
    • H02G3/00Installations of electric cables or lines or protective tubing therefor in or on buildings, equivalent structures or vehicles
    • H02G3/26Installations of cables, lines, or separate protective tubing therefor directly on or in walls, ceilings, or floors
    • H02G3/263Installation, e.g. suspension, of conduit channels or other supports
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02GINSTALLATION OF ELECTRIC CABLES OR LINES, OR OF COMBINED OPTICAL AND ELECTRIC CABLES OR LINES
    • H02G3/00Installations of electric cables or lines or protective tubing therefor in or on buildings, equivalent structures or vehicles
    • H02G3/30Installations of cables or lines on walls, floors or ceilings
    • H02G3/32Installations of cables or lines on walls, floors or ceilings using mounting clamps
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02GINSTALLATION OF ELECTRIC CABLES OR LINES, OR OF COMBINED OPTICAL AND ELECTRIC CABLES OR LINES
    • H02G3/00Installations of electric cables or lines or protective tubing therefor in or on buildings, equivalent structures or vehicles
    • H02G3/30Installations of cables or lines on walls, floors or ceilings
    • H02G3/34Installations of cables or lines on walls, floors or ceilings using separate protective tubing
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B30/00Energy efficient heating, ventilation or air conditioning [HVAC]

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  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Chemical & Material Sciences (AREA)
  • Structural Engineering (AREA)
  • Civil Engineering (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Sustainable Development (AREA)
  • Thermal Sciences (AREA)
  • Electromagnetism (AREA)
  • Thermal Insulation (AREA)

Description

P30075NL00/JKO Modular utility service system 5 The invention relates to a utility service system for installation on a ceiling of a building. Said utility service system comprises multiple fluid ducts for transporting a fluid and at least one electricity line for transporting electricity.
A problem of the known utility service systems is that it takes a lot of time and effort to install 10 the utility service system on a ceiling. Said utility service systems are often used in buildings with a high rent, such as shops in famous shopping streets or offices in famous business areas. Therefore, the installation of the utility service system must be performed as fast as possible. During the time that the installation takes place, the building (e.g. shop or office) can not be used for its original purpose. This means that each hour saved during the 15 installation time results provides a large economical benefit.
The object of the invention is to provide an improved utility service system. This object is reached by a module for constructing a utility service system to be installed on a ceiling of a building, comprising multiple fluid ducts for transporting a fluid, at least one electricity line for 20 transporting electricity, two longitudinal supports extending substantially parallel at a distance from each other, and at least one transverse support being supported by the longitudinal supports and extending traverse to the longitudinal supports, wherein the multiple fluid ducts and the at least one electricity line extend substantially parallel to the longitudinal supports, the multiple fluid ducts are supported by the at least one transverse 25 support, and the multiple fluid ducts are embedded in a body of thermally insulating foam. More specifically, the multiple fluid ducts are embedded in the same body of thermally insulating foam.
The module according the invention allows to install a utility service system in an improved 30 manner on a ceiling of a building.
In an embodiment of the module according the invention, the at least one electricity line is embedded in the body of thermally insulating foam.
35 The body of foam may fully surrounds the length axes of the fluid ducts.
-2 -
The body of foam may be connected to the longitudinal supports.
Each longitudinal support may be located at an outer side of the body of foam.
5 Each longitudinal support may be partly surrounded by the body of foam.
The longitudinal supports may around their length axis only be partly (and not fully) surrounded by the body of foam.
10 The longitudinal supports may be configured to be engaged by a holding device for attaching the module to the ceiling.
The longitudinal supports may be configured to provide support for an item being connected to the module such that the item suspends from the module.
15
The longitudinal supports may be configured to transport electricity. This way the longitudinal supports may be used to supply electricity to electrical devices, such as a lamp. Said electrical devices may be connected to the longitudinal supports.
20 The module may comprise at least one fluid duct configured for transporting a cold fluid.
Said at least one fluid duct may for example be used for an air conditioning device or as a cold water supply.
The module may comprise at least one fluid duct configured for transporting a hot fluid. Said 25 at least one fluid duct may for example be used for an air conditioning device or as a hot water supply.
The module may comprise at least one fluid duct for transporting a gas. Said at least one fluid duct may for example be used as a natural gas supply.
30
The module may comprise at least one fluid duct for transporting a liquid. Said at least one fluid duct may for example be used as a water supply or drain.
The module may comprise multiple electricity lines. This allows the utility service system to 35 provide a larger electrical power.
-3-
The module may comprise at least one communication line from transporting data. This allows the utility service system to be coupled to a communication network.
The fluid ducts may in their length direction extend beyond at least one side of the body of 5 foam. The fluid ducts may in their length direction extend beyond at two opposite sides of the body of foam. The fluid ducts may in their length direction extend beyond the front side and the back side of the module.
The foam may be made from polyurethane. Alternatively, foam made from PIR, EPS or XPS 10 may be used.
The invention relates to a utility service system comprising multiple interconnected modules according to the invention.
15 The fluid ducts of the modules may be interconnected. The at least one electricity line of the modules may be interconnected. The at least one communication line of the modules may be interconnected.
The connections of the fluid ducts of neighbouring modules may be surrounded by a 20 thermally insulating cover. The connections of the at least one electricity line of neighbouring modules may be surrounded by the thermally insulating cover. The connections of the at least one communication line of neighbouring modules may be surrounded by the thermally insulating cover.
