The present invention relates generally to the field of a system for opening and closing sliding doors, and more particularly to a system and a portable device for opening and closing sliding glass doors in residential and/or commercial dwellings where such device operates on and along the track of the sliding glass door.
Sliding glass door assemblies are commonplace in both residential and commercial dwellings. A sliding door is mounted on a horizontal track in offset alignment with a separate, fixed door or panel. When a person desires to enter or leave through the sliding door, the person opens the latch and slides the sliding door along the track to open the door, and then slides the door back to the closed position and locks the door.
Sliding door devices have been invented to open sliding doors for the elderly, those who are physically challenged, or someone seeking additional convenience by the assistance of a powered device to open and close the sliding door. In many of the prior art designs, the powered sliding door devices were installed and mounted outside of the sliding door assembly. These devices also required a specialist or technician who would know how to assemble the device, and then install and mount such device to the sliding door assembly and corresponding wall or other fixed surface. The assembly, installation and mounting of the devices can be difficult due to the many parts of the powered device, and possibly to complicated electrical wiring and hydraulic systems. Since these powered door openers were fixed into a surrounding wall, these devices were not portable and could not be easily moved from one sliding door assembly to another. The powered device would have to be completely removed and disassembled before it could be installed in another location.
One of the disadvantages of the prior art devices is that in many instances, the door frame, and sometimes the sill or jamb, or surrounding wall area, had to be structurally altered for the devices to be mounted for operation. This poses many problems which involve whether the integrity of the surrounding wall or door frame was suitable and durable for mounting purposes. Once mounted, these powered devices also had the problem of having an obstacle at or near the passageway of the sliding door.
When a pet (e.g., dog, cat) wants to go outside, the owner of the pet must open and close the sliding door. Sometimes a pet door is installed in the sliding door, or to another separate piece which fits between the sliding door and the building. There is no way for the pet to open a sliding door on their own. If an owner is away for extended periods of time, this can cause the pet great inconvenience, and usually the owner as well, since the owner will be forced to clean up after a pet that was unable to go outside.
Therefore, what is needed is a motorized device for opening and closing sliding doors that requires little or no assembly. What also is needed is a motorized device that can be easily mounted to a sliding door. What is also needed is a power-driven device that is programmable and gives the operator options for opening the door to desired openings and at variable speeds. Yet another need is for a power-driven device that is fully compatible with an existing security system or functions independently as it own security system. What is also needed is a device for a sliding door to open and close when a pet wants to go outside or come inside.
Accordingly, the present invention is directed to a power-driven device for opening/closing sliding doors that substantially obviates one or more of the problems due to limitations and disadvantages of the related art.
An object of the present invention is to provide a motorized device for opening/closing sliding doors that requires little or no assembly.
Another object of the present invention is to provide a motorized device for opening/closing sliding doors that is portable from one sliding door assembly to another.
Yet another object of the present invention is to provide a power-driven device for opening/closing sliding doors that is controlled by a programmable remote controller.
Another object of the present invention is to provide a portable, motorized device for opening/closing sliding doors that is easily and efficiently manufactured and marketed.
Yet another object of the present invention is to provide a device for opening/closing sliding doors that can be programmed, monitored and managed by a variety of remote devices, including remote controllers, computers and cell phones.
One embodiment of the present invention is a motorized device for opening/closing sliding doors that comprise a battery, at least one wheel, a servo coupled to the at least one wheel and coupled to the battery, and a controller coupled to the servo and battery, for controlling the servo to rotate the at least one wheel along the track in one direction to open the sliding door and for controlling the servo to rotate the at least one wheel along the track in the opposite direction to close the siding door.
Another embodiment of the present invention is a system for opening and closing sliding doors, comprising a device including, a battery, at least one wheel, a servo coupled to the at least one wheel and coupled to the battery, a controller coupled to the servo and battery, for controlling the servo to rotate the at least one wheel along the track in one direction to open the sliding door and for controlling the servo to rotate the at least one wheel along the track in the opposite direction to close the siding door; and a remote device for communicating with the controller to operate the device.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory and are intended to provide further explanation of the invention as claimed and not to limit it. Additional features and advantages of the invention will be set forth in the description which follows, and in part will be apparent from the description, or may be learned by practice of the invention. The objectives and other advantages of the invention will be realized and attained by the structure particularly pointed out in the written description and claims hereof as well as the accompanying drawings.
