LIGHT TRUNKING SYSTEM HAVING DATA TRANSMISSION FUNCTION
20220329286 · 2022-10-13
Assignee
Inventors
Cpc classification
F21V23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a light trunking system, comprising: at least one trunking rail (6) for fastening components (7 . . . 13) of the light trunking system (1) to the trunking rail (6); electrical lines (L3, L4), which run in the trunking rail (6) and can be contacted by the components (7 . . . 13) in order to supply power to the components (7 . . . 13); a data terminal (D1, D2) for receiving data; and a first adapter (16), which is connected to the electrical lines (L3, L4) and to the data terminal and is designed to transmit data received by the data terminal (D1, D2) to a second adapter (17) via the electrical lines (L3, L4) by means of a modulation method.
Claims
1. A light trunking system (1), comprising: at least one trunking rail (6) for fastening components (7 . . . 13) of the light trunking system (1) to the trunking rail (6); electrical lines (L3, L4), which run in the trunking rail (6) and can be contacted by the components (7 . . . 13) in order to supply power to the components (7 . . . 13); a data terminal (D1, D2) for receiving data; and a first adapter (16), which is connected to the electrical lines (L3, L4) and to the data terminal and is designed to transmit data received by the data terminal (D1, D2) to a second adapter (17) via the electrical lines (L3, L4) by means of a modulation method.
2. The light trunking system according to claim 1, wherein the electrical lines (L3, L4) are designed as busbars, the light trunking system (1) has a busbar feeder (15) for feeding power for the components (7 . . . 13) into the busbars, and the first adapter (16) is integrated into the busbar feeder (15).
3. The light trunking system according to claim 2, wherein the data terminal (D1, D2) is integrated into the busbar feeder (15).
4. The light trunking system according to claim 1, wherein the first adapter (16) is a powerline adapter.
5. The light trunking system according to claim 1, wherein the data terminal (D1, D2) is an Ethernet connection or a WLAN connection.
6. The light trunking system according to claim 1, wherein the electrical lines (L3, L4) in the trunking rail (6) are arranged such that they can be contacted by the components (7 . . . 13) at any location along the trunking rail (6).
7. A component (13, 19) for a trunking rail (6) and a light trunking system having electrical lines (L3, L4) that run in the trunking rail (6) and can be contacted by the components (13, 19) in order to supply power to the component (19), comprising: means for fastening the component (13, 19) to the trunking rail (6), means (21) for contacting the electrical lines (L3, L4), and a second adapter (17, 22), which is connected to the electrical lines (L3, L4) and is designed to transmit data via the electrical lines (L3, L4) to a first adapter (16) by means of a modulation method and/or to receive data transmitted via the electrical lines (L3, L4) by means of a demodulation method.
8. The component according to claim 7, comprising: an interface (18, 33) for wired or wireless input of the data to be transmitted by the second adapter or output of the data received from the second adapter.
9. The component according to claim 8, wherein the interface (18, 33) is designed to supply power to a device connected thereto.
10. The component according to claim 7, comprising: a beam element (20) on which at least the means for fastening the component to the trunking rail (6) and the second adapter (17, 22) are attached and which at least partially seals off an opening in the trunking rail (6) when the component (13, 19) is fastened to the trunking rail (6).
11. A method according to claim 10, wherein the second adapter (17, 22) is arranged on the beam element (20) in such a way that it is located inside the trunking rail (6) when the component (13, 19) is fastened to the trunking rail (6), the second adapter (17, 22) has at least one indicator light (31) that indicates a specific state of the second adapter (17, 22) or a specific status of the connection between the first adapter (16) and the second adapter (17, 22), and the component (13, 19) has a light guide (35) for forwarding the light of the indicator light (31), wherein the light guide (35) leads from the indicator light (31) to an outer side of the beam element (20).
