The devices, systems, and methods described herein relate generally to the Internet of Things. More particularly, the devices, systems, and methods described herein relate to smart home devices.
Many improvements and developments have been made in the field of Smart Home devices. However, many devices, especially existing devices (such as windows and doors, for example) in a residence or business, simply aren't smart and/or weren't designed to be smart. It is desirable to be able to convert otherwise dumb devices into smart devices.
Devices, systems, and methods for a frame with a slidable segment are disclosed. The slidable segment (e.g., a window or door) is slidably mounted within the frame (e.g., a window frame or a door frame). A first motor is coupled to the slidable segment. A first pulley is affixed to and driven by the first motor. A first end of a first wire is affixed to a first vertical member of the frame. A second end of the first wire is affixed to a second vertical member of the frame. The first wire wraps around the first pulley at least once. Driving the first pulley in a first direction causes the first pulley to pull on the first vertical member such that the slidable segment slides towards the first vertical member. Driving the first pulley in a second direction causes the first pulley to pull on the second vertical member such that the slidable segment slides towards the second vertical member.
A second motor may be coupled to the slidable segment. A second pulley may be affixed to the slidable segment and driven by the second motor. A first end of the second wire may be affixed to the first vertical member of the frame and a second end of the second wire may be affixed to the second vertical member of the frame. The second wire may wrap around the second pulley at least once. The first motor and the second motor may be oriented anti-parallel to each other. Driving the second pulley in the second direction causes the second pulley to pull on the first vertical member, in conjunction with the first pulley, such that the slidable segment slides towards the first vertical member. Driving the second pulley in the first direction causes the second pulley to pull on the second vertical member, in conjunction with the first pulley, such that the slidable segment slides towards the second vertical member. The first motor may be coupled to a bottom portion of the slidable segment and the second motor may be coupled to a top portion of the slidable segment.
The frame may be a window frame or a door frame. The frame may have a fixed segment offset from the slidable segment such that the slidable segment can slide past the fixed segment.
The first motor may include one or more communication systems, including Bluetooth communication chips, Internet Wi-Fi transceivers, network transceivers, a Z-Wave network transceiver, or a combination thereof. The one or more communication systems may communicate with an external remote controller. The one or more communication systems may receive instructions from the external remote controller, generate signals instructing the first motor to rotate in a direction, receive signals from the first motor regarding a status of the first motor, and generate a signal informing the external remote controller of the status of the first motor. The motor may be powered by one or more batteries or by an electrical power line.
In order that the advantages of the described devices, systems, and methods will be readily understood, a more particular description of the described devices, systems, and methods briefly described above will be rendered by reference to specific embodiments illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the described devices, systems, and methods and are not therefore to be considered limiting of its scope, the devices, systems, and methods will be described and explained with additional specificity and detail through use of the accompanying drawings, in which:
It will be readily understood that the components of the described devices, systems, and methods, as generally described and illustrated in the Figures herein, could be arranged and designed in a wide variety of different configurations. Thus, the following more detailed description of the embodiments of the described devices, systems, and methods, as represented in the Figures, is not intended to limit the scope of the described devices, systems, and methods, as claimed, but is merely representative of certain examples of presently contemplated embodiments in accordance with the described devices, systems, and methods.
Automatic opening and closing of sliding windows and sliding doors generally requires planning ahead and use of frames that are designed specifically for automatic sliding doors and automatic sliding windows. However, when automation of an existing installation is desired, a complete replacement of the existing frame is costly and requires more construction skill than the typical homeowner possesses. The devices, systems, and methods disclosed herein disclosed provide solutions to this issue. A motor installed on the sliding segment of the door or window is coupled by a pulley to a wire. The wire extends between the vertical members of the frame. Rotation of the pulley pulls on the wire, causing the sliding segment to move from closed to open and back again. This solution is cost effective and requires minimal construction skill.
Herein, the term ‘wire’ refers to wire, string, cable, thread, bead chains, chains, links, or any other similar object that may be used in a pulley.
Referring now to the Figures,
Motor assemblies 116 are affixed to the top and/or bottom of the left side of the sliding segment 114. Although two motor assemblies 116 are shown in
Referring to
Referring to
Motor assembly 316 is affixed to the bottom of the left side of the sliding segment 314. Motor assembly 316 contains a motor and a pulley, as described in
In some embodiments, the motor assembly 316 includes a transmission (not shown). The transmission may include one or more gears that convert rotational speed to rotational torque for driving the pulley that pulls the wire. In some cases, the transmission is configured such that the transmission can only be driven by the motor of the motor assembly 316 (cannot be driven by the pulley, for example). For instance, the transmission may include a worm gear that may be driven by the motor to drive the pulley, but that locks the pulley in place when the motor is not spinning (the pulley cannot be used to turn the worm gear, for example). Thus, the transmission locks the slidable segment 314 in place in whatever position the slidable segment 314 is in (assuming the wire is wrapped around the pulley such that there is no slippage between the wire and the pulley, for example). So in contrast to typical locking mechanisms that only lock a slidable segment when the slidable segment is in a closed position, the transmission locks the pulley in place along the wire in whatever place along the wire that the pulley is at. So the slidable segment 314 may be locked in place when the slidable segment 314 is closed as with typical locking mechanisms but could also lock the slidable segment 314 in place when the slidable segment 314 is any degree of partly open or even fully opened. This feature may allow for the slidable segment 314 to be partly opened, while still providing security that the slidable segment 314 cannot be opened further or closed outside of an authorized user's control (when the motor is driven, for example).
Referring to
Although the operations of method 400 are illustrated as being performed in a particular order, it is understood that the operations of method 400 may be reordered without departing from the scope of the method.
In some embodiments, the first motor includes one or more communication systems. These may include Bluetooth communication chips, Internet Wi-Fi transceivers, network transceivers, a Z-Wave network transceiver, or a combination thereof. In some embodiments, the one or more communication systems communicate with an external remote controller. In some embodiments, the one or more communication systems receive instructions from the external remote controller, generate signals instructing the first motor to rotate in a direction, receive signals from the first motor regarding a status of the first motor, and generate a signal informing the external remote controller of the status of the first motor.
In some embodiments, the motor has and is powered by one or more batteries. In other embodiments, the motor has and is powered by a power line.
In some embodiments, the slidable segment is slidably mounted by being between tracks on a top horizontal member of the frame and a bottom horizontal member of the frame, the tracks allowing the slidable frame to freely move side to side.
In some embodiments, the frame has a latching device that mates to a latching receiver attached to the slidable segment, wherein mating prevents movement of the slidable segment. In some embodiments, the latching receiver comprises a communication device that generates a signal when the latching device is mated and transmits that signal to the motor, wherein the signal deactivates the motor.
In some embodiments, the first end and the second end of the wire may be attached by adhesive, hooks, screws, loops, or a combination thereof. In some embodiments, the motor assembly may be mounted to the slidable segment by adhesive, screws, nails, or a combination thereof.
In some embodiments, a groove of the pulley may be smooth or toothed.
In some embodiments, the second end of the wire may be attached to the second vertical member of the frame by a tensioning device. The tensioning device may be permanently attached and capable of re-tensioning the wire as the wire loses tension over time.
This application is a continuation-in-part of U.S. Patent Application No. 62/528,288, filed Jul. 3, 2017, which is hereby incorporated by reference herein in its entirety.
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