The present application claims priority from Belgian Patent Application No. BE-2015/5709 filed on Oct. 30, 2015, which is incorporated herein by reference.
This disclosure relates to a screen device, comprising
By tensioning cord is here understood, inter alia, a tension cable, tension rope or tension band.
Such screen devices having vertically arranged screen rollers are described, for example, in EP 2 662 522 A2 and EP 0 911 476 A.
Tensioning systems are used in such screen devices to keep the screen tensioned in each position in which this screen is rolled up and/or unrolled, so that this screen goes on to sag as little as possible. In screen devices having a screen which can be rolled up and unrolled on an erected screen roller, it is noticed in practice, however, that the end lath, in the fully unrolled state of the screen, cannot generally connect neatly to the structure against which this screen is intended to be unrollable, since in this position it is no longer arranged parallel to the screen roller.
A solution to this problem is described in DE 40 36 892 A1. The herein described screen device comprises on each lateral side of the screen a separate spring sub-system, having a spring element for keeping the respective tensioning cord under tension. In addition, adjusting means are provided for adjusting the spring force of the spring element.
An object of embodiments of this invention is to provide such a solution for a screen device, in which the spring system can also easily absorb dynamic forces which arise in the screen device.
This object of the invention may be achieved by providing a screen device, comprising:
Similar spring systems with pivot arms are known, for example, in derailleur gears of bicycles. By virtue of such a spring system with pivot arms, the spring system can also easily absorb dynamic forces which arise in the screen device. Furthermore, by virtue of such a spring system, the spring force of the spring element can compactly be made adjustable.
This solution is particularly advantageous in erected screen rollers, but can also be useful in virtually horizontally arranged screen rollers in order to be able to absorb variances between the two lateral sides.
By an erected screen roller is here understood a screen roller which can be arranged in any arrangement different from a horizontal arrangement. Typically, such a screen roller will stand vertically arranged. However, it is also possible, for example, that this is obliquely arranged, so that this screen device can shield or liberate a window-shaped frame.
In screen devices having erected screen rollers, there will typically be a differing friction on the two lateral sides of the screen, whereby the end lath, in the fully unrolled state, is no longer arranged neatly parallel to the screen roller and can no longer neatly connect to a surrounding structure against which the screen can be unrolled. By now providing a separate spring sub-system on each lateral side of the screen and providing at least one spring sub-system with adjusting means for adjusting the spring force thereof, the variances in friction on both sides can be compensated by regulating the exerted spring force on one of the two sides until the end lath, in the unrolled state, can be placed neatly parallel to the screen roller, so that it can neatly connect up to a surrounding structure against which the screen can be unrolled.
In this case, it is of little or no importance whether this first spring sub-system is arranged at the top of the screen or at the bottom of the screen.
Preferably, also the second spring sub-system comprises adjusting means for adjusting the spring force of the spring element, so that the spring force can be regulated on both sides.
In a screen device according to an embodiment of this invention, around one of the fixed pivot pins is preferably fitted a guide wheel, via which the respective tensioning cord is turned. This guide wheel which is fitted around one of the fixed pivot pins is further preferably realized as the respective reversing wheel.
In one specific embodiment, the adjusting means of a screen device according to this invention comprise a threaded rod, a holder, through which the threaded rod is rotatably fitted with its first end, a bracing element, through which the second end of the threaded rod or an extension piece of the threaded rod is fitted displaceably according to the longitudinal direction of the threaded rod, a nut, which comprises an internal screw thread corresponding with the external screw thread of the threaded rod and is fitted between the holder and the bracing element rotatably on the threaded rod, and a rotation-blocking element, which prevents absolute rotation of the nut in the screen device and leaves a relative rotation of the nut around the threaded rod unimpeded, so that the nut, upon rotation of the threaded rod in the screen device, moves over the threaded rod in the longitudinal direction of the threaded rod. In this case, the spring element is then preferably fitted between the nut and the bracing element, so that the spring force of the spring element drives the nut and the bracing element apart.
In such an embodiment of a screen device according to this invention, the nut is preferably provided on its outer periphery with a flat side, and the rotation-blocking element preferably comprises a surface against which the nut is fitted with its flat side to prevent absolute rotation of the nut in the screen device.
If a screen device according to an embodiment of this invention comprises such adjusting means, then the threaded rod preferably forms part of the first part-arm of the first pivot arm, the holder is preferably articulately fastened to the first fixed pivot pin in order to fasten this first part-arm articulately to this first fixed pivot pin, and the bracing element preferably forms part of the second part-arm of the first pivot arm.
