US2015178528A1PendingUtilityA1

Rfid tag temperature adaptation

Assignee: IBMPriority: Oct 26, 2011Filed: Mar 10, 2015Published: Jun 25, 2015
Est. expiryOct 26, 2031(~5.2 yrs left)· nominal 20-yr term from priority
G06K 7/10316G06K 19/07773G06K 19/07749G06K 19/077G06K 19/07771G06K 19/0772
45
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Claims

Abstract

An RFID system and tag, and a method for identifying objects using an RFID system are disclosed. In an embodiment, an RFID tag comprises a microchip for storing an identification sequence, a tag antenna coupled with the microchip for receiving and transmitting the RF signal; and a ferrous metal portion disposed near the IC and the tag antenna. The ferrous metal portion is sensitive to, and heats up when subjected to, magnetic induction. The heat of the ferrous metal is propagated to the RFID tag such that the tag reaches its operating temperature more quickly.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
         1 . A radio-frequency identification (RFID) tag reader comprising:
 a transceiver for generating a radio frequency (RF) signal;   a reader antenna coupled to the transceiver for transmitting the RF signal; and   a magnetic field generator, wherein the RFID tag reader stops generating a magnetic field when an RFID tag responds to the RFID tag reader.   
     
     
         2 . A radio-frequency identification (RFID) tag comprising:
 a microchip for storing an identification sequence;   a tag antenna coupled with the microchip for receiving and transmitting an RF signal; and   a ferrous metal portion, substantially similar in size to the RFID tag, disposed about the tag antenna and the microchip, wherein the ferrous metal portion is sensitive to magnetic induction, and wherein the ferrous metal portion is operative to heat the RFID tag from a non-operating temperature to an operating temperature.   
     
     
         3 . The RFID tag of  claim 2 , wherein the ferrous metal portion further comprises a ferrous metal sheet. 
     
     
         4 . The RFID tag of  claim 2 , wherein the ferrous metal portion further comprises iron. 
     
     
         5 . The RFID tag of  claim 2 , wherein the RFID tag is adhered to a container; and wherein the container remains at a temperature below the operating temperature of the RFID tag as the RFID tag is heated from a non-operating temperature to an operating temperature. 
     
     
         6 . The RFID tag of  claim 2 , further comprising a packaging for affixing the RFID tag to a container. 
     
     
         7 . The RFID tag of  claim 2 , wherein the non-operating temperature is a cryogenic temperature. 
     
     
         8 . An radio-frequency identification (RFID) system comprising:
 an RFID tag reader including:
 a transceiver for generating an RF signal; 
 a reader antenna coupled to the transceiver for transmitting the RF signal; and 
 a magnetic field generator, wherein the RFID tag reader stops generating a magnetic field when an RFID tag responds to the RFID tag reader; and 
   an RFID tag including:
 a microchip for storing an identification sequence; 
 a tag antenna coupled with the microchip for receiving and transmitting the RF signal; and 
 a ferrous metal portion, substantially similar in size to the RFID tag, disposed about the tag antenna and the microchip, wherein the ferrous metal portion is sensitive to magnetic induction, and wherein the ferrous metal portion is operative to heat the RFID tag from a non-operating temperature to an operating temperature. 
   
     
     
         9 . The RFID system of  claim 8 , wherein the ferrous metal portion further comprises iron. 
     
     
         10 . The RFID system of  claim 8 , wherein the RFID tag is adhered to a biological sample container. 
     
     
         11 . The RFID system of  claim 8 , further comprising a packaging for affixing the RFID tag to a container. 
     
     
         12 . The RFID system of  claim 8 , wherein the non-operating temperature is a cryogenic temperature. 
     
     
         13 . The RFID system of  claim 8 ,
 wherein the RFID tag is stored at the non-operating temperature of about −170° C., and   wherein induction of a current in the ferrous metal portion by a magnetic induction wave generated by the magnetic field generator causes the RFID tag to be heated to the operating temperature of at least about −80° C.

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