25 The connections of the fluid ducts of neighbouring modules may comprise branch connections for transporting the fluids away and/or to the neighbouring modules. The connections of the at least one the electricity lines of neighbouring modules may comprise branch connections for transporting the electricity away and/or to the neighbouring modules. The connections of the at least one the communication lines of neighbouring modules may 30 comprise a branch connection for transporting the data away and/or to the neighbouring modules. A branch module may be connected to the branch connections.
The invention relates to a method for producing a module for constructing a utility service system to be installed on a ceiling of a building, comprising the steps of; 35 - providing two longitudinal supports extending substantially parallel at a distance from each other, - placing at least one transverse support in contact with the longitudinal supports such that -4- the at least one transverse support is supported by the longitudinal supports and extends traverse to the longitudinal supports, - placing multiple fluid ducts for transporting a fluid in contact with the at least one transverse support such that the fluid ducts supported by the at least one transverse support and 5 extend substantially parallel to the two longitudinal supports, - embedding the multiple fluid ducts in a body of thermally insulating foam.
More specifically, the method comprises embedding the multiple fluid ducts in the same body of thermally insulating foam.
10
In an embodiment of the method according the invention, the method comprises embedding at least one electricity line for transporting electricity in the body of thermally insulating foam.
The method may comprise surrounding the multiple fluid ducts by a mould and filling the 15 mould with thermally insulating foam to form the body of foam which fully surrounds the length axes of the multiple fluid ducts.
The method may comprise forming the body of foam such that said body of foam is connected to the longitudinal supports.
20
The method may comprise forming the body of foam such that the two longitudinal supports are located at outer sides of the module.
The method may comprise forming of the body of foam such that the fluid ducts in their 25 length direction extend beyond at least one side of the body of foam. The method may comprise forming of the body of foam such that the fluid ducts in their length direction extend beyond two opposite sides of the body of foam. The method may comprise forming of the body of foam such that the fluid ducts in their length direction extend beyond the front side and back side of the module.
30
The method may comprise forming the body of foam with polyurethane.
The invention relates to a method for constructing a utility service system to be installed on a ceiling of a building, comprising the steps of interconnecting modules according to the 35 invention.
-5-
The method may comprise interconnecting the fluid ducts of the modules. The method may comprise interconnecting the at least one electricity lines of the modules. The method may comprise interconnecting the communication lines the of the modules.
5 The method may comprise surrounding the interconnections of the fluid ducts of neighbouring modules by a thermally insulating cover. The method may comprise surrounding the interconnections of at least one electricity lines of neighbouring modules by a thermally insulating cover. The method may comprise surrounding the at least one communication line of neighbouring modules by a thermally insulating cover.
10
The method may comprise connecting a branch module to the branch connections.
The method may comprise installing the interconnected modules on the ceiling.
15 The invention relates to a method for installing a utility service system on a ceiling of a building comprising the steps of; - providing multiple modules according the invention, - mounting holding devices on the ceiling, which holding devices are configured to hold the modules, 20 - interconnecting the modules while the modules are supported by a floor surface of the building, - lifting the interconnected modules to the holding devices, and - engaging the interconnected modules with the holding devices such that the interconnected modules are attached to the ceiling.
25
The invention further relates to a method for installing a utility service system on a ceiling of a building comprising the steps of; - providing multiple modules for constructing the utility service system, each of the modules comprising; a module length axis, multiple fluid ducts for transporting a fluid, and at least 30 one electricity line for transporting electricity, wherein the multiple fluid ducts and the at least one electricity line extend substantially parallel to the module length axis, and the multiple fluid ducts are embedded in a body of thermally insulating foam, - mounting holding devices on the ceiling, which holding devices are configured to hold the modules, 35 - interconnecting the modules while the modules are supported by a floor surface of the building, - lifting the interconnected modules to the holding devices, and -6- - engaging the interconnected modules with the holding devices such that the interconnected modules are attached to the ceiling.
The method may comprise interconnecting the modules while said modules are being 5 supported by the floor surface via a positioning system such that the modules are located at a distance D1 from the floor surface. The method may comprise adjusting the distance D1 with the positioning system. The method may comprise adjusting the distance D1 between 30- 120 cm.
10 The positioning system may comprise lifting devices and the method may comprise lifting the interconnected modules to the holding devices while being supported by the positioning system. During the lifting of the interconnected modules the positioning system may be attached to the holding devices. Each of the lifting devices may comprise lifting lines for attachment to at least one of the holding devices and a drivable reel for reeling in and out 15 the lifting lines and the method may comprise attaching the lifting lines to the holding devices and reeling the lifting lines in such that the positioning system carrying the interconnected modules is lifted to the holding devices.
Each of the holding devices may comprise movable engaging arms and the method may 20 comprise moving the engaging arms such that the arms engage the interconnected modules to hold the interconnected modules.
Each module may comprise two longitudinal supports extending substantially parallel at a distance from each other, and at least one transverse support being supported by the 25 longitudinal supports and extending traverse to the longitudinal supports. The multiple fluid ducts and the at least one electricity line may extend substantially parallel to the longitudinal supports. The multiple fluid ducts may be supported by the at least one transverse support, and the method may comprise engaging the interconnected modules with the holding devices at the longitudinal supports.
