The present invention relates to a constructional element, a building comprising said element and a method for producing the element.
Almost all building structures for use within a number of different fields, like for example buildings, comprises some type of constructional elements for use as walls, roofs or similar.
There are a number of different types of prefabricated structures that are used for this purpose and they all have some severe problems in common. First, they all have quality problems since they do not fulfil the demands regarding tolerances and appearance since the dimensions of the final wall elements as well as the surface conditions differs a lot. Secondly, all these prefabricated elements are heavy in relation to their dimensions which make the transport and installation of the elements in the framework structure complicated, time consuming and in the end expensive.
There is consequently a need for a prefabricated constructional element with the required quality and that could be produced within the desired tolerance to a reasonable cost.
The present invention, defined in independent claim 1 fulfils the needs described above.
The constructional element for use in building structures has a least a first and a second side extending substantially parallel to each other. The element comprises:
The element according to the invention provides a very strong and light element that could be prefabricated to the desired tolerances. This is possible since the load bearing elements in combination with the first and second load bearing beam provide the desired structural strength that makes it possible to reduce the amount of material in the board.
One essential feature in the element according to the invention is the use of high performance concrete in the load bearing elements. The high performance concrete differs from conventional ordinary concrete in that it has a higher compressive strength. The compressive strength for high performance concrete is above 80 MPa. Furthermore, the water/concrete ratio for the concrete paste should be less than 0.39. This ration ensures that the amount of water is sufficiently low in relation to the amount of concrete to reach the desired strength. The specified high performance concrete has several advantageous properties such as almost no shrinking during curing, no creep over time, etc. The fact that almost no shrinking takes place during curing of the concrete is very important to ensure the high quality and narrow tolerance of the element
The element according to the invention could be prefabricated in a separate plant to reduce the amount of work that has to be done at the constructional work place which saves time. Furthermore the element reduces the element weight which also will have a positive impact on the building cost since the reduced weight will make it possible to reduce the amount of reinforcements and material in the building framework and several thereto related structures. All these aspects in combination with the reduced cost for transports and handling of the elements will in the end reduce the building cost considerably.
In one embodiment of the constructional element, the continuous board is made of concrete, plywood, plastic or gips. By selecting the board material and surface properties the board could be pre-produced to a higher degree and reduce the work that otherwise has to be done to reach the desired appearance and tolerance of the element.
In one embodiment of the constructional element, the board has a thickness of at least 5 mm, and preferably above 10 mm. In order to be able to produce the element to an acceptable cost and reach the desired element strength the board has to be at least 5 mm. However, if the board should be able to bear loads, the thickness must be increased to up to about 60 mm.
In one embodiment of the constructional element, the groove has a depth of at least 30 mm and a width of at least 10 mm. This embodiment ensures that the load bearing elements will have the desired strength and could be produced to a reasonable cost.
In one embodiment of the constructional element, the load bearing element is made of high performance concrete reinforced with non-metal fibres. The use of fibre-reinforced concrete provides load bearing elements with sufficient strength that are easy to manufacture.
In one embodiment of the constructional element, the load bearing element and/or the load bearing beams comprise at least one elongated iron reinforcement bar. The iron reinforcement bar is one reliably solution for ensuring an element with the desired structural strength.
In one embodiment of the constructional element, the insulating layer is made of cellular plastic. This material does have a comparatively low cost and provides a strong adhesion to the board. Furthermore it is fairly easy to form the groove, or grooves, in the cellular plastic.
In one embodiment of the constructional element, the insulating layer comprises more than one layer of insulating material and one layer is made of cellular plastic. The insulating layer could comprise layers of different insulating materials in order to adapt the element for use within different structures where the needs vary. The element could for example be made with high thermal or sound insulation properties. However, the element still comprises a layer of cellular plastic to facilitate the formation of the groove as well as the casting of the load bearing elements in the grooves.
In one embodiment of the constructional element, a second continuous board is arranged on the opposite side of the insulating layer in relation to the continuous board. This embodiment of the element provides an element that is even more possible to pre-fabricate since also the opposite side of the element could be finished with a desired surface which will also help reducing the required building time.
In one embodiment of the constructional element, the second board is made of high performance concrete and formed integrated with the load bearing elements and the load bearing beams. This embodiment provides an element with a very high strength in relation to the element weight.
In one embodiment of the constructional element, the element comprises one or more openings. This embodiment is very favourable since the element could be prefabricated with openings used for example for windows.
