EP4278051A1 - Procede de configuration d'au moins un dispositif d'entrainement motorise d'une installation de pergola et installation associee - Google Patents
Procede de configuration d'au moins un dispositif d'entrainement motorise d'une installation de pergola et installation associeeInfo
- Publication number
- EP4278051A1 EP4278051A1 EP22700629.3A EP22700629A EP4278051A1 EP 4278051 A1 EP4278051 A1 EP 4278051A1 EP 22700629 A EP22700629 A EP 22700629A EP 4278051 A1 EP4278051 A1 EP 4278051A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- control unit
- electromechanical actuator
- electromechanical
- electric motor
- drive device
- 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.)
- Granted
Links
Classifications
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04F—FINISHING WORK ON BUILDINGS, e.g. STAIRS, FLOORS
- E04F10/00—Sunshades, e.g. Florentine blinds or jalousies; Outside screens; Awnings or baldachins
- E04F10/08—Sunshades, e.g. Florentine blinds or jalousies; Outside screens; Awnings or baldachins of a plurality of similar rigid parts, e.g. slabs, lamellae
- E04F10/10—Sunshades, e.g. Florentine blinds or jalousies; Outside screens; Awnings or baldachins of a plurality of similar rigid parts, e.g. slabs, lamellae collapsible or extensible; metallic Florentine blinds; awnings with movable parts such as louvres
Definitions
- TITLE METHOD FOR CONFIGURING AT LEAST ONE MOTORIZED DRIVE DEVICE FOR A PERGOLA INSTALLATION AND ASSOCIATED INSTALLATION
- the present invention relates to a method for configuring at least one motorized drive device of a pergola installation.
- the present invention also relates to a home automation installation comprising such a device.
- Pergolas are generally constructions located on the exterior of a building, comprising a frame supported by pillars and a smoldering assembly or screen, supported by the frame. Pergolas are intended to provide a shaded area, usually in a garden or landscaping, near a residential building.
- the covering assembly may be a fixed assembly, made up of materials such as tiles or slates, a set of covering plants or a plurality of slats, of substantially rectangular section, articulated according to a pivot connection at their two longitudinal ends in connection with the frame.
- the rotation of the slats around their longitudinal axis makes it possible to modify the surface of the covering assembly and thus to make it possible to modify the shading zone carried by the covering assembly.
- the slats can be oriented in a so-called horizontal position, such that their widest face is parallel to the plane of the frame: the surface covered by the covering element thus corresponds to the entire surface delimited by the frame.
- the slats can be pivoted with respect to this horizontal position so as to reduce the surface covered by the covering element.
- the set of blades can be considered as a screen.
- the slats themselves can be driven in translation, thus stacking up against one of the edges of the frame and globally freeing the frame from the covering assembly.
- the orientation of the slats is advantageously controlled by a motorized drive device comprising at least a first electromechanical actuator, a control unit and a counting device making it possible to identify the position of the screen, in particular the angular rotation position of the slats .
- the electromechanical actuator includes an electric motor.
- the motorized drive device also includes a drive mechanism. There is a wide variety of such mechanisms for the mechanical movement in orientation or in translation of the orientable blades by means of the electromechanical actuator.
- control unit may itself comprise meteorological sensors or be capable of recovering information relating to climatic conditions or forecasts which may influence the use and configuration of the installation.
- the control unit is capable, depending on the climatic information received, of generating automatic commands for the associated motor drive device(s).
- the document FR2998068 describes an example of such a pergola installation comprising several electromechanical actuators and a control unit.
- the document EP 1 507 059 A2 is also known, which describes a sliding window for a building comprising a fixed frame, a sash, a motorized drive device for sliding the sash relative to the fixed frame and a locking device of the sash relative to the fixed frame in a locked closed position.
- the motorized drive device consists of an electromechanical actuator, an electronic control unit, a flexible element and a drive arm.
- the electromechanical actuator includes an electric motor.
- the flexible element is configured to cause the sash to move relative to the fixed frame, when the electromechanical actuator is electrically activated.
- the electronic control unit sends control commands to the electromechanical actuator in order to control the movement of the latter, and can also receive information on the position of the sash or of the motorized drive device coming from one or of several sensors associated with the motorized drive device.