30
The invention also relates to a module for constructing a utility service system to be installed on a ceiling of a building, comprising multiple fluid ducts for transporting a fluid, two longitudinal supports extending substantially parallel at a distance from each other, at least one transverse support being supported by the longitudinal supports and extending traverse 35 to the longitudinal supports, wherein the multiple fluid ducts and the at least one electricity line extend substantially parallel to the longitudinal supports, the multiple fluid ducts are supported by the at least one transverse support, and the multiple fluid ducts are embedded -7- in a body of thermally insulating foam. Said module may be provided with at least one electricity line for transporting electricity.
Embodiments of the invention will be further explained in detail with reference to the 5 accompanying figures, wherein;
Fig. 1 schematically shows a view in perspective of a first embodiment of a module according the invention,
Fig. 2 shows the module of fig. 1 wherein the body of foam is removed,
Fig. 3 and 4 schematically show views in perspective of a second embodiment of a 10 module according the invention,
Fig. 5-11 schematically show views in perspective of an embodiment of a method for producing a module according the invention.
Fig. 12 and 13 schematically show views in perspective of an embodiment method for constructing a utility service system according the invention.
15 Fig. 14-20 schematically show views in perspective of an embodiment of a method for installing a utility service system on a ceiling of a building according the invention.
Fig. 21 schematically shows a view in perspective utility service system according the invention installed on a ceiling of a building, and
Fig. 22 schematically show a view in perspective of a third embodiment of a module 20 according the invention
In the figures 1 - 22 equal reference numbers relate to equal or similar features.
The figures 1 and 2 show an embodiment of a module according the invention. Fig. 2 25 provides a view on the inside of the module of fig. 1. The module 1 is configured for constructing a utility service system to be installed on a ceiling of a building (see fig. 20 and 21). The module 1 comprises a module length axis 38. In fig. 1 the module length axis 38 is a straight line. The module 1 may also have other configurations (see fig. 22).
30 The module 1 comprises multiple fluid ducts 14 for transporting a fluid. The fluid ducts 51-54 are configured for transporting cold fluids for an air conditioning system. The fluid duct 55 is configured for transporting gas, such as natural gas. The fluid duct 56 may function as a drain for the air conditioning system. The fluid duct 57 is configured for transporting drinking water. The fluid duct 58 and 59 are configured for transporting heated water of a heating 35 system. The fluid ducts 60-63 are configured for transporting cold fluids for an further air conditioning system which also may be connected to drain 56. Each fluid duct 14 comprises a length axis. In fig. 2 the length axis 19 the fluid duct 58 is indicated.
5 -8-
The module 1 comprises several electricity lines 15 for transporting electricity and several communication lines 23 for transporting data. In fig. 2 the length axis 20 of one of the electricity lines 15 and a length axis 39 of one of the communication lines 23 are indicated.
The length axes of the fluid ducts 14, electricity lines 15 and communication lines 23 extend in the length direction of said fluid ducts 14, electricity lines 15 and communication lines 23, respectively.
10 Two longitudinal supports 16 extending substantially parallel at a distance from each other are provided. The longitudinal supports 16 are located at an outer side 21 of the module 1. The longitudinal supports 16 are configured to be engaged by a holding device for attaching the module to the ceiling (see fig. 15 and 20).
15 The four transverse supports 17 are supported by the longitudinal supports 16 and extend substantially perpendicular thereto. One of the transverse supports 17A forms the front side 27 of the module 1. Another of the transverse supports 17D forms the back side 28 of the module 1.
20 The fluid ducts 14, the electricity lines 15 and the communication lines 23 extend substantially parallel to the longitudinal supports 16 and the module length axis 38 and are supported by the four transverse supports 17. The fluid ducts 14 and the electricity lines 15 are embedded in a body of thermally insulating foam 18. The body of foam 18 fully surrounds the length axes 19, 20 of the fluid ducts 14 and the electricity lines 15. The 25 communication lines 23 are located in a recess 37 formed in the body of foam 18. Two additional recesses 37 are formed in the foam body 18. The additional recesses 37 can be used to accommodate further functional elements such as additional lines, e.g. additional electricity lines or communication lines.
30 Each of the longitudinal supports 16 is partly surrounded by the body of foam 18. The length axis of each longitudinal support 16 is only partly (and not fully) surrounded by the body of foam 18. Two of the transverse supports 17B, 17C are embedded in a body of thermally insulating foam 18. The body of foam 18 is connected to and located between the longitudinal supports 16.
35 -9-
The fluid ducts 14 extend in their length direction beyond the front side 27 and the back side 28 of the module 1. These protruding parts of the fluid ducts 14 are used for connecting the fluid ducts 14 to similar fluid ducts of a neighboring module (see fig. 12 and 13).
5 The electricity lines 15 are at each end thereof connected to an electricity contact device 41 for connecting the electricity lines 15 to similar electricity lines of a neighboring module. The communication lines 23 are at each end thereof connected to a data contact device 42 for connecting the communication lines 23 to similar communication lines of a neighboring module. The electricity contact device 41 and the data contact device 41,42 comprise 10 sockets, but may comprise any other means suitable for connecting electricity lines 15 and communication lines 23, respectively.
The fluid ducts 14 of the module 1 extend in a flat plane. This provides the module 1 a flat configuration. In the module 1 of fig. 1 and 2, the electricity lines 15 extend in the same flat 15 plane. It will be clear that other configurations are possible.
The body of foam 18 is made from polyurethane.