12. The component according to claim 10, wherein the second adapter (17, 22) is designed to transmit the data in encrypted form or to receive and decrypt encrypted data, a pushbutton (32, 36) connected to the second adapter (17, 22) is arranged on the beam element (20), by means of which pushbutton a person can activate or confirm a request for an encrypted data transmission between the first adapter (16) and the second adapter (17, 22), and/or a code that can be read by a machine and/or a person and by means of which the request can be activated or confirmed is applied at the beam element (20).
13. The component according to claim 7, having a control device that is designed to control the component (13, 19) based upon the received data, and/or to generate a control signal for another component (13, 19) of the light trunking system based upon the received data.
14. A light trunking system (1), comprising: the trunking rail (6), electrical lines (L3, L4), and at least one component (13, 19) according to claim 8.
15. The light trunking system (1) according to claim 14, comprising: the first adapter (16) and a data terminal (D1, D2), wherein the first adapter (16) is connected to the electrical lines (L3, L4) and the data terminal (D1, D2) and is configured to transmit data, received from the data terminal (D1, D2), by means of the modulation method via the electrical lines (L3, L4) to the second adapter (17, 22).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The invention is explained in more detail in the following using the accompanying drawings. The following are shown:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] Components with the same functions are identified by the same reference signs in the figures.
DETAILED DESCRIPTION
[0033]
[0034] Electrical lines (not shown) designed as busbars run in the trunking rail 6 and contact the plugged-in and fixed components 7 . . . 13, and supply power to the components 7 . . . 13. Data and control signals are also transmitted via the busbars that are contacted by the components 7 . . . 13. The power and the data and control signals are fed into the busbars by means of a busbar feeder (not shown).
[0035] The luminaires 7 . . . 10 are switched on when the presence of a person is detected by the presence sensors 11, 12. The radio network module 13 serves to provide Internet access for the WLAN-enabled device 14 located underneath the light trunking system 1 and is a wireless access point, which functions as an interface for wireless communication devices.
[0036]
[0037] The luminaires 7 . . . 10 and the presence sensors 11, 12 contact the busbars L1, L2, L3, L4 or are detachably connected thereto, wherein they are supplied with power via the busbars L3, L4 and receive control signals or transmit sensor signals via the busbars L1, L2. In the example shown, the radio network module 13 is connected only to the busbars L3, L4 and has a second powerline adapter 17 and a transmitting-and-receiving unit 18.
[0038] The first powerline adapter 16 is connected to the data terminals D1, D2 and modulates the data signal received at these terminals to the mains voltage that is applied to the mains connections L, N and conducted to the busbars L3, L4 for data transmission. The data signal is modulated by the transmitting first powerline adapter 16 in the high-frequency range, e.g., from 2 MHz to 68 MHz, onto the busbars L3, L4. The second powerline adapter 17 contained in the radio network module 13 and connected to the busbars L3, L4 demodulates the data signal modulated on the mains voltage and outputs it to the transmitting-and-receiving unit 18, which transmits it to the device 14 via a WLAN connection. A data signal transmitted by the device 14 via the WLAN connection is received by the transmitting-and-receiving unit 18 and output to the second powerline adapter 17, which modulates it to the mains voltage and transmits it to the first powerline adapter 16 for a demodulation and output at the data terminals D1, D2. Alternatively, the data signal can be transmitted to/from the device 14 by means of a Bluetooth radio method.
[0039]
[0040] When fixed in the trunking rail 6, the components 7 . . . 13 contact the respective busbars L1, L2, L3, L4—for example, by means of a rotational tap. The radio network module 13 can be designed such that, when it is fixed to the trunking rail 6, the second powerline adapter 17 is also arranged within the trunking rail 6 or is shielded by the trunking rail 6. Thus, the powerline data transmission takes place completely within the shielding trunking rail 6. The data signal is then transmitted via a line to the transmitting-and-receiving unit 18 located outside the trunking rail 6.
[0041]
[0042] Further components having a powerline adapter can be connected to the trunking rail 6 at any of several locations, wherein each adapter communicates with every other with the same authorization. Alternatively, a specific adapter, e.g., the first powerline adapter 16, can be assigned the role of central coordinator, which synchronizes the data traffic and divides the available total bandwidth dynamically among all subscribers in the network.
