EP3721684B1 - Lighting system - Google Patents
Lighting system Download PDFInfo
- Publication number
- EP3721684B1 EP3721684B1 EP18871823.3A EP18871823A EP3721684B1 EP 3721684 B1 EP3721684 B1 EP 3721684B1 EP 18871823 A EP18871823 A EP 18871823A EP 3721684 B1 EP3721684 B1 EP 3721684B1
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- EP
- European Patent Office
- Prior art keywords
- control device
- lighting unit
- power
- lighting
- communication signal
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B47/00—Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
- H05B47/10—Controlling the light source
- H05B47/175—Controlling the light source by remote control
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B47/00—Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
- H05B47/10—Controlling the light source
- H05B47/175—Controlling the light source by remote control
- H05B47/19—Controlling the light source by remote control via wireless transmission
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21S—NON-PORTABLE LIGHTING DEVICES; SYSTEMS THEREOF; VEHICLE LIGHTING DEVICES SPECIALLY ADAPTED FOR VEHICLE EXTERIORS
- F21S9/00—Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply
- F21S9/02—Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator
- F21S9/022—Emergency lighting devices
Definitions
- the present invention relates in general to a lighting system comprising a plurality of lighting units, and provided with power backup facilities.
- Figure 1 is a block diagram schematically showing a lighting system 1 comprising a plurality of first lighting units 10 receiving power from a power line 2, 3.
- the power line 2, 3 typically carries mains powers which, in any case in Europe, can be characterized as 230 VAC @ 50 Hz.
- power backup facilities have been developed, taking over the power supply in case of failure of the mains power supply.
- power backup facilities may include an engine-driven generator or a unit based on batteries.
- the capacity of such backup facilities may vary, and the duration of the backup power depends on the one hand on this capacity and on the other hand on the power consumption by the connected power consumers.
- the power backup facilities may be associated with individual lighting units, may be associated with groups of lighting units, and may in fact even be common to an entire building.
- Figure 1 illustrates a possibility of a power backup unit 4 associated with the power line 2, 3.
- the original power line is indicated by reference numeral 2
- the power line behind the power backup unit 4 is indicated by reference numeral 3.
- the mains power fails in power line 2
- the mains power will remain to be available in power line 3 for some time, provided by backup unit 4.
- This power line 3 will be indicated as buffered power line.
- Figure 1 also shows outlet sockets 6, 7 of the power lines 2, 3, respectively.
- the figure shows that a first lighting unit 10 can be connected to an outlet socket 7 of the buffered power line 3.
- the figure also shows that a first lighting unit 10 can be connected to the non-buffered power line 2 via an individual backup unit 5 that is connected to an outlet socket 6 of the non-buffered power line 2.
- Multiple first lighting units 10 may be coupled to one single power backup unit 5, but this is not shown. In each case, the first lighting unit 10 receives buffered power.
- each first lighting unit 10 has its own dedicated power backup unit 5.
- the power backup unit 5 may be a separate unit, having its output coupled to the power input 11 of the first lighting unit 10. It is also possible that each first lighting unit 10 has its own integrated power backup unit
- the system enters a backup condition, in which power is continued to be supplied to the individual first lighting units 10 either by a common power backup unit 4 or by individual power backup units 5, or both.
- a backup condition in which power is continued to be supplied to the individual first lighting units 10 either by a common power backup unit 4 or by individual power backup units 5, or both.
- a power backup unit 4, 5 has power stored in its batteries up to a certain level, and power consumption will drain the stored power.
- power backup units are provided with sound alarms, causing users on the one hand to realize that a power failure has occurred and on the other hand to take steps for repair. But repair may take longer than expected, in any case longer than the time period bridged by the power capacity of the power backup units. In any case, it is desirable to extend the operating time of the power backup units as much as possible,
- An object of the present invention is to provide a solution to this problem.
- the invention is defined by the lighting system of claim 1. Further embodiments are defined by the dependent claims.
- a first aspect involves reducing the power consumption of the lighting units 10 when a power failure is detected.
- Another aspect involves detecting the occurrence of power failure
- Another aspect involves a prediction of an approaching power failure.
- Figure 1 is a block diagram schematically showing a lighting system comprising a plurality of lighting units receiving power from a power line.