The figures 3 and 4 show a second embodiment of a module according the invention. Only 20 the front part of the module 1 is shown. The fluid ducts 14 are provided with couplers 47 for connecting the fluid ducts 14 to fluid ducts of a neighboring module. Several couplers 47 have a branch connection 33 from transporting a fluid away from and/or to the fluid duct 14. The branch connections 33 can be used to connect a branch module to two interconnected modules (see fig. 21).
25
The figures 5-11 show an embodiment of a method for producing a module according the invention.
In figure 5 two longitudinal supports 16 extending substantially parallel at a distance from 30 each other are provided. Four transverse supports 17A-D are supported by the longitudinal supports 16.
In the figures 6-8 multiple fluid ducts 14 for transporting a fluid and multiple electricity lines 15 for transporting electricity are positioned such that the fluid ducts 14 and the electricity 35 lines 15 are supported by the transverse supports 17A-D and extend substantially parallel to the longitudinal supports 16. As shown in the figures 7 and 8, the transverse supports 17 fully enclosed the fluid ducts 14 and the electricity lines 15.
- 10-
In the figures 9 and 10, a first mould part 43 is provided and the assembly of the longitudinal supports 16, the transverse supports 17, the fluid ducts 14 and the electricity lines 15 are positioned in the first mould part 43. In fig. 11, a second mould part 44 is positioned on the 5 first mould part 43. This way a mould 45 is formed which fully surrounds the fluid ducts 14 and the electricity lines 15. The mould 45 is subsequently filled with thermally insulating foam 18 such that the fluid ducts 14 and the electricity lines 15 are embedded in a body of thermally insulating foam. The formed body of foam fully surrounds each length axis of the multiple fluid ducts 14 and the electricity lines 15.
10
The body of foam is formed such that it is extends between the longitudinal supports 16 and the two outer transverse supports 17A, 17D. The two outer transverse supports 17A, 17D form the front side 27 and the back side 28 of the module 1. It will be clear that communication lines can be embedded in the body of foam in the same way as is done with 15 the electricity lines 15.
The figures 12 and 13 show a method for constructing a utility service system according the invention. Figure 12 shows a first module 1 and a second module 2. The two modules 1,2 are identical to each other. The two modules 1,2 are positioned in line with each other. The 20 fluid ducts 14 of the two modules 1,2 are aligned and located at a distance from each other. The ends of the fluid ducts 14 of the first module 1 facing the second module 2, are provide with couplers 47 for connecting the fluid ducts 14 of the first module 1 to the fluid ducts 14 of the second module 2. In fig. 13 the fluid ducts 14 of the two modules 1, 2 are connected to each other. The electricity contact devices 41 of both modules 1,2 correspond to each other 25 and can be connected to each other. The data contact devices 42 of both modules 1,2 correspond to each other and can be connected to each other. The interconnected modules 1,2 shown in fig. 13 form neighbouring modules in the utility service system.
The connections of the fluid ducts 14 and/or the electricity lines 15 and/or the 30 communication lines 23 of the two modules 1,2 can be covered by a cover (see fig. 20), such as a thermally insulating cover. The couplers 47 comprise branch connections 33. Via the branch connection 33, a third module forming a branch module can be interconnected with the first and second modules 1,2 (see fig. 21). The branch connections 33 can also be covered by a cover, such as a thermally insulating cover.
35
The figures 14-20 schematically show a method for installing a utility service system on a ceiling of a building.
-11 -
In fig. 14 holding devices 22 are mounted on a ceiling 12 of a building. The holding devices 22 are configured to hold interconnected modules 1,2 according to the invention. After the holding devices 22 are mounted on the ceiling 12, the holding devices 22 are aligned such 5 that the utility service system 11 formed by interconnected modules 1, 2 extend in a substantially flat plane when held by the holding devices 22.
Fig. 15 shows one of the holding devices 22 in detail. Each of the holding devices 22 comprises a pair of movable engaging arms 48. The engaging arms 48 are movable 10 between a non-engaging position 49 in which the holding device 22 can receive the interconnected modules 1, 2 between the engaging arms 48 and an engaging position 50 in which the engaging arms 48 engage the received interconnected modules 1,2 such that the modules 1, 2 are held by the holding device 22. The engaging arms 48 are configured to automatically move from the non-engaging position 49 to the engaging position 50 when the 15 interconnected modules 1,2 are received between the engaging arms 48. A spring construction (not shown) is used for this automatic movement. When the engaging arms 48 hold interconnected modules 1,2, said modules 1,2 are fixated by the holding device 22.
In fig. 16 and 17 a positioning system 63 is attached to the holding devices 22. The 20 positioning system 63 comprises multiple lifting devices 64 which are attached to the holding devices 22 via lifting lines 65. Each lifting device 64 comprises support members 67 for supporting a module 1,2. The support members 67 define a support surface 62 on which the module 1,2 is supported. The support members 67 are formed by support rollers 70 which facilitate movement of the supported module 1,2 relative to the lifting device 64.
25 Each lifting device 64 is attached to one of the holding devices 22 and comprises a drivable reel 66 for reeling in and out the lifting lines 65 to move the lifting device 64 relative to the holding devices 22 to which it is attached. The drivable reels 66 are controllable by a wireless controller (not shown). It will be clear that the drivable reels 66 may be controlled by any suitable controller known in the state of the art.
