Spaced floating radiator arrays electromagnetically couple with antenna arrays to improve mmWave directivity, side and rear ratios, and reduce surface waves.
A dual-cover vehicle roof antenna separates multi-band elements and heat sinks to preserve signal transmission and isolation on metal roofs.
Modular RF filter units, isolation walls, and a radome decoupling pattern cut interference and PIMD in dense MIMO antenna assemblies.
Selective switching of parasitic conductive sections lets one antenna keep directivity across multiple frequency bands within a wide operating band.
A dielectric glass-mounted antenna with segmented conductive and ground patterns improves wideband LTE and 5G efficiency despite vehicle metal shielding.
Stub feedback lines integrate impedance matching and bandpass filtering to cut antenna losses and size in ultra broadband wireless networks.
Two dipoles of different lengths with a parabolic reflector improve end-fire radiation, widen bandwidth, and reduce back radiation.
Multiple decoupling loops and a shaped ground plane let one printed dipole cover 600 MHz to 6000 MHz for LTE and 5G-NR.
A slit-aligned antenna pattern and dielectric gap reduce metal housing shielding, improving multi-band communication in compact electronics.
A detachable radiation assembly lets this mmWave antenna keep dual-band resonance and correct frequency shifts caused by device housing.
Body proximity sensing feeds tuning parameters to the antenna front-end module, helping thin metal devices maintain RF efficiency without extra parts.
Multiple vehicle antennas use band-specific elevation angles and shapes to improve radio transmission, reception, and directivity.
Overlapping conductive paths suppress high-band coupling while preserving low-band currents, helping base station antennas keep stable beam patterns.
A stacked cavity-and-slot antenna creates multiple resonance modes to widen 5G band coverage while reducing size for device integration.
A tuning stub and tuner circuit let a compact slot antenna cover multiple bands while preserving metal-rim strength and radiation efficiency.
Proximity sensing and switched bezel segments maintain antenna radiation when a user's grip changes capacitance and dielectric loss.
Unequal transmission-line feeds create multiple resonances, widening mobile antenna bands while improving MIMO isolation in tight device layouts.
A diplexer tuning module and aperture tuning let one compact multi-port antenna isolate bands and support LTE, Wi-Fi, GPS, and UWB.
Detachable antenna blocks enable dual-band changes without replacing the full unit, while distributed heat sinks improve heat discharge.
Bottom-fed frame slots, tuning units, and parasitic stubs help thin curved-screen metal frames keep low-band radiation strong while reducing SAR.
A split-ring opening in the antenna case creates LC resonance at the target frequency while keeping height low and case strength intact.
A grounded conductive plate behind the display helps foldable-device antennas suppress resonance nulls and maintain multi-band radiation performance.
An electrically biased liquid crystal cavity and meander slot widen microstrip antenna tuning range while shrinking the radiating unit.
Clustered pillars and radiating elements increase capacitive coupling, relax lattice spacing, and cut phased array size, weight, and complexity.
A symmetric conductive grid in a window assembly passes 5G bands with low reflectance while limiting noise interference and adding defrosting.
A nested feed antenna, loop antenna, and resonator extend 2.4/5 GHz coverage while keeping size compact and tuning impedance.
Separate L1 and dual L5 antennas with dynamic L5 switching maintain GPS reception and positioning accuracy when the device is held.
Booster bars coupled to a ground plane excite resonant modes for wideband RF while fitting thinner devices with less custom antenna redesign.
A PCB ground pattern and segmented antenna layout widen 2.4, 5, and 6 GHz coverage while preserving low-elevation beams near metal vehicle bodies.
Coupling a patch radiator to two ground points at edge offsets of at least 0.05λ evens current distribution, reducing SAR and directivity.
A stamped dual inverted-F antenna uses shared grounding and quadrature polarization to save PCB space while preserving wireless diversity performance.