- a disadvantage is that the electronic control unit often has to be set manually to recognize and interpret the measurement signals from the motorized drive device. This is generally done during the installation of the electromechanical actuator, for example by a specialized installer, prior to initial commissioning of the home automation installation.
- control unit must be able to operate with many electromechanical actuators from different manufacturers and each having their own specificities. It must be able to use the signals supplied to it in particular by the counting devices of the motorized drive device(s) and determine the commands to be given to the electromechanical actuators in the absence of counting devices.
- the object of the present invention is to resolve the aforementioned drawbacks and to propose a method for configuring a motorized drive device for a pergola installation, as well as a home automation installation comprising such a pergola, allowing the central control unit to automatically configure the motorized drive device, in particular in order to automatically establish a correspondence between the received signal characteristics and the direction of rotation of the motor.
- the present invention aims, according to a first aspect,
- the motorized drive device comprising at least:
- the counting device being configured to measure a rotational movement of the motorized drive device
- the first electromechanical actuator comprising at least:
- the method comprises a second step of moving the screen, by electrical activation of the first electromechanical actuator, for a second predetermined period of time according to a second instruction control.
- the acquisition step comprises at least:
- - the first stage of determination includes:
- the second determining step comprises:
- the automatic configuration step consists in associating a first direction of rotation of the electric motor of the first electromechanical actuator with the first control setpoint, and a second direction of rotation of the electric motor of the first actuator electromechanical to a second control setpoint, the first direction of rotation being opposite to the second direction of rotation.
- the automatic configuration step comprises:
- the counting device comprises one or more sensors, and the or each sensor is a rotary encoder.
- the or each sensor is configured to emit a measurement signal, and the or each sensor is connected to the control unit by an electrical conductor.
- the present invention relates, according to another aspect, to a home automation installation comprising a pergola according to the invention.
- This home automation installation has characteristics and advantages similar to those described above, in relation to the pergola according to the invention.
- Figure 1 is a schematic perspective view of a pergola with adjustable slats according to the prior art, where the slats are oriented in a so-called horizontal position;
- Figure 2 is a schematic view of part of the motorized drive device according to the prior art;
- Figure 3 is a schematic view of the motorized drive device according to the invention;
- Figure 4 is a perspective view of the housing of the control unit according to the invention;
- FIG. 5 is a block diagram of an algorithm of a method in accordance with the invention, for automatic configuration of the motorized drive device of the window illustrated in relation to FIGS. 1 to 4; and
- Figures 6a and 6b are diagrams of two measurement signals from sensors forming part of a counting device of the motorized drive device.
- a home automation system 1 according to the invention and installed in a garden or landscaping, near a residential building.
- the home automation installation 1 is described with reference to a pergola 2, but other applications are also envisaged, such as solar protection or screens placed in front of building openings.
- the pergola can be attached to a facade of a building or be independent.
- the pergola 2 comprises a frame 4, comprising four crosspieces 4a arranged at right angles.
- the frame 4 is supported by pillars 4c, as shown in Figure 1.
- the pergola also comprises a covering assembly or screen 3, supported by the frame 4.
- the screen 3 comprises a plurality of slats 3a, of substantially rectangular section, articulated according to a pivot connection at their two longitudinal ends in connection with the frame 4.
- the surface thus covered by the screen thus corresponds to the entire surface bounded by the frame.
- the juxtaposed slats can be arranged parallel to one another or overlap by their longest edge.
- the horizontal position, dotted in FIG. 1, is indicated with an angle a of 0°.
- the pergola installation also includes a motorized drive device 5 to move the screen, in particular to move the adjustable slats 3a by rotation with respect to the plane P, as shown in Figure 2.
- the motorized drive device 5 is configured to angularly move all of the slats 3a simultaneously, relative to the frame 4. However, it is envisaged that the motorized drive device 5 can move the orientable slats in translation 3a along an edge of the frame 4. It is also envisaged that the motorized drive device 5 can move a first group of orientable blades 3a independently of a second group of blades 3a, whether in orientation or in translation , without departing from the scope of the invention.