30
In fig. 17 the lifting device 64 is positioned on the floor surface 68 of the building via unfoldable legs 69. It will be clear that similar other types of legs, such as extendable legs, may be used. The folded position of the legs 69 is shown by discontinuous lines, an unfolded position of the legs is shown by continuous lines. The support surface 62 is located 35 at a distance D1 of around 80 cm from the floor surface 68. The position of the legs 69 is adjustable to adjust the distance D1. The position of the legs is controllable by the same wireless controller (not shown).
- 12-
In fig. 18 the lifting devices 64 are positioned on the floor surface 68. Two modules 1,2 are positioned on the support surfaces 62 of the lifting devices 64. This way the modules 1, 2 are fully supported by the floor surface 68 via the lifting devices 64 of the positioning system 5 63. In said position the modules 1,2 are interconnected by the method shown in the fig. 12 and 13. During said method the modules 1,2 are moved towards each other as indicated by the arrows.
Before the modules 1,2 are placed on the lifting devices 64, one of the lifting lines 65 of 10 each lifting device 64 is disconnected to facilitate positioning of the modules 1,2 on the support surface 62. Before the lifting devices 64 are lifted toward the holding devices 22, the lifting lines 65 will be reconnected.
The interconnected modules 1,2 are lifted to the holding devices 22 as shown in fig. 19.
15 During the lifting the legs 69 may be in the folded position. The engaging arms 48 of the holding devices 22 are in their non-engaging position 49. The lifting devices 64 lift the interconnected modules 1,2 between the engaging arms 48 such that said arm 48 are automatically moved in their engaging position 50 to hold the interconnected modules 1,2. After that, the weight of the interconnected modules 1,2 is transferred from the lifting 20 devices 64 to the holding device 22. The interconnected modules 1,2 are fully supported by the ceiling 12 via the holding devices 22. After that, the lifting devices 64 can be detached from the holding devices 22. The utility service system 11 is now installed on the ceiling 12 (fig. 20). The connections of the fluid ducts, electricity lines and communication lines of the interconnected modules 1,2 is covered by thermally insulating cover 61.
25
Figure 21 shows a second embodiment of a utility service system according the invention installed on a ceiling of a building. The utility service system 11 comprises a third module 3 as a branch module.
30 Figure 22 shows a third embodiment of a module according the invention. The fluid ducts, electrical lines, the longitudinal supports and the communication lines embedded in the body of thermally insulating foam 18 make an angle a of substantially 90°. It will be clear that any other angle a may be possible, such as 30°, 45°, 60°, 120°, 135° and 150°.
35 The invention may be defined by any of the following clauses.
-13- 1. Module for constructing a utility service system to be installed on a ceiling of a building, comprising; multiple fluid ducts for transporting a fluid, at least one electricity line for transporting electricity, 5 two longitudinal supports extending substantially parallel at a distance from each other, at least one transverse support being supported by the longitudinal supports and extending traverse to the longitudinal supports, wherein - the multiple fluid ducts and the at least one electricity line extend substantially parallel to the longitudinal supports, 10 - the multiple fluid ducts are supported by the at least one transverse support, and - the multiple fluid ducts are embedded in a body of thermally insulating foam.
2. Module according to clause 1, wherein the multiple fluid ducts are embedded in the same body of thermally insulating foam.
15 3. Module according to clause 1 or 2, wherein the at least one electricity line is embedded in the body of thermally insulating foam.
4. Module according to any of the preceding clauses, wherein the body of foam fully 20 surrounds the length axes of the fluid ducts.
5. Module according to any of the preceding clauses, wherein the body of foam is connected to the longitudinal supports.
25 6. Module according to any of the preceding clauses, wherein each longitudinal support is located at an outer side of the body of foam.
7. Module according to any of the preceding clauses, wherein each longitudinal support is partly surrounded by the body of foam.
30 8. Module according to any of the preceding clauses, wherein the longitudinal supports are configured to be engaged by a holding device for attaching the module to the ceiling.
9. Module according to any of the preceding clauses, wherein the longitudinal supports are 35 configured to transport electricity.
- 14- 10. Module according to any of the preceding clauses, wherein the module comprises at least one fluid duct configured for transporting a cold fluid.
11. Module according to any of the preceding clauses, wherein the module comprises at 5 least one fluid duct configured for transporting a hot fluid.
12. Module according to any of the preceding clauses, wherein the module comprises at least one fluid duct for transporting a gas.
10 13. Module according to any of the preceding clauses, wherein the module comprises at least one fluid duct for transporting a liquid.
14. Module according to any of the preceding clauses, wherein the module comprises multiple electricity lines.
15 15. Module according to any of the preceding clauses, wherein the module comprises at least one communication line from transporting data.
16. Module according to any of the preceding clauses, wherein the fluid ducts in their length 20 direction extend beyond at least one side of the body of foam.
17. Module according to any of the preceding clauses, wherein the fluid ducts in their length direction extend beyond two opposite sides of the body of foam.
25 18. Module according to any of the preceding clauses, wherein the foam is made from polyurethane.
19. Utility service system comprising multiple modules according to any of the preceding clauses, wherein the modules are interconnected.
30 20. Utility service system according to clause 19, wherein the fluid ducts of the modules are interconnected.
21. Utility service system according to clause 19 or 20, wherein the at least one electricity 35 line of the modules are interconnected - 15- 22. Utility service system according to any of the clauses 19-21, wherein the at least one communication line of the modules are interconnected.
23. Utility service system according to any of the clauses 19-22, wherein the connections of 5 the fluid ducts of neighbouring modules are surrounded by a thermally insulating cover.
