METHOD FOR PRODUCING A COMPONENT FROM CURABLE MATERIAL AND CORRESPONDING COMPONENT
20210370546 · 2021-12-02
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B28B1/001
PERFORMING OPERATIONS; TRANSPORTING
B33Y70/10
PERFORMING OPERATIONS; TRANSPORTING
E04G21/0463
FIXED CONSTRUCTIONS
B28B23/02
PERFORMING OPERATIONS; TRANSPORTING
B28B3/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
B28B1/00
PERFORMING OPERATIONS; TRANSPORTING
B28B11/24
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a process for producing a component (1) from a curable material, a new layer (2) of the material being printed in periodically recurring steps in a 3D printing process onto a layer (3) located thereunder so as to have lower reinforcing elements (4) which protrude above the top of this new layer (2), and also relates to a component produced by a corresponding process. Known processes and components do not allow reinforcement over a large surface area.
The object of designing a process in such a way that the reinforcement thereof withstands high loads is achieved by providing that, after each layer (3) has been printed, upper reinforcing elements (5) are connected to the lower reinforcing elements (4) so as to extend said lower reinforcing elements and so as to form the lower reinforcing elements of the subsequent layer. A corresponding component is the subject of claim 11.
Claims
1. Process for producing a component (1) from a curable material, a new layer (2) of the material being printed in periodically recurring steps in a 3D printing process onto a layer (3) located thereunder so as to have lower reinforcing elements (4) which protrude above the top of this new layer (2), characterized in that after each layer (3) has been printed, upper reinforcing elements (5) are connected to the lower reinforcing elements (4) so as to extend said lower reinforcing elements and so as to form the lower reinforcing elements of the subsequent layer.
2. Process according to claim 1, characterized in that the curable material is concrete.
3. Process according to either of the preceding claims, characterized in that the reinforcing elements (4, 5) consist of a rigid material, in particular steel or plastics material.
4. Process according to any of the preceding claims, characterized in that the connection of reinforcing elements (4, 5) located one above the other is a weld connection or a screw connection or an adhesive connection.
5. Process according to any of the preceding claims, characterized in that the reinforcing elements (4, 5) extend perpendicularly to the layers (2, 3).
6. Process according to any of claims 1 to 4, characterized in that the reinforcing elements (4, 5) extend at an angle between 90° and 45° to the layers (2,3).
7. Process according to any of the preceding claims, characterized in that the reinforcing elements (4, 5) are rod-shaped.
8. Process according to any of the preceding claims, characterized in that at least one additional reinforcing element (10) is introduced into the layers (2, 3) so as to extend in a printing direction (11).
9. Process according to claim 8, characterized in that the additional reinforcing element (10) is designed as a wire, rod (10a), cable, chain or roving, the additional reinforcing element (10) being introduced, in particular placed in or on, before, during or after the printing of each layer (3).
10. Process according to any of the preceding claims, characterized in that the curable material is mixed with fibers, in particular steel fibers, polymer fibers, glass fibers or carbon fibers.
11. Component (1) made of a cured material, which component has a plurality of layers (2, 3) produced in a 3D printing process and reinforcing elements (4, 5) connecting said layers, characterized in that the reinforcing elements (4, 5) form a strand extending through all of the layers (2, 3) of the component (1) and are interconnected.
12. Component according to claim 11, characterized in that the cured material is concrete.
13. Component according to either claim 11 or claim 12, characterized in that the reinforcing elements (4, 5) consist of a rigid material, in particular steel or plastics material.
14. Component according to any of claims 10 to 13, characterized in that the strands extend perpendicularly and/or horizontally to the layers (2, 3).
15. Component according to any of claims 11 to 13, characterized in that the strands extend at an angle between 90° and 45° to the layers (2, 3).
16. Component according to any of claims 11 to 15, characterized in that the reinforcing elements (4, 5) are rod-shaped or designed as a wire, rod, cable, chain or roving.
17. Component according to any of claims 11 to 16, characterized in that the curable material is mixed with fibers, in particular steel fibers, polymer fibers, glass fibers or carbon fibers.