- the lighting system 1 is provided with a communication system 30 in mesh topology, This means that each first lighting unit 10 comprises a communication device, schematically illustrated at reference numeral 13, for communicating with other lighting units of the system.
- the communication may be wired, via the power line or via separate communication lines, but the communication preferably is wireless.
- Each first lighting unit 10 forms a node the communication network. It is characteristic of a mesh topology that each node can communicate to each other node and can receive messages from each other node.
- Such communication systems are known per se, and mesh topology in general is known per se, therefore an elaborate explanation thereof will be omitted here.
- the individual nodes may have individual addresses, so that a specific communication from one node may be directed exclusively to a selected one of the other nodes, but in the context of the present invention communications do not discriminate between receivers and a communication is received by all other nodes, as far as allowed by external circumstances.
- Each first lighting unit 10 comprises a control device 20, for instance implemented as a microcontroller.
- the controller 20 has an input receiving messages from communication receiver 13, and has an output coupled to the one or more light sources 12 of the first lighting unit 10 to control the light output thereof. According to the invention, if the controller receives a signal indicating a power failure, it will control the light sources 12 to reduce the output level thereof. The output level may for instance be reduced to 10% of the nominal output level.
- FIG. 1 also shows a non-buffered lighting unit 110, also referred to as sensor lighting unit 110, connected directly to a non-buffered power line 2, i.e. without an intermediary power back up unit.
- the controller 120 of the non-buffered lighting unit 110 is adapted to, via the communication system 30, at intervals which may be regular or irregular, send a predefined okay signal. This signal will be received by the buffered first lighting units 10, signalling to the controllers 20 of those first lighting units 10 that the power supply is still okay.
- the non-buffered lighting unit 110 will stop operating due to lack of supply, and hence it can no longer generate the okay signal.
- the buffered first lighting units 10 will note the omission of okay signals received, and their respective control devices 20 will draw the conclusion that power has failed and will switch over to backup mode.
- the lighting system 1 preferably comprises two or more sensor lighting units 110, Even if one or more sensor lighting units fail, as long as there is still at least one sensor lighting unit properly functioning to generate the okay signal, proper functioning of the lighting system as a whole is ensured,
- each control device 20 has a repeat facility, meaning that this control device will also send the okay signal after having received an okay signal.
- each control device is preferably adapted to send an okay message at a maximum of once per predetermined time interval, which time interval may suitably be chosen between one and five minutes, for instance.
- the sensor lighting unit 110 is also suitably adapted to send its okay message only once per predetermined time interval.
- the okay signal from a sensor lighting unit 110 is blocked temporarily. It would be undesirable if this causes the system to respond by lowering the lighting level.
- This problem can be overcome by either one or both of the following features. On the one hand it is possible to have two or more sensor lighting units. On the other hand, it is possible that the first lighting Z units only respond to the omission or lack of okay signals after having missed a predetermined number of okay signals, for instance two, three, four, five or more of the expected okay signals.
- the delayed response by the individual control devices may be implemented in the form of a timer.
- a control device will have an associated timer, timing a time period of for instance ten minutes, which timer will be reset by the received okay signal, which may for instance be received every two minutes.
- the sensor lighting units 110 are adapted to monitor the input voltage, and to send a warning signal as soon as it is detected that the input voltage drops below a predetermined threshold. This serves to predict a possible power failure. In response to receiving such warning signal, the control devices 20 may decide to lower the light output level immediately, to have a quick and even pro-active response to power failures.
- the voltage drop may only be temporary, or the warning signal may have been sent erroneously, for instance due to failure of a sensor lighting unit 110.
- the control devices 20 may be adapted to wait until the next expected moment for an okay signal. Then, if no okay signal is received at the expected moment, the control devices 20 may conclude from the combination of these two facts, i.e. the warning signal followed by the lacking okay signal, that the chances are high that power has failed indeed, and switch over to reduced power consumption. If on the other hand, after having received such a warning signal, the next okay signal is received, the control devices know that they may ignore the warning signal because apparently the power has not failed.
- control devices 20 may be adapted to only switch over to reduced power consumption after having received said warning message from at least two or more, or even all, sensor 2. lighting units within a certain timeframe. If an okay signal is received, the control devices 20 may conclude that the power has been restored.