24. Utility service system according to any of the clauses 19-23, wherein the connections of the electricity lines of neighbouring modules are surrounded by the thermally insulating cover.
10 25. Utility service system according to any of the clauses 19-24, wherein the connections of the at least one communication line of neighbouring modules are surrounded by the thermally insulating cover.
15 26. Utility service system according to any of the clauses 19-25, wherein the connections of the fluid ducts of neighbouring modules comprise branch connections for transporting the fluids away and/or to the neighbouring modules.
27. Utility service system according to any of the clauses 19-26, wherein the connections of 20 the at least one the electricity lines of neighbouring modules comprise branch connections for transporting the electricity away and/or to the neighbouring modules.
28. Utility service system according to any of the clauses 19-27, wherein the connections of the at least one the communication lines of neighbouring modules comprise a branch 25 connection for transporting the data away and/or to the neighbouring modules.
29. Utility service system according to any of the clauses 19-28, wherein a branch module is connected to the branch connections.
30 30. Method for producing a module for constructing a utility service system to be installed on a ceiling of a building, comprising the steps of; - providing two longitudinal supports extending substantially parallel at a distance from each other, - placing at least one transverse support in contact with the longitudinal supports such 35 that the at least one transverse support is supported by the longitudinal supports and extends traverse to the longitudinal supports, - placing multiple fluid ducts for transporting a fluid in contact with the at least one -16- transverse support such that the fluid ducts supported by the at least one transverse support and extend substantially parallel to the two longitudinal supports, - embedding the multiple fluid ducts in a body of thermally insulating foam.
5 31. Method according to clause 30, wherein the method comprises embedding the multiple fluid ducts in the same body of thermally insulating foam.
32. Method according to clause 30 or 31, wherein the method comprises embedding at least one electricity line for transporting electricity in the body of thermally insulating foam.
10 33. Method according to any of the clauses 30-32, wherein the method comprises surrounding the multiple fluid ducts by a mould and filling the mould with thermally insulating foam to form the body of foam which fully surrounds the length axes of the multiple fluid ducts.
15 34. Method according to any of the clauses 30-33, wherein the method comprises forming the body of foam such that said body of foam is connected to the longitudinal supports.
35. Method according to any of the clauses 30-34, wherein the method comprises forming 20 the body of foam such that the two longitudinal supports are located at outer sides of the module.
36. Method according to any of the clauses 30-35, wherein the method comprises forming of the body of foam such that the fluid ducts in their length direction extend beyond at least 25 one side of the body of foam.
37. Method according to any of the clauses 30-36, wherein the method comprises forming of the body of foam such that the fluid ducts in their length direction extend beyond two opposite sides of the body of foam.
30 38. Method according to any of the clauses 30-37, wherein method comprises forming the body of foam with polyurethane.
39. Method according to any of the clauses 30-38, wherein the method comprises 35 embedding at least one communication line for transporting data in the body of thermally insulating foam.
- 17- 40. Method for constructing a utility service system for installation on a ceiling of a building, comprising the steps of interconnecting modules according to any of the clauses 1-18.
41. Method according to clause 40, wherein the method comprises interconnecting the fluid 5 ducts of the modules.
42. Method according to clause 40 or 41, wherein the method comprises interconnecting the at least one electricity lines of the modules.
10 43. Method according to any of the clauses 40-42, wherein the method comprises interconnecting the communication lines the of the modules.
44. Method according to any of the clauses 40-43, wherein the method comprises surrounding the interconnections of the fluid ducts and the interconnections of the at 15 least one electricity lines of neighbouring modules by a thermally insulating cover.
45. Method according to any of the clauses 40-44, wherein the method comprises surrounding the at least one electricity lines of neighbouring modules by a thermally insulating cover.
20 46. Method according to any of the clauses 40-45, wherein the method comprises surrounding the at least one communication line of neighbouring modules by a thermally insulating cover.
25 47. Method according to any of the clauses 40-46, wherein the method comprises connecting a branch module to the branch connections.
48. Method according to any of the clauses 40-47, wherein the method comprises installing the interconnected modules on the ceiling.
30 49. The invention relates to a method for installing a utility service system on a ceiling of a building comprising the steps of; - providing multiple modules according to any of the clauses 1-18, - mounting holding devices on the ceiling, which holding devices are configured to hold 35 interconnected modules, - interconnecting the modules while the modules are supported by a floor surface of the building, - 18- - lifting the interconnected modules to the holding devices, and - engaging the interconnected modules with the holding devices such that the interconnected modules are attached to the ceiling.
5 50. Use of a module according to any of the clauses 1-18.
51. Method for installing a utility service system on a ceiling of a building comprising the steps of; - providing multiple modules for constructing the utility service system, each of the 10 modules comprising; a module length axis, multiple fluid ducts for transporting a fluid, and at least one electricity line for transporting electricity, wherein the multiple fluid ducts and the at least one electricity line extend substantially parallel to the module length axis, and the multiple fluid ducts are embedded in a body of thermally insulating foam, - mounting holding devices on the ceiling, which holding devices are configured to hold 15 the modules, - interconnecting the modules while the modules are supported by a floor surface of the building, - lifting the interconnected modules to the holding devices, and - engaging the interconnected modules with the holding devices such that the 20 interconnected modules are attached to the ceiling.
52. Method according to clause 51, wherein the method comprises interconnecting the modules while said modules are being supported by the floor surface via a positioning system such that the modules are located at a distance D1 from the floor surface.
