A composite shielding sheet conceals the exposed hinge module during opening, preserving appearance integrity without adding mechanical complexity.
Merges sensors with the display panel to resolve complexity trade-offs while enabling multi-angle biometric input.
A tri-body electronic device pivots a display unit away from a processing body to create an independent viewing angle.
Segmenting the display area into multiple segments with individual collimating optical elements reduces image aberrations while expanding the exit pupil size.
A display adjustment device acquires display information to autonomously move and orient the screen.
A control unit adjusts scrolling limits based on display curvature to keep content ends visible.
A tractive member links two rotors to enable synchronous shaft rotation, eliminating noise and collision from complex cam-and-latch structures.
A rear touchpad switches between default and navigation modes to enable precise control on handheld devices.
Timed link elements in the hinge assembly adjust length and curvature to prevent pinching damage on flexible displays during configuration transitions.
A self-retracting stand assembly pivots away from a computing device rear face to provide multiple upright orientations.
A foldable electronic device input module moves via a linkage mechanism to adjust position and angle.
Rotatable support hinges enable detachable display members to adapt form factors while maintaining reliable electrical connections.
Through-holes in the digitizer base member relieve stress accumulation during folding, maintaining structural strength while improving device reliability.
A bendable interface electronic device manages display content by tracking conformation changes to adapt information presentation.
A magnetic locking assembly uses a spring and wheel to secure a laptop display member in position.
A retractable display integrates a displaceable cleaning bar to remove surface contaminants before retraction.
Insulating zones segment the vertical conducting layer of a touch sensor, preventing static electricity accumulation from damaging the entire structure.
Sensing device acquires input sense points to switch object identifications on a wearable display screen.
Segmented multi-material enclosure layers enable complex geometries while eliminating material waste from removal operations.
A pin member coupled to a support plate receives elastic force from an elastic member to counteract reaction forces on the flexible display.
Releasable display retention and stretch-release adhesive bonds enable component disassembly without damaging structural integrity or impact resistance.
A terminal housing integrates a power storage unit and a rotatable plug unit to provide portable charging capability for mobile devices.
A display film retention bracket adheres to the film and extends through an aperture to prevent displacement during device movement.
A segmented display chassis isolates engagement parts to an intermediate bezel section, reducing outer dimensions without altering the panel size.
A machine learning model personalizes context detection using automated annotations from non-always-on sensors.
A curved window integrates directly onto a polarization layer covering both display and non-display areas of a display panel.
A moveable display screen covers a physical keyboard to resolve the contradiction between device thinness and keyboard accessibility.
Corner sensors detect touch and pressure inputs to enable intuitive device control based on user grip orientation.
A pivotal connector and link structure increases the folding region's bending perimeter, releasing stress concentration that causes breakage or wrinkling.
Window segmentation resolves the trade-off between input functionality and application display space on limited screens.
A movable lower housing portion creates a variable gap to increase internal airflow in thin notebook computers.
A U-shaped flexible display wraps around device borders to eliminate visible black frames and prevent hand obstruction during touch operations.
A display docking port frictionally retains a hands-free headset while transferring power through a mating jack connector.
Spanning thermal spreaders distribute heat from hot components to cool areas, reducing temperature differentials between dual housings.
Segmenting the housing from the camera support member preserves structural rigidity while preventing module escape.
A foldable electronic device adjusts its display region and interface layout across multiple operational modes to support adaptive content presentation.
An expandable input device transitions between collapsed and expanded states to adjust touch sensitive surface area.
A rotatable support member adjusts between parallel and angled positions to enable flexible usage states.
A grid-based selection system converts predictive wearability metrics into squashed values to balance item allocation across user segments.
A variable torque bar mechanism adjusts hinge resistance to maintain display orientation during operation.
A transverse compression cam mechanism stabilizes folded angles in flexible display segments using a spring-loaded pin.
Multi-layer cover plates reduce device footprint while maintaining structural integrity and electromagnetic transparency.
A light seal with pressure-controlled air bladders conforms to user faces and cushions external forces through valve-based air release.
Operational posture switching unit connects to an electronic device body via a connector to enable multiple working positions.
Segmented support plates distribute mechanical forces across a flexible substrate during pivoting, preventing damage while maintaining compact thickness.
A fabric laminated touch input device resolves the trade-off between structural strength and user comfort by damping vibration and dissipating heat.
Auxiliary component units attach to head-mounted devices via standardized interfaces to provide modular electronic functionality.
An inclined plate divides the heat sink air channel into two stages, redirecting airflow around downstream hinge obstacles to maintain cooling performance.
Segmented housing and internal acoustic cavity reduce component vibrations and loosening, improving reliability while maintaining structural integrity.