- the motorized drive device 5 also comprises a drive mechanism 20 arranged between the frame 4 and each orientable blade 3a, as illustrated in FIG. 2.
- the drive mechanism 20 of the pergola 2 makes it possible to orient and/or slide each adjustable slat 3a with respect to the frame 4 with respect to the plane P of the frame 4.
- the motorized drive device 5 makes it possible to move automatically by sliding or orientation the adjustable blades 3a relative to the frame 4, in particular in orientation between the horizontal position and a so-called vertical position, in which the adjustable blades are pivoted by approximately 90 ° relative to the horizontal position or relative to the plane P, so as to present a minimum section in the plane P and thus minimize the surface covered by the screen 3.
- the home automation installation 1 can also comprise a blind 33, for example a roll-up blind comprising a canvas and a weighted load bar 33b, extending in its deployed position from one of the crosspieces 4a of the frame of the pergola 2 and between two pillars 4c.
- the blind 33 is advantageously motorized, in other words, it comprises an electromechanical actuator 6 allowing the winding or unwinding of the fabric 33a around a winding tube (not shown).
- the motorized drive device 5 is more particularly represented in FIGS. 2, 3 and 4. It comprises an electromechanical actuator 6.
- the electromechanical actuator 6 comprises an electric motor 7.
- the electromechanical actuator 6 can also comprise an output shaft 8 , connected to the drive mechanism 20 of the pergola 2.
- the electromechanical actuator 6 is configured to drive all of the adjustable blades 3a in displacement with respect to the frame 4 via the drive mechanism 20.
- the electric motor 7 is of the direct current or DC (Direct Current) type.
- the electric motor 7 can be of the electronically commutated brushless type, also called “BLDC” (acronym for the English term BrushLess Direct Current) or “permanent magnet synchronous” motor.
- the electric motor 7 can be an asynchronous motor, powered directly by an alternating current.
- the electromechanical actuator 6 is arranged on the frame 4, advantageously integrated on or in one of the crosspieces 4a or pillars 4c of the pergola 2.
- the electromechanical actuator 6 controlling the adjustable blades 3a is a cylinder or piston type actuator.
- the electric motor 7 rotates a worm, which drives a toothed wheel which drives a pinion driving in translation in a direction F a rack connected to a rod forming the output shaft 8 of the actuator.
- This mechanism includes a speed reduction function and therefore generates a high reduction which ensures the mechanical stability of all the positions of the output shaft 8 of the electromechanical actuator 6 which is said to be irreversible.
- the translation of the output shaft 8 of the electromechanical actuator 6 acts on the drive mechanism 20 of the home automation installation 1 to produce the rotation of the adjustable blades 3a around their longest axis.
- the drive mechanism comprises a rod 18 and a connecting rod 19, one of the ends of the connecting rod 19 being linked in translation to the output shaft 8 of the electromechanical actuator
- the motorized drive device 5 may comprise several electromechanical actuators 6, for controlling the orientation and the translation of the steerable blades 3a and/or for the synchronized control of very long blades and/ or for the independent control of several groups of adjustable blades 3a and/or for the control of different screens.
- the electromechanical actuator 6 can be of the tubular type, that is to say comprise a box in the form of a cylindrical tube in which the electric motor 7 is housed.
- the housing of the electromechanical actuator 6 can be parallelepipedic in shape.
- the electromechanical actuator 6 may also comprise an electronic control unit 10 comprising in particular hardware and/or software means, for example calculation means, such as a microprocessor 25, a counting device 24 and an end detection device race and / or obstacle, not shown.
- calculation means such as a microprocessor 25, a counting device 24 and an end detection device race and / or obstacle, not shown.
- the counting device 24 and the detection device can be external to the electromechanical actuator 6 and provide information to the electronic control unit 10.
- the electronic control unit 10 is configured to operate the electric motor 7 of the electromechanical actuator 6 and, in particular, to allow the electric power supply to the electric motor 7.
- the electronic control unit 10 controls, in particular, the electric motor
- the counting device 24 comprises at least one sensor 32, in particular of position.
- the counting device 24 is configured to cooperate with the electronic control unit 10.