- the sensor lighting units 110 and the first lighting units 10 are implemented differently, specially adapted to their specific tasks. However, it is preferred that the sensor lighting units 110 and the first lighting units 10 are implemented identically, and are provided with a user-interface such as a simple switch for indicating whether the unit should operate as a first lighting unit or as a sensor lighting unit. While the first lighting units are allowed to repeat a communication signal, they are not permitted to initiate a communication signal, because they would continue doing that even after power failure for the simple reason that their power is buffered,
- a lighting system comprises buffered and non-buffered power lines.
- At least one sensor lighting unit 110 receives power from a non-buffered power line, and is adapted to transmit a communication signal either continuously or repetitively.
- At least one first lighting unit 10 receives power from a buffered power line, and is adapted to monitor receipt of the communication signal and to reduce output power if it does not receive the communication signal.
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- Engineering & Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Circuit Arrangement For Electric Light Sources In General (AREA)
Description
- The present invention relates in general to a lighting system comprising a plurality of lighting units, and provided with power backup facilities.
-
Figure 1 is a block diagram schematically showing a lighting system 1 comprising a plurality offirst lighting units 10 receiving power from apower line 2, 3. Thepower line 2, 3 typically carries mains powers which, in any case in Europe, can be characterized as 230 VAC @ 50 Hz. - One generally known problem is associated by power failure. For any reason, the mains power supply may fail, causing the lights to go out To mitigate this problem, power backup facilities have been developed, taking over the power supply in case of failure of the mains power supply. Depending on requirements, such power backup facilities may include an engine-driven generator or a unit based on batteries. The capacity of such backup facilities may vary, and the duration of the backup power depends on the one hand on this capacity and on the other hand on the power consumption by the connected power consumers.
- The power backup facilities may be associated with individual lighting units, may be associated with groups of lighting units, and may in fact even be common to an entire building.
-
Figure 1 illustrates a possibility of a power backup unit 4 associated with thepower line 2, 3. The original power line is indicated byreference numeral 2, whereas the power line behind the power backup unit 4 is indicated by reference numeral 3. In case the mains power fails inpower line 2, the mains power will remain to be available in power line 3 for some time, provided by backup unit 4. This power line 3 will be indicated as buffered power line. -
Figure 1 also showsoutlet sockets 6, 7 of thepower lines 2, 3, respectively. The figure shows that afirst lighting unit 10 can be connected to anoutlet socket 7 of the buffered power line 3. The figure also shows that afirst lighting unit 10 can be connected to the non-bufferedpower line 2 via an individual backup unit 5 that is connected to an outlet socket 6 of the non-bufferedpower line 2. Multiplefirst lighting units 10 may be coupled to one single power backup unit 5, but this is not shown. In each case, thefirst lighting unit 10 receives buffered power. - it is possible that each
first lighting unit 10 has its own dedicated power backup unit 5. The power backup unit 5 may be a separate unit, having its output coupled to thepower input 11 of thefirst lighting unit 10. It is also possible that eachfirst lighting unit 10 has its own integrated power backup unit - In any case, in the normal operating condition, mains power is available on
non-buffered power line 2 as well as on buffered power line 3, and therefore normal mains power is supplied to the variousfirst lighting units 10 of the lighting system 1 .Figure 1 only shows twofirst lighting units 10, but is to be understood that the lighting system 1 may include a vast plurality of first lighting units. - When a power failure occurs, the system enters a backup condition, in which power is continued to be supplied to the individual
first lighting units 10 either by a common power backup unit 4 or by individual power backup units 5, or both. This means that, in the rooms provided with these first lighting units, illumination is ensured to continue. But this continued illumination only lasts for a limited time. A power backup unit 4, 5 has power stored in its batteries up to a certain level, and power consumption will drain the stored power. In practice, power backup units are provided with sound alarms, causing users on the one hand to realize that a power failure has occurred and on the other hand to take steps for repair. But repair may take longer than expected, in any case longer than the time period bridged by the power capacity of the power backup units. In any case, it is desirable to extend the operating time of the power backup units as much as possible, - An object of the present invention is to provide a solution to this problem. The invention is defined by the lighting system of claim 1. Further embodiments are defined by the dependent claims.
- A first aspect involves reducing the power consumption of the
lighting units 10 when a power failure is detected. - Another aspect involves detecting the occurrence of power failure,
- Another aspect involves a prediction of an approaching power failure.
