A dipole antenna array uses segmented conductive frames to expand operational frequency coverage.
Slot patterns in conductive films enable broadband communication while preserving vehicle aerodynamic shape.
A mobile terminal uses segmented conductive members on the side unit to form slot-type antennas that transmit signals while maintaining a reduced bezel size.
Metal spring bars couple RF circuitry to ground points within a watchband, resolving comfort and radiation efficiency trade-offs.
Integral capacitor and coil elements in a planar monopole antenna achieve multi-band resonance while reducing area compared to conventional designs.
Segmented and nested radiation portions increase frequency bandwidth in limited space, resolving the trade-off between miniaturization and multi-band support.
Nested feed points in a compact housing enable multi-band operation, reducing device volume while maintaining radiation efficiency.
A multiband antenna uses separate low and high frequency radiation elements on a shared substrate to support multiple bands.
Reactive components link the metallic cover to the ground member, forming resonant circuits that reduce electromagnetic interference with the antenna.
Segmenting the dielectric into layers with distinct constants lowers energy loss and increases signal gain without expanding antenna volume.
A concentric feed uses a conductive gasket to join inner and outer tubes.
Segmenting a metallic housing with a slot resolves signal shielding while maintaining structural strength for multi-band operation.
Antenna structure resolves volume-bandwidth trade-off by using notch ground plane and tuning circuits to achieve wideband coverage in compact mobile devices.
Segmented sensing elements resolve the trade-off between SAR measurement accuracy and antenna performance in compact mobile devices.
A dual broadband antenna system uses folded radiating elements sharing a common ground plane to achieve reduced height and omni-directional coverage.
A switch circuit reconfigures electric paths between radiators to shift operation bands without increasing total length.
Six radiation elements on a dielectric substrate enable wide bandwidth coverage, resolving the trade-off between device complexity and frequency adaptability.
Segmented ground layers on auxiliary and circuit boards manage inverse currents, maintaining radiation efficiency while reducing portable terminal thickness.
Corner-feeding and bow-tie apertures maximize coupling while reducing mechanical complexity and improving polarization isolation.
A vertical broadband monopole antenna combines upper and lower band elements to cover decimeter wave frequencies.
Segmenting the antenna into independent drivers reduces volume while maintaining efficiency, avoiding complexity increases from additional directors.
A compact multiband antenna integrates a folded dipole with a box-shaped arm and slot element for portable device operation.
Slot antennas integrate into metal frames to radiate signals across multiple frequency bands.
Nesting an inverted-F antenna in a display recess resolves the trade-off between wireless capability and device volume while maintaining resonance frequency.
Inductors tune the loop antenna structure to shift resonance frequencies, reducing interference with cellular bands.
Folded patch antennas resolve EMI and bandwidth trade-offs by enabling compact multi-band operation in mobile devices.
A magnetic dipole metal ring placed between antenna arrays reduces coupling interference and compensates radiation pattern distortion.
A transponder card integrates a planar frame antenna on a carrier substrate between two protective plastic plates.
Multi-antenna structure extends short-side current paths via metal lines, achieving near -10 dB low-frequency isolation.
A parasitic scattering element creates an additional current path on the ground plane, reducing mutual coupling between closely spaced antennas.
Segmented grounding and switching units alter current flow paths in a single antenna structure to overcome multipath fading.
A modal antenna alters radiation patterns to improve system capacity while minimizing device size constraints.
A coupling-fed dipole antenna excites a frame slot to reduce clearance requirements while avoiding hand interference.
A dielectric antenna substrate uses conductive vias to link additional metal elements for decoupling.
A multi-band antenna device integrates a resonant loop and T-shaped element to support three frequency bands.
Resonance impedance circuits isolate antenna ports, reducing dissipative loss and extending battery life in multi-band RF systems.
Dual circular polarized planar helical antennas use phase shifted amplification to boost RF signal power against multiple path fading.
Variable capacitors and switching elements reconfigure grounding points to achieve wideband operation without increasing antenna size.
Vertical stacking with a ground mediator prevents interference between wideband and narrowband radiators, enabling device miniaturization.
Alternating polarization resonators improve energy conservation and maintain a small form factor for embedded antennas.
A multi-feed antenna uses a non-segmented external conductor to support multiple communication bands.
A metal loop antenna structure integrates a nested float radiation element to support omni-directional wireless communication.
A radiation pattern adjustment element modifies antenna electromagnetic fields to control signal directionality.
A patch antenna forms on a low dielectric layer within a multilayer package substrate alongside a semiconductor die.
A shared planar coil connects to separate matching circuits for near field communication and frequency modulation signals.
A fluted core layer channels coolant to remove heat from the phased array antenna, enabling high effective radiated power without thermal damage.
Vertical monopole placement on the PCB creates a dipole structure that resolves bandwidth limitations while maintaining compact device size.
An antenna diversity switch with diplexer routing resolves transceiver conflicts while maintaining compact device size.
A multi-radiator antenna module couples electromagnetic signals across distinct frequency bands using segmented radiator elements.
Embedding base station elements in intelligent array gaps increases gain without expanding the radome size, resolving the volume-power trade-off.