25 53. Method according to clause 52, wherein the method comprises adjusting the distance D1 with the positioning system.
54. Method according to clause 43, wherein the method comprises adjusting the distance D1 30 between 30 - 120 cm.
55. Method according to any of the clauses 51-54, wherein the positioning system comprises lifting devices and the method comprises lifting the interconnected modules to the holding devices while being supported by the positioning system.
35 - 19- 56. Method according to clause 55, wherein during the lifting of the interconnected modules the positioning system is attached to the holding devices.
57. Method according to clause 55 or 56, wherein each of the lifting devices comprises lifting 5 lines for attachment to at least one of the holding devices and a drivable reel for reeling in and out the lifting lines and the method comprises attaching the lifting lines to the holding devices and reeling the lifting lines in such that the positioning system carrying the interconnected modules is lifted to the holding devices.
10 58. Method according to any of the clauses 51-57, wherein each of the holding devices comprises movable engaging arms and the method comprises moving the engaging arms such that the arms engage the interconnected modules to hold the interconnected modules.
15 59. Method according to any of the clauses 51-58, wherein - each module comprises two longitudinal supports extending substantially parallel at a distance from each other, and at least one transverse support being supported by the longitudinal supports and extending traverse to the longitudinal supports, - the multiple fluid ducts and the at least one electricity line extend substantially parallel 20 to the longitudinal supports, - the multiple fluid ducts are supported by the at least one transverse support, and - the method comprises engaging the interconnected modules with the holding devices at the longitudinal supports.
25 60. Module for constructing a utility service system to be installed on a ceiling of a building, comprising; multiple fluid ducts for transporting a fluid, two longitudinal supports extending substantially parallel at a distance from each other, at least one transverse support being supported by the longitudinal supports and 30 extending traverse to the longitudinal supports, wherein - the multiple fluid ducts and the at least one electricity line extend substantially parallel to the longitudinal supports, - the multiple fluid ducts are supported by the at least one transverse support, and - the multiple fluid ducts are embedded in a body of thermally insulating foam.
35 -20- 61. Module according to clause 60, wherein the module comprises the features of one or more of the clauses 1-18.
62. Utility service system comprising multiple modules according to clause 60 or 61, wherein 5 the modules are interconnected.

Claims (9)

1. Werkwijze voor het installeren van een servicesysteem op een plafond van een gebouw omvattende de stappen van; 5. het verschaffen van meerdere modules voor het construeren van het servicesysteem, waarbij elk van de modules omvat een modulelengteas, meerdere fluïdumleidingen voor het transporteren van een fluïdum en ten minste een elektriciteitsleiding voor het transporteren van elektriciteit, waarbij de meerdere fluïdumleidingen en de ten minste een elektriciteitsleiding zich in hoofdzaak parallel aan de 10 modulelengteas uitstrekken en de meerdere fluïdumleidingen zijn ingebed in een lichaam van thermisch isolerend schuim, het aan het plafond bevestigen van vasthoudinrichtingen welke ingericht zijn voor het vasthouden van de modules, het onderling verbinden van de modules terwijl de modules op een vloeroppervlak 15 van het gebouw steunen, en het naar de vasthoudinrichtingen takelen van de onderling verbonden modules, en het zodanig aangrijpen van de onderling verbonden modules met de vasthoudinrichtingen dat de onderling verbonden modules aan het plafond bevestigd zijn.A method for installing a service system on a ceiling of a building comprising the steps of; 5. providing a plurality of modules for constructing the service system, each of the modules comprising a module length axis, a plurality of fluid lines for conveying a fluid and at least one power line for conveying electricity, the plurality of fluid lines and the at least one an electrical line extending substantially parallel to the module length axis and the plurality of fluid lines being embedded in a body of thermally insulating foam, fixing to the ceiling of holding devices adapted to hold the modules, interconnecting the modules while the supporting modules on a floor surface of the building, and hoisting the interconnected modules towards the holding devices, and engaging the interconnected modules with the holding devices such that the interconnected modules are fixed to the ceiling. 2. Werkwijze volgens conclusie 1, waarbij de werkwijze omvat het onderling verbinden van de modules terwijl de modules zodanig door het vloeroppervlak ondersteund worden via een positioneringsysteem dat de modules zich op een afstand D1 van het vloeroppervlak bevinden.A method according to claim 1, wherein the method comprises interconnecting the modules while the modules are supported by the floor surface via a positioning system such that the modules are at a distance D1 from the floor surface. 3. Werkwijze volgens conclusie 2, waarbij de werkwijze het met het positioneringsysteem aanpassen van de afstand D1 omvat.The method of claim 2, wherein the method comprises adjusting the distance D1 with the positioning system. 4. Werkwijze volgens conclusie 3, waarbij de werkwijze het zodanig aanpassen van de afstand D1 omvat, dat D1 zich tussen 30 - 120cm bevindt. 30The method of claim 3, wherein the method comprises adjusting the distance D1 such that D1 is between 30 - 120 cm. 30 5. Werkwijze volgens een van de voorgaande conclusies, waarbij het positioneringsysteem takelinrichtingen omvat en de werkwijze omvat het naar de vasthoudinrichtingen takelen van de onderling verbonden modules terwijl deze door het positioneringsysteem worden ondersteund. 