A combined proximity and force sensor detects edge interactions via capacitance changes between electrodes separated by compressible material.
A wearable device communicates with an electronic device to bind them and set an unlocking mode.
A cooling module forms a sealed duct with a cover sheet to direct blower fan airflow over heat sink fins, preventing hot air re-circulation into the inlet.
An auxiliary sheet prevents uneven shapes from transferring to the surface material, resolving the trade-off between heat dissipation and appearance quality.
A hinge assembly coordinates rotation across multiple housings via a linkage mechanism.
A heat dissipation panel uses a flexible layer adhered to the bending region of a heat conducting layer.
A thermoplastic polyurethane and barium sulfate blend achieves a specific gravity of 1.6 or more.
A docking station detects connected user identities to automatically apply personalized display and audio settings.
Varying pattern dimensions across columns relieve stress concentrations, reducing flatness unevenness in foldable displays.
Extending a shaft and rotating component allows the mechanism to serve as both a touch pen and a supporting leg, reducing manufacturing costs.
A trained neural network model predicts user head orientation from real-time sensor data to reduce motion-to-photon latency in virtual reality headsets.
Interlocking geared edges on housings mesh to rotate components, reducing moving parts while maintaining electrical connectivity.
A pivot holder uses magnetic attraction to engage a tablet body, reinforcing structural integrity at the hinge joint.
A dynamic ventilation mechanism redirects exhaust airflow through a hinge when a display closes.
A single-piece configurable component receptacle features a flexible portion enabling the holder to pivot between horizontal and pivoted configurations.
Pivot members and sliders guide the flexible membrane along a controlled path to prevent creasing while enabling portability.
An electromagnetic elevating assembly lifts a laptop keyboard rear end using magnetic attraction and repulsion forces.
A wearable device manages payment capabilities through dynamic state detection and authentication persistence.
Integrated drive-sense circuits enable dynamic touch resolution adjustment on a rollable display, reducing power consumption while maintaining sensing accuracy.
Uniform triangular electrodes provide touch sensing in non-rectangular areas while reducing algorithm complexity and connection width.
P-polarized light from a primary panel passes through a polarizer on a secondary reflective panel, resolving illumination intensity trade-offs.
A foldable device sensor panel transmits deviation signals to calibrate stylus input data.
Segmented housing with elastic plate enables smooth deformation while retaining stable shape to prevent damage during wear.
A vertical cradle docking station stabilizes electronic devices using shaped engagement members and a locking mechanism.
An intermediary connecting member engages recesses in the display module to enhance bonding strength without protruding structures that compromise safety.
A reconfigurable handle with a positioning mechanism attaches to an electronic device main body.
An elastic-driven locker mechanism uncouples a battery pack hook via an incline, preventing drops during removal.
Controller circuitry compares received motion data with stored templates to authenticate users without complex interfaces.
Segmented links and springs bias the hinge to prevent cover glass edge damage during configuration transitions.
Microphone array detects directional taps on the device surface to interpret non-verbal inputs.
Terminal device determines application window layout based on display posture data, resolving manual arrangement complexity.
Air gaps in an intermediate layer absorb folding stress to protect TFTs while maintaining adhesion strength.
Side screen shortcuts reduce interface switching complexity and cervical strain during text input operations.
Vertical acceleration detection triggers display retraction, redirecting impact forces from fragile screens to durable device edges.
Composite elastomeric mounting structures absorb shock and reduce operational noise while maintaining structural strength in portable computers.
A processor detects device state to provide appropriate camera specifications to applications.
Segmented conductive lines with differential yield strains disperse stress to prevent breakage during repeated bending and stretching.
A dual-processor system switches to a low-power unit when battery capacity drops, maintaining time measurement functions.
A lattice cover snaps to integrated posts to secure a portable keyboard against the housing surface.
A guiding groove on the main body allows the cover to slide backward while brackets rotate, resolving manufacturing errors that limit viewing angles.
A foldable display device uses a tension releasing mechanism with sliding members to manage screen stress during bending operations.
A magnetic support shaft deploys from a portable device body to prevent display shaking during operation.
A slide mechanism uses movable and fixed magnets to shield a camera lens while enabling stable slider movement.
A docking device uses a floating substrate connecting member to allow relative displacement between connectors.
A fixing module with accommodating spaces positions input modules on a circuit board to increase layout area.
A hinge unit routes display cables through a hollow interior to eliminate external covers.
Sliding pins engage housing lips to remove displays without adhesive, preventing panel damage during repair.
A foldable display device uses a hinge mechanism with plate stops to support flexible segments during expansion.
Rotatable electrical connection elements within the hinge mechanism protect cables from damage during rotation.