EP3657459B1 - Procédé d'installation d'un module de commande destiné à la commande sans fil d'un actionneur intégré dans un réseau radio d'installation du bâtiment - Google Patents

Procédé d'installation d'un module de commande destiné à la commande sans fil d'un actionneur intégré dans un réseau radio d'installation du bâtiment Download PDF

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Publication number
EP3657459B1
EP3657459B1 EP19205772.7A EP19205772A EP3657459B1 EP 3657459 B1 EP3657459 B1 EP 3657459B1 EP 19205772 A EP19205772 A EP 19205772A EP 3657459 B1 EP3657459 B1 EP 3657459B1
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EP
European Patent Office
Prior art keywords
control module
radio communication
communication interface
actuator
operating element
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EP19205772.7A
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German (de)
English (en)
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EP3657459A1 (fr
Inventor
Marc Sangermann
Dr.-Ing. Stefan Neuhaus
Matthias Donat
Stephan Steins
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Insta GmbH
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Insta GmbH
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    • GPHYSICS
    • G08SIGNALLING
    • G08CTRANSMISSION SYSTEMS FOR MEASURED VALUES, CONTROL OR SIMILAR SIGNALS
    • G08C17/00Arrangements for transmitting signals characterised by the use of a wireless electrical link
    • G08C17/02Arrangements for transmitting signals characterised by the use of a wireless electrical link using a radio link
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/175Controlling the light source by remote control
    • H05B47/19Controlling the light source by remote control via wireless transmission
    • GPHYSICS
    • G08SIGNALLING
    • G08CTRANSMISSION SYSTEMS FOR MEASURED VALUES, CONTROL OR SIMILAR SIGNALS
    • G08C2201/00Transmission systems of control signals via wireless link
    • G08C2201/20Binding and programming of remote control devices

Definitions

  • the invention relates to a method for setting up a control module according to the preamble of claim 1.
  • Building installation radio networks are known from the prior art. In such a building installation radio network, technical building installations are organized wirelessly as actuators. Actuators can be lamps, lights or blinds, for example. Building technology installations that can be integrated into such a building installation radio network are also referred to as "smart products". Smart products as actuators are supplied with energy regardless of their switching status. These products have a control module with a radio receiver, via which the actuator is controlled depending on a received command. Control is therefore carried out via the building installation network.
  • a building installation radio network includes a base station for setting up and managing the subscribers involved.
  • Such administration includes tasks such as assigning addresses, granting access authorizations, etc.
  • the base station can also control the actuators integrated as participants in a wireless building installation network.
  • the base station has means to be connected to an external device, for example a smartphone, tablet or the like, which can process user input. These user inputs are transmitted to the base station, which then controls the desired actuator or actuators.
  • the communication path for establishing a connection between the base station and smartphone, tablet or the like is required anyway to set up the building installation radio network.
  • This type of control is used in particular in proprietary building installation radio networks.
  • Such a building installation radio network is a network with or in which communication can only take place via special radio communication interfaces geared towards the purpose of a building installation radio network.
  • control modules are integrated as sensors in the building installation radio network.
  • a control element that can be operated by the user typically a switch or button, is assigned to the control module.
  • the control module sends a control command to an actuator assigned to the control module in the building installation radio network. Since the assignment of the control module to an actuator is problematic due to the use of dynamic addresses in a building installation radio network, such control modules are often matched by the manufacturer to a specific actuator by means of a physical address. On the user side, this control element can only be used for this one actuator, which is mostly acquired together with the control module. Even after the initial installation, the user is happy to adapt assignments between the control module and actuators to changing needs by changing such assignments or expanding them as required. However, this is not possible or only possible with difficulty in this embodiment.
  • An alternative way of linking such a control module with the actuator integrated in a building installation network is to use mechanical contacts that the user can establish via bridges and / or switches. Alternatively, there are selector switches in various designs that are attached directly to the control module.
  • control module sends a manufacturer-specific command to the base station controlling the building installation radio network, whereupon the base station processes this command and forwards it to the corresponding actuator.
  • the same communication path is used here as the one described above between the base station and an operating device external to the building installation radio network, such as a smartphone, tablet or the like.
  • the base station acts as a converter.