[0043] A component provided with a powerline adapter can, instead of the transmitting-and-receiving unit 18, also have an Ethernet connection or a USB connection for wired output of the data signal to an Internet-enabled device. Alternatively or additionally, one of the luminaires 7 . . . 10 can have a powerline adapter, and the received data signal can be transmitted from the luminaire 7 . . . 10 to a receiving device by means of Li-Fi—a method of optical data transmission. For this purpose, at least one light-emitting diode corresponding to the data to be transmitted is switched on and off very quickly in the luminaire 7 . . . 10 by a modulator, so that the human eye does not perceive it. A photodiode on the receiving device picks up the light and converts it into electrical pulses.
[0044] If the data signals to be transmitted by means of powerline via the busbars L3, L4 are image and/or audio signals, one component can have connections, such as USB, pawl socket, VGA, and/or HDMI, for outputting or inputting the image or audio signals. Alternatively or additionally, the component can have a monitor, a loudspeaker, a camera, and/or a microphone that output the received image/audio signal or generate the image/audio signal to be transmitted.
[0045] Alternatively, the received data signal can be used to control and/or monitor the component itself, so that no control signals have to be transmitted for the component via the busbars L1, L2, and the trunking rail 6 has to have only the two busbars L3 and L4, or the busbars L1, L2 can be used for other applications, such as supplying power for safety lights. For this purpose, the component has a powerline adapter and a microcontroller or another control device, which control the component on the basis of the data signal received by the powerline adapter. Alternatively or additionally, the component can generate control signals for another component on the basis of the data signal received by the powerline adapter and transmit the generated control signals to the other component by means of a radio or infrared signal connection, in order to control said other component.
[0046] The light trunking system 1 can have several trunking rails 6 that are mechanically and electrically connected to one another by means of plug connectors/switches.
[0047] The radio network module 13 is an example of a component according to the present invention that, with its second powerline adapter 17, can transmit and/or receive the data signal via the two busbars L3 and L4. In the example shown in
[0048]
[0049] The rotational tap 21 fastened to the beam element 20 is, by means of a screw 24 which is accessible from the outside, rotatable about the x-axis shown in
[0050] A data signal transmitted via the busbars or the mains connections is received by the powerline adapter 22, which is connected to the contact elements 25 . . . 27 by means of three lines 28 . . . 30 and is attached to the beam element 20. The powerline adapter 22 is designed as a circuit board and, in addition to the known elements for the modulation and demodulation of the data signal to the mains voltage, has an indicator light (LED) 31, a pushbutton 32, and a data terminal (Ethernet connection) 33 at which a Cat line 34 running through the beam element 20 to the camera 23 is plugged in.
[0051] The indicator light 31 indicates the “connected” or “connection request” status of the connection between the first powerline adapter 16 and the powerline adapter 22 by means of different flashing frequencies or a permanent light. In order for the light of the indicator light 31 located on the circuit board to be visible to a person, the component 19 has a light guide 35, which guides the light from the indicator light 31 to the outside through the beam element 20. Further indicator lights can be located on the circuit board and display a state of the powerline adapter 22, such as “supplied with mains voltage,” “overheating,” or another status, and its light is guided to the outside by means of light guides.
[0052] The data are transmitted in encrypted form between the first powerline adapter 16 and the powerline adapter 22, wherein a request for the establishment of an encrypted data transmission between the first powerline adapter 16 and the powerline adapter 22 can be triggered or confirmed by means of the pushbutton 32. For this purpose, the pushbutton 32 located on the circuit board can be actuated from the outside by means of an actuating pin 38 leading through the beam element 20.
[0053] After a connection is successfully established, the powerline adapter 22 transmits the image signal received via the Cat line 34 by the camera 23 to the first powerline adapter 16, wherein power is supplied to the camera 23 via the Cat line 34 or the data terminal (PoE).