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    A novel button-flexible ultrasonic transducer array enables real-time positioning for flexible wearable devices. This design facilitates 2D ultrasonic phased imaging in dynamic wearable scenarios.

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    Area of Science:

    • Biomedical Engineering
    • Materials Science
    • Robotics

    Background:

    • Real-time positioning of flexible wearable ultrasonic transducer arrays under dynamic conditions remains a challenge.
    • Existing flexible ultrasonic devices often lack precise spatial localization capabilities in motion.

    Purpose of the Study:

    • To design a novel flexible wearable ultrasonic transducer array with real-time positioning capabilities.
    • To enable two-dimensional area array ultrasonic phased imaging in dynamic wearable applications.

    Main Methods:

    • Development of a button-flexible hinge structure for three-dimensional adaptive deformation.
    • Integration of a dual ultrasonic array structure combining rigidity and flexibility.
    • Implementation of real-time ultrasonic positioning for individual transducer array elements.

    Main Results:

    • The button-flexible hinge successfully achieved adaptive 3D deformation.
    • The dual array structure provided effective real-time positioning for transducer elements.
    • Demonstrated feasibility of two-dimensional area array ultrasonic phased imaging in dynamic wearable scenarios.

    Conclusions:

    • The proposed button-flexible ultrasonic transducer array design offers a viable solution for real-time positioning in dynamic wearable systems.
    • This innovation paves the way for advanced flexible wearable ultrasonic equipment.
    • The design enhances the adaptability and imaging capabilities of wearable ultrasonic devices.