  • US 2011/0208359 A1 discloses a building installation system in which a control module communicates with a first radio communication interface with the building installation network and communicates with an installation device via a second interface, which can be designed as Bluetooth.
  • US 2018/0310387 A1 describes a basically similar system.
  • the invention is based on the object of proposing a control module with which a simplified, individual and, in particular, manufacturer-independent device is possible, so that with this control module in principle any subscribers organized in the building installation radio network are controlled can be. Furthermore, a set-up method for setting up such a control module is to be proposed. In addition, it is the object of the invention to propose a building installation radio network with which the disadvantages shown in relation to the prior art are avoided.
  • the control module is designed to be integrated into a building installation radio network.
  • at least one controllable actuator is integrated into the building installation radio network.
  • Such an actuator can be an electric blind, a light or a lamp, typically designed as a so-called smart product.
  • the control module and the controllable actuator are participants in the building installation radio network.
  • the building installation radio network comprises a base station for administrative tasks, these being tasks such as the management of subscribers and addresses, any keys, etc.
  • One of the actuators can definitely take on the task of a base station.
  • the building installation radio network is based on a low data rate network, for example a ZigBee® network (ZigBee® is a registered trademark of the ZigBee Alliance).
  • ZigBee® is a registered trademark of the ZigBee Alliance.
  • Such networks are characterized by the fact that only a small amount of data is transmitted and the associated subscribers only need a small amount of energy due to a corresponding implementation of the radio interface.
  • the control module comprises a power supply with a power supply connection that can be connected to a power supply installed on the building side, via which the power for operating the control module is drawn from the power supply installed on the building side.
  • the power supply is designed in such a way that a phase connection and a neutral conductor of a building-side power supply are connected to its power supply connection.
  • the advantage of this parallel connection is that only a very small and simply constructed energy supply unit is required for supplying energy to the control module, so that only a small amount of installation space is required to accommodate it in the control module.
  • the power supply of the control module is designed to be connected in series with a technical building installation, typically an actuator.
  • voltage can be tapped, for example via a load drop, by means of a resistor, with which the control module is supplied with energy.
  • This circuit enables the control module to operate even when only one power line having a phase line is available, as is the case with a large number of older power installations on the building side. A new installation of power cables is then not necessary.
  • the control module can also be designed to implement both of the aforementioned configurations.
  • two differently designed power supply connections for the energy supply can be available in the control module, the power supply installed on the building side being connected to the corresponding power supply connection depending on the case design.
  • the control module further comprises an operating element connection for mechanical, typically wired connection of an operating element that can be operated by the user.
  • Operating elements that are already present in a building installation, such as switches or buttons, can also be used in double or multiple configurations as operating elements.
  • the control element connection is used to receive an actuation event as a signal from the control element, which is then evaluated.
  • the control element designed to close a circuit when operated. This can then be seen on the control element connection. A change in the switch position from live to non-live can also be seen.
  • the use of touch-sensitive operating elements for controlling a switch is also possible.
  • control module has means for evaluating changes in state at the control element connection, as well as means for monitoring whether a further change in state is recognized at the control element connection after a first change in state in a defined time interval.
  • means for monitoring whether a further change in state is recognized at the control element connection after a first change in state in a defined time interval are used in connection with a device of the control module in order to be able to automatically recognize within the framework of a routine whether a connected control element is a button or a switch.
  • a button is understood to mean a switching element in which a contact is closed when the user is actuated and this contact opens again when the switching element is no longer actuated. Such a button is thus monostable. In the case of a switch, a switching contact remains either permanently closed or opened after being actuated.
  • a switch is accordingly bistable and can for example be designed in the form of a changeover switch.
  • the type of electrical contact (s) of the operating element is stored in a memory.
  • the type of the established contact (s) - for example switches or buttons - of the control element is used in the context of the evaluation of an actuation event recognized at the control element connection.
  • the control module also has an electronic memory. Control commands with which actuators in a building installation radio network can be controlled are stored in this memory. These control commands can already be stored by the manufacturer.
  • the memory also has an address memory segment in which a unique address of at least one actuator to be controlled can be stored. This can be a physical or a dynamic address. A dynamic address is assigned by the base station managing the building installation radio network.
  • the addresses of individual actuators can also be stored in the address memory of the control module, as can group addresses, that is, addresses with which several actuators organized in the network can be controlled.
