Slat roof and method for adapting a slat roof
10550632 ยท 2020-02-04
Assignee
Inventors
Cpc classification
E04B7/166
FIXED CONSTRUCTIONS
International classification
E04B1/346
FIXED CONSTRUCTIONS
E04F10/10
FIXED CONSTRUCTIONS
Abstract
A slat roof (1) comprising beams (2), a plurality of slats (3) arranged parallel to one another therebetween and slat shafts (4) by means of which the slats (3) are rotatably fixed to the respective beams (2), wherein at least one slat shaft (4) is hollow and wherein the slat roof (1) comprises at least one corresponding tensioning cable (5) which is inserted through said hollow slat shaft (4) and the ends of which are fixed to the respective beams (2). In addition, a method for adapting a slat roof.
Claims
1. A slat roof, comprising: beams, a plurality of slats arranged parallel to one another and positioned between the beams, and slat shafts connecting each of the slats to two of the beams, wherein at least one slat shaft is hollow and the slat roof comprises at least one corresponding tensioning cable which is inserted through said hollow slat shaft and has ends fixed to the beams, and wherein both said hollow slat shaft and a slat connected to said hollow slat shaft are rotatable around the at least one corresponding tensioning cable.
2. The slat roof according to claim 1, characterized in that said slat roof comprises a tensioner, for tightening said tensioning cable, by means of which one of the ends of said tensioning cable is fixed to one of the respective beams.
3. The slat roof according to claim 2, characterized in that said tensioner comprises a tensioning shaft arranged so as to be rotatable in one direction of rotation with respect to the one of the respective beams, and comprises a blocker for blocking the rotation of said tensioning shaft in the opposite direction, wherein the respective end of the tensioning cable is fixed to said tensioning shaft.
4. The slat roof according to claim 2, characterized in that said slat roof comprises a cable locking element which is fixed at an end of the tensioning cable that is opposite to the end to which the tensioner is fixed, in order to lock said tensioning cable with respect to the one of the respective beams.
5. The slat roof according to claim 3, characterized in that the blocker comprises a gear wheel which is provided on the tensioning shaft and comprises a shaft locking element for locking the tensioning shaft, which is arranged so as to be displaceable between a first position in which said shaft locking element engages with a toothing of the gear wheel and a second position in which said shaft locking element remains outside said toothing.
6. The slat roof according to claim 3, characterized in that said slat roof comprises a guide element which is arranged between the respective end of the slat shaft and the tensioning shaft in order to guide the tensioning cable.
7. The slat roof according to claim 6, characterized in that the guide element is designed as a guide wheel.
8. The slat roof according to claim 5, characterized in that a returning force forces the shaft locking element towards its first position and in that, during rotation of the tensioning shaft in the direction of rotation by an adjacent tooth of the toothing of the gear wheel with which it engages, the shaft locking element is moved towards its second position in order, with the next toothing, to be forced towards its first position under the influence of the returning force and to engage with said next toothing.
9. The slat roof according to claim 5, characterized in that the shaft locking element is rotatably arranged in order to be provided so as to be displaceable between its first position and its second position.
10. The slat roof according to claim 9, characterized in that the shaft locking element is arranged so as to be rotatable about a rotation shaft and is guided by means of a guide shaft in a limiting guide slot which limits the rotational movement between the first position of the shaft locking element and the second position of the shaft locking element.
11. The slat roof according to claim 8, characterized in that the tensioner comprises a spring, the spring force of which acts on the shaft locking element as a returning force.
12. The slat roof according to claim 11, characterized in that the tensioner comprises a wire spring as the spring, which is clamped between the rotation shaft and the guide shaft in such a way that the spring force of this wire spring forces the shaft locking element towards its first position.
13. A method for modifying a slat roof comprising beams, a plurality of slats arranged parallel to one another and positioned between the beams, and slat shafts connecting each of the slats to two of the beams, comprising: inserting a tensioning cable through a slat shaft; and fixing each end of the tensioning cable to the respective beam, wherein both said slat shaft and a slat connected to said slat shaft are rotatable around the tensioning cable.
14. The method according to claim 13, further comprising replacing a solid slat shaft with a hollow slat shaft and inserting the tensioning cable through the hollow slat shaft and fixing the tensioning cable by each end to the respective beam.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will now be explained in more detail by means of the following detailed description of some preferred embodiments of a slat roof according to the present invention and a method for adapting a slat roof. The sole aim of this description is to give illustrative examples and to indicate further advantages and features of the present invention, and can therefore by no means be interpreted as a limitation of the area of application of the invention or of the patent rights defined in the claims.
(2) Reference numerals are used in this detailed description to refer to the attached drawings, in which:
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DETAILED DESCRIPTION
(16)
(17) In order to aid the drainage of precipitation, the slats (3) are arranged running obliquely towards one of the two beams (2).