- the counting device 24 and the electronic control unit 10 are configured to determine a position, which can be called "current", of the output shaft 8, representative of the orientation of the adjustable blades 3a.
- the electronic control unit 10 is configured to monitor at least one signal S1 or S2 coming from the counting device 24.
- the counting device 24 comprises two sensors 32.
- the number of sensors of the counting device is not limiting and may be different, in particular from a single one or greater than or equal to three.
- the counting device 24 is of the magnetic type, for example an encoder cooperating with one or more Hall effect sensors.
- the counting device 24 makes it possible to determine the number of revolutions made by a rotor of the electric motor 7.
- the counting device 24 makes it possible to determine the displacement of the output shaft 8 of the electromechanical actuator 6.
- the type of counting device is not limiting and may be different, in particular of the optical type, for example an encoder equipped with one or more optical sensors.
- the electronic control unit 10 and, more particularly, the microprocessor 25 of the electronic control unit 10 comprises at least one memory configured to memorize the current position determined by means of the counting device 24.
- the memory of the electronic control unit 10 is also configured to memorize at least a first end-of-travel position, which may be, in particular, the position of the output shaft 8 corresponding to a first horizontal position of the adjustable blades. 3a, and possibly at least a second end-of-travel position, which can be, in particular, a second horizontal position of the adjustable blades 3a obtained by rotation of approximately 180° with respect to the first horizontal position.
- the electronic control unit 10 and the counting device 24 are configured to determine the orientation position of the orientable blades 3a with respect to the plane P of the frame 4 according to one or more last control commands previously executed by the electronic control unit 10.
- the motorized drive device 5 comprises a control unit 13, which allows the management of the commands of at least one electromechanical actuator 6
- the motorized drive device 5 is advantageously controlled by a control unit.
- the control unit can be, for example, a local control unit 12.
- the local control unit 12 can be wired or wirelessly connected to the control unit 13.
- control unit 13 supplies the electronic control units 10 of the electromechanical actuators 6 associated with it with control commands.
- the control unit 13 comprises for this purpose a module of communication 23, in particular for receiving control orders, the control orders being transmitted by an order transmitter, such as the local control unit 12, a server 14 or a sensor 9, these orders being intended to control motor drive device 5.
- the communication module 23 of the control unit 13 is of the wireless type.
- the control commands can be, for example, radio commands.
- the communication module 23 can also allow the reception of orders transmitted by wired means.
- the control unit 13 is in communication with one or more sensors 9, in particular climatic sensors, configured to determine, for example, a temperature, a hygrometry, a wind speed, the presence of sun, rain or snow.
- sensors can be physical local sensors, placed close to the pergola 2 or the building, or remote sensors, providing their measurement via a server 14 connected to the control unit 13.
- control unit 13 can be in communication with the server 14, so as to control the electromechanical actuator 6 according to data made available remotely via a communication network, in particular an Internet network which can be connected to the server 14.
- a communication network in particular an Internet network which can be connected to the server 14.
- the control unit 13 and/or the electromechanical actuator 6 can be controlled from the local control unit 12.
- the local control unit 12 is provided with a control keyboard.
- the control keypad of the local control unit 12 comprises selection elements and, optionally, display elements.
- the selection elements can be push buttons or sensitive keys
- the display elements can be light-emitting diodes, an LCD display (acronym of the English term “Liquid Crystal Display”) or TFT ( acronym of the English term “Thin Film Transistor”).
- the selection and display elements can also be realized by means of a touch screen.
- the local control unit 12 can be a fixed or mobile control point.
- a fixed control point corresponds to a control box intended to be fixed on a facade of a wall of the building near the pergola 2 or on part of the pergola.
- a nomadic control point corresponds to a remote control.
- the local control unit 12 could possibly allow a user to intervene directly on the electromechanical actuator 6 of the motorized drive device 5 via the electronic control unit 10 associated with this motorized drive device 5 if the latter comprises suitable signal reception means. However, preferably, the local control unit intervenes indirectly on the electromechanical actuator 6 of the motorized drive device 5 via the control unit 13.
- the motorized drive device 5 is configured to execute control commands issued, in particular, by the local control unit 12 or by the control unit 13.
- control unit 13 is more particularly shown in Figures 3 and 4.
