The invention relates to a mesh node for a communication mesh network structure of a networked control system, particularly an infrared mesh node for a communication mesh network infrastructure of a lighting system such as a green house lighting system.
Networked control systems are a ubiquitous trend in commercial, industrial and institutional business markets and also in consumer markets. An example of a networked control system is a networked lighting system with dozens of light sources. A very complex networked lighting system is a green house lighting system, which may comprises for example about 40000 lamps, which are placed in a grid kind of fashion and need to be managed in a flexible way. For example, lamps or clusters of lamps of such a lighting system should be individually controllable in order to create local light effects. Ideally, each lamp of such a lighting system can be individually controlled. However, this requires a complex installation such as a complex and costly cabling for controlling the lamps. W02004/075599A1 discloses a data transmission network comprising a mesh of nodes having optical transmitters and receivers. The transmission is preferably by modulated optical carriers, using laser diodes to transmit between nodes.
It is an object of the invention to provide a mesh node for a communication mesh network structure of a networked control system, which may be implemented with a minimum of technical effort and is suitable for networked control system with up to thousands of nodes.
The object is solved by the subject matter of the independent claims. Further embodiments are shown by the dependent claims.
A basic idea of the invention is to implement a mesh node with a technical simple construction in the form of base with optical transmitters and optical receivers arranged on that base. According to an embodiment of the invention, the base may be a disk like shaped base, on which the optical transmitters may be arranged on one side of the disk-like shaped base, while on the other side of the disk-like shaped base optical receivers may be arranged. This construction allows implementing a communication mesh network structure for example for controlling a complex networked lighting system such as it may be applied in a green house, in which thousands of lamps are provided for creating assimilation light support, which may be controlled on a local basis with the communication mesh network structure.
An embodiment of the invention provides a mesh node for a communication mesh network structure of a networked control system comprising
a base,
optical transmitters arranged on the base such that they can transmit data to optical receivers of other mesh nodes,
optical receivers arranged on the base such that they can receive data from optical transmitters of other mesh nodes,
a processor for interpreting data received via the optical receivers from other mesh nodes and routing data to other mesh nodes via the optical transmitters.
The base may be a Printed Circuit Board (PCB) containing the wiring between the optical transmitters, optical receivers and the processor. Thus, the base serves not only as carrier for the optical receivers and transmitters and the processor, but also can provide a wiring for the electronic components of the mesh node.
Particularly, the optical transmitters and optical receivers may be adapted to transmit or receive data via infrared. Using the infrared spectrum for optical communication has the advantage that it is invisible and less interference-prone to visible light.
The sensitivity of the optical transmitters and optical receivers may be directional such that every transmitter and every receiver can communicate with one receiver or transmitter of another neighbored mesh node. A directional sensitivity has the advantage that an efficient optical communication in the network may be established with a minimum of distortion and interference. Also, the transmission medium does not need to be shared like in a radio approach between two mesh nodes.
The processor may be configured to route received data to other mesh nodes according to a predetermined routing scheme. For example, the processor may be configured to select the shortest routing path through the network.
Furthermore, the mesh node may comprise eight optical transmitters and eight optical receivers, wherein the optical transmitters are equally arranged at the boundary area of one side of the base and the optical receivers are arranged at the boundary area of the other side of the base such that every optical receiver matches with an optical transmitter on the opposite side of the base. This embodiment of the mesh node allows a communication also in diagonal directions in the communication mesh network structure of a networked control system.
Particularly, the optical transmitters and optical receivers may be implemented by means of infrared LEDs and infrared detectors designed for infrared remote control devices.
The mesh node may further comprise a control interface for a controllable lamp, and wherein the processor is configured to control a controllable lamp via the control interface depending on the interpreting of data received via the optical receivers from other mesh nodes.
The base of the mesh node may be shaped like a disk.
The optical transmitters may be arranged on one side of the disk-like shaped base and the optical receivers may be arranged on the other side of the disk-like shaped base.
A further embodiment of the invention relates to a greenhouse lighting system comprising several lamps being arranged in a grid, wherein each lamp comprises a mesh node according to the invention and as described above, and the mesh nodes are arranged such that they form a communication mesh network structure, in which control signals for the lamps can be routed through the mesh network structure via optical communication between the mesh nodes.
These and other aspects of the invention will be apparent from and elucidated with reference to the embodiments described hereinafter.
The invention will be described in more detail hereinafter with reference to exemplary embodiments. However, the invention is not limited to these exemplary embodiments.
In the following, functionally similar or identical elements may have the same reference numerals.
In the following, embodiments of the invention will be described by means of a lighting infrastructure for a greenhouse. Such lighting infrastructures, consisting of typical 40000 lamp units, placed in a grid kind of fashion, need to be managed in a flexible way. The mesh node according to the invention is lean and may be implemented at very low costs, which is an important factor for lighting infrastructures with thousand of lamp units and mesh nodes. Furthermore, a communication mesh network structure comprising the inventive mesh node comprises a lot of redundancy because the embodiment of the inventive mesh node as described in the following can communicate with eight other mesh nodes. This enables a very flexible routing of messages through the communication mesh network structure. Lamp units can be addressed and managed by means of the inventive mesh nodes because they all wirelessly communicate with each other. A main benefit of the embodiment of the inventive mesh node as described in the following is the directional effect of having eight narrow beam form shaped communication channels provided by the IR LEDs of the mesh nodes. The transmission medium does not need to be shared like in a radio approach between two nodes.
In a greenhouse, every lamp may be equipped with a mesh node 12 like that shown in
The invention can be applied in any networked control system, particularly in a complex lighting system with a plurality of light sources, for example a lighting system installed in a green house. The invention is particularly applicable for creating a large communication mesh network structure with a small technical effort and at low costs.
At least some of the functionality of the invention may be performed by hard- or software. In case of an implementation in software, a single or multiple standard microprocessors or microcontrollers may be used to process a single or multiple algorithms implementing the invention.
It should be noted that the word “comprise” does not exclude other elements or steps, and that the word “a” or “an” does not exclude a plurality. Furthermore, any reference signs in the claims shall not be construed as limiting the scope of the invention.
Number | Date | Country | Kind |
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09156259.5 | Mar 2009 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB2010/051195 | 3/19/2010 | WO | 00 | 12/14/2011 |