Device and method for the dual control of mechanisms of either drapes or curtains
10433667 ยท 2019-10-08
Inventors
Cpc classification
International classification
Abstract
A device that includes a drive roller, in which the cord for the manual control of a mechanism for opening and closing a curtain or blind is partially wound to allow that said mechanism of curtain or blinds can be automated while maintaining the manual control at the same time.
Claims
1. An electronic device for electrically controlling a manually rotatable mechanism for opening and closing a shutter, wherein the mechanism includes a cord comprised of two parts, the device comprises: an electric motor that allows the rotation of its axis when not energized; a drive roller coupled to the axis of the electric motor, wherein the drive roller includes a length and at least three sections with larger diameter within said length of drive roller thus defining three major diameter and at least two sections with smaller diameter thus defining minor diameters, and wherein the distance of separation between major diameters allows the parts of the cord to wind around the minor diameters of the roller for at least one complete revolution; characterized in that the device is located at any point of the height of the cord, and characterized in that one part of the cord is at least partially wound, in a first direction, around a minor diameter and the other part of the cord is at least partially wound, in a direction inverse to the first direction, around the other minor diameter.
2. The device according to claim 1, wherein one major diameter is located at each distal end of the length of the drive roller, and the third major diameter is located at the center of said length of drive roller.
3. The device according to claim 2, wherein the distance of separation between major diameters is larger than the thickness of the cord.
4. The device according to claim 1, wherein a current detector for detecting the current induced by the motor is coupled to said motor, wherein the current detector detects the direction and amount of current generated by the rotation of the motor when it is not energized.
5. The device according to claim 1, wherein the device further includes a second roller with free rotary movement at the end of the cord and providing tension to the cord.
6. The device according to claim 1, wherein the drive roller includes a top layer of anti-slip material.
7. The device according to claim 1, wherein the top layer of the drive roller includes an elastomeric material.
8. The device according to claim 1, wherein the top layer of the drive roller includes teeth for pulling chains or bands.
9. The device according to claim 1, wherein the diameter of the minor diameters is substantially equal to the distance of separation between the two parts of the cord.
10. A method for electrically controlling a manually rotatable mechanism for opening and closing a shutter, wherein the mechanism includes a cord, the method comprising the steps of: in a device, which includes an electric motor that allows the rotation of its axis when not energized and a drive roller coupled to the axis of the electric motor, wherein the drive roller includes a length and at least three sections with larger diameter within said length of drive roller thus defining three major diameter and at least two sections with smaller diameter thus defining minor diameters, and wherein the distance of separation between major diameters allows the parts of the cord to wind around the minor diameters of the roller for at least one complete revolution: determining, through a current detector, whether the shaft of the electric motor has been manually rotated; determining, through the current detector, the direction of rotation, thus defining an initial direction of rotation; energizing the motor in order to rotate in the same direction as the initial direction for a pre-determined period of time; and determining, through the current detector, if the motor shaft has been manually rotated again.
11. The method according to claim 10, wherein the method further includes the step of energizing the motor in order to rotate according to the initial direction until a limit is detected, when the shaft of the electric motor has not been manually rotated.
12. The method according to claim 11, wherein energizing the motor is performed at a pre-established period of time.
13. The method according to claim 12, wherein the method further includes the step of determining whether the motor shaft has been manually rotated between each period of time.
14. The method according to claim 12, wherein the period of time change upon determining that the motor shaft has been manually rotated in the same direction as the rotating direction.
15. The method according to claim 10, wherein the method further includes the step of stopping the motor when the motor shaft has been manually rotated in an inverse direction to the initial direction.
16. The method according to claim 10, wherein the method further includes the step of determining if a limit has been reached during the motor rotation.
17. The method according to claim 10, wherein the method further includes the step of determining if a limit has been reached before the step of determining whether the motor shaft has been manually rotated.
18. The method according to claim 10, wherein the method further includes the step of energizing the motor in order to rotate in the opposite direction to the initial direction upon determining that the limit has been reached.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(10) The term drape or curtain is not intended to limit the scope of the present invention, since the invention is applicable in both objects, whether drape or curtain in conjunction with the entire mechanism that controls it, as well as equivalent objects or where the present invention can be applied, either through their devices and/or methods described.
(11) Curtains and/or drapes are made of materials, weight, application, etc. which may vary without affecting the scope of the present application, since the elements comprising the present invention may also vary in their characteristics so as to correspond to the mechanism controlling said curtain, blinds or equivalent. The materials can be selected from different types of fabrics, to different types of metals, including polymers as well.
(12) Likewise, the term cord refers to the rope, chain, cable, etc. which it is used in the art to be pulled and thus rotate a mechanism that opens or closes a curtain, blind or equivalent.
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(15) Once the cord 3 is coupled to the device 1, by rotating the drive roller 5, through the motor 2 and the microcontroller 4, the cord is constantly pulled thereby causing the rotational movement in the mechanism 100 and therefore the blind or curtain opens or closes depending on the direction of rotation.
(16) Furthermore, as it is shown in
(17) In one embodiment, a secondary roller 80 at the end of the cord 3 is placed, thus ensuring tension on the cord and facilitating the movement without skids of the cord 3 on the drive roller 5.
(18) In the
(19) In a preferred embodiment the surface of the smaller diameters 51 and 52 are coated with an elastomer or vulcanized material. Similarly, in one embodiment, the surfaces of the smaller diameters 51 and 52 have an anti-skid texture.
(20) Furthermore, in
(21) In one embodiment the large diameter and small diameter have the same dimensions.