35Method according to one of the preceding claims, wherein the positioning system comprises hoisting devices and the method comprises hoisting the interconnected modules towards the holding devices while these are supported by the positioning system. 35 6. Werkwijze volgens conclusie 5, waarbij tijdens het takelen van de onderling verbonden modules het positioneringsysteem met de vasthoudinrichtingen verbonden is. -22-Method according to claim 5, wherein during positioning of the interconnected modules the positioning system is connected to the holding devices. -22- 7. Werkwijze volgens conclusie 5 of 6, waarbij elk van de takelinrichtingen omvat takellijnen voor bevestiging daarvan aan ten minste een van de vasthoudinrichtingen en een aandrijfbare haspel voor het in- en uit haspelen van de takellijnen en de werkwijze omvat het 5 aan de vasthoudinrichtingen verbinden van de takellijnen en het zodanig haspelen van de takellijnen dat het positioneringsysteem welke de onderling verbonden modules draagt naar de vasthoudinrichtingen wordt getakeld.7. Method according to claim 5 or 6, wherein each of the hoist devices comprises hoist lines for attachment thereof to at least one of the holding devices and a drivable reel for rolling in and out of the hoist lines and the method comprises connecting to the holding devices of the hoist lines and reeling the hoist lines such that the positioning system carrying the interconnected modules is switched to the holding devices. 8. Werkwijze volgens een van de voorgaande conclusies, waarbij de 10 vasthoudinrichtingen beweegbare grijparmen omvatten en de werkwijze omvat het zodanig verplaatsen van de grijparmen dat de armen de onderling verbonden modules aangrijpen en de onderling verbonden modules gefixeerd zijn door de vasthoudinrichtingen.8. Method as claimed in any of the foregoing claims, wherein the retaining devices comprise movable gripping arms and the method comprises displacing the gripping arms such that the arms engage the mutually connected modules and the mutually connected modules are fixed by the retaining devices. 9. Werkwijzen volgens een van de voorgaande conclusies, waarbij 15. elke module omvat twee longitudinale steunen welke zich in hoofdzaak parallel en op een afstand van elkaar uitrekken en ten minste twee dwarssteunen welke door de longitudinale steunen worden ondersteund en zich in hoofdzaak dwars op de longitudinale steunen uitstrekken, de meerdere fluïdumleidingen en de ten minste een elektriciteitslijn zich in hoofdzaak 20 parallel aan de longitudinale steunen uitstrekken, de meerdere fluïdum lijnen door de ten minste een dwarssteun ondersteund worden, en de werkwijze omvat het met de vasthoudinrichtingen op de longitudinale steunen aangrijpen van de onderling verbonden modules. 25Methods as claimed in any of the foregoing claims, wherein each module comprises two longitudinal supports which extend substantially parallel and at a distance from each other and at least two transverse supports which are supported by the longitudinal supports and which extend substantially transversely to the extend longitudinal supports, the multiple fluid lines and the at least one electric line extend substantially parallel to the longitudinal supports, the multiple fluid lines are supported by the at least one transverse support, and the method comprises engaging the longitudinal supports with the holding devices of the interconnected modules. 25
NL2004119A 2010-01-20 2010-01-20 Modular utility service system. NL2004119C2 (en)

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NL2004119A NL2004119C2 (en) 2010-01-20 2010-01-20 Modular utility service system.
PCT/NL2011/050035 WO2011090378A1 (en) 2010-01-20 2011-01-20 Modular utility service system
EP11703272.2A EP2526236B1 (en) 2010-01-20 2011-01-20 Modular utility service system

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Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2758176A1 (en) * 1977-12-27 1979-06-28 Normann Dipl Ing Dr I Treinies Water circulation ceiling heating system - uses flat elements suspended by loops to form continuous surface and housing circulation coils
JPH0565765A (en) * 1991-09-05 1993-03-19 Takenaka Komuten Co Ltd Execution of facility equipment built-in ceiling unit
JPH0782825A (en) * 1993-06-30 1995-03-28 Seiwa Gikou:Kk Method for constructing ceiling
JPH07317196A (en) * 1995-06-10 1995-12-05 Takenaka Komuten Co Ltd Constructing method of ceiling
DE10051749A1 (en) * 2000-10-18 2002-05-02 Steffen Kehle Prefabricated assembly plate contains hot and cold pipe registers heat-conductively adhered on side to respective service surfaces and joined to interposed post-fitted foamed plastics core.
WO2003093732A1 (en) * 2002-04-29 2003-11-13 Climatek Di Giuriato Massimo Modular radiating panel for interior air-conditioning

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2758176A1 (en) * 1977-12-27 1979-06-28 Normann Dipl Ing Dr I Treinies Water circulation ceiling heating system - uses flat elements suspended by loops to form continuous surface and housing circulation coils
JPH0565765A (en) * 1991-09-05 1993-03-19 Takenaka Komuten Co Ltd Execution of facility equipment built-in ceiling unit
JPH0782825A (en) * 1993-06-30 1995-03-28 Seiwa Gikou:Kk Method for constructing ceiling
JPH07317196A (en) * 1995-06-10 1995-12-05 Takenaka Komuten Co Ltd Constructing method of ceiling
DE10051749A1 (en) * 2000-10-18 2002-05-02 Steffen Kehle Prefabricated assembly plate contains hot and cold pipe registers heat-conductively adhered on side to respective service surfaces and joined to interposed post-fitted foamed plastics core.
WO2003093732A1 (en) * 2002-04-29 2003-11-13 Climatek Di Giuriato Massimo Modular radiating panel for interior air-conditioning

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