A filtered inner-outer patch layout separates GNSS bands in one plane, cutting antenna height and cost while improving bandwidth.
A conductive frame region extending from the side wall to an internal support improves slim-device antenna coverage while limiting interference.
A bonded upper and lower stack places the antenna layer near the neutral axis to limit stress, warping, and RF loss in flat-panel antennas.
A frequency selective isolation wall blocks the low band between antenna columns, cutting mutual coupling without disturbing beam patterns.
An under-display antenna radiates through a display area in a chosen polarization to avoid control-line interference and preserve wireless performance.
A shared mirror and directional RF antenna keeps free-space optical links compact while adding weather-tolerant backup communication.
Multiple conductive plates and vias shorten monopole height while sustaining creeping waves, reducing body effects in wearable cross-body links.
Angled dipole and slot antenna integration increases antenna count in compact devices while maintaining high isolation and sensor functionality.
Inductor-grounded radiator branches form a closed magnetic current loop that improves bandwidth and efficiency while lowering SAR.
A metasurface and parasitic-strip layout improves dual-band antenna impedance matching and gain while keeping a 0.1λL low profile.
A multilayer dielectric phased array uses conductive vias and dummy patterns to suppress side radiation and improve mmWave gain flatness.
Spiral and patch radiators on a shared-feed PCB let water meter modules cover 700-960 MHz and 1700-2200 MHz without enlarging the antenna.
Grounded via fences between phased-array elements suppress side radiation and interference, improving millimeter-wave bandwidth and front directivity.
Grounding a metal decoration member lets it act as a second radiator, improving antenna radiation and frequency band coverage in compact devices.
A spaced coupling plate and switching system boost low-elevation radiation in conformal vehicle antennas without increasing height.
Sensor-driven tuner codes adapt dual frame antennas to display extension, preserving wireless links in foldable and rollable devices.
Coupled feeding blocks low-band induction in the high-frequency radiator, preserving signal integrity in dual-band antenna arrays.
A sub-6 GHz antenna placed in the mmWave near field broadens and steers coverage while conserving space and limiting harmful coupling.
A parasitic branch placed near the antenna branch widens high-band bandwidth and enables direct resonance tuning for multi-band terminals.
A stacked PCB interposer antenna frees display space and cuts RF line loss in rollable or slidable electronic devices.
A retractable display structure uncovers a low-profile patch antenna, enabling compact satellite links without thick ceramic substrates.
Wireless RFIC-to-antenna links ease 3D chiplet I/O congestion, improving signal integrity and reducing pin and routing demands.
A resonant reflector boosts directional gain in one band while staying transparent in another, enabling independent dual-band radiation modes.
A 3D radiation structure through the dielectric substrate enables compact antenna size while maintaining 2.4 GHz and 5 GHz broadband support.
A resonant decoupling structure placed between closely spaced antennas cuts coupling, improves port isolation, and preserves radiation efficiency.
A coupling capacitor placed between adjacent antenna reflectors suppresses gap leakage and preserves a high front-to-back ratio.
Placing Bluetooth and Wi-Fi antennas on one substrate edge with spaced branches and separate RF grounds improves transmission and isolation.
A nonmetallic reflector substrate with a thin metal layer preserves RF reflection while cutting base station antenna weight and tower loading.
A flat-plate ground connection stabilizes antenna ground potential, suppressing unintended resonance and antenna loss.
A dual-function heat sink antenna conducts heat away from mmWave modules while preserving RF links and detecting nearby users.
Constructive interference from a frequency selective surface and ground conductor boosts multi-band antenna gain when display screens obstruct signals.
Blocking parts split a metal-case slot into tuned paths, enabling multi-band antenna operation in tightly packed laptop end space.
Segmented antenna components allocate bands across compact sections, improving bandwidth and efficiency without model-specific customization.
Stacked antenna layers and nested feed pins enable compact GNSS and SDARS triple-band coverage with strong band decoupling and stable radiation patterns.
