H01Q19/104

PASSIVE DIRECTIVITY ENHANCEMENT FOR WIRELESS DEVICE
20230104167 · 2023-04-06 ·

Apparatus and techniques described herein can provide enhanced wireless communication range for a wireless device without requiring additional external active circuitry, such as using a simple mechanical and electrical configuration as compared to using an active antenna booster device. Generally, the apparatus and techniques described herein can be used to enhance a directivity of a wireless device antenna using a passive attachment. For example, a directivity of a first antenna can be enhanced without substantially affecting the directivity or performance of another antenna on or within the wireless device.

INTEGRATED BASE STATION ANTENNA
20230208051 · 2023-06-29 ·

An integrated base station antenna comprises a passive antenna that includes a front radome, a matching dielectric layer and a rear radome; and an active antenna mounted on the back of the passive antenna. A distance between the rear radome of the passive antenna and the matching dielectric layer is a first distance, and the distance between the active antenna and the rear radome of the passive antenna is a second distance, where the first distance is selected as 0.25 + n/2 times the equivalent wavelength, where n is a positive integer, and the second distance is selected as 0.25 + N/2 times the equivalent wavelength, where N is a natural number. The equivalent wavelength is within the range of 0.8 to 1.2 times of the wavelength corresponding to a center frequency of an operating frequency band of the radiating elements in the active antenna.

ELECTRONIC DEVICE INCLUDING ANTENNAS
20230208047 · 2023-06-29 ·

An electronic device is provided. The electronic device includes a first housing, a second housing including a first surface, a second surface, and a third surface, an antenna module including a printed circuit board (PCB) and conductive patches disposed on one surface of the PCB facing the third surface of the second housing, a conductive plate disposed between the antenna module and the third surface of the second housing, and a wireless communication circuit electrically connected to the antenna module, wherein the conductive patches may be positioned at a first height from the second surface of the second housing, wherein the conductive plate may be parallel to the second surface of the second housing and positioned at a second height lower than the first height of the conductive patches, and wherein the wireless communication circuit may be configured to supply power to the conductive patches to transmit and/or receive a signal in a frequency band of 20 gigahertz (GHz) or more.

RELAY-AIDED INTELLIGENT RECONFIGURABLE SURFACES

Relay-aided intelligent reconfigurable surfaces (IRSs) are provided. A novel relay-aided intelligent surface architecture is described herein that has the potential of achieving the promising gains of IRSs with a much smaller number of elements, opening the door for realizing these surfaces in practice. A half-duplex or full-duplex relay is connected to one or more IRSs. This merges the gains of relays and reconfigurable surfaces and splits the required signal-to-noise ratio (SNR) gain between them. This architecture can hen significantly reduce the required number of reconfigurable elements in the IRS(s) while achieving the same spectral efficiencies. Consequently, the proposed relay-aided intelligent surface architecture needs far less channel estimation/beam training overhead and provides enhanced robustness compared to traditional IRS solutions.

Antennas-in-package verification board

An antennas-in-package (AiP) verification board is provided, which includes a carrier board configured for disposing an antenna array or an electronic circuit; and a plurality of SMPM connectors. The plurality of SMPM connectors are arranged in an array on the carrier board and electrically connected with the antenna array or the electronic circuit of the carrier board for testing the characteristics of the antenna array on the carrier board or the characteristics of the electronic circuit on the carrier board. The AiP verification board is fixed on a beamforming test platform. In addition to the aforementioned AiP verification board, an AiP verification board including a plurality of adaptor structures and an AiP verification board including a plurality of connectors and a plurality of adaptor structures are also provided.

INTEGRATED TRANSCEIVER WITH FOCUSING ANTENNA
20170352952 · 2017-12-07 ·

An apparatus includes a fully integrated self-contained radio device including an antenna and an antenna element. The radio device and the antenna element are arranged such that a radio signal emitted by the antenna of the radio device is amplified in at least one predefined spatial direction.

Signal cancellation in radio frequency (RF) device network

A system, in a programmable active reflector (AR) device associated with a first radio frequency (RF) device and a second RF device, receives a request and associated metadata from the second RF device via a first antenna array. Based on the received request and associated metadata, one or more antenna control signals are received from the first RF device. The programmable AR device is dynamically selected and controlled by the first RF device based on a set of criteria. A controlled plurality of RF signals is transmitted, via a second antenna array, to the second RF device within a transmission range of the programmable AR device based on the associated metadata. The controlled plurality of RF signals are cancelled at the second RF device based on the associated metadata.

UE Positioning Aided by Reconfigurable Reflecting Surfaces Such as Intelligent Reflecting Surfaces (IRS)

UE positioning is added by use of a reconfigurable reflecting surface (e.g., IRS). The IRS is configured to adjust elements of the surface. The configuration may include signal switching on or off, signal phase, group delay, or signal amplitude. Positioning reference signal transmissions are performed that have line of sight to the UE and that reflect off the IRS. The UE takes measurements for the transmissions and can determine measurement(s) of angle of arrival or time of arrival or reference signal received power, and/or determine a channel estimation. Multiple methods are proposed to provide UE positioning.

Semiconductor device package

A semiconductor device package includes a substrate, an air cavity, a radiator, and a director. The substrate has a top surface. The air cavity is disposed within the substrate. The air cavity has a first sidewall and a second sidewall opposite to the first sidewall. The radiator is disposed adjacent to the first sidewall of the air cavity. The director is disposed adjacent to the second sidewall of the air cavity.

Method for deploying electromagnetic wave guiding structure

A method for deploying an electromagnetic wave guiding structure includes a communication dead zone analysis step and an improvement measure determination step. In the former step, a frequency band in use and an electromagnetic wave signal strength threshold value are preset, and a processing module creates an electromagnetic map for the electromagnetic wave intensity over an area in the frequency band in use based on an electronic map of the area, wherein the electromagnetic map shows a communication dead zone. In the latter step, the processing module obtains an existing electromagnetic wave path according to the electromagnetic map and infers from the existing electromagnetic wave path the installation position and type of at least one electromagnetic wave guiding structure assembly suitable for use to guide the electromagnetic wave to the communication dead zone and ensure that the coverage ratio of the electromagnetic wave in the area reaches a threshold value.