- control unit 13 allows the supply of electrical energy to each electromechanical actuator 6 which is connected to it.
- control unit 13 comprises an electronic unit 40 placed inside a box 17.
- the electronic unit 40 notably comprises hardware and/or software means, for example processing means, such as a microprocessor 41 .
- control unit 13 comprises a sensor 9 measuring at least one climatic parameter of the environment of the home automation installation 1 and connected to this electronic unit 40.
- control unit 13 can control the electronic control unit(s) 10 associated with the motorized drive device 5 according to data coming from the sensor 9 measuring the climatic parameter of the environment of the home automation installation 1.
- a climatic parameter of the environment of the home automation installation 1 measured by the sensor 9 of the local control 12 is the relative humidity, the temperature, the sunshine, the presence of rain or snow.
- the motorized drive device 5 can be controlled by the user, for example by receiving a control command corresponding to a press on a selection element of the local control unit 12, such as a remote control or a fixed command point.
- the motorized drive device 5 can also be controlled automatically, for example by receiving a control command corresponding to at least one signal coming from at least one sensor and/or to a signal coming from a clock.
- the sensor and/or the clock can be integrated into the local control unit 12 or the control unit 13.
- Information via a sensor 9 can take priority over the activation of the local control unit 12 by the user, so as to guarantee safety. and the integrity of the home automation installation 1 .
- an activation command of the motorized drive device 5 according to a selection made by the user can be inhibited, if a value measured by a sensor generates an automatic order contrary to the activation command transmitted by the 'user.
- the operation of the electromechanical actuators 6 connected to the control unit 13 is controlled by the electrical power supply to each electromechanical actuator 6.
- the electric power supply of the electromechanical actuator 6 is controlled by a command order received by the control unit 13, coming from the local control unit 12, from a sensor 9.
- the motorized drive device 5, in particular the control unit 13, is supplied with electrical energy from a mains electricity supply network, in particular by the commercial AC network.
- control unit 13 comprises an electrical power cable, not shown, enabling it to be supplied with electrical energy from the mains electrical supply network and a converter 35 enabling the power supply to be transformed into alternating current from the sector in a direct current adapted on the one hand to the supply of the electronic unit 40 of the control unit 13 and to the supply of the electromechanical actuators 6 connected to the control unit 13.
- control unit 13 includes a first connector 36a allowing connection to the mains power supply network or to any other suitable energy source. It includes a second connector 36b making it possible to connect a sensor 9 by wire to the electronic unit 40.
- the control unit 13 also includes at least a third connector 36c, allowing an electromechanical actuator 6 to be connected via a cable 43.
- the cable 43 comprises a plurality of electrical conductors electrically connecting the electromechanical actuator 6 to the control unit 13.
- the cable 43 also comprises at least two electrical conductors suitable for transmitting respectively the signals S1 and S2 from the counting device 24 to the control unit 13. These signals are individually connected to the control unit 13 via a 36c connector specific to each signal S1 or S2.
- the box 17 comprises a housing bottom 17a and a cover 17b which can be connected in a sealed manner, in particular by means of a baffle 17c formed on the entire periphery of the housing.
- a seal (not shown) may also be provided.
- Screws 39b for locking the cover 17b are screwed into barrels 39a provided in the bottom of the case 17a.
- the bottom of the case and the cover are preferably made of plastic, formed by molding.
- Electrical protection walls 42 can also be provided to separate the electrical cables entering the box and connected to the connectors 36a, 36b, 36c, from the electronic components of the electronic unit 40.
- the method is preferably triggered during a first commissioning (step E100) of the home automation installation 1, for example following the installation and the home automation installation 1 by an installer of the motorized drive device 5 and in particular the control unit 13.
- the method comprises at least: a first step of moving E102 of the screen 3, by electrical activation of the first electromechanical actuator 6, during a first period of time P1 predetermined according to a first control setpoint C1, during the first step E102 of moving screen 3, an acquisition step E104 of at least two measurement signals S1, S2, a first step E105 of determining whether or not there is at least one sensor 32 of the counting device 24 as a function of the two measurement signals acquired, during the acquisition step E104, in the case where at least one sensor 32 is determined present, during the first determination step E105, a second step E106 of determining a direction of rotation of the electric motor 7 of the first electromechanical actuator 6, and an automatic configuration step E108 of the control unit 13 depending on the result of the first determination step E105 and of the second determination step E106.