(18) The beams (2) may, for example, be made from aluminium, plastic, wood, etc. The slats (3) may, for example, also be made from profiles of aluminium or plastic and may optionally be provided with filler elements of, for example, polycarbonate, glass or wood, etc.
(19) Under the weight and the bending of the slats (3), the beams (2) begin to bulge in the plane of the slats. In order to prevent this, the beams (2) according to the invention are pulled towards one another counter to this bulging with the aid of a tensioning cable (5). The force exerted on the beams (2) in this case by such a tensioning cable (5) is diagrammatically illustrated in
(20) The tensioning cable (5) may, for example, be made from stainless steel or plastic, etc.
(21) In
(22) In order to be able to fix the tensioning cable (5), the slat shafts (4) of a slat (3) which is arranged in the centre of the slat roof (1) are preferably hollow. The slat (3) itself is also preferably hollow between these slat shafts (4). In an existing slat roof (1) in which the slat shafts (4) are solid, at least one slat shaft (4) is preferably replaced by a hollow slat shaft (4). The corresponding slat (3) is optionally also replaced by a hollow slat (3).
(23) The tensioning cable (5) is then inserted through the cavity of the one or more hollow slat shafts (4) and the optional cavity of the slat (3). At one end, this tensioning cable (5) is preferably locked in the respective beam (2) by means of a cable locking element (14) and a cable locking block (15), as illustrated in
(24)
(25)
(26) Said tensioning means are fitted into the beam (2) with the aid of a mounting plate (19). On the top of said mounting plate (19), the tensioning cable (5) is guided around a guide wheel (13) and fed to a tensioning shaft (6) to which the end of the tensioning cable (5) is fixed. The guide wheel (13) and the tensioning shaft (6) are held between said mounting plate (19) and a holding plate (20) so that the tensioning cable (5) is kept in place with a high degree of certainty. The tensioning shaft (6) is rotatably arranged in order for the tensioning cable (5) to be able to wind up on it. On the bottom of the fixing plate (19), a shaft locking element (8) engages with a gear wheel (7) which is securely fixed to the tensioning shaft (6) in order to prevent the tensioning cable (5) from inadvertently unwinding from the tensioning shaft (6) again. Said shaft locking element (8) and said gear wheel (7) are arranged on the other side of the fixing plate (19) than the tensioning shaft (6) itself, so that they do not impede the movement of the tensioning cable (5).
(27) The shaft locking element (8) is arranged so as to be rotatable about a rotation shaft (10). The rotational movement of the shaft locking element (8) is guided by means of a guide shaft (11), which is mounted on the mounting plate (19), in a limiting guide slot (12) in the shaft locking element (8), so that the rotational movement is limited between a first position and a second position. The guide slot (12) could alternatively also be provided in the mounting plate (19) if the guide shaft (11) is provided on the shaft locking element (8). In the first position, the shaft locking element (8) engages with a toothing of the gear wheel (7). In the second position, the shaft locking element (8) is moved outside of this toothing. A wire spring (9) is clamped between the rotation shaft (10) and the guide shaft (11) in such a way that the spring force of this wire spring (9) forces the shaft locking element (8) towards its first position.
(28) As illustrated in
(29) When the top profile (27) of the beam (2) has been removed, the bolt head (28) on top of the tensioning shaft (6) can be engaged with a hand tool in order to rotate the tensioning shaft (6). In this case, the tensioning shaft (6) can only be rotated in one direction. If, in the illustrated embodiment, an attempt is made to rotate the bolt head (28) in the anticlockwise direction, this will be prevented by the shaft locking element (8) abutting the flank of the adjacent tooth of the toothing of the gear wheel (7), which extends substantially at right angles to the tensioning shaft (6). As a result, the gear wheel (7) and thus also the tensioning shaft (6) and the bolt head (28) are locked and rotation is prevented in this direction. However, if the bolt head (28) is rotated in the clockwise direction at a certain force which exceeds the spring force of the wire spring (9) and the tensioning force of the tensioning cable (5), the flank, which is curved in a spiral, of the toothing of the gear wheel (7) with which the locking element (8) engages will rotate the locking element (8) counter to the spring force. In this way, the locking element (8) can be moved into its second position in order to be forced, with the next toothing, back towards its first position under the influence of the spring force in order to engage with the next toothing. In this way, the tensioning cable (5) can be wound up on the tensioning cable (6) in a stepped manner and thus tightened in order to pull the beams (2) towards one another under the necessary prestress.
(30) If the tensioning cable (5) were to be overtightened in this way or if it were desired to remove the relevant slat (3), it is possible to engage with an engagement element (18) of the shaft locking element (8) through an opening (17) in the mounting plate (19) in order to be able to manually move the shaft locking element (8) into its second position and to be at least partially able to unwind the tensioning cable (5) from the tensioning shaft (6).