RANGE OF MOTORIZED-DRIVE DEVICES FOR SCREENING BLINDS
20170306697 · 2017-10-26
Assignee
Inventors
Cpc classification
E06B9/72
FIXED CONSTRUCTIONS
F16H59/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E06B9/68
FIXED CONSTRUCTIONS
International classification
Abstract
A range of motorized-drive devices (100, 200, 300) for screening blinds comprises: at least one first drive device (100) for driving a first screening blind, comprising a first support (102), a first shaft (104) rotating about a first axis of revolution (106) with respect to the first support (102), at least a winding drum (108) for winding a drive cord of the first screening blind, rotating as one with the first shaft (104), a first geared motor unit (110) for driving the first shaft (104), housed in the first support (102) and kinematically connected to the first shaft (104), preferably via an overdrive (112), and a first electronic control module (114) fixed remote from the first geared motor unit (110), and at least one second drive device (200) for driving a second screening blind, comprising a second support (202), a winding tube (204) for the second screening blind mounted in the second support (202) so as to rotate about a second axis of revolution (206) with respect to the second support (202), a second geared motor unit (210) for driving the winding tube (204), housed inside the winding tube (204), and a second electronic control module (214) fixed remote from the second geared motor unit (210). The first geared motor unit (110) and the second geared motor unit (210) are identical and define a model of geared motor unit (10) that is common to the motorized-drive devices (110, 210) of the range.
Claims
1. A range of motorized-drive devices for screening blinds, comprising: at least one first drive device for driving a first screening blind, comprising: a first support, a first shaft rotating around a first axis of revolution with respect to the first support, at least a winding drum for winding a drive cord of the first screening blind, secured in rotation with the first shaft, a first geared motor unit for driving the first shaft, and a first electronic control module of the first geared motor unit, at least one second drive device for driving a second screening blind, comprising: a second support, a winding tube for the second screening blind so as to rotate around a second axis of revolution with respect to the second support, a second geared motor unit for driving the winding tube, fixed to the second support and housed inside the winding tube, and 1. a second electronic control module of the second geared motor, wherein the first geared motor unit and the second geared motor unit are identical and define a geared motor unit model shared by the motorized-drive devices of the range.
2. The range of motorized-drive devices according to claim 1, wherein the first motorized drive device comprises a speed reduction or overdrive stage between the first geared motor unit and the first shaft.
3. The range of motorized-drive devices according to claim 2, wherein the speed reduction or overdrive stage of the first drive device is an overdrive, which has a speed ratio in a range 1.1 and 2.
4. The range of motorized-drive devices according to claim 2, wherein the second geared motor unit directly drives the winding tube of the second drive device.
5. The range of motorized-drive devices according to claim 1, wherein the second drive device includes a speed overdrive or reduction stage between the second geared motor and the winding tube.
6. The range of motorized-drive devices according to claim 5, wherein the speed overdrive or reduction stage between the second geared motor unit and the winding tube is a speed reducer that has a speed ratio in a range between 1/1.1 and 1/2.
7. The range of motorized-drive devices according to claim 5, wherein the first geared motor unit directly drives the first shaft.
8. The range of motorized-drive devices according to claim 1, wherein the first geared motor unit shared by the range has a cylindrical casing.
9. The range of motorized-drive devices according to claim 1, wherein the first drive device includes a compensating spring mounted kinematically between the first shaft and the first support.
10. The range of motorized-drive devices according to claim 1, wherein the second drive device includes a compensating spring housed in the winding tube and mounted kinematically between the winding tube and the second support.
11. The range of motorized-drive devices according claim 1, wherein the shared geared motor unit model of the range comprises a rotary encoder and a rotation sensor reading information borne by the encoder.
12. The range of motorized-drive devices according to claim 1, wherein the first geared motor unit is powered by a first electrochemical source housed in the first support, and the second geared motor unit is powered by a second electrochemical source housed in the second support.
13. The range of motorized-drive devices according to claim 1, wherein the first electronic control module and the second electronic control module are physically identical and define an electronic control module shared by the drive devices in the range.
