DEVICE WITH A LIGHT SIGNALLING FUNCTION
20180216790 · 2018-08-02
Assignee
Inventors
- Thierry Fort (Gimeux, FR)
- Patrice Thizon (Ruelle-sur-Touvre, FR)
- Marcel Pouyollon (Gond Pontouvre, FR)
- Sophie Lorrain (Mornac, FR)
- Youssef Yousfi (Puymoyen, FR)
Cpc classification
G02B6/0083
PHYSICS
F21V9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2111/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/403
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21K9/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A device with a light signaling function including a light-emitting diode designed to emit a first light signal in a first wavelength range in the blue or the ultraviolet, conversion device arranged for converting the first light signal emitted by the light-emitting diode in the first wavelength range into a second light signal in a second wavelength range, a cap arranged for filtering the second light signal with a view to obtaining a color included in a standard color space. The conversion device being chosen so the second wavelength range includes the normal color space.
Claims
1. A device with a light signaling function designed to emit a light signal outwards with a color included in a standard color space, said device comprising: a light-emitting diode designed to emit a first light signal in a first wavelength range in the blue or the ultraviolet, conversion means arranged for converting said first light signal emitted by the light-emitting diode in said first wavelength range into a second light signal in a second wavelength range, a cap arranged for selecting a particular, more restricted wavelength range within the second wavelength range so as to obtain at the output a signal at a third wavelength corresponding to a color included in said standard color space, wherein: the conversion means are configured so that said second wavelength range comprises said standard color space.
2. The device according to claim 1, wherein the conversion means comprise an element with a phosphor function inserted between the light-emitting diode and the cap.
3. The device according to claim 2, further comprising a body, wherein the element with a phosphor function comprises a first component and the cap comprises a second component, the first component and the second component being attached independently onto said body.
4. The device according to claim 2, further comprising a body, wherein the element with a phosphor function and the cap are assembled onto the body in the form of a single component produced by bi-injection.
5. The device according to claim 2, wherein the element with a phosphor function comes in the form of a layer deposited on a surface of said cap.
6. The device according to claim 3, further comprising a light guide component arranged in the body of the device for guiding the first light signal towards said conversion means.
7. The device according to claim 6, wherein said light guide component is made of an opaque material.
8. The device according to claim 2, wherein the element with a phosphor function comprises a lens positioned above the light-emitting diode.
9. The device according to claim 3, further comprising a light block including said light-emitting diode.
10. The device according to claim 9, wherein the light block comprises a printed circuit board onto which said light-emitting diode is soldered.
11. The device according to claim 9, wherein the light block comprises a protuberance in which said light-emitting diode is housed, said protuberance including a transparent element through which said first light signal is emitted.
12. The device according to claim 9, further comprising a base including attachment means for attaching said light block.
13. The device according to claim 1, further comprising a control function, implemented from a push-button or a rotary knob.
14. The device according to claim 13, wherein the cap is made with a component forming the push-button or the rotary knob.
15. The device according to claim 1, wherein the standard color space is chosen from a green space, a red space, a blue space, a white space and a yellow space.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0031] Other features and advantages will appear in the detailed description that follows made with reference to the appended drawings in which:
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION OF AT LEAST ONE EMBODIMENT
[0038] In the rest of the description, the terms top, bottom, upper, lower, above, below are to be understood as taking the axis (X,
[0039] The invention relates to a device with a light signalling function. The solution provided is advantageous for a device with a light signalling function formed of at least two parts separable from each other, but it could quite as well be applied to a device in an integral form.
[0040] In a non-restrictive way, the inventive solution will be described below for a device with a light signalling function which comprises at least two parts separable from each other.
[0041] In addition, device with a light signalling function should be understood to mean any device providing a light signalling function. This therefore also includes devices having, in addition, a control function, e.g. push-buttons or rotary knobs, additionally provided with a light signalling function. For all these devices, the principle of the invention will remain the same. In the rest of the description, a device with a light signalling function will generally be referred to.
[0042] In a non-restrictive way, the device typically comprises three main parts: [0043] A first part mainly including a body and a colour cap attached onto the body and through which light is diffused outwards; [0044] A second part comprising a light block 12, advantageously removable and provided with at least one light-emitting diode 120; [0045] Advantageously, a third part formed of a base attached onto the body of the first part of the device and provided with attachment means cooperating with corresponding attachment means in order to attach the light block.
[0046] Referring to
[0047] In a conventional but non-restrictive way, the device comprises a body 10 in the form of a tubular component about an axis (coinciding with the axis (X) in the figures) and intended to be inserted along the axis thereof through said opening in the wall 2. Along the axis thereof, the body 10 comprises a lower part and an upper part which may be separated from each other by a shoulder. The upper part is provided with an annular flange 100 intended to be supported on a first face, known as the outer face, of the wall 2 around the opening, so that the position thereof delimits, along a support plane P against the outer face of the wall 20, the visible part of the device located on a first side of the wall 2 with respect to the invisible part of the device located on a second side of the wall 2. A gasket is, for example, positioned between the flange 100 and the surface of the wall 2. In order to allow the passage of a luminous flux, the body is hollow along the axis (X). A luminous flux generated by the light block is capable of passing through the body to reach the head of the device comprising a cap 11. The body is advantageously made of an opaque material, an element (component 17 described below) made of opaque material being incorporated so as to focus the luminous flux towards the cap. In a non-restrictive way, the body may be made of plastic or metal.
