Modular Luminaire Assemblies for Tunnels
20230099312 · 2023-03-30
Inventors
- Luc Damhaut (Hervé, BE)
- Hervé Hortelan (Francorchamps, BE)
- Samuel Joiris (Flémalle, BE)
- Koenraad Van Winkel (Duffel, BE)
Cpc classification
F21V31/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S2/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Example embodiments relate to modular luminaire assemblies for tunnels. One example luminaire assembly includes a plurality of interconnectable modules. The plurality of interconnectable modules includes at least an electronic module and at least a first optical module. The first optical module include at least one printed circuit board that includes at least one corresponding LED array and at least one corresponding optical plate. The electronic module includes driver circuitry for driving the at least one LED array of the at least one printed circuit board. The first optical module includes a tray containing the printed circuit board and the optical plate, and an at least partially light transmitting cover closing the tray. The tray has a bottom face and a first edge between the cover and the bottom face. The electronic module includes a tray containing the driver circuitry and a cover closing the tray.
Claims
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35. A luminaire assembly, in particular for use in tunnels, comprising a plurality of interconnectable modules, said plurality of interconnectable modules comprising at least an electronic module and at least a first optical module, wherein the first optical module comprises at least one printed circuit board comprising at least one corresponding LED array and at least one corresponding optical plate, wherein the electronic module comprises driver circuitry for driving the at least one LED array of the at least one printed circuit board, wherein the first optical module comprises a tray containing the printed circuit board and the optical plate, and an at least partially light transmitting cover closing said tray, said tray having a bottom face and a first edge between said cover and said bottom face, wherein the electronic module comprises a tray containing the driver circuitry and a cover closing said tray, said tray having a bottom face and a first edge between said cover and said bottom face, wherein said first edge of the first optical module integrates a first mechanical connector interface and said first edge of the electronic module integrates a second mechanical connector interface, which is configured to cooperate with the first mechanical connector interface to mechanically interconnect the first optical module and the electronic module, wherein the first edge of the first optical module has a stepped profile such that the surface of bottom face of the tray is substantially smaller than the surface of the cover, wherein the first mechanical connector interface comprises at least one abutment portion arranged on the stepped profile and configured for abutting against the second mechanical connector interface, wherein the first edge of the first optical module integrates a first electrical connector, and wherein the first edge of the electronic module houses a second electrical connector, which is configured to cooperate with the first electrical connector to electrically interconnect the first optical module and the electronic module.
36. The luminaire assembly according to claim 35, wherein the at least one abutment portion extends on a plane perpendicular to the cover plane, and/or wherein the at least one abutment portion levels with an outer rim of the stepped profile, and/or wherein at least one abutment portion of the first mechanical connector interface is interconnected to the second mechanical connector interface using a bolt and a nut.
37. The luminaire assembly according to claim 35, wherein said tray of the first optical module comprises at least a first protrusion protruding outwardly out of the bottom face of said tray and integrating at the first edge the first electrical connector.
38. The luminaire assembly according to claim 35, wherein the electrical connectors and the mechanical connector interfaces of the first optical module and of the electronic module are configured such that electrical and mechanical contact between the first optical module and the electronic module is realised simultaneously.
39. The luminaire assembly according to claim 35, wherein the tray of the first optical module further integrates at a second edge opposite the first edge a third electrical connector for interconnection with the respective electrical connector of a further adjacent module.
40. The luminaire assembly according to claim 35, wherein the first optical module comprises at least two printed circuit boards, each comprising a LED array, and at least two corresponding optical plates configured for generating a non-rotation symmetrical light beam, and wherein the first optical module is configured such that the at least two printed circuit boards and/or the at least two corresponding optical plates are mountable in at least two different positions in the first optical module.
41. A luminaire assembly, in particular for use in tunnels, comprising a plurality of interconnectable modules, said plurality of interconnectable modules comprising at least an electronic module and at least a first optical module, wherein the first optical module comprises at least one printed circuit board comprising at least one corresponding LED array, and at least one corresponding optical plate, wherein the electronic module comprises driver circuitry for driving the at least one LED array of the at least one printed circuit board, wherein the first optical module comprises a tray containing the printed circuit board and the optical plate, and an at least partially light transmitting cover closing said tray, said tray having a bottom face and at least a first edge between said cover and said bottom face, wherein the electronic module comprises a tray containing the driver circuitry and a cover closing said tray, said tray having a bottom face and at least a first edge between said cover and said bottom face, said tray of the first optical module comprising at least a first protrusion protruding outwardly out of the bottom face of said tray and integrating at the first edge a first electrical connector, said tray of the electronic module integrating at the first edge a second electrical connector, which is configured to cooperate with the first electrical connector to electrically interconnect the first optical module and the electronic module, wherein at least one of the first electrical connector and the second electrical connector is configured to bridge over at least one of the first edge of the first optical module and the first edge of the electronic module, wherein said first edge of the first optical module integrates a first mechanical connector interface, and wherein said first edge of the electronic module integrates a second mechanical connector interface configured to cooperate with the first mechanical connector interface to mechanically interconnect the first optical module and the electronic module.
