This application claims the priority of Italy application no. TO2011A001142 filed Dec. 13, 2011, the entire content of which is hereby incorporated by reference.
The invention relates to lighting devices.
Various embodiments may refer to lighting devices which use LED sources as light radiation sources.
In the constructional design of lighting devices using, as a light radiation source, linear modules or arrays, for example of the LED types, it is possible to use optical systems (lenses or mirrors, singly or in an array) which produce at the output of the device a fixed light beam.
In order to modify the features of the radiation beam emitted the optical component must be changed, which may take time and not always be possible, thereby making it necessary to replace the entire module.
In various solutions it is possible to move away from or towards the light radiation source an optical component such as a lens. This allows one to obtain light beams only of circular shape, unless more complex systems are used.
One object of the invention is to overcome the abovementioned drawbacks.
One aspect of the invention is directed to a lighting device comprising a housing for carrying a linear array of light radiation sources and at least one elongated diffusive screen arranged facing said array of light radiation sources so as to be passed through by the light radiation emitted by the array of light radiation sources. The diffusive screen has a pattern of geometric features for producing a radiation pattern of the light radiation emitted by the lighting device as a result of passing through the at least one diffusive screen, wherein the housing comprises supporting means for replaceably supporting the at least one diffusive screen, allowing replacement of the at least one diffusive screen with a diffusive screen having a different pattern of geometric features so as to vary the radiation pattern of the light radiation emitted by the lighting device.
Another aspect of the invention is directed to a method for varying the radiation pattern of the light radiation emitted by a lighting device comprising a linear array of light radiation sources and at least one elongated diffusive screen arranged facing the array of light radiation sources so as to be passed through by the light radiation emitted by the array of light radiation sources. The diffusive screen has a pattern of geometric features for producing the radiation pattern of the light radiation emitted by the lighting device as a result of passing through the at least one diffusive screen. The method comprises replacing the at least one diffusive screen with a diffusive screen having a different pattern of geometric features, thus varying the radiation pattern of the light radiation emitted by the lighting device.
Various embodiments may generate, from a—for example LED—light radiation source module of the linear type, a modulatable light beam form with the possibility of adapting the radiation pattern without having to change the light radiation source, the primary optical component and the housing.
Various embodiments may use screens or sheets of the diffusive type able to be mounted in and removed from the housing depending on the desired light pattern without having to change the light radiation sources and the primary optical component.
In various embodiments, it is possible to mount on the same holder a plurality of sheets so as to obtain different combinations of light radiation.
By means of various embodiments it is possible to achieve one or more of the advantages listed here below:
a , 3b and 3c show various details of embodiments;
In the following description various specific details aimed at providing a fuller understanding of the embodiments are described. The embodiments may be implemented using one or more of the specific details or using other methods, components, materials, etc. In other cases, known structures, materials or operations are not shown or described in detail so that the various aspects of the embodiments may be understood more clearly.
The reference to “an embodiment” in the context of this description indicates that a particular configuration, structure or characteristic feature described in relation to the embodiment is included in at least one embodiment. Therefore, phrases such as “in an embodiment”, which may occur at various points in this description, do not necessarily refer to the same embodiment. Moreover, particular forms, structures or characteristic features may be combined in any suitable manner in one or more embodiments.
The reference numbers used here are provided solely for the sake of convenience and therefore do not define the scope of protection or the range of application of the embodiments.
In the figures the reference number 10 denotes overall a lighting device comprising a housing 12 able to receive a light radiation source 14.
In various embodiments, the housing 12 may be obtained from a profiled part made of metallic or plastic material. In various embodiments, the material in question may be a material with good heat dissipation properties.
In various embodiments, as can be seen more clearly in the exploded view of
In various embodiments, the light radiation sources 146 may be LED light radiation sources, for example mounted on a printed circuit board (PCB) with an elongated form—denoted by 148—which also has a connector 150 for supplying the sources 146 with electric power.
When assembled together, the various parts shown in the exploded view of
The embodiment shown in
From the view shown in
The light radiation emitted by the radiation sources 146 emerges from the housing 12 through the open top wall, namely the mouth part, of the channel-shaped form.
From the view shown in
In this way, as schematically shown in the views of
In particular, in the examples of embodiment considered here, which are so designed, the following may be provided:
These insertion operations may be facilitated by providing, along the side walls of the channel-shaped form of the housing 12, flat surfaces 120 and 122 acting as flat supports for maintaining the exact direction of the (sheet-like) screens 16, allowing them to be inserted into and removed from the housing 12 in a stable condition.
As can be seen more clearly in the part of
The presence of several slots or grooves 12a, 12b, with the possibility of using each of them depending on the modes of insertion of the screens 16, i.e. with a transverse movement or with a longitudinal movement relative to the housing 12, therefore constitutes an advantageous but not obligatory feature for the purposes of implementation of the embodiments.
Various embodiments may envisage the insertion in the device 10 of only a single screen 16; the presence of several diffusive screens 16 therefore does not constitute an obligatory feature. In a similar manner, the possibility of inserting a first screen 16 inside the slot 12a with a transverse sliding movement, i.e. in the direction perpendicular to the main direction of extension of the housing 12, and a second screen 16 inside the slot 12b with a longitudinal sliding movement, i.e. in the direction of greater extension of the housing 12, constitutes once again an option, but not an obligatory feature.
The part of
These different insertion modes may be used, for example, in order to join together several lighting devices 10 as schematically shown in
Thus, for example, the part of
In this case the insertion of the screen or screens 16 inside the housing 12 of each device 10 may be performed with a lateral movement as shown in particular on the right-hand side in the part of
The part of
In this case the insertion of the screen or screens 16 inside the housing 12 of each device 10 may be performed with a longitudinal movement as shown in particular on the right-hand side in the part of
Since they are arranged facing the array 14 of light radiation sources 146, the screen or screens 16 are passed through by the light radiation emitted by the light radiation sources 146. The pattern of geometric features of the screen or screens 16 therefore determines the radiation pattern of the light radiation output from the device 10.
The geometric features of the diffusive screens 16 define the optical behavior of the said screens and therefore the shaping effect of the light beam emerging from the device. By replacing each screen with a diffusive screen 16 having a different pattern of geometric features it is therefore possible to vary the radiation pattern of the light radiation emitted by the lighting device.
By way of example, the aforementioned geometric features of the diffusive screens 16, intended to define the optical behavior of each screen 16, may be represented (as schematically shown in part a) of
Thus, as already mentioned, the screens 16 may be made of an optical-grade material, for example transparent molded plastic.
The geometric features of the screen or screens mounted on the housing 12 determine in fact the light radiation form of the radiation emitted by the device 10. Since the screen or screens 16 are mounted on the housing 12 with the housing 12 in such way that they may be replaced, by replacing a diffusive screen 16 with a diffusive screen 16 which has a different layout of optical features it is possible to vary the radiation pattern of the light radiation emitted by the device 10.
This result may be achieved by using also a single diffusive screen 16 chosen from among an assortment of screens with different geometric features. The possibility of mounting two (or in some cases more) screens 16 which may be replaced individually with different screens provides the system described with an even greater flexibility as regards the possibility of the results which can be achieved.
Obviously, without affecting the principle of the invention, the embodiments and the constructional details may vary, also significantly, with respect to that illustrated here purely by way of a non-limiting example, without thereby departing from the scope of protection of the invention; this protective scope is defined by the accompanying claims.
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