- the method comprises a second step of moving the screen 3, by electrical activation of the first electromechanical actuator 6, for a second period of time P2 predetermined according to a second control setpoint C2.
- the second movement step allows screen 3 to return to its initial position.
- the signal E104 acquisition step is preferably extended for the entire duration of the return movement. Alternatively, however, only the movement to the setpoint position is taken into account.
- the duration of the return movement to the original position can have the same duration as the duration predefined for the first movement step E102.
- the second time period P2 can be equal to the first time period P1, or can be different from the first time period P1.
- the first control setpoint C1 corresponds to a first direction of rotation of the motor and the second setpoint C2 corresponds to a second direction of rotation D2 of the electric motor 7, in particular a direction of rotation opposite to the first direction of rotation of the motor electrical 7.
- the first determination step E105 makes it possible to determine the number and type of sensors 32 of the electromechanical actuator 6.
- the counting device 24 includes a sensor 32, and preferably two sensors 32, associated with the motorized drive device 5. In practice, it can also happen that the electric motor 7 does not include any sensor. In practice, each sensor 32 is connected to the control unit 13 by an electrical conductor, such as a cable. It is understood that there is a risk that the cables may be incorrectly mounted, in particular reversed or permuted, by an installer during installation and assembly of the home automation installation 1 .
- the sensors 32 are rotary encoders.
- Each sensor 32 delivers information representative of the angular position of the electric motor 7 at a given instant.
- the output signal from each sensor 32 when read over an extended period can be a sequence of values, such as binary values.
- a code is used binary or Gray code.
- step E105 if a single signal is received by the control unit 13, then this means that the electric motor 7 (or the motorized drive device 5) comprises only a single sensor 32.
- the electric motor 7 (or the motorized drive device 5) comprises two sensors 32.
- the corresponding information is stored in memory and is used to configure the operation of the control unit 13 accordingly.
- FIGS. 6a and 6b there is shown schematically the evolution over time (denoted t, on the abscissa axis) of the output signals of two sensors of the rotary encoder type (first signal S1 and second signal S2 ) associated with the same electric motor 7 (or with the same motorized drive device 5) and preferably sampled at the same sampling frequency by the control unit 13.
- the signals are for example periodic signals (the motor rotating at constant speed and in the same direction), of square shape, and oscillating between a low value (0) and a high value (1).
- the sensors 32 are preferably mounted such that the respective signals are out of phase, preferably out of phase.
- the first signal S1 is ahead of the second signal S2, since it undergoes a transition from the low state to the high state before the second signal S2.
- the two signals can be associated with a sequence of values, for example by associating in pairs each binary value of the signals S1 and S2 between a high state and a low state.
- the SEQ sequence of values is as follows: 00 01 11 10 00 01 11 10 00 ...
- the acquisition step E104 preferably comprises at least:
- the first step of determining E105 comprises:
- a second sub-step of determining a variation in values of the second signal S2 comprises:
- the second determination step E106 comprises the determination of the wiring direction of the signals S1 and S2 by comparing the acquired sequence of values SEQ with a predefined sequence of values.
- this information can be used during the operation of the home automation system 1.
- the automatic configuration step E108 consists in associating a first direction of rotation D1 of the electric motor 7 of the first electromechanical actuator 6 with the first command setpoint C1, and a second direction of rotation D2 of the electric motor 7 of the first actuator electromechanical 6 to a second setpoint of control C2, the first direction of rotation D1 being opposite to the second direction of rotation D2.
- the automatic configuration step (E108) comprises:
- the configuration step includes the recording in the control unit 13 of the association between the sequence of values resulting from the signals S1 and S2 received and the direction of rotation D1 or D2.
- control unit 13 can be configured automatically according to the nature of the motorized drive device 5 and the way in which the motorized drive device 5 is wired, in particular the way in which the motor drive 5 has been connected to the control unit 13.