  • the address memory is preferably rewritable.
  • the control module also has a first radio communication interface.
  • the control module can be integrated into a building installation radio network via this first radio communication interface.
  • the first radio communication interface uses the same protocol and the same frequency as the building installation radio network and, as soon as the control module is integrated into the building installation radio network, can use a network key issued by the base station of the building installation radio network.
  • the control module is able to query and / or receive information from the actuators integrated into the building installation wireless network via this first radio communication interface.
  • the control module can use this interface to send a control command to the building installation radio network and thus to at least one actuator integrated in the building installation radio network.
  • This radio communication interface has the necessary means to be able to set up bidirectional communication within the building installation radio network, for example a radio module, a controller, a high-frequency front end with an antenna or the like.
  • the term radio communication interface is understood to mean those components that are required for such communication. This does not mean that these components all have to be combined in a single module.
  • a Control module of any microcontroller that is already present can also be used to operate the radio communication interface.
  • the first radio communication interface, the memory and the control element connection are interconnected in such a way that when the control element connected to the control element connection is actuated, an actuation event is detected as a signal and, as a result, at least one control command containing the address of at least one actuator for controlling at least one in the memory an actuator integrated into a building installation radio network, is read out and sent via the radio communication interface. In this way, the at least one actuator assigned to the switching event when the control module is set up is activated.
  • the control module has a second radio communication interface.
  • This second radio communication interface differs from the first radio communication interface.
  • This distinction is designed in such a way that the control module can communicate bidirectionally with an external setup device via the second radio communication interface, independently of the first radio communication interface.
  • the distinction between the two radio communication interfaces can be the use of a different protocol and / or a different frequency and / or a different network, so that the control module can communicate with the building installation radio network via the first radio communication interface in a unidirectional or bidirectional manner, while it can communicate with the second radio communication interface can communicate with a set-up device that is not registered in the building installation radio network.
  • the radio communication link via the second radio communication interface is preferably also a low data rate connection in order to only load the power supply of the control module with a low energy requirement.
  • this can be implemented using a Bluetooth® protocol (Bluetooth® is a registered trademark of the Bluetooth SIG).
  • Bluetooth® is a registered trademark of the Bluetooth SIG.
  • These Connection interfaces are usually present in consumer electronics products such as smartphones, tablets or the like. Such devices are therefore preferably used as setup devices, since they contain the components required for communication with the control module via the second radio communication interface and a display required for setup - the display.
  • the set-up device is used to set up the control module.
  • the display functionality of such a set-up device - the display - is used to display the actuators that can be controlled.
  • the setup device is used to set up an association between a control element actuation and an actuator to be controlled by this actuation, thus a link between an actuation event with a control command and the address of the actuator to be controlled.
  • This can be done by means of a point-to-point connection, even in a close-range configuration.
  • the advantage of such a design is that no additional components, such as a base station, are required to set up a network.
  • Another possibility to establish such a direct connection is to use protocols that only allow a direct connection anyway, such as Bluetooth®.
  • a radio module of the control module is designed to operate both radio communication interfaces.
  • the radio module can send and receive alternately for the first radio communication interface and for the second radio communication interface. It is advantageous that if the first radio communication interface uses the same frequency as the second radio communication interface, the radio module only needs to be designed for one frequency range on the hardware side. Then the required installation space is correspondingly smaller. This can also be used advantageously for the energy supply.
  • each radio communication interface is assigned its own radio module. Simultaneous communication via both radio communication interfaces is then possible.
  • the control module is integrated into a building installation radio network via its first radio communication interface.
  • the building installation radio network which is initially closed in itself, is opened.
  • the base station is typically switched to a mode in which it searches for new subscribers within range and, if found, integrates them into the building installation radio network. This can be done automatically, for example by the base station periodically scanning which subscribers are within range. This can also be done by a request command by the control module, sent via its first radio communication interface. Each participant receives a unique address via the administration of the building installation radio network. In addition, initial information can be transmitted.
  • a radio communication link is set up via the second radio communication interface between the control module and a set-up device, for example a smartphone, a tablet or the like.
  • the control module is set up by the user via this radio communication link.