(22) In a preferred embodiment, the smaller diameters 51 and 52 have a diameter which is similar to the distance between the end 3a and the end 3b at their closest point to the mechanism 100, that is, the distance w.
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(24) In one embodiment, the device 1 comprises a current detector (not shown in Figures) coupled to the motor 2 and in communication with the microcontroller 4 to thereby detect current flow when the cord 3 is pulled manually, so that the motor 2 is rotated manually and functions as a generator, which can be measured and identified by the microcontroller 4 through said detector. The direction of the sensed current defines the direction of rotation of the cord 3. In a preferred embodiment, when detecting that the cord 3 has been pulled, the device 1 starts the movement of the motor 2 in the same direction in order to cooperate with the manual movement.
(25) The microcontroller 4, which is a programmable element, sends a signal to the motor 2 to rotate either in one direction or the other through an interface such as an H-bridge or equivalent. The microcontroller also receives inputs from different means in order to interpret, according to previous configuration or firmware, to instruct the motor to rotate. The inputs can be received from various sensors, such as light sensors, motion sensors, temperature sensors, etc. Also, besides the microcontroller 4 is able to communicate directly with third party devices or systems through a communication port known in the art by allowing communication with other programmable elements, in one embodiment, a compatible transceiver 9 is coupled to the microcontroller, which it is configured to receive data remotely, wherein the data is sent by third party devices or systems for interaction with the device 1, wherein the data is interpreted by the microcontroller 4, so that in this way one or more users will be able to control the device 1 using, for example, one or more remote controls. The transceiver can be wired or wireless, through technologies well known in the art such as radio frequency, WiFi, Bluetooth, ZigBee, X10, among others, and/or variations thereof.
(26) By enabling both the manual control and also automation of the curtain or drape simultaneously, the device 1 allows a dual control in said drape, wherein the user can manually pull the cord or control the drape via a remote control. Wherein the remote control systems may vary without affecting the scope of the present invention. Also, the present invention can be applied to only automated control, that is, through a remote control or a control in situ, or only to allow manual control and manual control with automation of the drape, as explained above and wherein the method of operation is shown below.
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(28) In step 201 induced current is to be detected by the current sensor, so if current is detected in step 202, the device determines if the cord 3 is in one of its two limits, either limit of pulling in the end 3a or the end 3b, i.e. either in one rotational direction or in the other rotational direction. To determine if the cord 3 is in any of its limits magnetic sensors 6 or any other means known in the art are used. If in step 202 it is determined that it is not in any of its motion limits, in step 203 is determined, by the direction of the detected current, the direction of the pulling, which is comprised of two options which we call direction A (according to clockwise) and direction B (anti-clockwise). So that if the detected direction is direction A, in step 204 the microcontroller sends the order to the motor 2 to rotate by predetermined revolutions or a period of time in the same direction A, wherein in step 205 the device 1 detects whether it has reached a limit of movement during rotation of the motor 2, wherein once it is detected, in step 208 the motor 2 stops, and then return to step 201. If no limit of movement is detected, after passing the predetermined revolutions or period of time in step 204, in step 217 the motor 2 stops for a predetermined period of time and then in step 206, the device 1 detects whether a new pulling has been conducted on the cord 3, so that in step 207 detects whether the pulling has been conducted in the opposite direction to the previous direction, i.e. in the direction B, wherein in step 208 the motor is stopped or de-energized. However, if the pulling has been conducted in the same direction of the previous rotation, i.e. the direction A, in step 209 the predetermined revolutions or period of time is adjusted and returns to step 204, said adjustment is either to reduce or to increase said period, depending on a previous configuration of the device 1. If at the step 206, the pulling by the user is not detected, the device returns to step 204 to rotate the motor by the predetermined time and so on defining a cycle of operation.
(29) Complementary to the direction B, if in step 203 it is detected that the direction of pulling is in the direction B, at step 210 the microcontroller sends the order to the motor 2 to rotate for a period of time or predetermined revolutions in direction B, wherein in step 211 the device 1 detects whether a limit of movement has been reached during the rotation of the motor 2, wherein if detected, in step 208 stops or de-energizes the motor 2 for then returning to step 201. If no limit of movement is detected after passing the period of time or predetermined revolutions in step 210, in step 218 the motor 2 is stopped for a predetermined period of time and then in step 212, the device 1 detects if there has been another pulling to the cord 3, so that in step 213 it is detected whether the pulling took place in the opposite direction to the direction in which it was moving i.e. in the direction A, in step 208 the motor is stopped. However, if the detected pulling is in the same direction of the previous rotation i.e. the direction B, in step 215 the period of time or the predetermined revolutions are adjusted and then returns to step 210, the adjustment is to reduce, increase or some other setting, depending on a previous configuration. If in step 212, no pulling by the user is detected, the device returns to step 210 to rotate the motor the predetermined time and thus defining an operating cycle.
(30) In continuation, if in the step 202 it is determined that the device 1 is in one of its two limits of movement, in step 216 it is determined whether the limit is in direction A or direction B, so that if the limit is in the direction A, at step 210 the motor 2 rotates in the direction B. If the limit is in the direction B, in step 204 the motor 2 rotates in direction A, that is, in a direction opposite to the limit detected.
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(32) It will be apparent to those skilled in the art that several modifications and variations can be made in the present invention without departing from the scope or spirit of invention. Other embodiments of the invention will be apparent to those skilled in the art from the consideration of the specification and practice of the invention described herein. It is intended that the specification and examples are considered only as exemplary, with a true scope and spirit of the invention being indicated by the attached claims.