42. The luminaire assembly according to claim 41, wherein the ratio between the height of the first protrusion and the height of the tray of the optical module is between 0.5 and 1.5.
43. The luminaire assembly according to claim 41, wherein the electrical connectors and the mechanical connector interfaces of the first optical module and of the electronic module are configured such that electrical and mechanical contact between the first optical module and the electronic module is realised simultaneously.
44. The luminaire assembly according to claim 41, wherein the first edge of the first optical module has a stepped profile such that the surface of bottom face of the tray is substantially smaller than the surface of the cover, and wherein the first mechanical connector interface comprises at least one abutment portion arranged on the stepped profile and configured for abutting against the second mechanical interface.
45. The luminaire assembly according to claim 44, wherein the at least one abutment portion extends on a plane perpendicular to the cover plane, and/or wherein the at least one abutment portion levels with an outer rim of the stepped profile, and/or wherein at least one abutment portion of the first mechanical connector interface is interconnected to the second mechanical interface using a bolt and a nut.
46. The luminaire assembly according to claim 41, wherein the tray of the first optical module has a passage extending from the first edge to a second edge opposite said first edge, said passage integrating the first protrusion, and wherein preferably the passage houses a second protrusion protruding outwardly out of the bottom face of said tray and integrating at the second edge a third electrical connector for interconnection with the respective electrical connector of a further adjacent module.
47. A luminaire assembly, in particular for use in tunnels, comprising a plurality of interconnectable modules, said plurality of interconnectable modules comprising at least an electronic module and at least a first optical module, wherein the first optical module comprises at least two printed circuit boards, each comprising a LED array, and at least two corresponding optical plates configured for generating a non-rotation symmetrical light beam, wherein the electronic module comprises driver circuitry for driving the LED arrays of the at least two printed circuit boards, wherein the first optical module comprises a tray containing the at least two printed circuit boards and at least two corresponding optical plates, and an at least partially light transmitting cover closing said tray, wherein the electronic module comprises a tray containing the driver circuitry and a cover closing said tray, and wherein the first optical module is configured such that the at least two printed circuit boards and/or the at least two corresponding optical plates are mountable in at least two different positions in the first optical module.
48. The luminaire assembly according to claim 47, wherein the at least two printed circuit boards and the at least two corresponding optical plates are shaped and dimensioned such that each a printed circuit board and/or an optical plate thereof can be rotated over 90° from a first position into a second position.
49. The luminaire assembly according to claim 47, wherein the optical plate is a lens plate having a lens array corresponding with the LED array of the corresponding printed circuit board, and/or wherein the optical plate has a length and a width, wherein the ratio between the length and the width is between 0.8 and 1.2, and/or wherein the LED array comprises at least nine LEDs and at least three rows.
50. The luminaire assembly according to claim 47, wherein the at least two circuit boards and/or the at least two optical plates are mountable in a first position for counter beam lighting in a tunnel and in a second position for symmetric lighting in a tunnel, and/or wherein the tray of the first optical module has a first edge comprising a first electrical connector, wherein the tray of the electronic module has an edge comprising a second electrical connector which is configured to cooperate with the first electrical connector, wherein the tray of the first optical module has a passage extending from the first electrical connector at the first edge to a second edge opposite said first edge, wherein the at least two printed circuit boards are arranged adjacent said passage, and wherein preferably the passage is a central passage, and wherein the at least two printed circuit boards are arranged on either side of said passage.
51. The luminaire assembly according to claim 35, comprising a further module which is selected from a sensor module, a signaling module, and an optical module, said further module having an electrical connector which is configured to be connected to a further electrical connector of the first optical module.
52. The luminaire assembly according to claim 35, wherein the first optical module comprises four printed circuit boards each comprising a LED array and four corresponding optical plates.
53. The luminaire assembly according to claim 35, wherein for each optical module, the tray is provided with an additional protrusion, provided with a plug for transmitting additional data between the modules.
54. The luminaire assembly according to claim 35, wherein the stepped profile comprises a plurality of steps.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0055] This and other aspects of the present invention will now be described in more detail, with reference to the appended drawings showing currently preferred embodiments of the invention. Like numbers refer to like features throughout the drawings
[0056]
[0057]
[0058]
[0059]
[0060]
[0061]
[0062]
[0063]
DESCRIPTION OF THE EMBODIMENTS
[0064] Preferred embodiments relate to outdoor luminaire assemblies. By outdoor luminaire, it is meant luminaires which are installed on roads, tunnels, industrial plants, campuses, parks, stadiums, airports, harbours, rail stations, cycle paths, pedestrian paths or in pedestrian zones, for example, and which can be used notably for the lighting of an outdoor area, such as roads and residential areas in the public domain, private parking areas, access roads to private building infrastructures, etc. Particular preferred embodiments relate to luminaire assemblies for tunnels, or bridges where the luminaire is supported, suspended with respect to a ceiling.
