The present invention generally relates to an electro-optic window control system, and more particularly to a window control system for controlling a plurality of electro-optic windows of a vehicle or building.
According to one aspect of the present invention, a window control system is provided comprising a plurality of electro-optic windows each having a variable transmittance level; a portable control unit for generating wireless control signals for controlling the transmittance level of the plurality of electro-optic windows; and a plurality of window control circuits each coupled to a respective one of the plurality of electro-optic windows and each comprising a transceiver for receiving the wireless control signals from the portable control unit, and each configured to adjust the transmittance level of the respective one of the plurality of electro-optic windows in response to a wireless control signal received by the transceiver from the portable control unit.
According to another embodiment of the present invention, a non-transitory tangible computer readable medium is provided having stored thereon software instructions that, when executed by a processor of a portable control unit, cause the processor to control transmittance levels of a plurality of electro-optic windows by executing the steps comprising: generating a display on a touch screen of the portable control unit showing a physical arrangement of the plurality of electro-optic windows to allow a user to select which of the plurality of electro-optic windows are to be adjusted; receiving the user's selection of which of the plurality of electro-optic windows are to be adjusted; and generating wireless control signals for controlling the transmittance level of the selected electro-optic windows of the plurality of electro-optic windows.
According to another embodiment of the present invention, an aircraft is provided comprising a plurality of electro-optic windows each having a variable transmittance level; and a plurality of window control circuits each coupled to a respective one of the plurality of electro-optic windows and each comprising a transceiver for receiving wireless control signals from a portable control unit, and each configured to adjust the transmittance level of the respective one of the plurality of electro-optic windows in response to a wireless control signal received by the transceiver from the portable control unit.
According to another embodiment of the present invention, a window control system is provided comprising a plurality of electro-optic windows each having a variable transmittance level; a portable control unit for generating wireless control signals for controlling the transmittance level of the plurality of electro-optic windows; a transceiver for receiving the wireless control signals from the portable control unit; and a plurality of window control circuits each coupled to at least one of the plurality of electro-optic windows and configured to adjust the transmittance level of the at least one of the plurality of electro-optic windows in response to a wireless control signal received by the transceiver from the portable control unit.
These and other features, advantages, and objects of the present invention will be further understood and appreciated by those skilled in the art by reference to the following specification, claims, and appended drawings.
The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numerals will be used throughout the drawings to refer to the same or like parts. In the drawings, the depicted structural elements are not to scale and certain components are enlarged relative to the other components for purposes of emphasis and understanding.
Each of the electro-optic windows 20a-20g has a unique ID associated therewith. The portable control unit 40 may store the unique IDs of each of the electro-optic windows 20a-20g such that upon selection of windows to control, the portable control unit 40 incorporates the unique ID of the selected electro-optic windows into the wireless control signals. This feature may be implemented in various ways as will be discussed further below. Each of the window control circuits 30a-30g may store the unique ID for the respective electro-optic window 20a-20g that it controls.
The processor 32 is coupled to transceiver 34 so as to enable receipt of desired transmission levels in wireless signals from the portable control unit 40. The wireless signals may be radio frequency (RF) signals, may be infrared (IR) signals, may be visible light communication (VLC) or may be optical wireless communications (OWC).
The transceiver 34 of each of the window control circuits 30a-30g may be a Bluetooth transceiver and the transceiver 44 of the portable control unit 40 may also be a Bluetooth transceiver for communicating the wireless control signals via a Bluetooth protocol. Thus, the transceiver 44 of the portable control unit 40 may directly and separately communicate with each transceiver 34 of the respective window control circuits 30a-30g so as to control the transmittance levels of windows 20a-20g either individually or in groups as described further below. When utilizing Bluetooth transceivers 34 and 44, window control system 10 may use the Bluetooth address (BD_ADDR) of each Bluetooth transceiver 34 in the respective window control circuits 30a-30g as the unique IDs for the respective electro-optic windows 20a-20g. The manner in which the Bluetooth transceivers 34 of window control circuits 30a-30g may be paired with the Bluetooth transceiver 44 of the portable control unit 40 will be described further below.