  • the communications with the building installation radio network on the one hand and the installation device on the other hand can differ, for example, through the use of a different network, a different protocol or a different frequency. It is important to ensure that both communications do not interfere with each other.
  • Information is queried from the building installation radio network by the control module via the first radio communication interface. It can be queried, for example, which actuators organized in the building installation radio network can be controlled by the control module. Thus the queried concern Information at least the address and the type of controllable actuator. However, the information can also contain a designation or possible states or commands with which the actuator can be controlled.
  • the control module sends this information to the setup device via its second radio communication interface. The control module functions to transmit this information to the setup device in the manner of a converter.
  • control module only needs to receive their address and identity from the controllable actuators via the building installation radio network.
  • This information is further processed on the set-up device, provided it has not already been processed by the control module, and displayed to a user.
  • a user selects one or more actuators controllable by the control module from the set of controllable actuators.
  • one embodiment provides that a user initially only provisionally selects an actuator on the set-up device, for example by simply tapping it, an identification command being sent to the control module and the control module sending a corresponding control command to the provisionally selected actuator sends.
  • the actuator is activated according to the control command. This can be, for example, a brief lighting up of a lamp as a selected actuator.
  • the preselection of the actuator can also be omitted, so that a selection of the actuator, for example by tapping on a display, leads directly to the activation module selecting the corresponding actuator can directly affect. It goes without saying that the use of an identification command is also advantageous here in order to be able to visually or acoustically identify the desired actuator in a building installation.
  • this information is sent from the set-up device to the control module via the radio communication link.
  • the control module stores the address of the at least one actuator to be controlled in its memory.
  • the at least one actuator to be controlled can be controlled briefly by the control module in order to signal a successful link. This can be, for example, a brief lighting up of a lamp. If the above-described possibility of provisional selection is not used, the control of the selected actuator can also serve to identify the actuator.
  • the control module To operate the control module to control the at least one selected actuator, the control module is informed whether the switch contact connected to the control element connection is that of a switch or that of a pushbutton. This is done by a switch contact recognition routine as a result of an evaluation of a signal present at the control element connection as part of such a routine. If the switching contact is a button, actuation of the same can be detected by two changes of state in a predefined time interval at the control element connection. The switching of a switch, on the other hand, can be detected by only one change of state taking place in the aforementioned predefined time interval. Knowledge of the type of switch is required for proper operation of the control module in order to be able to correctly evaluate a signal applied to the control element connection.
  • this routine is a clever way of using the components that are already present in such a control module to support the setting up user as much as possible.
  • the control module recognizes the characteristic behavior of the respective operating element as a function of time, whereby it is possible to dispense with having to measure exact times in a complex manner and to derive calculations from them. It is sufficient to recognize the number of status changes in a predefined period of time.
  • the system is uniquely determined by the further defined specification of a user to have the actuating element actuated a predetermined number of times.
  • the predefined time span is only a few seconds, preferably a maximum of only one or two seconds, at least not less than a typical button needs to return to its normal position.
  • the second radio communication interface is not required for the operation of the control module, even if actuators integrated in the building installation radio network can be controlled via the setup device.
  • an actuator can be controlled with different commands, such as a lamp can be switched on and off or also dimmed, in addition to the at least one actuator to be controlled, the user also selects at least one control command to be sent with which the at least one Actuator is to be controlled.
  • a list of selectable control commands can be made available by the actuator, the control module and / or by the set-up device. This creates an additional option for designing the set-up process as individually as possible.
  • the manufacturer can specify which control command is to be sent into the building installation radio network when the control element is actuated. For example, it can be provided to use an additional dimming function for a button, which would not make sense for a switch based on its operating principle. If several commands are available for a controllable actuator, at least one attribute that corresponds to the type of control element is assigned to the control commands that can be selected by the manufacturer. According to this attribute, only those control commands are displayed during the setup process that are useful with regard to the connected control element.
  • control element is installed together with the control module in a flush-mounted box. This avoids the need for the control module to be housed in a separate location.
  • existing lines on the building side can be used for energy supply. This is especially true if the control element is a switch or button that is already installed on the building side and the switched phase is therefore used to supply power to the control module.
  • the control module can be an independent component, switch or button that sits behind the control element in the flush-mounted box.
  • control module will be integrated into an existing technical building installation by retrofitting.
