B64D45/00

Methods and systems for automatic cross-checking of electronic checklists

Disclosed are methods, systems, and non-transitory computer-readable medium for automatic cross-checking of an electronic checklist. One method may include: receiving a first user and/or system input associated with a graphical user interface (GUI) of the electronic checklist; determining whether the first user and/or system input triggers an error; in response to determining that the first user and/or system input triggers the error, displaying an error message on the GUI; receiving a second user and/or system input; determining whether the second user and/or system input resolves the error; and in response to determining the second user and/or system input resolves the error, removing the error message from the GUI.

Methods and systems for automatic cross-checking of electronic checklists

Disclosed are methods, systems, and non-transitory computer-readable medium for automatic cross-checking of an electronic checklist. One method may include: receiving a first user and/or system input associated with a graphical user interface (GUI) of the electronic checklist; determining whether the first user and/or system input triggers an error; in response to determining that the first user and/or system input triggers the error, displaying an error message on the GUI; receiving a second user and/or system input; determining whether the second user and/or system input resolves the error; and in response to determining the second user and/or system input resolves the error, removing the error message from the GUI.

LIGHTING DEVICE AND LIGHTING SYSTEM
20220408265 · 2022-12-22 ·

A lighting device includes: a communication unit that communicates with a vehicle which drives autonomously; a diagnostic unit that performs, via the communication unit, diagnosis as to whether the vehicle is being hacked; and a light emitter that emits illumination light onto at least one of the vehicle, a road on which the vehicle travels, or a parking space in which the vehicle parks.

BRAKING DEVICE
20220402464 · 2022-12-22 ·

A brake device for braking rotation of an input shaft includes a selectively operable trigger brake that includes: a static element; a trigger brake shaft mounted for rotational and axial movement relative to the static element and the input shaft; a preloaded torsion spring rotationally coupled to the input shaft but permitting a limited rotational movement between the trigger brake shaft and the input shaft; a roller jamming mechanism operable upon the relative rotation between the trigger brake shaft and the input shaft exceeding a predetermined amount to stop rotation of the input shaft upon operation of the trigger brake; and a brake actuator for selectively moving the trigger brake shaft into and out of engagement with a contact surface of the static element. Engagement of the contact surface of the static element and the trigger brake shaft overcomes the preload of the torsion spring.

BRAKING DEVICE
20220402464 · 2022-12-22 ·

A brake device for braking rotation of an input shaft includes a selectively operable trigger brake that includes: a static element; a trigger brake shaft mounted for rotational and axial movement relative to the static element and the input shaft; a preloaded torsion spring rotationally coupled to the input shaft but permitting a limited rotational movement between the trigger brake shaft and the input shaft; a roller jamming mechanism operable upon the relative rotation between the trigger brake shaft and the input shaft exceeding a predetermined amount to stop rotation of the input shaft upon operation of the trigger brake; and a brake actuator for selectively moving the trigger brake shaft into and out of engagement with a contact surface of the static element. Engagement of the contact surface of the static element and the trigger brake shaft overcomes the preload of the torsion spring.

AUTOMATIC AUTOLAND ACTIVATION METHODS AND SYSTEMS

Methods and systems are provided for assisting operation of a vehicle by automatically initiating activation of an automated functionality, such as autoland functionality of an aircraft, in the absence of user input within one or more monitoring periods. One method involves identifying a triggering event, identifying a monitoring period associated with the triggering event, monitoring one or more components for user input within the monitoring period associated with the triggering event, and automatically initiating activation of an automated functionality associated with the vehicle in the absence of user input within the monitoring period associated with the triggering event. In some implementations, the monitoring period adaptively and dynamically varies during operation.

SYSTEM FOR ELECTRIC AIRCRAFT NAVIGATION
20220406196 · 2022-12-22 · ·

A system for electric aircraft navigation includes a sensor configured to detect a navigation signal, a flight controller, wherein the flight controller is configured to receive the navigation signal, identify a navigation status as a function of the navigation signal, and determine an aircraft adjustment as a function of the navigation status, and a pilot display, wherein the pilot display is configured to display the aircraft adjustment to a user, and present an autonomous function configured to enact the aircraft adjustment automatically.

FLIGHT PUSHBACK STATE MONITORING METHOD BASED ON MULTI-MODAL DATA FUSION
20220402626 · 2022-12-22 ·

A flight pushback state monitoring method based on multi-modal data fusion comprises: 1, constructing a control intention recognition rule, and recognizing a pushback intention from a control instruction sent by a controller; 2, constructing a flight intention recognition model, extracting an aircraft action from a real-time monitoring video, and capturing a flight intention; and 3, constructing an intention alignment fusion rule, and judging whether control intention information conflicts with flight intention information; by fusing the control intention and the flight intention, the method can realize the following auxiliary functions: timely judging whether the aircraft follows the pushback instruction sent by the controller, if a captain does not act according to the control instruction or acts arbitrarily without a control instruction, giving an inconsistent alarm, and a function of monitoring the flight pushback state is implemented.

WATER LEAK DETECTION SYSTEMS AND METHODS FOR AN INTERNAL CABIN OF AN AIRCRAFT
20220404228 · 2022-12-22 · ·

A vehicle includes an internal cabin. One or more areas are within the internal cabin. The one or more areas include one or more water-drawing components. A water supply system is within the internal cabin. The water supply system is configured to provide water to the one or more water-drawing components. A water leak detection system includes one or more sensing devices configured to detect water flow from the water supply system to the one or more water-drawing components. One or more shut-off valves are disposed on or within the water supply system. A control unit is in communication with the one or more sensing devices, the one or more shut-off valves, and the one or more water-drawing components. The control unit is configured to operate the one or more shut-off valves to stop the supply of water to the one or more water-drawing components in response to the one or more sensing devices detecting the water flow when the one or more water-drawing components are not in use.

WATER LEAK DETECTION SYSTEMS AND METHODS FOR AN INTERNAL CABIN OF AN AIRCRAFT
20220404228 · 2022-12-22 · ·

A vehicle includes an internal cabin. One or more areas are within the internal cabin. The one or more areas include one or more water-drawing components. A water supply system is within the internal cabin. The water supply system is configured to provide water to the one or more water-drawing components. A water leak detection system includes one or more sensing devices configured to detect water flow from the water supply system to the one or more water-drawing components. One or more shut-off valves are disposed on or within the water supply system. A control unit is in communication with the one or more sensing devices, the one or more shut-off valves, and the one or more water-drawing components. The control unit is configured to operate the one or more shut-off valves to stop the supply of water to the one or more water-drawing components in response to the one or more sensing devices detecting the water flow when the one or more water-drawing components are not in use.