The invention relates to the processing of digital data, applicable to the sector of construction and construction products, and concerns lifecycle management for a construction project based on the use of a digital building model.
The term “construction product” is understood to mean construction materials as well as a more complex construction system (for example a wall arranged to accommodate a water supply and therefore including at least one water barrier panel).
New ecological policies are leading the construction industry to make rapid adjustments in order to migrate from the current and/or future building types to buildings that are low energy or energy-plus, highly environmental, healthy, and meet a set of requirements (stability, safety, soundproofing, etc.).
The advanced technology offered by this progression provides a major opportunity for modernizing the building process, with significant change to the entire design chain from construction to placing the building in operation.
Currently, this chain is greatly handicapped by its sequential approach, due to an incompatibility between the software components used by the designer, by the supplier of the construction products, and by the specifier declaring the specifications and/or regulations and standards to be met for the building. As represented in
An example of an embodiment of the device DEV of the invention is represented in
However, in one possible variant, the software of the invention may be stored on a server so that it can be shared by multiple remote workstations (the workstations of an architect, a specifier, a subcontractor, a supplier, etc.).
The invention improves this situation.
For this purpose, it first proposes a method for enhancing a digital model of a building using computer means. The method of the invention comprises the steps of:
For example, the elements of the building may be a wall, a partition, a slab, a window, a door, or a ceiling, and the specific characteristics of such elements may comprise a value such as a desired interior thermal insulation value, a desired exterior thermal insulation value, a desired sound insulation value, a desired fire resistance value, or some other value.
Advantageously, these characteristics are treated as variables to be configured (at least in steps a) and b)).
Advantageously, in the enhanced digital model, the data from the abovementioned list of suitable construction products then comprise, for each product, at least a product identifier, an indication of the product properties, and an indication of the product characteristics.
The choice of appropriate construction products may be made as follows: the construction products can be stored in a first database of at least one supplier, with properties specific to these products. Thus the implementation in the above step b) preferably uses this first database. Similarly, the specific characteristics of the building elements may be defined in specifications or be stored in a second database of regulations and standards, and the implementation of at least one of steps a) and b) then uses this second database.
The invention also relates to a centralized software application which allows exchanging data between different preexisting software components. In such an embodiment, there can be at least:
In an advantageous embodiment, such a centralized software application is also provided which cooperates with said first, second, and third applications, and which, when executed, based on the file representing the model and having as input the abovementioned data from the catalog of construction products and from the specifications, outputs a digital file representing the model and additionally enhanced with data from at least one list of construction products chosen as a function of the catalog data and the specifications data.
Advantageously, at least some of the interactions between the centralized application and the first, second, and third applications are executed according to the IFC standard.
Advantageously, there is a preliminary step of verifying the completeness of the data in the digital model, before it is enhanced.
The invention therefore relates to a computer program comprising instructions for implementing the above method when this program is executed by a processor. Such a computer program includes at least the centralized software application described above.
The invention also relates to a device comprising a computer means for enhancing a digital model of a building, wherein this computer means carries out the above method. Typically, such a device can comprise a memory for storing the code for the instructions of the computer program in the sense of the invention, a processor for executing these instructions, and access to construction product data including at least some properties of these products. An exemplary embodiment of such a device will be presented below with reference to
Thus the invention provides a response to the need for collaborative project development based on a digital model (or BIM for Building Information Model), and, in an advantageous embodiment, using the IFC (Industry Foundation Classes) standard developed by the international association IAI-Building Smart which defines a neutral format for exchanging and archiving the data of a digital building model. This IFC standard (registered by ISO) is now offered for importing/exporting in most newer generation CAD software for the construction industry.
With reference to
One will recall that the construction products and systems are a key element to accurately determining the energy performance or environmental impacts of a building. To achieve the fixed goals, the choice of solutions to be applied must be established in the pre-design phase. The products and systems are determined during the detailed design phase. Their properties and geometries are directly integrated into a semantic data model, in the sense of the invention, to provide the calculation software with easy access to the information.
One of the advantages of the invention is the digital availability of information on the products and systems. For all parties in the chain (specifiers, architects or design engineers, distributors, companies), this solution allows:
This advantage is even more pronounced when the specifiers require the construction of low-energy buildings. The model is enhanced in the sense of the invention, particularly due to the data on the building's energy performance.
Of course there are existing electronic catalogs from suppliers, but these are insufficient for effective use with a digital model. These catalogs generally offer text descriptions of products and systems with a set of multimedia documents. A specifier often finds that defining the right configuration for a system, based on the type of building, its geographical location, applicable local regulations, desired technological performance, or other aspects, is a complicated task and gives rise to errors when based solely on such textual information.
The enhanced model solution offered by the invention consists of providing specifiers with electronic catalogs, for example in the form of plugins compatible with the largest possible number of the software packages used by the parties involved in the project (for different fields: architecture, structure, thermal, acoustics, etc.). To develop these plugins, the use of the IFC standard to define the rules for assembling the products and systems in a single format is proposed, as it is neutral and compatible with the most types of digital modeling software.
