This integrated antenna merges UHF and GPS bands into a single passive structure, eliminating switching complexity while reducing length by 30%.
A compact multiband blade antenna uses a slanted open sleeve to produce VHF and UHF communication signals.
A stylus antenna structure uses segmented radiating portions to transmit radio waves across multiple frequency bands.
A segmented metal housing antenna structure transmits signals across multiple frequency bands using dielectric substrates and insulating gaps.
A dual-band inverted-F antenna integrates resonating arms to support 2.4 GHz and 5 GHz operations within a single RF feed structure.
Resonant tuning circuits prevent harmonic interference from degrading receive circuitry sensitivity in carrier aggregation configurations.
A multiband antenna uses capacitively coupled conductive plates on a substrate to transmit signals across distinct frequency bands via a single feeding port.
A dipole antenna uses a meandering radiation structure to adjust effective resonant length and improve impedance matching.
A capacitively loaded dipole antenna integrates the user into the radiating structure to enable low frequency operation on mobile devices.
A multiband antenna uses a slot formed by opposed housing edges to radiate radio signals from the device frame.
Radiation portions connect the antenna to a ground element, increasing inductance to mitigate metal casing capacitance effects.
Shared antenna structures combine near-field and far-field resonating elements within conductive housing to support multiple wireless communication bands.
A mounting structure with truss struts and support rings stabilizes optical reflectors in hybrid communication systems.
Integrating a film coated surface antenna pattern onto the casing eliminates separate assembly steps while maintaining reliable wireless signal transmission.
A radiation conductor with exposed regions reduces the effective dielectric constant around the antenna element.
A coupling device uses a feed conductor with varying radial distance to transmit circular polarized wireless signals.
A cavity-backed slot antenna uses a high-permittivity substrate to minimize cavity size and increase inductance.
Folded dipole and monopole antennas use capacitive coupling to enable dual-mode operation in compact devices.
Segmented trunk widths adjust resonance frequencies and reduce standing wave ratio, improving signal reception strength.
A multi-band antenna uses a non-segmented conductive border member to form multiple resonance structures across distinct frequency bands.
A 90-degree rotated U-shaped radiator and feeder structure generates dual resonances for ultra-wideband coverage.
A compact antenna module integrates dipole and patch radiators on opposite substrate surfaces to maintain omnidirectional coverage.
A mobile device antenna couples a coaxial cable shielding conductor to a second radiating element via a connection metal element.
A segmented metallic antenna structure uses insulating materials to fill housing gaps, enabling efficient multi-band signal transmission.
A microstrip leaky wave antenna uses switches to connect impedance components, dynamically adjusting the main beam direction.
A radiofrequency antenna radiating body serves as a capacitance electrode for proximity sensing.
Switches control parasitic portions to adjust specific absorption rate compliance across global regions.
A handheld slot antenna uses space-filling curves to compress the radiating element within a compact printed circuit board footprint.
Distinct element spacings isolate frequency bands, eliminating bulky filters to reduce antenna weight.
Segmented metal portions utilize vertical space to compress antenna volume while maintaining multiband operation in mobile devices.
Transparent conductors extend across wearable displays to boost radiated performance while minimizing impedance losses from human tissue proximity.
Multiple conductor plates with specific configurations broaden the receivable frequency range for 4G and 5G bands without increasing antenna size.
A logo-shaped dielectric antenna window enables radio-frequency signal transmission through conductive housing walls.
Magnetic attraction between a detachable antenna and an iron element boosts radiation gain, resolving the trade-off between compact size and signal strength.
A triple-band antenna uses a balun to adjust intermediate frequency impedance across low, high, and middle bands.
A single slot antenna uses an RF signal diplexer to split and synthesize frequency components for dual-band operation.
Resonant open slots generate multi-resonance modes to resolve mutual coupling interference between adjacent antenna patches.
Spherical curvature maintains projected area to double gain and field-of-view while suppressing grating lobes.
Segmenting the dipole into electrically isolated sections reduces ground coupling interference, enabling broad bandwidth operation in 5G and WLAN applications.
A multimode broadband antenna module forms a coupling capacitance effect between two radiators to broaden the working frequency range.
A stacked antenna structure uses a first antenna as a ground plane for a second radiating element to enable multi-band operation.
A looped radiator integrates a dielectric block between conductors to suppress electromagnetic coupling in compact MIMO devices while expanding bandwidth.
Tubular separation walls isolate high and low band radiating elements, reducing interference while maintaining compact antenna length.
A connection circuit cancels mutual coupling impedance between antenna elements to improve signal isolation.
A patch antenna uses asymmetric feed points on conductors of different sizes to transmit radio-frequency signals across multiple frequency bands.
Direct metal laser sintering fabricates a connector-less antenna array, eliminating assembly complexity while maintaining wideband performance.