[0048] The device comprises attachment means for attaching onto said wall 2. These attachment means do not form the subject matter of the present application, and they may be of various natures. For example, the attachment means used consist, for example, of a nut 15 screwed onto an outer thread made on the lower part of the tubular body of the device or, as described in patent EP0889564B1, consist of a base that is assembled onto the tubular body, this base bearing fastening means such as set screws or pivoting fastening arms operated by means of a screw.
[0049] As described above, the device also comprises a head including a transparent coloured cap 11 allowing a luminous flux generated by the light block to pass through. The cap 11 is attached onto the body 10 of the device.
[0050] When the device also comprises a control function, it includes an actuatable button, and at least one electrical contact unit. The contact unit comprises one or more electrical contact blocks 14. Each electrical contact block 14 comprises a mobile contact switch actuatable by pressing the button of the control member. An emergency stop button thus comprises at least one electrical contact block, the switch whereof is configured in normally closed (NC) mode.
[0051] For supporting the contact unit and said light block, the device uses the attachment base 13, e.g. rectangular in shape. This base 13 comprises a central opening intended to be passed through by the lower part of the tubular body 10 and attachment means serving to detachably support the electrical contact blocks 14. According to the configurations, the base 13 may be rigidly connected to the attachment means or separate from these attachment means. In the latter case, the lower part of the body of the device interlocks into said base. In a control function device, action on the button actuates the switches of the contact blocks of the contact unit, simultaneously acting on the control of the light block for turning the light-emitting diode on or off.
[0052] Referring to
[0056] In the light signalling field, the emission colours are usually standard.
[0057] More precisely, according to one advantageous aspect of the invention, the light block 12 embeds a light-emitting diode 120 emitting the signal S1 in a first wavelength range L1 located in the blue or the ultraviolet.
[0058] In addition, the conversion means advantageously comprise an element 16 with a phosphor function, for converting the light signal S1 emitted by the light-emitting diode 120 in a first wavelength range L1 into a light signal S2 present in a second wavelength range L2. Advantageously, the phosphor material is chosen so that the light signal S2 obtained in the second wavelength range L2 corresponds to a colour (or chromaticity) space which is wider than said standard colour space mentioned above but which includes said standard colour space. Accordingly, the colour obtained at the output from the element 16 with a phosphor function, before filtering via the cap, is close to the desired final colour at the output from the cap.
[0059] The cap 11 is chosen so as to filter the light signal S2 obtained at the output from the element 16 with a phosphor function. The cap 11 is arranged for selecting a particular, more restricted wavelength range in the second, more extended wavelength range L2 so as to obtain a signal S3 of a wavelength L3 at the output. The cap may be made of a transparent or translucent plastic.
[0060] In other words, the conversion means are configured for converting the first light signal S1 with a view to obtaining a second light signal S2 with a colour defined by a wide colour space including the standard colour space and the cap is configured for selecting the desired colour belonging to the standard colour space in the wide colour space of the second light signal.
[0061] A phosphor material makes it possible to convert the light signal by increasing the wavelength of the signal. This explains why the light-emitting diode 120 is advantageously chosen for emitting in the blue or the ultraviolet. Indeed, it is from the blue or the ultraviolet that it is possible to go to the other colours, the reverse not being possible.
[0062] Below are some references for phosphor materials (Intematix datasheets) which can be used for producing the element with a phosphor function: [0063] NYAG4752-L; [0064] EG2762;
[0065] In addition, as the element 16 with a phosphor function is chosen for obtaining a light signal S2 in a wavelength range L2 which already includes the desired standard wavelength range at the output, the cap 11 may be chosen with a reduced filtering power, thus making it possible to obtain a light signal at the output of the cap that is particularly intense.
[0066] By way of example,
[0072] Referring to
[0077] The element 16 with a phosphor function should be inserted between the cap 11 and the light source (diode 120) and capture the light signal S1 emitted by the light source, with a minimum of leakage.
[0078] Between the light source and the element 16 with a phosphor function, the device advantageously comprises an opaque side wall for channelling the luminous flux with a minimum of loss. According to the type of device, this opaque side wall will be, for example, formed of a component 17 (17A, 17B, 17C) responsible for guiding a maximum of light up to the element 16 with a phosphor function. When using an element with a phosphor function in the form of a lens, this will be positioned as close as possible to the source, as explained above, for minimising the luminous flux losses.
[0079] Between the element 16 with a phosphor function and the cap 11, the luminous flux should also be channelled to focus on the cap 11. According to the adopted configuration, the element 16 with a phosphor function will therefore be located as close as possible to the cap 11 for minimising the loss of luminous flux between these two elements. For this, as described above, it will be possible to produce the element 16 with a phosphor function and the cap 11 as a single component by bi-injection (
[0080]
[0081] In these
[0082] The second configuration represents a device including only the light signalling function. Similarly, the element 16B with a phosphor function consists of a component housed under the cap 11B. A funnel-shaped component 17B housed in the body, notably makes it possible to channel the luminous flux in the direction of the element 16B with a phosphor function and of the cap 11B. This component 17B is advantageously made of an opaque material, i.e. which does not allow light to pass through.
[0083] The third configuration represents a device including the light signalling function implemented by the invention and a control function implemented by a rotary knob including an actuatable projection. In this application, the cap 11C is implemented by the rotary control knob of the device. The element 16C (
[0084] In
[0085] Referring to