Separated feed and resonance slots with a shorting bridge widen Wi‑Fi 6E bandwidth while keeping the antenna compact for thin devices.
A meandered slot and reverse-biased varactor tune a compact CubeSat UHF antenna across 300-450 MHz while preserving radiation efficiency.
A dual-UWB antenna reader uses wave-slowing material and angle-of-arrival sensing to distinguish approach from pass-by at secure doors.
Conductive frame extenders create multi-plane antenna ground planes that boost wireless bandwidth and dissipate heat in smart eyewear.
UWB node networks classify in-cabin presence and vehicle states from CIR features, improving passive entry security against relay attacks.
Calibration separates parasitic coupling from total antenna-array signals, extending measurement dynamic range and reception accuracy.
A coupling structure lets a mobile terminal antenna sense body distance for SAR control without added capacitors that raise cost or degrade antenna performance.
Nested circular parasitic arrays support C- to Ka-band communication in one compact antenna volume without enlarging the assembly.
A dual-component ring antenna switches between dipole and loop modes to fit tight metallic space while supporting Bluetooth and NFC pairing.
Inductors between the radiator and ground plane disperse current density, cut conductor loss, and improve compact antenna efficiency.
Opposing beam-angle shifts in two waveguide slot subarrays reduce frequency dispersion and keep antenna pointing stable across the band.
A phase inversion unit enables one Franklin antenna to cover Band41 and Band42, reducing antenna count, footprint, and cost.
Capacitive loading in a metal-casing slot antenna shifts resonance and extends electrical length for GPS and Bluetooth coverage in compact watches.
A shared dielectric resonator radiates through both display and rear wall, enabling full-sphere wireless coverage in minimal device volume.
An obtuse-angle radiant arm and integrated matching circuit help a compact antenna maintain low VSWR and stable 2.4-2.5 GHz operation.
A compact coplanar box dipole feed layout suppresses monopole radiation shoulders and preserves wider azimuth beam width.
Frequency-selective corrugations make stacked antenna structures transparent across bands, cutting cross-band scattering without limiting multi-band use.
Conductive ink on a patch antenna lets it blend into painted artwork while preserving open-placement signal strength.
Homogeneous acrylic dielectric layers shrink a mmWave antenna while improving rigidity, bonding stability, and multi-band beam performance.
A PDMS, graphite, and aluminium oxide matching layer cuts air-skin reflections and improves portable EM brain imaging accuracy.
A dielectric layer between sliding conductive housings limits interference and preserves antenna radiation in rollable electronics.
A dual antenna layout combines mmWave beamforming with lower-band omnidirectional coverage to improve uplink transmission and compliance.
A dumbbell-shaped slot with wider ends improves wideband vehicle antenna reception while fitting limited roof length.
A grounded single-feed radiator excites monopole and dipole modes to widen 3.1-10.6 GHz coverage while keeping antenna size compact.
Series-connected radiating elements with grounded reactance improve current uniformity, lowering SAR while preserving antenna radiation efficiency.
A multi-PCB plate antenna broadens bandwidth and improves radiation while reducing cable loss and easing vehicle antenna assembly.
A split-ring opening in the antenna case preserves strength and design flexibility while enabling resonance and radiation at reduced height.
A single-connector antenna board and ground-plane layout improves wireless reliability in compact NPWT units under harsh conditions.
Separated main and floating ground elements help a compact mobile antenna maintain omnidirectional radiation, gain, and impedance matching.
Nested dual-polarized RF tiles combine Ku and Ka transmit and receive paths in one aperture, reducing shadowing and installation complexity.
V-shaped patch groups on the main feeder widen millimeter-wave radar beam coverage while maintaining low sidelobes and reducing false alarms.
Interleaving high-band arrays within transparent low-band elements adds massive MIMO capacity without extra tower space or wind load.
A radiating element straddles the substrate and molded body to enable side radiation while allowing a thinner antenna module.