In one embodiment of the constructional element, the element comprises one or more load bearing columns extending parallel to the load bearing element. The column, or columns, is formed of reinforced high performance concrete to be able to withstand higher loads than the load bearing elements.
The constructional element could for example be used in buildings wherein said element is used as a wall or roof. If the constructional element is used as an outer wall the board is preferably turned facing inwards, and if the board is used in a roof the board is preferably positioned facing outwards. The constructional element is one important component in the building of concrete buildings with low weight.
The invention furthermore relates to a method for producing a constructional element according to anyone of the embodiments described above. The method comprising the following steps:
The claimed method provides a very efficient method for preproduction of the constructional element according to the invention. The method ensures a high quality of the final product that could be produced efficiently indoors in a production plant.
In one embodiment of the method, the method further comprises the step of providing further high performance concrete and cast a second board on top of the insulating layer before the curing of the concrete is initiated. This embodiment is advantageous if a continuous board is desired on both sides of the element.
One embodiment of the method, the method further comprises the step of arranging at least one reinforcement bar within the recess before the concrete is added.
Different embodiments of the element and the method for producing said element could of course be combined without departing from the scope of the invention. Further advantages and details of the invention will be recognised in the detailed description.
Different embodiments of the present invention are illustrated in the appended drawings, in which:
A first embodiment of the constructional element 10 according to the invention will now be described in detail with reference initially to
The board 11 preferably has a substantially constant thickness, but could also be designed with different thickness within different sections of the element in order to save material and weight in areas where the loads on the board are limited. The board thickness, and the material of the board, is determined from the expected load on the element and the intended use of the element. The board thickness should preferably be kept as small as possible to reduce the amount of heavy and costly material in the board as well as the overall weight of the constructional element. The board material could for example be reinforced concrete, plywood etc depending on the intended use of the element.
The insulating layer 12, illustrated more in detail in
The insulting layer either consist of one layer, or several different layers that are selected to provide a constructional element with specific properties regarding for example thermal insulation or sound. The insulating layer could be made of several different materials, or a combination of materials like cellular plastic. The cellular plastic has some advantages compared to many other materials in that it makes it possible to generate the grooves that will be explained later on in an easy way.
In the opposite side of the insulating layer,
In the grooves 17, a load bearing element 13 is arranged in order to provide the desired structural strength of the constructional element 10. The load bearing elements 13 are in the embodiment in
The width and depth of the grooves 17 are selected in order to ensure that the load bearing element 13, and consequently the constructional element 10 will have the desired strength. The elongated load bearing elements 17 in the grooves are made of high performance concrete. To ensure the desired strength of the load bearing elements, the load bearing elements preferably are provided with at least one reinforcement bar, not illustrated, that extends within the groove.
In order to facilitate the installation work of the constructional element 10, electrical cables could be lead through the grooves 17 in the insulating layer 12 as long as the remaining area of the groove provides the desired element strength.
In
In the embodiments 10; 20 illustrated in
The load bearing column 14 is produced by dividing the insulating layer 12 and generating a gap 24 between two sections of the insulating layer positioned adjacent to each other, illustrated in
In
Furthermore, the constructional element is around the edge designed to match the framework in which it is intended to be mounted. The final securing of each element could be done in many different ways depending on the specific use and design of the element and the building.
The present constructional element 10, 20, is produced by the claimed method comprising the following steps:
This method for producing the constructional element makes it possible to pre-produce the elements in an efficient way to a reasonable cost since the load bearing elements 17 and beams 27, 28 are formed in one step by pouring the concrete into the mould where the insulating layer 12, in combination with an external mould is used for forming the supporting structure of the element.
In the embodiment of the board containing a second board 23, this second board 23 is preferably formed by using the claimed method and in step c. pouring a larger amount of high performance concrete into the mould so that the grooves 17, 27, 28 in the insulating layer 12 are filled by concrete and the entire insulated layer covered by concrete to form the second board 23 on top of the insulating layer.
As can be seen in
In
In
While some presently preferred embodiment of the invention has been described herein, it is to be understood that these embodiments could be combined in any suitably way without departing from the scope of the invention. The invention is not limited to the disclosed embodiments but covers and includes any and all modifications and variations that are encompassed by the following claims.
Number | Date | Country | Kind |
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0900257-7 | Feb 2009 | SE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/SE2010/000046 | 3/1/2010 | WO | 00 | 8/26/2011 |