- the invention makes it possible more particularly to automatically establish a correspondence between the signal characteristics received and the direction of rotation of the motor, and this even if the electrical conductors used to connect the motorized drive device to the electronic control unit have been reversed.
- the motorized drive device 5 can be configured to move several openings 3a, 3b by sliding by means of the flexible element 9, in the same direction of movement or in an opposite direction of movement.
- the electric motor 7 of the electromechanical actuator 6 can be of the asynchronous or direct current type.
- the steps could be performed in a different order. Some steps could be omitted.
- the example described does not preclude that, in other embodiments, other steps are implemented jointly and/or sequentially with the steps described.
Landscapes
- Engineering & Computer Science (AREA)
- Architecture (AREA)
- Civil Engineering (AREA)
- Structural Engineering (AREA)
- Power-Operated Mechanisms For Wings (AREA)
- Force Measurement Appropriate To Specific Purposes (AREA)
- Manipulator (AREA)
- Control Of Electric Motors In General (AREA)
- Gyroscopes (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| FR2100366A FR3118779B1 (fr) | 2021-01-14 | 2021-01-14 | Procédé de configuration d’au moins un dispositif d’entraînement motorisé d’une installation de pergola et installation associée |
| PCT/EP2022/050660 WO2022152801A1 (fr) | 2021-01-14 | 2022-01-13 | Procede de configuration d'au moins un dispositif d'entrainement motorise d'une installation de pergola et installation associee |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4278051A1 true EP4278051A1 (fr) | 2023-11-22 |
| EP4278051B1 EP4278051B1 (fr) | 2026-03-25 |
Family
ID=74871633
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP22700629.3A Active EP4278051B1 (fr) | 2021-01-14 | 2022-01-13 | Procede de configuration d'au moins un dispositif d'entrainement motorise d'une installation de pergola et installation associee |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP4278051B1 (fr) |
| FR (1) | FR3118779B1 (fr) |
| WO (1) | WO2022152801A1 (fr) |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE20312683U1 (de) | 2003-08-11 | 2003-11-06 | Gretsch-Unitas GmbH Baubeschläge, 71254 Ditzingen | Hebeschiebebeschlag |
| FR2998068A1 (fr) | 2012-11-11 | 2014-05-16 | Noval | Procede et dispositif pour le pilotage d'une pergola a lames orientables |
| IT201700080047A1 (it) * | 2017-07-14 | 2019-01-14 | Gibus Spa | Apparato di copertura e metodo di funzionamento di un apparato di copertura |
| IT201900013026A1 (it) * | 2019-07-26 | 2021-01-26 | Teleco Automation Srl | Dispositivo perfezionato per la movimentazione ed il controllo |
-
2021
- 2021-01-14 FR FR2100366A patent/FR3118779B1/fr active Active
-
2022
- 2022-01-13 WO PCT/EP2022/050660 patent/WO2022152801A1/fr not_active Ceased
- 2022-01-13 EP EP22700629.3A patent/EP4278051B1/fr active Active
Also Published As
| Publication number | Publication date |
|---|---|
| FR3118779B1 (fr) | 2023-02-17 |
| WO2022152801A1 (fr) | 2022-07-21 |
| EP4278051B1 (fr) | 2026-03-25 |
| FR3118779A1 (fr) | 2022-07-15 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| EP3433446B1 (fr) | Procédés de configuration et de commande en fonctionnement d'un dispositif d'entraînement motorisé d'une installation domotique, dispositif d'entraînement motorisé et installation associés | |
| EP4232680B1 (fr) | Procédé de commande en fonctionnement d'un dispositif d'occultation et dispositif d'occultation associé | |
| FR3024177A1 (fr) | Procede de commande en fonctionnement d'un dispositif d'entrainement motorise d'une installation domotique de fermeture ou de protection solaire et dispositif associe | |
| EP4188164B1 (fr) | Dispositif d'entraînement motorisé d'un dispositif d'occultation ou de protection solaire, dispositif d'occultation ou de protection solaire et installation associés | |
| EP4278051B1 (fr) | Procede de configuration d'au moins un dispositif d'entrainement motorise d'une installation de pergola et installation associee | |
