G06K19/07786

STRETCHABLE BROAD IMPEDANCE BANDWIDTH RFID DEVICES

According to the embodiments described herein, a stretchable RFID device can include an RFID chip and an RFID antenna. The RFID antenna can be electrically coupled and mechanically attached to the RFID chip. The RFID antenna can be impedance matched to the RFID chip across a broad bandwidth and can include two arms. Each of the two arms can include an end-loading body that at least partially surrounds an end-loading orifice. The end-loading body can stretch without consuming the end-loading orifice.

Electrical activity sensor device for detecting electrical activity and electrical activity monitoring apparatus

An electrical activity sensor attachable to a power cable of an electrical device for detecting an impulse generated in the power cable in response to a change in electrical power state of the electrical device, the electrical activity sensor comprising an antenna assembly comprising an antenna element operable to magnetically couple with an electrical pulse generated in the power cable to induce an electrical signal in response to a change in electrical power state of the electrical device; and at least one dipole type antenna configured operate as a half wave dipole in the operating frequency range of the antenna element and to magnetically couple to the antenna element wherein the dipole type conductor is operable to wirelessly transmit data representative of the power state change of the electrical device to a remote reader.

Systems and methods for providing tags adapted to be incorporated with or in items

Systems and methods for integrating tags with items. The methods comprise: dynamically determining a length of each metal thread to be incorporated into or trace to be disposed on a item to optimize tag performance in view of dielectric and tuning properties of the item. In the metal thread scenarios, the methods also involve: creating a metal thread having the length that was dynamically determined; and sewing the metal thread into the item being produced to form an antenna for a first tag. In the trace scenarios, the methods also involve forming the trace on the item being produced to form an antenna for a first tag. Next, at least a communications enabled device is attached to the item so as to form an electrical coupling or connection between the communications enabled device and the at least one antenna.

METHOD, SYSTEM AND COMMUNICATION TERMINAL FOR PATROL WITH SCANNING TAGS
20170294053 · 2017-10-12 ·

A method for patrol with scanning tags includes: installing electronic tags in various patrol locations, each of which includes an electronic paper displaying module and an identification mark mapping to one of the patrol locations to form mapping information; logging in a patrol server with a communication terminal; downloading a patrol route list which lists multiple patrol locations from the patrol server; scanning, with the communication terminal, the identification mark on the electronic tag when arriving at one of the patrol locations; and transmitting, with the communication terminal, a first data signal to the electronic tag to display a first patrol record based on the first data signal, and confirming the patrol position to be checked by transmitting the first patrol record to the patrol server.

TRANSPARENT RADIO FREQUENCY IDENTIFICATION TRANSPONDER
20170286819 · 2017-10-05 ·

A radio frequency identification (RFID) transponder that includes an RFID chip, a loop that is electrically connected to the RFID chip, and a substantially transparent antenna coupled to the loop. In various embodiments, the RFID transponder can be affixed over a light source (e.g., vehicle headlights) while preserving the luminance from the light source. Alternately or in addition, the RFID transponder can be affixed to a surface (e.g., product packaging, license plates) without obscuring any marks, designs, motifs, and/or text on the surface.

RFID tag and manufacturing method thereof

An RFID tag includes a core formed by a first elastic material and having a first surface, a second surface on an opposite side of the first surface, and a pair of end parts provided on mutually opposite sides and connecting to the first surface and the second surface. The RFID tag further includes a metal layer provided on the first surface, a semiconductor chip provided on the second surface, and a dipole antenna provided on the second surface and electrically connected to the semiconductor chip. One of the metal layer and the dipole antenna is folded at folded parts at the pair of end parts, and the metal layer and the dipole antenna overlap at the folded parts.

RADIO IC DEVICE

A radio IC device includes an electromagnetic coupling module includes a radio IC chip arranged to process transmitted and received signals and a feed circuit board including an inductance element. The feed circuit board includes an external electrode electromagnetically coupled to the feed circuit, and the external electrode is electrically connected to a shielding case or a wiring cable. The shielding case or the wiring cable functions as a radiation plate. The radio IC chip is operated by a signal received by the shielding case or the wiring, and the answer signal from the radio IC chip is radiated from the shielding case or the wiring cable to the outside. A metal component functions as the radiation plate, and the metal component may be a ground electrode disposed on the printed wiring board.

Non-Contact Data Receiving/Transmitting Body

A non-contact data receiving/transmitting body is provided which includes an IC chip, a first antenna to which the IC chip is connected, and a second antenna for use as a booster that resonates with the first antenna in a non-contact manner. The first antenna is a ring-shaped antenna having at least three straight portions. The second antenna has a central portion that is bent such that parts of the central portion extend respectively along the three straight portions of the first antenna and are at an angle equal to or greater than 90° to each other. The IC chip is provided on the three straight portions of the first antenna and is connected to the first antenna at the straight portions.

Closed-system capacitive coupling RFID

An RFID tag for capacitively coupled RFID communication with an RFID reader. The RFID tag comprising an integrated circuit (IC), the IC including a first RFID tag electrode arranged to capacitively couple with a first electrode of the RFID reader to form a first capacitor, and a second RFID tag electrode arranged to capacitively couple with a second electrode of the RFID reader to form a second capacitor when the RFID tag is in a first position relative to the RFID reader; power supply circuitry configured to extract power from a first time-varying signal received from the RFID reader via at least one of the first RFID tag electrode and the second RFID tag electrode, and supply the extracted power to circuitry of the RFID tag; and data transmission circuitry configured to receive the extracted power from the power supply circuitry, and transmit data to the RFID reader via at least one of the first RFID tag electrode and the second RFID tag electrode.

Creating antennas connected to printed chips by post processing with a laser or other cutting device

An RFID antenna structure for use with an RFID device is disclosed. A printed electronic circuit (PEC) is assembled onto an area of a conductor that is initially substantially flat, with minimal apertures cut into it. The substantially flat conductor makes the printing of the functional chip/circuit easier. Then, the conductor is cut post process with a laser or other cutting tool to create the interconnection. In another embodiment, the conductors of the PEC bridge the position where an aperture should be to create part of an RFID antenna. Further, the conductive layer and the PEC are then cut post process to create an antenna for the RFID device.