  • the control element switched a technical building installation, for example a light, by switching the power supply. If the lamp in this luminaire is replaced by a smart lamp that has to be permanently supplied with electricity, a power interruption is undesirable.
  • the installation of the control module according to the invention makes it possible to permanently supply the actuator with power and at the same time to use the existing control element to control this actuator. This measure ensures a particularly simple and intuitive integration of smart lights into a building installation radio network, where conventionally only one light could be switched by a power interruption.
  • Existing control elements which can also be operated by anyone, are used to control virtually any actuators in a building installation radio network.
  • the light that was previously switched with this light can now be controlled using the control module, if replaced by a smart light.
  • this concept also enables a single control element to be changed by a double control element.
  • One of the operating elements can thus control the conventionally switched lamp as an actuator and one or more other actuators with the other individual operating element.
  • a control module 1 for wirelessly controlling an actuator 10, 11 integrated in a building installation radio network 9, comprises a power supply connection 2, as well as a control element connection 3, a memory 4 and two radio communication interfaces 5, 6.
  • the radio communication interfaces 5, 6 include two radio modules not shown in detail.
  • the control module 1 is connected via its power supply connection 2 to a power supply 7a present on the building side and is supplied with the required energy by an energy supply connected to the power supply connection 2 (not shown).
  • An operating element 8 is connected to the operating element connection 3. This operating element 8 is a button in the exemplary embodiment described.
  • the control module 1 and the button serving as the control element 8 are installed in a flush-mounted box.
  • the control module 1 is integrated into the building installation radio network 9 via the first radio communication interface 5.
  • the building installation radio network 9 comprises, in addition to the control module 1, two actuators 10, 11 controllable via the building installation radio network 9, and a base station 12 managing the building installation radio network 9 Management of the building installation network 9 serving tasks via appropriate resources, such as an address memory, means for integrating participants into the building installation radio network 9 and the like.
  • the two actuators 10, 11 and the base station 12 also have their own power supply, each of which is connected to a power supply 7b, 7c, 7d that is present on the building side.
  • the two actuators 10, 11 are smart lights in this exemplary embodiment. To communicate or to control them within the building installation radio network 9, the two actuators 10, 11 have been assigned a network address by the base station 12.
  • This second radio communication interface 6 enables communication via a wireless communication link 13 with a set-up device 14.
  • the setup device 14 in the present exemplary embodiment is a smartphone.
  • control module 1 If the control module 1 is to be set up, it is first typically installed in a flush-mounted box behind the operating element 8 and connected with its power supply connection 2 to the power supply 7a installed on the building side.
  • the control element 8 is connected to its control element connection 3. Since the control module 1 is energized after the power supply connection 2 has been connected to the power supply 7a, it is integrated into the building installation radio network 9.
  • the building installation radio network 9 described in the exemplary embodiment works according to the ZigBee® standard.
  • a corresponding command is sent to the base station 12 or a button on the base station 12 is actuated manually to put the base station 12 into a scan mode to scan the detect network-searching devices within range.
  • the control module 1 In the course of this routine, the control module 1 is found and transferred to the Building installation radio network 9 integrated. The control module 1 therefore receives its own network address.
  • control module 1 If the control module 1 is integrated into the building installation radio network 9, it asks information about the controllable actuators 10, 11 to which information belongs, in particular, information regarding the type of actuator, its control options and its network address.
  • the type of control is made by querying attributes defined by the manufacturer.
  • the communication link 13 is set up from the setup device 14 to the control module 1 via the second radio communication interface 6.
  • This communication link 13 is provided as a radio communication link, the communication link 13 being a Bluetooth® connection in the exemplary embodiment described.
  • This communication link 13 can be set up before the information is requested from the building installation radio network 9, at the same time as it or afterwards.
  • control module 1 If the control module 1 has requested the information from the building installation radio network 9 and the communication link 13 is established, this information is transmitted via the communication link 13 to the set-up device 14 and shown to a user on a display. The user then selects one or more actuators 10, 11 to be controlled - in this exemplary embodiment only one actuator 10 - from the set of controllable actuators 10, 11.
  • the set-up device 14 then sends a corresponding command via the communication link 13 to the control module 1, whereupon the control module 1 writes the address of the actuator 10 to be controlled in its memory 4 together with a control command assigned to an actuation event of the control element 8.