As mentioned above, the portable control unit 40 may be implemented using a smartphone or the like operating under control of a window control app. When the app is first opened, there is a set up mode it may execute before entering an operation mode. The set up mode will be described following a description of the operating mode. The app may be implemented as software instructions stored in a non-transitory tangible computer readable medium that, when executed by the processor 42 of the portable control unit 40, cause the processor 42 to control the transmittance levels of the electro-optic windows 20a-20g by generating a display on the touch screen user interface 46 of the portable control unit 40 showing a physical arrangement of the electro-optic windows 20a-20g to allow a user to select which of the electro-optic windows 20a-20g are to be adjusted, receiving the user's selection of which of the electro-optic windows 20a-20g are to be adjusted, and generating wireless control signals for controlling the transmittance level of the selected electro-optic windows. Examples of the displays that may be shown on the touch screen user interface 46 are shown in
As shown in
The display on the touch screen user interface 46 may also show an input slider bar 52 for allowing the user to adjust transmittance levels of the selected electro-optic windows to various states of transmission between a clear setting 54 and a dark setting 56. Thus, each window 20a-20g may be individually selected and controlled or the windows may be selectively controlled as a whole set or a subset. The appearance (e.g., shape, shading, or color) of the depictions of the electro-optic windows 20a-20g in the display of touch screen user interface 46 may be varied to indicate their current transmittance level. Further, either the slider bar 52 and/or the selected window(s) could blink while transitioning to the selected transmittance level. The slider bar 52 may be provided as another form of user input, such as discrete buttons representing increase transmittance and decrease transmittance.
The examples shown in
In the set up mode, the window control app of the portable control unit 40 uses the Bluetooth transceiver 44 to search for other Bluetooth devices. The Bluetooth transceivers 34 of each window control circuit 30a-30g may transmit periodic signals identifying themselves as a particular type of Bluetooth device. Thus, when searching for other Bluetooth devices, the Bluetooth transceiver 44 would find each of the Bluetooth transceivers 34 when in proximity thereto. Upon finding each of the Bluetooth transceivers 34, the Bluetooth transceiver 44 can transfer the type of Bluetooth device that is found to the processor 44, which can then implement an automatic pairing process to pair with each of the Bluetooth transceivers 34. Likewise, each of the Bluetooth transceivers 34, upon receiving a pairing request from the Bluetooth transceiver 44, would know to accept the request based upon the type of Bluetooth device by which the Bluetooth transceiver 44 identifies itself. After such pairing is complete, the system is set up to allow control signals to be sent from the portable control unit 40 to the window control circuits 30a-30g.
As another step in the set up mode, the processor 42 may be configured to prompt the user to identify the operating environment. For example, the user may select a particular model of aircraft. The processor 42 may use other components of the portable control unit to download an appropriate display 50 corresponding to the selected environment. This task may be accomplished before the pairing steps so that the processor 42 knows how many window control circuits 30a-30g may be present. The app may further provide for the ability of the user to customize the display 50 of the physical layout of the environment.
Another step of the set up mode may be to associate particular actual windows 20a-20g with the depictions of the windows shown on the display 50. One approach is to have each window control circuit 30a-30g configured to have IDs that represent the relative location of the corresponding window 20a-20g relative to the other windows. Another approach would be to allow the user to select a window on display 50 one-by-one and dim it to identify the actual window that is dimming. The window control app would then allow the user to move the window icon to its corresponding actual position. Yet another approach would be to provide an indicator light on each actual window 20a-20g that may be illuminated when the window is selected. The window control app would then allow the user to move the window icon to its corresponding actual position.
In the examples above, the environment including the electro-optic windows 20 has been described as an aircraft.
The above description is considered that of the preferred embodiments only. Modifications of the invention will occur to those skilled in the art and to those who make or use the invention. Therefore, it is understood that the embodiments shown in the drawings and described above are merely for illustrative purposes and not intended to limit the scope of the invention, which is defined by the claims as interpreted according to the principles of patent law, including the doctrine of equivalents.
This application claims priority to and the benefit under 35 U.S.C. §119(e) of U.S. Provisional Patent Application No. 62/339,178, filed on May 20, 2016, entitled “ELECTRO-OPTIC WINDOW CONTROL SYSTEM,” by David I. Driscoll et al., the entire disclosure of which is incorporated herein by reference.
Number | Date | Country | |
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62339178 | May 2016 | US |