Description
[0012] Some embodiments of the invention are explained in more detail below with reference to the accompanying drawings, in which:
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[0026] In order to carry out the process according to the invention, a 3D printer, for example in the form of a fully automatic gantry robot, is used—to this extent in a manner known per se—which can print, in successive layers, a wall or a complete room cell or further vertical units of a structure. In
[0027]
[0028] In the two variants shown, a lower layer 3 of the curable material, in this case concrete, is first printed in a 3D printing process, and then further upper reinforcing elements are connected to the lower reinforcing elements 4 protruding from said layer 3, which upper reinforcing elements are sufficiently long that they also penetrate the upper layer 2 to be printed later and still project from said layer a little after the printhead 6 has printed this upper layer 2. In the next process step, the layer 2 located above said lower layer is printed thereon, the lower reinforcing elements 4, as described above, projecting above the top of the upper layer 2. In the next process step, further, similar reinforcing elements 5 are rigidly connected to the lower reinforcing elements 4, for example by a welded connection, on the tops of the reinforcing elements 4 protruding from the upper layer 2. Further connection types are described below. The next layer (not shown in the figure) of the curable material is then applied to the uppermost layer 2 in a 3D printing process and the process recurs periodically. Each reinforcing element 4 or 5 consists of a rigid material, in particular metal, for example steel, or of a hard plastics material. The reinforcing elements 4 and 5 that are welded together form a continuous strand.
[0029] In variant (a) (shown on the left in
[0030] When the printhead 6 has printed the uppermost layer 2 of the curable material, the reinforcing elements 4 always protrude sufficiently far from this uppermost layer 2 that a protrusion also occurs when the next layer is printed. It is therefore preferable to use a printhead 6, as shown in
[0031] After the printhead 6 has printed the uppermost layer 2, the upper reinforcing elements 5 are connected to the reinforcing elements that project from the uppermost layer 2 and go back into the subjacent layer 3, the type of connection being described further below. The printhead 6 then prints the next layer.
[0032] After printing, further reinforcing elements 10, which are oriented substantially horizontally or orthogonally to the reinforcing elements designed according to the invention, can be applied to, for example placed on, the layers. These further reinforcing elements are, for example, rigid elements such as rods 10a. However, threads, chains, cables or the like can also be placed on the layers. When the next layer is formed, the horizontal reinforcing elements 10, 10a are then covered and increase the tensile strength of the component in the printing direction. The introduction takes place in a fully or partially automated manner or manually. A horizontally oriented reinforcing element does not necessarily have to be provided in every layer. There is also the possibility that additional reinforcing elements 10, 10a are only introduced in particularly stressed regions.
[0033] An alternative embodiment of a printhead with otherwise the same process parameters is shown in
[0034]
[0035] In all of the embodiments according to
[0036] The connection of adjacent lower reinforcing elements 4 with upper reinforcing elements 5 arranged thereabove is shown in various variants in
[0037] In the embodiment according to
[0038] In the variant according to
[0039] Possible adhesive connections are shown in
[0040] In the embodiment according to
[0041] In the embodiment according to
[0042] In addition, all variants according to
[0043] Two further connection options are shown in
[0044] In the embodiment according to
[0045] Instead of connecting adjacent reinforcing elements 4 by welding, a connection can also be carried out by screwing or gluing. For a screw connection, the ends of the reinforcing elements 4 can each be provided with an external thread, a common union nut interconnecting the two ends. One end of a reinforcing element 4 can also have an internal thread, while the adjacent reinforcing element 4 has a matching external thread. If the adjacent reinforcing elements 4 are glued together, it is advisable to provide a large-surface-area end surface so that a good adhesive connection is possible.
[0046] The process according to the invention and the component created by said process have the advantage of a substantially more intimate connection of the reinforcing elements 4 and substantially stronger reinforcement, since the strands 5 consisting of individual reinforcing elements 4 can achieve a similar effect to that of classical concrete casting using a steel mesh. The formation according to the invention of strands 5 consisting of individual reinforcing elements 4 makes it possible, even in 3D printing, where a continuous steel mesh cannot be used, to achieve the same or similar strength values as when using continuous reinforcing steel meshes in the concrete casting process.
[0047] In an advantageous development, additional reinforcing elements 10 can be used during or after printing in the process according to the invention. These can be designed in particular as a wire, rod, cable, chain or roving. The process according to the invention and the additional reinforcing elements 10, such as wire, rod, cable, chain or roving, have the advantage that the tensile and compressive strength of the component formed is increased. This increases the strength, in particular in the printing direction. The additional reinforcing elements 10 such as wire, rod, cable, chain or roving can be introduced into the extruded curable material, in particular in a printing direction 11, during or after printing. As can be seen in
[0048] In a further embodiment, which is considered to be favorable, additional fibers, in particular polymer fibers, glass fibers or carbon fibers, can be added to the extruded curable material. This further increases the strength.