[0065]
[0066]
[0067] Also the required light distribution may be different in different parts of a tunnel. For example, some parts may require only a lighting of the road whilst other parts may require lighting of the walls. By suitably choosing the number, orientation and type of LED arrays and optical modules, this can be easily achieved.
[0068] The electronic module 100 is enabled to drive all the optical modules connected to it. In particular the electronic module 100 may comprise a driver for half of the LED arrays 215 of every optical module and another driver for the other half of the LED arrays 215 of every optical module in order to control the two sets of printed circuit boards independently.
[0069]
[0070]
[0071]
[0072] It is here further noted that, in
[0073] In addition
[0074]
[0075] Alternatively to the first embodiment, in the second embodiment, the edges of the optical module 200 have a stepped profile with multiple steps. The surface of the bottom face 231 of the tray 230 is like in the first embodiment substantially smaller than the surface of the cover 240. In addition in the second embodiment, the first edge 201 of the optical module also integrates a mechanical connector interface 260, 270 configured to cooperate with a mechanical connector interface 160, 170 on the electronic module.
[0076]
[0077] The protrusion 235 is integrated with a mechanical connector interface comprising two sub interfaces 260 and 270 with respective abutment portions 261 and 271 on either side of the electrical connector 250 in a symmetrical way. The abutment portions 261 and 271 may be configured for abutting against the mechanical connector interfaces 160 and 170 of the electronic module 100. Both abutment portions 261, 271 extend on a plane perpendicular to the cover plane and level with an outer rim of the stepped profile such that the modules 100 and 200 may be joined edge to edge by fixing the abutment portions of each module together. In this way the electrical connection and the mechanical connection of two adjacent modules may happen simultaneously, simplifying the mounting, and/or the maintenance. Preferably, the abutment portions 261, 271 each have a width wa measured parallel to the first edge of the tray 230 of the optical module 200, which is smaller than one fourth of a width w of the tray 230 measured parallel to the first edge thereof. The abutment portions 261 and 271 may further be used to fix the luminaire assembly mechanically to a ceiling or overhang, via additional fixing mechanisms not represented. Optionally the additional fixing mechanism may allow the first optical module to be slightly tilted in order to orient the emitted light. For example, the fixing mechanism may allow the first optical module to be either mounted horizontally or at an angle with a horizontal plane depending on the desired orientation of the emitted light beam. The abutment portions 261, 271 are further each connected on either side to the first edge 201 by two wing portions respectively 262, 263 and 272, 273. Elements 261-263 form the sub interface 260, which is integrated with the protrusion 235 and may further provide means 265 for connecting the module 200 to a ceiling or overhang as a failsafe measure via a hook or a chain. Elements 271-273 form the sub interface 270, which is integrated with the protrusion 235 and may further provide means 275 for connecting the module 200 to a ceiling or overhang as a failsafe measure via a hook or a chain.
[0078] Similarly the profile of the second edge 202 on the opposite side of the tray facing the additional optical module 200″ is stepped between the outer flange for abutting against the cover 240 and the bottom surface 231 of the tray. The protrusion 237 is integrated with a mechanical connector interface comprising two sub interfaces 280 and 290 with respective abutment portions 281 and 291 on either side of the electrical connector 255. The abutment portions 281 and 291 are configured for abutting against the respective mechanical connector interfaces 260 and 270 of the additional optical module 200′. Both abutment portions 281, 291 extend on a plane perpendicular to the cover plane and level with an outer rim of the stepped profile such that the modules 200 and 200′ may be joined edge to edge by fixing the abutment portions of each module together using a screw and a bolt. The abutment portions 281 and 291 may further be used to fix the luminaire assembly mechanically to a ceiling or overhang, via additional fixing mechanisms not represented. The abutment portions 281, 291 are each connected on either side to the second edge 201 by two wing portions respectively 282, 283 and 292, 293. Elements 281-283 form the sub interface 280, which is integrated with the protrusion 237 and further provides means 285 for connecting the module 200 to a ceiling or overhang as a failsafe measure via a hook or a chain. Elements 291-293 form the sub interface 290, which is integrated with the protrusion 237 and may further provide means 295 for connecting the module 200 to a ceiling or overhang as a failsafe measure via a hook or a chain.
[0079] Preferably, the protrusion 235 and/or 237 has a width wp measured parallel to the first edge 201 of the tray of the optical module 200, which is smaller than one third of a width w of the tray of the optical module 200, preferably smaller than one fourth of the width w of the optical modul200. Preferably, the width wp of the protrusion is larger than 5% of the width w of the tray of the optical module 200.
[0080]
[0081] As illustrated in
[0082]
[0083] The circuit boards are mounted along the longitudinal direction between the edge 201 and the opposite edge 202 to form a alignment of LEDs. The boards 210, 211 contain only a single row of LEDs, such that the corresponding optical plates 220, 221 also comprise a single row of lenses, configured for generating a non-rotation symmetrical light beam. The rows of lenses can be rotated by 180 degrees with respect to their respective circuit boards.
[0084] Whilst the principles of the invention have been set out above in connection with specific embodiments, it is understood that this description is merely made by way of example and not as a limitation of the scope of protection which is determined by the appended claims.