A sensor pad tail capacitively couples to an antenna module to increase bandwidth and reduce return loss.
Adjacent array antenna units share elements to estimate carrier biases, reducing implementation costs for high-precision satellite positioning.
Distinct electrical lengths in a dual antenna system dynamically switch radiators to mitigate hand influence and maintain reliable vehicle communication.
A modal antenna system configures radiation patterns to distribute over-the-air media content via a network access point.
Segmented grounding structures with breaches reduce envelope correlation coefficient and enhance radiation efficiency in multi-antenna systems.
A tuning circuit modulates the resonance frequency of an electrically small antenna using alternating capacitors.
A planar inverted-F antenna structure uses symmetric radiators to receive right-hand and left-hand circular polarization signals simultaneously.
A glass antenna uses capacitively coupled conductors to receive wideband radio signals across multiple frequency bands.
Segmented radiator design resolves signal reflection issues in NMO mounts by matching low and high frequency impedances simultaneously.
A folded dipole antenna uses high dielectric density ceramic material as reactive tuning elements to create a distributed network filter.
A coupling pattern generates parasitic resonance to match harmonics frequencies for millimeter wave antenna operation.
Frequency-tunable coupling elements integrate multiple antennas to resolve the trade-off between signal processing quality and device complexity.
A dual-polarized ceiling antenna uses a translucent polymer radome to hide the horizontally polarized element.
An antenna module integrates a metal member from a functional component as its radiator, enabling multi-band resonance while reducing space occupation.
Segmented radiation portions in a metallic frame reduce device volume while maintaining reliable wireless signal transmission.
A vehicle antenna uses a plane-symmetric radiating element to expand in a predetermined direction for controlled signal radiation.
A multi-band antenna uses a coupling sub-structure to transmit high-frequency signals while blocking lower frequencies.
Contact parts adjust resonance frequency bands without enlarging the antenna apparatus size.
Nested waveguide walls in a folded patch antenna provide EMI shielding while maintaining radiation efficiency for compact wireless systems.
A mobile terminal antenna uses a non-metallic second member to cover bottom frame slots while maintaining signal sensitivity.
Metallized vias minimize common mode resonance to enhance reflection coefficient stability across wide frequency bands.
Conductive cage suppresses electromagnetic coupling between adjacent antennas, maintaining radiation pattern integrity at high frequencies.
Segmented radiators and a feeding network in a compact patch antenna array resolve the trade-off between reduced volume and improved signal gain.
A cross-dipole radiating element uses integrated microstrip transmission lines to feed dipole arms directly from coaxial cables.
Dual radiation paths from the housing slot reduce disposition space while maintaining signal quality for 5G MIMO applications.
Separating alarm grounds from communication modules with filters eliminates interference, increasing wireless range and improving radiation patterns.
Segmented monopole and c-fed elements with a parasitic intermediary reduce mutual coupling, enabling full MIMO performance across multiple frequency bands.
A segmented antenna structure uses insulating materials in housing slots to isolate radiating sections for efficient signal transmission.
A single adjustable RET rod support replaces multiple fixed parts, reducing inventory complexity and manufacturing costs.
Segmenting the aperture into independent regions isolates dual-band signals, reducing weight while maintaining scanning performance.
A patch antenna uses a feed conductor slit to adjust impedance while fixing the feed point position.
Integrating a coil-containing film layer into the display panel reduces device weight and manufacturing cost while supporting multiple wireless bands.
Parasitic elements and tunable components adjust impedance to improve antenna gain without increasing device complexity.
A window-mounted RF antenna unit converts radio frequency signals to optical signals for indoor processing.
Through holes in the dielectric substrate isolate solar panel electrode pads from the antenna radiation field, preventing gain reduction.
Zeroth-order resonance via helical wire eliminates half-wavelength slot arrays to achieve high directivity radiation with compact antenna size.
A tunable impedance surface uses varactors with ferroelectric elements to steer microwave beams.
Slot ground structures between non-parallel antennas increase isolation while maintaining high radiation efficiency in compact 5G devices.
Vertical separation of interleaved antenna sets reduces physical size and wind load while preserving radiation pattern reliability.
Segmenting the radiating structure via dynamic switching resolves the contradiction between compact physical volume and stable multi-band resonance.
A chip antenna module array uses distinct resonant frequencies and dielectric layers to optimize electromagnetic coupling between modules.
A conductive cover acts as an antenna with multiple feeds connected via a switching network to a radio modem.
A reconfigurable antenna structure adjusts electrical length via through silicon vias to support legacy and millimeter wave bands without separate antennas.
Nested dipole and looped patterns improve signal strength while minimizing size increase in high-frequency millimeter wave communications.
Staggered antenna branches on opposite PCB surfaces create mutual coupling to generate dual resonance frequencies.
Segmented antenna panels mitigate side lobe degradation from inter-subarray gaps while maintaining high spatial discrimination.