| EP3372774B1 (fr) | Procédés de configuration et de commande en fonctionnement d'un dispositif d'entraînement motorisé d'une installation domotique, dispositif d'entraînement motorisé et installation associés | |
| EP3303752B1 (fr) | Procédé de configuration d'un dispositif d'entraînement motorisé d'une installation domotique, dispositif d'entraînement motorisé et installation associés | |
| EP4174276B1 (fr) | Actionneur électromécanique, dispositif d'occultation comprenant un tel actionneur et procédé de commande d'un tel actionneur | |
| EP4162139B1 (fr) | Actionneur électromécanique d'un dispositif d'occultation et dispositif d'occultation comprenant un tel actionneur électromécanique | |
| WO2022148734A1 (fr) | Dispositif d'entraînement motorisé pour un dispositif d'occultation, dispositif d'occultation et procédé de commande en fonctionnement associés | |
| WO2023213786A1 (fr) | Procédé de commande en fonctionnement d'un dispositif d'occultation dans une installation domotique et dispositif d'occultation associé | |
| FR3135295A1 (fr) | Accessoire de câblage électrique à un réseau d’alimentation électrique d’un actionneur électromécanique pour un dispositif d’occultation et dispositif d’occultation associé | |
| FR3139592A1 (fr) | Dispositif d’entraînement motorisé d’un dispositif d’occultation et dispositif d’occultation associé | |
| EP4600457A1 (fr) | Procédé de configuration d'un dispositif d'entraînement motorisé pour un dispositif d'occultation d'une installation de fermeture, d'occultation ou de protection solaire | |
| WO2022253874A1 (fr) | Actionneur électromécanique d'un dispositif d'occultation et dispositif d'occultation associé | |
| EP4530432A1 (fr) | Procédé de commande en fonctionnement d'un dispositif d'entraînement motorisé, dispositif d'entraînement motorisé et dispositif d'occultation associés | |
| WO2022043389A1 (fr) | Dispositif électronique de contrôle d'un actionneur électromécanique pour installation domotique d'occultation motorisée | |
| WO2022136496A1 (fr) | Moteur électrique de type synchrone, gamme de moteurs électriques, dispositif de fermeture, d'occultation ou de protection solaire comprenant un moteur électrique d'une telle gamme et méthode de fabrication d'un moteur électrique d'une telle gamme | |
| EP4643452A1 (fr) | Dispositif et procédé de contrôle d'un moteur électrique prenant en compte un environnement mécanique du moteur | |
| FR3144726A1 (fr) | Dispositif et procédé de contrôle d’un moteur électrique avec une loi de commande de type pas à pas | |
| FR3099511A1 (fr) | Procédé de commande en fonctionnement d’une installation pour un bâtiment et installation associée |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: UNKNOWN |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE |
|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE |
|
| 17P | Request for examination filed |
Effective date: 20230711 |
|
| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| DAV | Request for validation of the european patent (deleted) | ||
| DAX | Request for extension of the european patent (deleted) | ||
| GRAP | Despatch of communication of intention to grant a patent |
Free format text: ORIGINAL CODE: EPIDOSNIGR1 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: GRANT OF PATENT IS INTENDED |
|
| INTG | Intention to grant announced |
Effective date: 20251029 |
|
| GRAS | Grant fee paid |
Free format text: ORIGINAL CODE: EPIDOSNIGR3 |
|
| GRAA | (expected) grant |
Free format text: ORIGINAL CODE: 0009210 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE PATENT HAS BEEN GRANTED |
|
| AK | Designated contracting states |
Kind code of ref document: B1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| REG | Reference to a national code |
Ref country code: CH Ref legal event code: F10 Free format text: ST27 STATUS EVENT CODE: U-0-0-F10-F00 (AS PROVIDED BY THE NATIONAL OFFICE) Effective date: 20260325 Ref country code: GB Ref legal event code: FG4D Free format text: NOT ENGLISH |
|
| REG | Reference to a national code |
Ref country code: DE Ref legal event code: R096 Ref document number: 602022032931 Country of ref document: DE |
|
| REG | Reference to a national code |
Ref country code: IE Ref legal event code: FG4D Free format text: LANGUAGE OF EP DOCUMENT: FRENCH |