Reducing the balance bar end portion thickness avoids battery interference, enabling a thinner electronic device profile.
A head-mounted display uses floating cushions connected via adjustable fixing assemblies to match user head shapes.
A foldable electronic device uses a movable third body driven by a rotating shaft to adjust flexible display positioning during folding.
Elastic member latching achieves stepless adjustment, resolving multi-step positioning limits in head-mounted displays.
A pantograph mechanism incorporates a central boss to secure chassis fasteners within the scissor arm structure.
Configures event-driven messages with executable icons, resolving monotony and limited interaction on wearables.
A portable computer uses a cam structure to pivotally connect a support element, enabling smooth rotation between notebook and tablet states.
A multi-symbol keyboard uses assisting keys and finger sensors to enable efficient one-handed data entry on compact devices.
Timestamp-based cryptographic ranging prevents signal amplification spoofing attacks while maintaining convenient password-less device access.
Dual-layer segments vary lengths to project the neutral bend axis, eliminating tension and compression stress on OLED displays during folding.
A detachable data collection module attaches to a hand or ring for hands-free barcode scanning while maintaining mobility.
A transparent display uses electro-optical materials to switch between black and transparent states for improved image contrast.
Segmented hinge design exposes cable interfaces on the keyboard side, resolving repair complexity while maintaining structural stability.
Gear rack transmission moves the cover panel along sliding rails, preventing spring back and preserving internal circuit board space.
A head mounted display features an internal screen for the user and an external screen facing outward.
A hinge-integrated input device relocates controls to the pivot axis, enabling a clean side profile without protruding buttons.
Segmented panels and nesting resolve the trade-off between display versatility and device weight.
Rotating arm sections enable configuration switching while structural cushioning protects the display from deformation stress.
Counting cover separations triggers automatic touch calibration, resolving accuracy issues without manual user intervention.
A lifting mechanism moves a display plate between positions using elastic members.
Capacitive touch buttons replace mechanical push switches on display backs, eliminating bezel constraints and reducing false touches from noise.
A portable device hinge uses magnetic repulsion to detach connecting elements and rotate a support unit from closed to open positions.
A detachable camera module fits into a notebook recess secured by a moveable restriction unit.
Pre-formed alignment flange uses pins to fix module position and eliminate tilting.
A rotating locking bar mounts a touch screen display, enabling side access for servicing without bottom screw removal.
A touch panel system disables input operations when temperature sensors detect heat buildup from the motherboard.
A foldable hinge mechanism uses sliding plates and connecting rods to adapt shell positions during folding.
A footstand mechanism uses a rotating shaft and polygonal block to adjust device tilt angles.
Pivot connections rotate the display body away from the keyboard to correct viewing posture and reduce neck strain.
Local processing in a lid controller hub reduces latency and power consumption by eliminating hinge wire routing for sensor data transmission.
An internal cavity-based mounting system secures thin displays without adding bulk, resolving the trade-off between structural strength and device thickness.
Relocating the low-frequency speaker into the hinge pivot minimizes vibration interference with optical drives while maintaining compact device dimensions.
A support substrate integrates a wavy metal sheet under the display panel to minimize boundary visibility while maintaining dent resistance.
A rotating display unit transforms horizontal screens to vertical orientation via a hinge mechanism.
Rotatable connections adjust device attitudes to maintain stability despite weight imbalances between supporting and supported members.
A multi-state planar hinge assembly transitions between flexible and rigid states using an actuator to adjust layer separation distance.
Elastic axis members deform during hinge rotation to reduce bending stress on flexible display panels.
Retracting the display into a U-shaped base reduces overall thickness while maintaining keyboard accessibility.