The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention.
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings.
Device 10 is a rectangular box and preferably is manufactured out of steel. However, other materials other than such as aluminum, plastic or other durable metals may be used. Device 10 preferably is in the horizontal position, as shown in
The width of device 10 is made to fit within the dimensions of the sliding door without touching or scraping along the fixed glass (or other material) panel. In alternative embodiments, the width of device 10 could be larger than the width of the sliding door 12. This however means that there be a slight protrusion beyond the width of the sliding door 12.
Mounting bracket 14 is used to attach device 10 to sliding door 12. Mounting bracket 14 is preferably made from steel or some other type of metal, but other durable materials may be used as well, such as plastic for example. Mounting bracket 14 has two holes at opposite end of the bracket 14, where a screw is inserted to attach and hold mounting bracket 14 to device 10 and sliding door 12. As shown in
Mounting bracket 14 may be fixed in length or adjustable. Device 10 may be flush with sliding door 12, or there may be a distance separating device 10 from sliding door 12. Although mounting bracket 14 is a straight, rectangular piece of steel with two holes at opposite ends, in alternative embodiments, mounting bracket 14 could be a “u”-shaped bracket that mounts to one end of device 10 and the rear portion 30 of sliding door 12. Mounting bracket 14 could also be a “L”-shaped bracket that attaches to the top of device 10 and the rear portion 30 of sliding door 12. In another alternative embodiment, mounting bracket 14 could also be a “L”-shaped bracket that attaches to the side of device 10 and the rear portion 30 of sliding door 12.
Although
An optional feature of the present invention is mounting bar or bracket 16. Mounting bar 16 is preferably a steel round or rectangular bar that extends from device 10 to some place along the side 28 or rear 30 of sliding door 12. Mounting bar 16 helps in stabilizing sliding door 12 when it is being opened and closed, especially in those cases where sliding door 12 is older and harder to move, than a newer or newly installed sliding door. Mounting bar 16 would have holes in opposite ends where screws could be inserted to attach mounting bar 16 to device 10 or sliding door 12. Mounting bar 16 may be fixed in length or adjustable.
It is preferred that latch 20 is an commercially available, electronic latch that is capable of wirelessly communicating with device 10. The electronic latch 20 may include a keypad to enter a specific code to open the door 12. However, latch 20 can be a non-electronic, regular latch that has to be manually opened and closed. With the push of a button, device 10 can automatically open, close and safely and securely lock sliding door 12. What follows is an example of a sequence of events to open the sliding door 12. First, a signal is sent to device 10 to open sliding door 12. Second, device 10 then sends a signal to latch 20 to move to the open position. If latch 20 is non-electronic, then latch 20 must physically be opened. Thereafter, device 10 either waits for an acknowledgment that the latch 20 is open, or after the expiration of a period of time, starts to move by pulling sliding door 12 open. Once device 10 has reached the desired open position, device 10 either waits for a signal to close or will close after an expiration of a period of time. Whereupon, device 10 will start to move by pushing the sliding door 12 into the closed position. Once in the closed position, device 10 will send a signal to latch 20 to close. Latch 20 will then close and lock.
The signal to open sliding door 12 can be sent in a variety of different ways. In the preferred embodiment, the “open” signal could be sent by a handheld, remote, wireless device. Alternatively, the signal could be sent via a button or keypad on the sliding door or mounted to a wall or counter, or via a button or switch on the device 10 itself. In yet another embodiment, electronic latch 20 may send the signal when a person physically opens the latch and/or enters a code on a keypad on latch 20. In also another embodiment, a pad that lays on the floor could transmit an open signal when either a person or pet steps onto it. In another embodiment, a commercially available proximity transmitter could transmit an open signal to device 10 when within a certain area by device 10. The proximity transmitter could be attached to pets, wheelchairs, people and canes, for example. In yet another embodiment, a cellular phone (such as an iPhone) could run an application that displays the functions of the remote controller and would transmit the “open” signal after the user activated such function. In another embodiment, a voice-activated signal could be sent—such as a person speaking the word “open”. In some of these methods, the “open” signal could be encrypted or software could be used to assure that a new code is sent every time the “open” signal is sent. Encryption provides an additional level of security.