- These and other aspects, features and advantages of the present invention will be further explained by the following description of one or more preferred embodiments with reference to the drawing, in which same reference numerals indicate same or similar parts, and in which:
Figure 1 is a block diagram schematically showing a lighting system comprising a plurality of lighting units receiving power from a power line. - The lighting system 1 is provided with a communication system 30 in mesh topology, This means that each
first lighting unit 10 comprises a communication device, schematically illustrated atreference numeral 13, for communicating with other lighting units of the system. The communication may be wired, via the power line or via separate communication lines, but the communication preferably is wireless. Eachfirst lighting unit 10 forms a node the communication network. It is characteristic of a mesh topology that each node can communicate to each other node and can receive messages from each other node. - Such communication systems are known per se, and mesh topology in general is known per se, therefore an elaborate explanation thereof will be omitted here. It is noted that the individual nodes may have individual addresses, so that a specific communication from one node may be directed exclusively to a selected one of the other nodes, but in the context of the present invention communications do not discriminate between receivers and a communication is received by all other nodes, as far as allowed by external circumstances.
- Each
first lighting unit 10 comprises acontrol device 20, for instance implemented as a microcontroller. Thecontroller 20 has an input receiving messages fromcommunication receiver 13, and has an output coupled to the one ormore light sources 12 of thefirst lighting unit 10 to control the light output thereof. According to the invention, if the controller receives a signal indicating a power failure, it will control thelight sources 12 to reduce the output level thereof. The output level may for instance be reduced to 10% of the nominal output level. - It will be understood by persons skilled in the art that this will reduce power consumption by the
first lighting unit 10 and hence will extend the time that can be bridged by the power backup unit 4, 5. - An aspect of the present invention involves the detection of a power failure.
Figure 1 also shows a non-buffered lighting unit 110, also referred to as sensor lighting unit 110, connected directly to anon-buffered power line 2, i.e. without an intermediary power back up unit. Thecontroller 120 of the non-buffered lighting unit 110 is adapted to, via the communication system 30, at intervals which may be regular or irregular, send a predefined okay signal. This signal will be received by the bufferedfirst lighting units 10, signalling to thecontrollers 20 of thosefirst lighting units 10 that the power supply is still okay. As soon as power fails, the non-buffered lighting unit 110 will stop operating due to lack of supply, and hence it can no longer generate the okay signal, The bufferedfirst lighting units 10 will note the omission of okay signals received, and theirrespective control devices 20 will draw the conclusion that power has failed and will switch over to backup mode. - Depending on lay out and implementation of the lighting system, it may happen that communication signals are blocked and/or disturbed, so that signals are not received or are not understood. If this happens with the okay signal from the non-buffered lighting unit 110, which will also be indicated as sensor unit, it may happen that lights are reduced without proper cause. It is also possible that the non-buffered lighting unit 110 does not send any signals due to failure of the non-buffered lighting Z unit 110. In order to reduce the risk of this to happen, the lighting system 1 preferably comprises two or more sensor lighting units 110, Even if one or more sensor lighting units fail, as long as there is still at least one sensor lighting unit properly functioning to generate the okay signal, proper functioning of the lighting system as a whole is ensured,
- It is also possible that the signal from a certain sensor lighting unit 110 is not received by all
first lighting units 10, because of distance between these units and/or because of walls or other objects preventing the signal from the sensor lighting unit 110 from reaching thefirst lighting unit 10. For such cases, it may be useful if eachcontrol device 20 has a repeat facility, meaning that this control device will also send the okay signal after having received an okay signal. In order to prevent an avalanche of okay messages caused by control devices repeating each and every received okay message, each control device is preferably adapted to send an okay message at a maximum of once per predetermined time interval, which time interval may suitably be chosen between one and five minutes, for instance. Likewise, the sensor lighting unit 110 is also suitably adapted to send its okay message only once per predetermined time interval. - it may happen that the okay signal from a sensor lighting unit 110 is blocked temporarily. It would be undesirable if this causes the system to respond by lowering the lighting level. This problem can be overcome by either one or both of the following features. On the one hand it is possible to have two or more sensor lighting units. On the other hand, it is possible that the first lighting Z units only respond to the omission or lack of okay signals after having missed a predetermined number of okay signals, for instance two, three, four, five or more of the expected okay signals.
- In practice, the delayed response by the individual control devices may be implemented in the form of a timer. A control device will have an associated timer, timing a time period of for instance ten minutes, which timer will be reset by the received okay signal, which may for instance be received every two minutes.
