HOTAS Throttle Cover
    2.
    发明申请

    公开(公告)号:US20250066030A1

    公开(公告)日:2025-02-27

    申请号:US18454458

    申请日:2023-08-23

    Abstract: A flexible cover for an aircraft hands on stick and throttle. The cover has a top layer and bottom layer joined by a grid having a particular grid density range and Shore A hardness range providing flexibility in cold climates and frictional grip to remain on the throttle in hot climates. The cover has an irregular perimeter, matched to the irregular perimeter of the particular throttle of the aircraft. The cover may have an indicium to assist in proper placement on the throttle. The cover is unitary and fits in the map case of the cockpit.

    Piston activated cartridge valves and the components thereof

    公开(公告)号:US12222045B2

    公开(公告)日:2025-02-11

    申请号:US17573675

    申请日:2022-01-12

    Inventor: Edgar G Mendez

    Abstract: Valves, the components used to create valves and, more particularly, to piston-activated cartridge valves. The valves include cartridge valve assemblies having a housing and a slidable member. One end of the slidable member extends outward beyond the second end of the cartridge housing, and can be contacted by an actuator piston to open the valve. The interior surface of the cartridge housing and the sides of the slidable member are configured so that when the slidable member is in the open position, at least one fluid flow path is provided between the first and second openings of the cartridge housing so that fluid can flow either: (a) from the first opening to the second opening; or (b) from the second opening to the first opening.

    METHOD OF ANALYZIING AND CORRECTING A COMPLEX WAVEFORM BY REAL AND IMAGINARY PARTITIONING AND RECOMBINATION

    公开(公告)号:US20250020775A1

    公开(公告)日:2025-01-16

    申请号:US18418585

    申请日:2024-01-22

    Abstract: A method of analyzing and correcting a complex dynamic waveform, such as a radar wave or communication wave. The method comprises dividing a complex waveform into its real and imaginary components, then separately analyzing each such waveform in a dedicated neural to determine respective real and imaginary loss functions as the difference between the actual characteristics and desired characteristics of the mean squared error and at least one of frequency-domain power, time-domain envelope, and frequency-domain phase. The real waveform and imaginary waveform are independently corrected, then recombined into a single corrected complex waveform. These differences are fed into a neural network to improve prediction correction to bring the actual waveform closer to a benchmark waveform. The method of the present invention displays increased accuracy over the prior art without increased computing time or sacrificing notch depth.

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