Perpendicular polarization vibrators expand frequency coverage while maintaining high gain and isolation.
Parallel conductive housing members separated by insulators protect antenna performance against large displays while improving shock resistance.
A multiband antenna uses conductive plates on a substrate to provide capacitance and inductive resonance for independent frequency tuning.
Placing antenna elements at reflector corners enables omni-directional coverage for 3G, 4G, and 5G protocols without increasing the horizontal footprint.
Nested radiation parts in a three-dimensional layout enable multi-band signal transceiving without increasing device volume or weight.
An amplification loop accumulates current to expand radio system coverage without increasing transmitter current supply.
A 1D phased array antenna uses a parabolic trough reflector to steer beams electronically for radar and communications.
Rear glass shared antenna design optimizes AM element length relative to FM wavelength to resolve interference near metallic defogger regions.
Metal exhaust vent grill forms ground current path to trap electromagnetic radiation within hinge cavity.
A grounded antenna uses a spaced conductive element to form a capacitor structure that broadens frequency compatibility.
A planar dipole antenna structure uses multiple conductive discs and a dual-line feed to achieve omnidirectional broadband operation.
A dual antenna device aligns radio wave amplitude directions to ensure consistent signal output across the communication band.
Rhomboidal modular subarrays eliminate gaps between antenna elements, reducing sidelobe levels and improving low observability.
Concentric ring antenna arrays with parasitic elements steer millimeter wave beams to resolve signal attenuation and bandwidth limitations.
A reconfigurable antenna device uses a switch module to adjust radiation segments for multi-band operation.
An auxiliary port captures self-interference for reflection, suppressing noise to enable full-duplex wireless capacity.
Segmented radiating elements and dimensionality changes enable broadband coverage while maintaining strict specific absorption rate limits.
A wideband antenna uses a metal loop between the radiating element and reflector to compress structural height.
A planar antenna uses a screening element and switch to toggle between dual current paths.
A tunable antenna element uses a control circuit to provide different impedances for adjusting resonant modes.
A second substrate with thermal vias radiates heat from a semiconductor chip to the external environment.
Resonant couplers isolate control signals from transmission lines, enabling dynamic reactance adjustment and fast beam scanning without added complexity.
A multi-band antenna uses a folded radiation surface to support GSM, GPS, and WCDMA bands.
Segmenting the ground plane on a ceramic carrier isolates low-frequency response from high-frequency bandwidth constraints.
Segmented sleeves on a planar monopole antenna generate a capacitive effect, expanding the frequency coverage ratio from under 30% to approximately 90%.
Resonance decoupling patterns reduce electromagnetic coupling between adjacent antennas, enabling closer placement without signal interference.
Segmented radiation elements nested within the metal frame eliminate tuning switches, reducing volume and complexity.
Patterned conductive layer acts as proximity sensor capacitor electrode, eliminating interference and reducing device volume.
A planar antenna device integrates components on a substrate front side using a buried low resistivity layer for electromagnetic isolation.
Selective element activation in a reconfigurable patch antenna adjusts beam width and direction, eliminating costly physical replacements for coverage changes.
Hexagonal holes in the dielectric support layer minimize material usage and transition losses while maintaining structural stability.
A method determines antenna array parameters using spherical mode decomposition to optimize electromagnetic wave generation.
Orthogonal board arrays expand radar angle measurement to ±90 degrees while preventing signal interference.
An asymmetric connection strip creates uniform current distribution on a low-frequency radiating element, expanding bandwidth without increasing antenna size.
Radial sector segmentation and nested antenna placement resolve space constraints while maintaining high throughput reception efficiency.
Stacked wearable antenna with flexible dielectric layers positions the radiating element away from the body to enhance signal radiation efficiency.
Adjusting an antenna open conductor's length and angle optimizes reflectance, resolving frequency characteristic changes across different electronic devices.
A single feed dual-band antenna structure uses segmented radiation units to control impedance and resonant frequency across 2.45 GHz and 5 GHz bands.
Intersecting feed stalks in multi-band radiating units reduce high-band shielding effects.
Nested coaxial cables inside helix elements enable dual-band RF transmission, resolving the trade-off between device size and signal versatility.
A low-profile directional antenna array uses a delay network to route signals through configurable relays for precise beamforming.
A microstrip array antenna uses a meandering feeding strip line to connect radiation elements at consistent angles.
Coupled radiating units in a single-pole structure enable LTE band coverage while maintaining impedance matching.
A trident antenna arrangement uses parasitic elements to generate dual resonance for robust RF signal transmission.
A dual-band antenna reuses the sub-6G substrate as part of the mmWave array to save space.
Nested conductive cylinders enable simultaneous multi-band operation, reducing space requirements and eliminating separate feed lines for each frequency.
Interleaved phasing element arrays with distinct geometries enable continuous phase shifts across a full 360-degree range while reducing reflection loss.
A proximity sensing antenna structure dynamically adjusts transmission power to maintain radiation efficiency.
Stacking parallel radiating planes vertically reduces antenna width and cross-polarization interference while maintaining symmetry.