14. The range of motorized-drive devices according to claim 1, wherein: the first electronic control module of the first geared motor unit is fastened to the first support remote from the first geared motor unit and connected to the first geared motor unit by a first flexible electrical connection; and the second electronic control module of the second geared motor unit is fastened to the second support remote from the second geared motor unit and connected to the second geared motor unit by a second flexible electrical connection.
15. The range of motorized-drive devices according to claim 1, further comprising: at least one third device for driving a third screening blind, including: a third support, a third shaft rotating around a third axis of revolution with respect to the third support, at least a winding drum for winding a drive cord of the third screening blind, secured in rotation with the third shaft, a third geared motor unit for driving the third shaft, housed in the third support and kinematically connected to the third shaft by a speed reducer, and a third electronic control module of the third geared motor unit, the third geared motor unit being of the shared geared motor unit model of the range.
16. The range of motorized-drive devices according to claim 15, wherein: the overdrive of the first driving device has a speed ratio in a range between 1.1 and 2; and the speed reducer of the first driving device has a speed ratio in a range between 1/2 and 1/4.
17. The range of motorized-drive devices according to claim 3, wherein the second geared motor unit directly drives the winding tube of the second drive device.
18. The range of motorized-drive devices according to claim 6, wherein the first geared motor unit directly drives the first shaft.
19. The range of motorized-drive devices according to claim 3, wherein: the overdrive of the first driving device has a speed ratio in a range between 1.1 and 2; and the speed reducer of the first driving device has a speed ratio in a range between 1/2 and 1/4.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0025] Other features and advantages of the invention will emerge from reading the following description, in reference to the appended figures, which illustrate:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] For greater clarity, identical elements are identified using identical reference signs in all of the figures.
DETAILED DESCRIPTION OF THE INVENTION
[0032]
[0033]
[0034]
[0035]
[0036] The motorized-drive devices 100, 200, 300 have shared characteristics, and in particular, an identical geared motor unit model, supplied with direct current by electrochemical power sources 115, 215, 315, and controlled by an off-board control module 114, 214, 314. An identical geared motor unit model here means that the geared motor units 110, 210, 310 are identical.
[0037] More specifically, this geared motor unit model shared by the entire range, identified by reference 10 in
[0038] The motor 18 is preferably a direct current brush motor with manifold. The switching of the current in the windings is done mechanically via blades of the manifold. The motor may also be a brushless direct current (BLDC) motor. A motor of this type comprises a rotor provided with permanent magnets 30 and a stator provided with several coils 24. The motor further comprises an electronic steering circuit 22 arranged to successively supply the coils 24 with electricity. In order for the motor to operate, the electromagnetic fields created by the successive power supply of the coils 24 must be synchronized on the position of the rotor. The electronic steering circuit 22 can be positioned, at least partially, in the motor case 16. It in particular comprises at least one optical or magnetic rotation sensor 26, preferably a Hall effect sensor, which can be either associated with an encoder 28 mounted on the driveshaft, or directly sensitive to the magnetic field of the rotor poles 30. The rated speed of the motor can be relatively high, preferably greater than 25 RPM, and preferably greater than 30 RPM, for a relatively low torque, below 0.02 Nm. The geared motor unit is preferably designed to limit the electricity consumption and to emit only a low audio emission. At least part of the electronic circuit 22 can be comprised in the electronic control module associated with each drive device.
[0039] The reducer 20 associated with the motor 18 is positioned in the shared cylindrical case 16 of the geared motor unit. The reducer 20 is preferably an epicyclic reducer with one or several stages, having an output shaft 11 making up the output member of the geared motor unit 10.
