The present invention concerns an actuating arm drive for driving a moveably mounted furniture part of an article of furniture having at least one arrangement comprising a compression spring and at least one guide device for guiding the compression spring.
Actuating arm drives having a compression spring and at least one guide device for avoiding buckling movements of the compression springs upon compression of the compression springs are known from the state of the art. In that respect, guide devices arranged in the interior of the compression spring in the form of, for example, bars arranged in an internal space formed by the compression spring are also known. It is further known to design guide devices in the form of sleeves enclosing the compression springs.
A disadvantage with the actuating arm drives with guide devices as described hereinbefore known from the state of the art is that such guide devices have to be designed for the smallest occuring inside diameter or the largest occuring outside diameter in respect of the compression spring. If now the compression spring is loaded, its inside diameter or its outside diameter becomes larger and there is a radial clearance between the compression spring and the guide device.
That therefore permits a small buckling movement of the compression spring upon compression thereof until it comes into contact with the guide device. That “coming into contact” causes an enormously disruptive noise during the use of such a spring guide and increased wear at the guide device.
Therefore, the object of the present invention is to provide a spring guide which is improved over the state of the art as well as an actuating arm drive having at least one such spring guide and an article of furniture having at least one such actuating arm drive.
That object is attained by an actuating arm drive including at least one guide device having a diameter which is at least region-wise variable (i.e., variable over at least a portion of a length thereof) in order to compensate for a radial clearance between the compression spring and the guide device having regard to the change in diameter of the compression spring when the compression spring is loaded.
As a result, it is possible for the guide device to always bear snugly against the compression spring, over the entire length of the compression spring and in all positions of the compression spring which arise due to different loadings of the compression spring. Thus, the guide device can support the compression spring in all positions thereof against buckling of the compression spring whereby it is possible to counteract a severely disruptive noise occurring during the use of such a spring guide and increased wear at the guide device, as are both the case in the state of the art.
In other words, the guide device therefore always bears in play-free relationship against the compression spring and thus prevents a buckling collapse and a severely disruptive noise involved therewith.
The efficiency of the spring guide can also be optimized in that way, as a compression and/or expansion movement of the compression spring, which takes place substantially in a straight line, that is to say a compression or expansion movement of the compression spring which is free from buckling, can be implemented.
Manufacturing-induced tolerances in the diameter of the compression spring can also be compensated for by the prestressed snug contact in respect of the guide device.
An article of furniture having at least one such actuating arm drive and a furniture part mounted moveably thereto is also provided.
In that respect, preferably the guide device is in the form of a sleeve. That permits a way of manufacturing the guide device which saves on material and thus costs compared to a guide device which, for example, is in the form of a bar.
Particularly preferably, the guide device in the form of a sleeve is slotted in an axial direction and is prestressed in a radial direction. Such a design of the guide device makes it possible to provide a guide device which is variable in diameter by simple means.
To achieve such a prestressing, an outside diameter of a guide device in a non-prestressed position can be between 0.01 mm and 0.3 mm, preferably between 0.05 mm and 0.1 mm, greater than a smallest inside diameter of a compression spring.
In that respect, it can be advantageous if the at least one guide device is arranged at least partially in the interior of the compression spring. That has the advantage over an outwardly disposed guide device that it requires less material and less space, as the guide device is smaller in diameter and is arranged within the compression spring.
However, the at least one guide device can at least partially enclose the compression spring.
It can further be advantageous if a stabilization device is arranged within the at least one guide device or within the compression spring. In that way, the compression spring is additionally stabilized and buckling of the compression spring is even more reliably prevented.
The guide device can be produced from a thermoplastic, preferably polyoxymethylene. The use of that material permits simple and inexpensive manufacturing of the guide device. In addition, wear of the guide device and noise when the compression spring is loaded is reduced by virtue of the good sliding characterisitcs of that material.
In principle, however, all suitable materials are possible like for example various metals or other plastics.
Further details and advantages of the present invention will be described in more detail hereinafter by means of the description of the Figures with reference to the embodiments illustrated in the drawings in which:
The force storage means 104 is shown in an exploded view in
It is also shown that the guide device 3 has a slot 8 over the entire length thereof in axial direction. The slot 8 serves to permit changes in the diameter of the guide device 3.
In this arrangement, the guide device 3 is prestressed in a radial direction. To implement such prestressing, the outside diameter of the guide device 3 is at a minimum larger than the smallest inside diameter of the compression spring 2. Preferably, the outside diameter of a guide device in a non-prestressed position is between 0.01 mm and 0.3 mm, preferably between 0.05 and 0.1 mm, greater than a smallest inside diameter of the compression spring 2.
The function of the spring guide 1 according to the invention shall now be described with reference to
In
In
The variation in the diameter of the guide device 3 is effected steplessly, for which reason the guide device in any state of the compression spring 2 and at any moment in time bears fully against the compression spring 2. As a result, the compression spring 2 is adequately guided and supported against a buckeling collapse at any moment in time and in any state of the compression spring 2.
For better understanding of the invention,
In
In
It is apparent that in a non-compressed position of the spring 2—in which the spring 2 therefore has a minimum diameter —, the guide device 3 bears against the stabilization device 4 in
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Entry |
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International Search Report dated Apr. 23, 2020 in International (PCT) Application No. PCT/AT2020/060033. |
Number | Date | Country | |
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20220003034 A1 | Jan 2022 | US |
Number | Date | Country | |
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Parent | PCT/AT2020/060033 | Feb 2020 | US |
Child | 17478448 | US |