- All in all, this will reduce the chances of the system erroneously lowering the light output level if no power failure has occurred, but it delays the response time between an actual power failure and the response action of lowering the light output level. In order to provide a further improvement of system response in this respect, in a non-claimed embodiment of the lighting system the sensor lighting units 110 are adapted to monitor the input voltage, and to send a warning signal as soon as it is detected that the input voltage drops below a predetermined threshold. This serves to predict a possible power failure. In response to receiving such warning signal, the
control devices 20 may decide to lower the light output level immediately, to have a quick and even pro-active response to power failures. - However, the voltage drop may only be temporary, or the warning signal may have been sent erroneously, for instance due to failure of a sensor lighting unit 110. To reduce the probability of the system erroneously lowering the light output level, the
control devices 20 may be adapted to wait until the next expected moment for an okay signal. Then, if no okay signal is received at the expected moment, thecontrol devices 20 may conclude from the combination of these two facts, i.e. the warning signal followed by the lacking okay signal, that the chances are high that power has failed indeed, and switch over to reduced power consumption. If on the other hand, after having received such a warning signal, the next okay signal is received, the control devices know that they may ignore the warning signal because apparently the power has not failed. - In an alternative, non-claimed, embodiment, there are two or more sensor lighting units. If a power drop actually occurs, this should be sensed by all sensor lighting units, and they should all send their respective warning signals. In such non-claimed embodiment, the
control devices 20 may be adapted to only switch over to reduced power consumption after having received said warning message from at least two or more, or even all,sensor 2. lighting units within a certain timeframe. If an okay signal is received, thecontrol devices 20 may conclude that the power has been restored. - It is noted that the sensor lighting units 110 and the
first lighting units 10 are implemented differently, specially adapted to their specific tasks. However, it is preferred that the sensor lighting units 110 and thefirst lighting units 10 are implemented identically, and are provided with a user-interface such as a simple switch for indicating whether the unit should operate as a first lighting unit or as a sensor lighting unit. While the first lighting units are allowed to repeat a communication signal, they are not permitted to initiate a communication signal, because they would continue doing that even after power failure for the simple reason that their power is buffered, - Summarizing, a lighting system comprises buffered and non-buffered power lines. At least one sensor lighting unit 110 receives power from a non-buffered power line, and is adapted to transmit a communication signal either continuously or repetitively. At least one
first lighting unit 10 receives power from a buffered power line, and is adapted to monitor receipt of the communication signal and to reduce output power if it does not receive the communication signal. - It should be clear to a person skilled in the art that the present invention is not limited to the exemplary embodiments discussed above, but that several variations and modifications are possible within the protective scope of the invention as defined in the appending claims. For instance, two or more functions may be performed by one single entity, unit or processor. Any reference signs in a claim should not be construed as limiting the scope of that claim.
- In the above, the present invention has been explained with reference to block diagrams, which illustrate functional blocks of the device according to the present invention. It is to be understood that one or more of these functional blocks may be implemented in hardware, where the function of such functional block is performed by individual hardware components, but it is also possible that one or more of these functional blocks are implemented in software, so that the function of such functional block is performed by one or more program lines of a computer program or a programmable device such as a microprocessor, microcontroller, digital signal processor, etc.
Claims (6)
- Lighting system (1), comprising:a mains power line (2);at least one power backup unit (4, 5);a buffered power line (3, 3') attached to an output of the power backup unit (4, 5);the lighting system (1) further comprising:
at least one first lighting unit (10) comprising:a power input (11);a communication input (13);at least one light source (12);a control device (20) coupled to the communication input (13) and having an output coupled to the at least one light source (12) for controlling the at least one light source (12);wherein the control device (20) is adapted to monitor the communication input (13) for the receipt of a communication signal;wherein the control device (20) has at least two operation modes, namely a normal operation mode and a reduced power operation mode;wherein the control device (20) is adapted, in response to receiving the communication signal, to operate in the normal operation mode in which it controls the at least one light source (12) to produce a normal light output;and wherein the control device (20) is adapted, in response to determining that the communication signal is absent, to operate in the reduced power operation mode in which it controls the at least one light source (12) to produce a reduced light output in order to save energy;characterized in that:the at least one power backup unit (4, 5) comprises an input connected to the mains power line (2) for receiving mains power;the lighting system (1) further comprises at least one sensor lighting unit (110) comprising:a power input (111);a communication output (113);at least one light source (112);a control device (120) coupled to the communication output (113) and adapted to transmit the communication signal, either continuously or at regular time intervals;wherein the power input (11) of the at least one first lighting unit (10) is coupled to the buffered power line (3, 3')wherein the power input (111) of the at least one sensor lighting unit (110) is coupled to the mains power line (2), andwherein the at least one sensor lighting unit (110) is adapted to stop operating and the control device (120) of the at least one sensor lighting unit (110) is adapted to no longer transmit the communication signal if there is a lack of supply from the mains power line (2). - Lighting system according to claim 1, wherein the control device (120) of the at least one sensor lighting unit (110) is configured to continuously transmit the communication signal, and wherein the control device (20) of the at least one first lighting unit (10) is adapted to monitor the communication input (13) at regular time intervals and to maintain its operational mode in between the monitoring time intervals.
