Embedding the antenna pattern inside the casing reduces manufacturing complexity and cost while maintaining reliable wireless signal transceiving.
Automated electroplating forms integrated antenna elements in a substrate, reducing manual fabrication errors and costs while maintaining design flexibility.
Segmenting antenna regions and using a float ground prevents radiation degradation and electric shock risks in metallic framed devices.
A distributed comb tapped antenna structure uses reactive elements to tune impedance across multiple frequency bands.
Mixed antenna element arrays minimize coupling effects to resolve passive intermodulation issues in multi-band base station designs.
A mobile terminal antenna uses a non-contact metal ring to alter radiation patterns, reducing head and hand interference losses.
Perpendicular installation reduces interference from metal devices while maintaining stable frequency characteristics.
Segmented metal enclosure caps create parasitic radiators that widen bandwidth without active switching.
A reconfigurable antenna uses electronic switches to enable or disable parasitic slots in a ground plane, altering the radiation pattern.
A lens concentrates target radiation toward the feed to reduce bulk.
Resin projection with recess maintains constant distance between power feeder and antenna core, preventing interference with electric-wave resonating section.
An in-vehicle antenna uses an integrally connected ground part with elastic spring pieces to clamp the installation counterpart.
A folded monopole antenna with a short-circuited stub increases conductor area to shift resonance frequencies lower.
Flat metal dipole antenna structures eliminate coaxial feed complexity by integrating stiffeners and balun systems, achieving VSWR below 2:1.
Switching circuits adjust antenna impedance to cover multiple frequency bands while mitigating signal shielding from metallic housings.
Nested radiation elements on a dielectric substrate reduce antenna size while maintaining high isolation across multiple frequency bands.
Positioning the power feeding unit on the side surface corner avoids hinge interference, reducing device volume while sustaining reliable RF transmission.
A conformal patch antenna uses a magneto-dielectric stack-up to achieve broad bandwidth and high gain.
Segmented dual patch antennas steer beams to reduce signal attenuation and maintain bandwidth.
A self-similar planar antenna integrates RF-MEMS switches to enable selective frequency reconfiguration across multiple bands.
An angled monopole antenna arrangement uses parallel elements to cover 850 MHz to 2400 MHz while maintaining a compact form factor.
Capacitive extensions on dipole arms tune impedance for both 2.4 and 5 GHz bands, resolving the trade-off between multi-band coverage and structural complexity.
A switching structure electrically connects or disconnects antenna elements to adjust resonance frequency and optimize radiation performance.
Multiple feeding points on a single patch enable simultaneous GPS and GLONASS reception, eliminating separate antennas and reducing size.
Segmented conductive bezel radiators receive L1 and L5 signals to improve geolocation accuracy without increasing device complexity.
Replacing wire coils with a KT-cut quartz resonator boosts the Quality Factor and power handling while reducing volume.
Asymmetrically positioned loop elements in a vehicle antenna device prevent signal interference while maintaining high sensitivity for multiple frequency bands.
Dual repeating aperture patterns in the computer tower housing reduce fan noise while maintaining compact size and effective thermal management.
A microstrip antenna uses a through-hole metal element to connect the patch and ground layer for higher directivity.
A drive circuit uses phase shifters to distribute amplified RF signals across multiple coil legs.
Insulating substrate isolates antenna from metal housing to form sealed slots that activate resonance modes across multiple frequency bands.
Branching feeding electrodes route low and high frequency signals to separate radiation points, optimizing efficiency across both bands without interference.
A mobile device antenna structure integrates a parasitic radiation element with a widening portion on a dielectric substrate adjacent to a metal mechanism.
An antenna structure integrates a localized heating element between its separated ends to directly apply thermal energy to the bonding adhesive.
Folding antenna sections into a three-dimensional CRLH structure reduces volume below half a wavelength while maintaining multi-band operation.
A radiating-condition generating element extends from a grounding element to a radiating element, creating additional current paths.
Interlaced radiating elements in a slim triple-band antenna array reduce base station size and visual impact while maintaining multi-service coverage.
Segmenting the metallic back cover into two antennas via a central ground circuit improves performance while supporting carrier aggregation.
Segmented bidimensional antenna parts print on glazing panels to reduce integration complexity while maintaining reliable signal transmission.
Multi-loop antenna system uses stacked loop elements on a substrate to achieve concurrent dual-band operation in compact electronic devices.
T-shaped gaps in a metal frame excite distinct resonance modes, expanding transmission bandwidth without degrading original antenna performance.
A single-layer planar antenna merges the ground plane and radiating element on one substrate to optimize power transmission.
Three-dimensional electromagnetic element arrays stack planar circuits to control near- and far-fields, overcoming planar structure limitations.
An AM antenna array uses a filtered conductive component to suppress parasitic capacitance and improve signal reception quality.
Nested ground conductors within a looped radiation structure reduce electromagnetic coupling between antennas while maintaining ultra-wide bandwidth.
A compact dual-band HDTV antenna uses a tapered loop element and symmetric arms on a substrate to receive VHF and UHF signals.
A segmented mobile terminal antenna radiator uses an adjustable ground cable to switch resonance frequencies and excite new modes.
Nested nonconductive slots distributed across curved airfoil surfaces provide broadband radiation while resisting structural flexures.