However, the IFC standard only offers a static and fixed description of the products, while defining a construction system product requires a parametric solution for automatically adapting and integrating the system into the digital building model, according to the geographic, spatial, technological, and regulatory constraints as well as the choices of the specifier.
Another advantage of the invention therefore relates to expressing, through a parametric approach and with the IFC standard:
These data can then advantageously be processed by the software of the invention as variables to be specified. The software of the invention, as a centralized software application, therefore acts as the “configurator” of the IFC standard.
Other features and advantages of the invention will be apparent from examining the following detailed description and the attached drawings, in which, in addition to
First we will refer to
Advantageously, data issuing from an application AL3 which processes the specifications from the specifier may further enhance the data processed by the centralized application CSA (dotted arrow). Even so, the centralized application CSA is preferably stored on the workstation of the specifier, as will be seen below in an embodiment.
The centralized application CSA then delivers an enhanced digital model MNR in the IFC standard and containing but not limited to the references for the products and systems chosen (ID PROD), as well as their characteristics (heat insulation, sound insulation, etc.) as specified variable values. This enhanced model MNR can then be used, for example for calculations concerning:
The details of assembling a system chosen for its adaptation to a digital model are represented in
It is understood that the terms “GR32” or “monospace” are the catalog labels of the supplying manufacturer.
The references ID11 and ID12 indicate joint plates having different references (30 or 50). The reference NAM1 indicates one or more electrical ducts and/or plumbing conduits, but with no specific catalog reference. The reference ID13 indicates the furring. The reference ID14 indicates a support. The reference NAM15 designates the sheetrock, but again with no specific catalog reference. The reference ID15 indicates a U-clip and the reference ID16 indicates a felt strip.
Again with reference to
This computer application consists of:
Thus one of the first effects of running the application AL2 is to make the contents of the database DB2 compatible with the queries and lookups that the specifiers may perform using the centralized software application CSA, as described below.
For the specifiers, the centralized software application (via a possible interface AL3) processes the entire digital model of a building construction project (BIM-IFC) on the basis of a CAD model of a project drawing (saved in IFC format in an advantageous implementation of the invention) and using initial CAD software, as described below.
A first step consists of verifying the drawing after the CAD model is loaded, in particular the quality and completeness of the IFC data, and allowing the specifier to add the following information where necessary:
After this step, the model is saved in the IFC standard, for reloading into the initial CAD software.
A second step consists of adding data to the project specifications. For each space in the building, at least one of the following operations may be conducted:
At the end of this step, the model is also saved.
A third step involves choosing the products and systems from among those offered by the supplier. For each construction element (wall, partition, slab, window, door, ceiling, or other) that the user selects and wants to configure, vendor solutions are proposed that are consistent with the specifications defined in the first and second steps.
A fourth step concerns:
A fifth step concerns the use of the detailed digital model. The model enhanced with the detailed descriptions of the products and systems (geometry and characteristics) may again be saved in the IFC standard for later use with analysis software that is also compatible with the IFC format, for example in order to conduct thermal or acoustic calculations, an environmental evaluation, a structural evaluation, etc.
For example, using the CAD software ArchiCAD® (from Graphisoft®), an architect creates a drawing which is the CAD model of a single-family house. He saves this model in IFC format in a file FI1, in step S0, which can be named for example “Drawing_initial.iƒc”.
In the next step S1, the software of the invention verifies the drawing. This software of the invention, for example stored on the workstation of a specifier (who may be the architect or another party in the design-construction chain), loads and checks the file FI1, with the following options:
The next step S3 consists of filling in the specifications for the project. The specifier continues with the software application by reloading the file FI2 in order to add specifications for his construction project. For each area, he can indicate:
In step S4, the file FI3 which additionally contains the data from the specifications is saved under the name “Drawing_LEB_Specs.iƒc”.
In the next step S5, the specifier continues to run the software, loading the file FI3 (Drawing_LEB_Specs.iƒc) in order to specify the system types he wants to apply, based on the choices offered by the supplying manufacturer. For each element (walls, partitions, or other) selected between or dividing the spaces, the software automatically proposes one or more applicable construction products or systems (PROD), taking into account:
The specifier can choose from among these products and systems (such as the wall represented in
In step S7, for a selection or for the set of selected elements to be configured for which the choice of systems has been made, the software generates detailed IFC models for each product or system integrated into the entire CAD model for the project. For each product or system, the following elements are created automatically:
The configured project is saved in a detailed digital model BIM-IFC in step S8.
In step S9, the configured project can then be used by other parties for other studies, for example:
Of course, the invention is not limited to the embodiments described above in the examples; it extends to other variants.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR10/52344 | 11/2/2010 | WO | 00 | 4/30/2012 |