The present invention relates to building and, in particular to the automatic construction of buildings or other heavy constructions by a method and a device suitable for reducing the building time and for assisting its relative operations. The present invention is used also to build particularly articulated and complex structures.
Many methods are known for making buildings, with different construction techniques and materials.
A well known technique uses concrete that is cast in a semi-fluid form in a formwork. With this technique volumes of concrete are obtained having the shape of the formwork used.
This technique has the drawback a complex work is required to obtain complex forms having convexities and concavities, mainly owing to the difficulty to provide formworks with shape complex and owing to the low resistance to pulling stresses of the concrete, which requires the use of steel reinforcements that must be folded to follow the shape of the formwork.
Another drawback is the cost of the manual work to make the formwork before casting the concrete and for removing the formworks after hardening.
A further drawback is the cost of the formwork material.
Another drawback of the method for construction with concrete is the waiting time necessary for hardening.
It is felt, then, the need of a method for making buildings, which is quick and not expensive, suitable for being carried out with an automatic method
A feature of the present invention is therefore that to provide a method for making automatically buildings and other works in the building industry.
Another feature of the invention is to provide a method for making buildings obtained with volumes with even complex shape, comprising also concave or convex surfaces, and undercut portions of whichever form and size.
A further object is to provide a method suitable for providing structures resistant not only to compression, but even to pulling stresses.
Another feature of the invention is to provide an apparatus suitable for carrying out said method.
These and other objects are achieved by a method for building automatically conglomerate structures, characterized in that it comprises the steps of:
CAD modelling a structure of building, in particular with a CAD function of surface modelling or of volume modelling, obtaining a computer file structure model;
sectioning said computer file structure model with horizontal parallel planes according to a predetermined pitch, in order to generate a plurality of cross section planes of the structure comprising solid and empty areas, corresponding to the solid and empty parts of the structure, said planes being sorted from below towards the above;
prearranging an apparatus suitable for depositing in alternation a layer of granular material and a liquid binder within containing walls that define a closed perimeter;
moving said apparatus within said perimeter in order to deposit a first uniform horizontal layer of granular inert material of thickness corresponding to said predetermined pitch;
spraying a first layer of binder by said apparatus in order to reproduce a first plane of said cross section planes, forming a layer of inert material and of binder only at said solid areas, said apparatus having a operating head suitable for moving in a horizontal plane;
raising vertically said apparatus according to said pitch;
repeating the deposition step of granular inert material and repeating on it the binder spraying step as many times as are the horizontal cross sections of the structure, each time for a different and vertically next cross section plane up to complete the last layer;
removing the inert material that has not been bond by the binder and that has accumulated within said perimeter, freeing a solid structure that repeats accurately said structure model.
In particular, said method provides a step of enveloping said structure or portion of it with a plurality of single volumes that envelope said structure.
In particular, said single volumes are selected from the group comprised of: parallelepipeds, cylinders, prisms, spheres or parts or combinations of them.
Advantageously, said single volumes have edges or vertical generatrix parallel to vertical sides of said structure and the horizontal edges parallel to the horizontal planes of said structure.
In a preferred exemplary embodiment said parallel and horizontal cross section planes are equidistant with respect to each other.
Advantageously, a CAM system is provided having graphical environment suitable for displaying said model structure file.
Always advantageously, said apparatus comprises an operating head piloted on said horizontal planes with independent motion or interpolated motion according to Cartesian or polar coordinates.
According to another aspect of the present invention, an apparatus for building automatically conglomerate structures is characterized in that it comprises:
a closed perimeter defined by containing walls;
a horizontal frame suitable for supporting a bridge crane capable of causing a operating head to move in a horizontal plane defined by said horizontal frame within said perimeter;
means for actuating said operating head on said horizontal plane parallel to said bridge crane;
a framework having at least one upright capable of supporting said horizontal frame;
means for moving said horizontal frame in a vertical direction;
a control unit suitable for controlling the succession of operations up to completion of said structure;
wherein said containing walls are capable to contain said inert material in a working area larger than said conglomerate structure.
In a preferred exemplary embodiment said containing walls are vertical and define a parallelepiped or cylindrical volume on said working area.
Advantageously, a covering is provided for roofing said containing walls.
In particular, said covering is capable of stopping hermetically said volume so that a vacuum can be created inside.
Advantageously, said operating head comprises:
at least one binder spraying nozzle operated by a controlled electro valve;
a premixing head;
a feeding pump;
a reservoir;
a washing system.
In a preferred exemplary embodiment, said operating head comprises a volumetric doser for supplying said operating head with a known amount of inert material for each stroke.
Advantageously, said operating head comprises a blade that is adapted to slide on the deposited inert material to uniform it in order to achieve a predetermined thickness, on the whole working area.
In particular, said resin is selected from the group comprised of:
epoxy resins;
cross linking polyurethane.
Advantageously, said resin has a viscosity set between 3 and 10 poises, and preferably between 6 and 8 poises, and is adapted to be fluid enough to penetrate between the granules of the granular material for a height corresponding to said pitch, thus reaching the layer of granular material bonded in the previous step.
In particular, said granular material has a granulometry set between 0.1 and 2 mm, and preferably between 0.5 and 1.5 mm. This way the granular material has a value of maximum effective porosity adapted to cause said binder to penetrate between the deposited granules up to reaching the layer already sprayed in the previous cycle.
The invention will be made clearer with the description of some of its exemplary embodiments, exemplifying but not limitative, with reference to the attached drawings wherein:
In the following description an example will be shown of an embodiment of an apparatus that carries out the method according to the invention.
In particular, in
Horizontal frame 1, with closed shape has at least two parallel sides 2 for slidingly engaging with two ends of a bridge crane 15 which holds an operating head 16.
Altogether, operating head 16 moves along arrow 19 perpendicular to the sliding direction 18 of bridge crane 15 and frame 1 can move vertically along arrows 11, 12, 13, 14.
In
The apparatus comprises four containing walls 31 that define a volume that is going to be filled with granular material following the method according to the invention.
In
In
In particular, said granular material has a granulometry set between 0.1 and 2 mm, and preferably between 0.5 and 1.5 mm; this way the granular material has a maximum effective porosity adapted to cause said binder to penetrate between the deposited granules up to reaching the layer already sprayed in the previous cycle.
The foregoing description of specific embodiments will so fully reveal the invention according to the conceptual point of view, so that others, by applying current knowledge, will be able to modify and/or adapt for various applications such embodiments without further research and without departing from the invention, and it is therefore to be understood that such adaptations and modifications will have to be considered as equivalent to the specific embodiments. The means and the materials to realise the different functions described herein could have a different nature without, for this reason, departing from the field of the invention. It is to be understood that the phraseology or terminology employed herein is for the purpose of description and not of limitation.
Number | Date | Country | Kind |
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PI2005A000031 | Mar 2005 | IT | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB2006/000596 | 3/16/2006 | WO | 00 | 10/9/2007 |