  • the control element 8 is linked to a control command and the actuator 10 to be controlled, so that when the control element 8 is actuated, the Actuator 10 is controlled according to the actuation event carried out.
  • a routine is executed to determine whether the control element 8 is a button or a switch.
  • a user setting up the control module 1 is requested, for example by a prompt symbol on the display, to actuate the operating element 8 once.
  • Figure 2a shows the characteristic behavior of a switch.
  • the actuating element is actuated once by a user.
  • the change in state 15 in this regard is the closing of a circuit and can be recognized by the control element connection 3 of the control module 1.
  • a predefined time interval T begins with regard to its length.
  • the control module side checks whether a further change in status can be detected at the control element connection 3 within this time interval T, the duration of which ends at time t 2 . Since a switch remains in its state after being actuated, no further state change is registered in the time interval T by the control element connection 3.
  • the determined switch type definition here: switch, is then stored in the memory 4 of the control module 1. When the control command is selected, the type of switch that has been determined is taken into account during the installation.
  • Figure 2b shows the characteristic switching behavior of a button in the course of the routine described above.
  • a circuit is closed. This is recognized on the control module side at the control element connection 3 as a change of state 16 at time t 1 .
  • the predefined time interval T begins at this point in time. Since pressing the button 8 includes not only pressing but also releasing, the circuit opens after a certain time. This opening is recognized as a second change of state 17 by the control element connection 3.
  • the state change behavior of a switch see Figure 2a
  • two changes of state 16, 17 in the time interval T on the control element connection 3 recognizable. If a button is recognized as an operating element 8, this is stored in the memory 4.
  • the control element recognition routine can be carried out within the framework of setting up the control module 1 and is linked to the control element with the appropriate control command for controlling the provided actuator 10, depending on the type of control element 8 determined - switch or button. After the setup of the control module 1 has been completed, it is switched to its operating mode.
  • a user actuates the operating element 8. A signal can then be seen on the operating element connection 3.
  • the control module 1 recognizes this signal, reads the control command linked to this actuation event in the memory 4, together with the address of the actuator 10 to be controlled, and controls the selected actuator 10 via the first radio communication interface 5.
  • the actuator 10 to be controlled receives the control command, processes it and changes its state accordingly.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
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Claims (2)

  1. Procédé de mise en place d'un module de commande (1) pour la commande sans fil d'au moins un actionneur (10, 11) intégré dans un réseau radio d'une installation de bâtiment (9) géré par une station de base (12), lequel module de commande (1) comporte une alimentation d'énergie avec une connexion d'alimentation électrique (2), une connexion d'élément d'opération (3) pour le raccordement d'un élément d'opération (8) pouvant être actionné par l'utilisateur, une mémoire (4) et une interface de communication radio (5) pour l'intégration du module de commande (1) dans le réseau radio d'une installation de bâtiment (9), la première interface de communication radio (5) étant reliée à la mémoire (4) et à la connexion d'élément d'opération (3) d'une manière à ce que l'interface de communication radio (5), après la détection d'un signal d'opération au niveau de la connexion d'élément d'opération (3), transmette un ordre de commande, mémorisée dans la mémoire (4), pour commander au moins un actionneur (10, 11) intégré dans le réseau radio d'une installation de bâtiment (9), le module de commande (1) comportant, outre la première interface de communication radio (5) prévue pour la communication radio dans le réseau radio d'une installation de bâtiment (9), une deuxième interface de communication radio (6), différente de la première interface de communication radio (5), pour la communication sur une voie de communication radio bidirectionnelle (13) avec un dispositif de configuration (14), et la mémoire (4) comportant un segment de mémoire d'adresse électronique dans lequel une adresse d'au moins un actionneur (10, 11) à commander peut être enregistrée,