[0040] According to a first embodiment shown in
[0041] Inasmuch as the torque and speed output by the geared motor unit 10 are optimized to actuate the windable screen, an adaptation proves necessary for the other two devices 100, 300, hence the presence of an overdrive stage 112 for the first device 100 and a speed reduction stage 312 for the third device 300. The following table provides an example of the speed ratios of each stage:
TABLE-US-00001 Device no. Device no. Device no. 1 2 3 Geared motor Rated motor 0.014 0.014 0.014 unit torque (Nm) Rated motor 1500 1500 1500 speed (RPM) Speed ratio of the 1/43 1/43 1/43 integrated reducer Additional Speed ratio 1.6 1/1 1/2.3 stage Shaft Rated speed 55 35 15 Rated torque 0.4 0.6 1.4
[0042] The electronic steering circuit 22 of the motor 10 is connected by a control cable 13, 113, 213, 313 to the off-board electronic control circuit 114, 214, 314, which sends the commands from the electronic control circuit 114, 214, 314 to the electronic steering circuit 22, and in return escalates data necessary for the command, and in particular data supplied by the rotation sensor 26, which may include rotation speed and/or angular position information. The electronic control circuit 114, 214, 314 can be physically identical for all three drive devices, thus constituting a universal control module 14, illustrated in
[0043] In order to be able to offer different levels of functionalities or different communication protocols, it is possible to provide several control modules 14, each module preferably being usable with all three types of drive devices 100, 200, 300, but corresponding to a given communication protocol or functionality level, proposed for the entire range. It is also possible to provide a control module that itself is modular, with a universal part shared by all of the devices 100, 200, 300 in the range, and optional modules, for example telecommunications, measurement or ambient data processing modules, that connect on the universal module.
[0044] The control module 14, 114, 214, 314 can be positioned in any appropriate location on the support. It may in particular be positioned near the electrochemical generators 115, 215, 315.
[0045] The power supply of the control circuit 14, 114, 214, 314 and the steering circuit 22 that supplies power to the motor 20 is done with direct current, preferably using one or several electrochemical generators 115, 215, 315, which may be cells or rechargeable batteries. Preferably, this or these electrochemical generators 115, 215, 315 are fastened to the support 102, 202, 302 of the drive device 100, 200, 300, preferably housed inside the support. The number and position of the electrochemical generator(s) 115, 215, 315 can vary from one drive device in the range to another. For maximum configurability, there is an interest in providing several modules with electrochemical generators 115, 215, 315, connected in series or in parallel, which in particular makes it possible to best use the available space in or on the support 102, 202, 302 in each application. Alternatively, a motorized-drive device can be powered from the grid, through a rectifier.
[0046] The support 102, 202, 302 is specific to each drive device in the range. It may be a box or a simple chassis.
[0047] To limit energy consumption, it is advantageously possible to provide a compensating spring 140, 240 for the first drive device 100 and/or the second drive device 200. When the windable screen associated with the second drive device 200, or the pleated screen or the Venetian blind associated with the first drive device 100 are deployed under the effect of their own weight, they contribute to stretching the associated drive spring 240, 140, the energy being stored in the form of elastic potential energy and retrieved when the screen is raised.
[0048] According to a second embodiment shown in
[0049] The following table provides an illustration of possible selection ranges for the sizing of the different components of the drive devices 100, 200, 300:
TABLE-US-00002 Device no. Device no. Device no. 1 2 3 Geared motor Rated motor 0.014 0.014 0.014 unit torque (Nm) Rated motor 1500 1500 1500 speed (RPM) Speed ratio of the 1/27.2 1/27.2 1/27.2 integrated reducer Additional Speed ratio 1/1 1/1.6 1/3.6 stage Shaft Rated speed 55 35 15 Rated torque 0.4 0.6 1.4
[0050] According to another alternative embodiment, the reducer 20 associated with the motor 18 and positioned in the shared cylindrical case 16 of the geared motor unit has a torque adaptation intermediate between the needs of the motorized-drive devices of a non-windable screen and of a windable screen. Thus, the drive device 200 of
[0051] One thus has greater freedom in choosing the motor 18 or geared motor unit 10 model adapted to the operating or sizing constraints of the entire range. Naturally, the sizes above are provided solely as an illustration and non-limitingly. They correspond to a range of motorized-drive devices powered by onboard autonomous electrochemical power supplies, with a low available power. For a range of drive devices powered from the grid, the available power is much higher and leads to different sizing. However, the speed ratios of the additional stages remain relatively close to the ranges previously described, since the sizing of the speed ratio of the additional stage depends on the type of screen being driven more than the available power.
[0052] Furthermore, it is possible to integrate the electronic steering circuit into the off-board electronic control module.