The “close” signal will be sent internally to device 10 (via controller 70 discussed below) after a predetermined or programmable period of time. For example, the period of time could be five seconds from the time device 10 and sliding door 12 reach the open position. Therefore after five second, device 10 would begin the sequence of events to close sliding door 12. Alternatively, the devices mentioned in the previous paragraph could send or transmit a “close” signal to device 10. If a proximity transmitter transmitted an “open” signal as discussed above, once the pet or object moves away from sliding door 12 and is out-of-range for device 10 to receive the “open” signal, then device 10 would initiate the sequence of events to close sliding door 12.
Wheels 18 are centered within device 10 to slide, roll or ride along sliding door track 22. Wheels 18 are commercially available, and can be similar to those used in the sliding doors 12, where the wheel or roller has an indentation so as to roll along and stay aligned onto track 22. Wheels 18 may also made of steel, another metal or some other softer type of material that provides greater traction and friction with the surface of the sliding door assembly, for example rubber or plastic. Each of the wheels 18 are also in line or aligned in the same axis with each other. Wheel 18 on axle 50 moves freely around axle 50, and helps support device 10. Wheel 18 of axle 50 is held into place by washers 60 that fit onto axle 50 and on either side of wheel 18. Washers 60 may be steel, plastic, rubber or some other durable material. Washers 60 are preferably fixed in location on axle 50. Wheel 18 is fixed or coupled to axle 52, and will only rotate when axle 52 rotates.
In an alternative embodiment, wheels 18 may have some material, for example rubber or plastic, that provides a grip on track 22. The material is located on the inside of the wheels, or in the area of the recess where wheel 18 comes into contact with track 22. This material provides greater traction and friction for wheels 18 when wheels 18 are rolling along track 22.
Wheel 18 will be rotated by servo 54 via a chain and sprocket system which is comprised of chain 58 and sprockets 56, 62, all of which are commercially available. Sprockets 56, 62 are those that have toothlike projections and are used to engage the links of chain 58. Although the chain and sprocket system is connected only to one axle in
Servo 54 is a commercially available servo that is extremely powerful for its size. Servo 54 provide the torque to move sprocket 62, which in turn moves chain 58 and rotates sprocket 56, thereby forcing axle 52 and wheel 18 to rotate. Motor 54 operates in either direction, so as to move chain 58 and thus device 10 in either direction along track 22 (i.e., opening and closing sliding door 12). In an alternative embodiment, the chain and sprocket system could be replaced with a screw system, where servo 54 turns a screw which then turns a gear which is coupled to axle 52. The rotation of the screw would drive the gear to rotate, thereby rotating axle 52 and wheel 18. In another embodiment, servo 54 could be directly coupled to axle 52 via gears that rotate axle 52 in either direction.
In an alternative embodiment, instead of using to sprocket wheels 65 as shown in
Controller 70 includes a microprocessor and memory that is responsible for controlling all the functions and features of device 10, such controlling the opening and closing of sliding door 12. As shown in
Controller 70 is responsible for communicating signals to servo 54 to open and close sliding door 12. The “open” signal would instruct servo 54 to rotate or move in a particular direction, whereby device 10 would slide along track 22 and open sliding door 12. The distance by which device 10 opens sliding door 12 can be programmed or preselected from predetermined distances. The “close” signal would instruct servo 54 to rotate or move in the opposite direction so that device 10 would roll along track 22 to move sliding door 12 into the closed position. Controller 70 will monitor servo 54 to determine if extra force is being applied by servo 54. If so, such a condition may signal that the door is fully closed.
If someone was attempting to break-in the building by forcing open sliding door 12, servo could detect the motion and notify controller 70 of the motion. Whereupon, controller 70 could trigger speaker 78 so a loud sound would be emitted for a brief period of time. Controller 70 could also transmit a signal via antenna 74 to the building's security system. The separate security system could then trigger the other alarms and send the appropriate signals to security or police stations, or to send a text to a cell phone of the building's owner/occupant. Alternatively, controller 70 could send a signal directly to a wireless router to notify the police or the owner/occupant about the attempted break-in. Device 10 is programmable to be fully compatible with many different types of wireless security systems for home and commercial usage.