    lequel module de commande (1) étant configuré à l'aide d'un dispositif de configuration (14) comportant un affichage avec les étapes suivantes:
    - Intégration du module de commande (1) dans un réseau radio d'une installation de bâtiment (9) via la première interface de communication radio (5) du module de commande (1),
    - Établissement d'une voie de communication radio (13) entre le dispositif de configuration (14) et le module de commande (1) via la deuxième interface de communication radio (6) du module de commande (1),
    - Interrogation des informations sur les actionneurs contrôlables (10, 11) présents dans le réseau radio d'une installation de bâtiment (9) via la première interface de communication radio (5) du module de commande (1), ces informations contenant l'adresse des actionneurs (10, 11),
    - Transmission de ces informations via la deuxième interface de communication radio (6) au dispositif de configuration (14) et affichage d'au moins une partie de ces informations sur l'écran du dispositif de configuration (14),
    - Sélection d'au moins un actionneur (10) à commander sur le dispositif de configuration (14) parmi l'ensemble des actionneurs contrôlables affichés (10, 11) et attribuation de cet actionneur (10) à un ordre d'opération qui peut être déclenché par l'élément d'opération (8),
    - Mémorisation du lien entre l'événement d'actionnement et les adresses d'actionneurs dans la mémoire (4) du module de commande (1),
    dans laquelle les étapes suivantes sont effectuées pendant le fonctionnement du module de commande (1) pour commander l'actionneur sélectionné (10):
    - le module de commande (3) détecte un événement d'actionnement au niveau de la connexion de l'élément d'opération (3) à la suite d'un actionnement de l'élément d'opération (8) par l'utilisateur, et
    - Transmission de l'ordre de commande attribué à cet événement d'actionnement et stocké dans la mémoire (4) via la première interface de communication radio (5) caractérisée en ce que le module de commande (1) détecte, au moyen d'une routine suite à un actionnement côté utilisateur d'un élément d'opération (8) connecté à la connexion de l'élément d'opération (3), si l'élément d'opération (8) est un bouton-poussoir ou un interrupteur, les étapes suivantes étant effectuées pour détecter si l'élément d'opération (8) est un interrupteur ou un bouton-poussoir:
    - Le module de commande détecte un changement d'état (15, 16) suite à un seul actionnement de l'élément d'opération (8) au niveau de la connexion de l'élément d'opération (3),
    - Le module de commande détecte, si après le premier changement d'état détecté (15, 16) un autre changement d'état (17) se produit dans un intervalle de temps prédéfini (T) et
    - si aucun autre changement d'état (17) n'a été détecté dans l'intervalle de temps prédéfini (T) : le module de commande mémorise que l'élément d'opération (8) est un interrupteur, ou
    - si un nouveau changement d'état (17) a été détecté dans l'intervalle de temps prédéfini (T) : le module de commande mémorise que l'élément d'opération (8) est un bouton-poussoir.
  2. Procédé selon la revendication 1, caractérisée en ce que l'intervalle de temps prédéfini (T) est de 2 secondes au maximum.
EP19205772.7A 2018-11-26 2019-10-29 Procédé d'installation d'un module de commande destiné à la commande sans fil d'un actionneur intégré dans un réseau radio d'installation du bâtiment Active EP3657459B1 (fr)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE102018129690.8A DE102018129690A1 (de) 2018-11-26 2018-11-26 Ansteuermodul zum drahtlosen Ansteuern eines in einem Gebäudeinstalltionsfunknetzwerk eingebundenen Aktors, sowie Verfahren zur Einrichtung desselben und Anordnung

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EP3657459A1 EP3657459A1 (fr) 2020-05-27
EP3657459B1 true EP3657459B1 (fr) 2020-12-30

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EP (1) EP3657459B1 (fr)
DE (1) DE102018129690A1 (fr)

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DE102020126367B4 (de) 2020-10-08 2023-10-26 Insta Gmbh Verfahren zum gemeinsamen Ein- und Ausschalten von elektrischen Verbrauchern sowie elektrische Installation

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FR2956757B1 (fr) * 2010-02-25 2012-09-21 Somfy Sas Affectation de scenarios a des boutons de commande.
US9405395B2 (en) * 2010-08-04 2016-08-02 Crestron Electronics, Inc. Wall-mounted control system for a portable touch screen device
IN2014DN07044A (fr) * 2012-03-01 2015-04-10 Panasonic Corp
US10094584B2 (en) * 2013-02-07 2018-10-09 Honeywell International Inc. Building management system with programmable IR codes
US9820361B1 (en) * 2016-07-20 2017-11-14 Abl Ip Holding Llc Wireless lighting control system

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DE102018129690A1 (de) 2020-05-28

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