If a screen device comprises on each lateral side a side guide for guiding the corresponding lateral side of the screen, then the tensioning system is preferably arranged at least partially in these side guides. If such a screen device then comprises an earlier described specific embodiment of the adjusting means, then the rotation-blocking element is preferably fixedly arranged in or forms part of the corresponding side guide.
The spring elements of a screen device according to some embodiments of this invention are preferably realized as a helical spring. If such a screen device then comprises an earlier described specific embodiment of the adjusting means, then this helical spring is preferably fitted around the threaded rod. Yet more preferredly, a cylindrical tube is then fitted around the threaded rod, fastened to the nut and fitted displaceably through the bracing element as the said extension piece of the threaded rod, and the helical spring is fitted around the cylindrical tube.
This invention is now more closely explained with reference to the hereinafter following detailed description of a preferred screen device according to this invention. The aim of this description is to provide solely illustrative examples and to indicate further advantages and particularities of this invention, and can thus not be interpreted as a limitation of the field of application of the invention or of the patent rights claimed in the claims.
In this detailed description, reference is made by means of reference numerals to the hereto appended drawings, wherein in
The depicted screen device (1) comprises a screen roller (2), which is accommodated in a screen box (32). In
In the roll-up and unrolling of the screen (3), the lateral sides of the screen (3) and the end lath (4) are guided in side guides (17). For this purpose, a flexible thickening of the screen (3) is accommodated in a screen guide (31) housed in the side guide (17).
In order to keep the screen (3) tensioned in any position in the course of roll-up and unrolling, the screen device (1) comprises a tensioning system (8).
As can be seen in
The spring sub-systems (18, 19) function wholly independently of each other.
In
The spring sub-system (19) depicted in
The first pivot arm (23) comprises a first part-arm (25) and a second part-arm (26), which, with the aid of the helical spring (9), are arranged resiliently with respect to each other, so that the spring force of this helical spring (9) drives the part-arms (25, 26) apart.
The first part-arm (25) comprises a threaded rod (10) having engaging means (30) for engaging on this threaded rod (10) with a hand tool for the rotation of this threaded rod (10). The first part-arm (25) further comprises a nut (13), which comprises an internal screw thread corresponding with the external screw thread of the threaded rod (10) and is rotatably fitted on the threaded rod (10). In addition, the first part-arm (25) further comprises a cylindrical tube (15), which is fastened to the nut (13) and extends substantially on the side away from the engaging means (30) around the threaded rod (10).
The threaded rod (10) is articulately fastened to the first fixed pivot pin (20) with the aid of a holder (11). For this purpose, this threaded rod (10) is fitted through an opening in this holder (11) and fixed with the aid of a locking screw (12). If the locking screw (12) is released, then the threaded rod (10) can rotate freely in this holder (11).
The nut (13) is of bar-shaped construction, with on its outer periphery four flat sides. The flat side of the nut (13), which is arranged at the rear in the figures, is fitted against the flat front side of a guide plate (16), so that the nut (13) cannot rotate in the screen device (1). The nut (13) is able to move with respect to this guide plate (16), so that relative rotation of the nut (13) about the threaded rod (10) is left unimpeded. Upon rotation of the threaded rod (10) in the screen device (1), the nut (13) moves over the threaded rod (10) in the longitudinal direction of the threaded rod (10). The nut (13) hereupon takes with it the cylindrical tube (15), so that the latter moves telescopically with respect to the threaded rod (10).
The second part-arm (26) is at its one end articulately fastened to the displaceable pivot pin (21). At its other end, this second part-arm (26) comprises a bracing element (14), through which the cylindrical tube (15) is fitted displaceably according to the longitudinal direction of the threaded rod (10), so that this cylindrical tube (15) is telescopically displaceable in a cavity (33) of this second part-arm (26).
The helical spring (9) is fitted around the cylindrical tube (15) between the nut (13) and the bracing element (14), so that the spring force of the helical spring (9) drives the nut (13) and the bracing element (14) apart, and thus drives the part-arms (25, 26) of the first pivot arm (23) apart.
The guide plate (16) is fixedly arranged in the side guide (17), as can be seen in
If, departing from the position as depicted in
In this way, the desired spring force of the helical spring (9) is adjusted. After this, the locking screw (12) is retightened.
Number | Date | Country | Kind |
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BE-2015/5709 | Oct 2015 | BE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2016/056500 | 10/28/2016 | WO | 00 |