- Lighting system according to claim 1 wherein the control device (120) of the at least one sensor lighting unit (110) is configured to transmit the communication signal at regular time intervals, and wherein the control device (20) of the at least one first lighting unit (10) is adapted to monitor the communication input (13) continuously.
- Lighting system according to any of the previous claims, wherein the control device (20) of the at least one first lighting unit (10) is provided with a timer for timing a predetermined delay interval, wherein the control device (20) of the at least one first lighting unit (10) is adapted to reset the timer each time the communication signal is received, and wherein the control device (20) of the at least one first lighting unit (10) is adapted to switch from the normal operation mode to the reduced power operation mode when the timer value reaches said delay interval.
- Lighting system according to any of the previous claims, wherein the control device (20) of the at least one first lighting unit (10) is provided with a repeat facility for repeating said communication signal, and wherein the control device (20) of the at least one first lighting unit (10) is adapted to repeat the communication signal in response to receiving the communication signal.
- Lighting system according to claim 5, wherein the control device (20) of the at least one first lighting unit (10) is adapted to repeat the communication signal at a maximum of once per predetermined time interval.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
NL1042668A NL1042668B1 (en) | 2017-12-05 | 2017-12-05 | Lighting system |
PCT/NL2018/000023 WO2019135673A1 (en) | 2017-12-05 | 2018-12-05 | Lighting system |
Publications (2)
Publication Number | Publication Date |
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EP3721684A1 EP3721684A1 (en) | 2020-10-14 |
EP3721684B1 true EP3721684B1 (en) | 2022-06-29 |
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Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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EP18871823.3A Active EP3721684B1 (en) | 2017-12-05 | 2018-12-05 | Lighting system |
Country Status (3)
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EP (1) | EP3721684B1 (en) |
NL (1) | NL1042668B1 (en) |
WO (1) | WO2019135673A1 (en) |
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CN116528437B (en) * | 2023-07-03 | 2023-09-22 | 珠海数字动力科技股份有限公司 | Intelligent lighting networking linkage control method for indoor parking lot |
Family Cites Families (5)
Publication number | Priority date | Publication date | Assignee | Title |
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US5214352A (en) * | 1991-06-07 | 1993-05-25 | Computer Power Inc. | Light dimming system for emergency operation |
TWM399989U (en) * | 2010-03-26 | 2011-03-11 | Digi Triumph Technology Inc | UPS detection device |
DE102010003799A1 (en) * | 2010-04-09 | 2011-12-15 | Tridonic Ag | Modular LED lighting system with emergency light function |
NL2012930B1 (en) * | 2014-06-02 | 2016-06-09 | Eldolab Holding Bv | Light unit driver system. |
EP3338403B1 (en) * | 2015-08-20 | 2018-12-05 | Philips Lighting Holding B.V. | Power source equipment device for a power of ethernet lighting system |
-
2017
- 2017-12-05 NL NL1042668A patent/NL1042668B1/en active
-
2018
- 2018-12-05 EP EP18871823.3A patent/EP3721684B1/en active Active
- 2018-12-05 WO PCT/NL2018/000023 patent/WO2019135673A1/en unknown
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Publication number | Publication date |
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EP3721684A1 (en) | 2020-10-14 |
NL1042668B1 (en) | 2019-06-13 |
WO2019135673A1 (en) | 2019-07-11 |
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