Controller 70 can be programmed to open sliding door 12 a certain distance for pets and another distance for people. Controller 70 can also be programmed to control how fast sliding door 12 is opened and closed. The speed of opening the door can vary and be different from the speed by which sliding door 12 closes.
A proximity transmitter could be attached to a pet, person or object so that when the pet, person or object is within a certain region or area of sliding door 12, the proximity signal would be received via antenna 74 and transmitted to controller 70. Controller 70 could be programmed to detect whether the pet, person or object was located in the vicinity of the sliding door for a period of time before starting the sequence of events to open sliding door 12. The proximity feature can be disabled using the remote controller or pressing a proximity disable/enable switch (not shown) on device 10.
Controller 70 can be programmed to work with and recognize a variety of optional safety features. For example, safety sensors can be installed around the sliding door assembly that project an invisible, infrared light beam across the sliding door opening. Controller 70 would automatically reverse or open sliding door 12 if anything interrupts the light beam while sliding door 12 is being closed.
Another safety feature that could be programmed into controller 70 is sensing software that will stop sliding door 12 from closing if contact is made with a person or object. For example, if device 10 was moving into the closed position, but a person or pet were still blocking sliding door 12, servo 54 could transmit this information to controller 70 which would determine whether to stop or to start a sequence to open sliding door 12. Servo 54 would detect that something is in the path of track 22 due to the extra force required to roll, slide or move sliding door 12. The sensitivity of servo 54 could be adjusted so that bumps during the closing sequence would not trigger controller 70 to open the door.
Antenna 74 is a commercially available antenna for transmitting and receiving signals within a predetermined distance. Antenna 74 can either be mounted on the outside of device 10, or preferably inside the box of the device 10. As shown in
Battery 80 is preferably a rechargeable lithium battery. Battery 80 may be removable through opening the top or side of device 10, or may plug into a port in device 10 which could then be easily removed without opening device 10. As shown in
Optional features of device 10 include the emergency switch 72, camera 76, speaker 78 and/or microphone 84. Emergency switch 72 is a safety override switch that will automatically stop device 10 from moving in either direction when switch 72 is pressed. Emergency switch 72 is a physical button, latch or switch located on the outside of device 10 that can be pressed by a person. As shown in
Camera 76 is another optional feature of device 10. Camera 76 is a commercially available camera that can be installed inside or outside of device 10 via a port, plug or otherwise. Camera 76 may also be a commercially available web cam. As shown in
Speaker 78 is yet another optional feature of device 10. Speaker 78 is a device for emitting a sounds, including alarm sounds and prerecorded voice sounds. For example, the prerecorded words “opening door” would be played on speaker 78 when sliding door 12 was opening, and the prerecorded words “closing door” would be played on speaker 78 when sliding door 12 was closing, for example. As shown in FIG. 7, speaker 78 is coupled to controller 70 and battery 80. If someone was attempting to break into the dwelling, servo 54 would sense the movement of sliding door 54 and notify controller 70 of the movement. Controller 70 could then determine from the signals sent by servo 54 whether the movement was associated with an attempted break-in or something else, like the wind. For example, if servo 54 determined that sliding door 12 moved at least one inch, then such information would be relayed to controller 70 which would determine that a break-in is most likely occurring. Controller 70 would then trigger a sound to be emitted by speaker 78. The intensity and loudness of the emitted sound could be programmable via controller 70 and a remote controller or computer.
Microphone 84 is a commercially available microphone. As shown in
In another example, when device 10 receives a proximity signal from a proximity transmitter associated with a pet, device 10 may initiate a prerecorded voice, such as “Spot, do you want to go outside?”. If the dog barks, then microphone 84 will receive the bark signal, controller 70 will process the signal, and initiate the open door sequence if controller 70 determines that the pet is barking.
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While the invention has been described in detail and with reference to specific embodiments thereof, it will be apparent to those skilled in the art that various changes and modifications can be made therein without departing from the spirit and scope thereof. For example, instead of device 10 being a separate and distinct piece from sliding door 12, device 10 could be integrated into the bottom of a sliding door. All the piece and parts would be contained in the sliding door. Thus some or all the parts and pieces shown in