WO2004066434A2 - Wide exit electronic article surveillance antenna system - Google Patents

Wide exit electronic article surveillance antenna system Download PDF

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Publication number
WO2004066434A2
WO2004066434A2 PCT/US2004/000911 US2004000911W WO2004066434A2 WO 2004066434 A2 WO2004066434 A2 WO 2004066434A2 US 2004000911 W US2004000911 W US 2004000911W WO 2004066434 A2 WO2004066434 A2 WO 2004066434A2
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WO
WIPO (PCT)
Prior art keywords
antennas
wide
transmit
amoφhous
antenna
Prior art date
Application number
PCT/US2004/000911
Other languages
French (fr)
Other versions
WO2004066434A3 (en
Inventor
Richard L. Copeland
Stewart Hall
William Farrell
Original Assignee
Sensormatic Electronics Corporation
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sensormatic Electronics Corporation filed Critical Sensormatic Electronics Corporation
Priority to EP04702216A priority Critical patent/EP1584124B1/en
Priority to DE602004005419T priority patent/DE602004005419T2/en
Priority to AU2004206510A priority patent/AU2004206510B2/en
Priority to JP2006500950A priority patent/JP4317868B2/en
Priority to CA2512984A priority patent/CA2512984C/en
Publication of WO2004066434A2 publication Critical patent/WO2004066434A2/en
Publication of WO2004066434A3 publication Critical patent/WO2004066434A3/en

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/12Supports; Mounting means
    • H01Q1/22Supports; Mounting means by structural association with other equipment or articles
    • H01Q1/2208Supports; Mounting means by structural association with other equipment or articles associated with components used in interrogation type services, i.e. in systems for information exchange between an interrogator/reader and a tag/transponder, e.g. in Radio Frequency Identification [RFID] systems
    • H01Q1/2216Supports; Mounting means by structural association with other equipment or articles associated with components used in interrogation type services, i.e. in systems for information exchange between an interrogator/reader and a tag/transponder, e.g. in Radio Frequency Identification [RFID] systems used in interrogator/reader equipment
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K7/00Methods or arrangements for sensing record carriers, e.g. for reading patterns
    • G06K7/10Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation
    • G06K7/10009Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves
    • G06K7/10316Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves using at least one antenna particularly designed for interrogating the wireless record carriers
    • G06K7/10336Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves using at least one antenna particularly designed for interrogating the wireless record carriers the antenna being of the near field type, inductive coil
    • GPHYSICS
    • G08SIGNALLING
    • G08BSIGNALLING OR CALLING SYSTEMS; ORDER TELEGRAPHS; ALARM SYSTEMS
    • G08B13/00Burglar, theft or intruder alarms
    • G08B13/22Electrical actuation
    • G08B13/24Electrical actuation by interference with electromagnetic field distribution
    • G08B13/2402Electronic Article Surveillance [EAS], i.e. systems using tags for detecting removal of a tagged item from a secure area, e.g. tags for detecting shoplifting
    • G08B13/2465Aspects related to the EAS system, e.g. system components other than tags
    • G08B13/2468Antenna in system and the related signal processing
    • G08B13/2474Antenna or antenna activator geometry, arrangement or layout
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/24Combinations of antenna units polarised in different directions for transmitting or receiving circularly and elliptically polarised waves or waves linearly polarised in any direction
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q7/00Loop antennas with a substantially uniform current distribution around the loop and having a directional radiation pattern in a plane perpendicular to the plane of the loop
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q7/00Loop antennas with a substantially uniform current distribution around the loop and having a directional radiation pattern in a plane perpendicular to the plane of the loop
    • H01Q7/06Loop antennas with a substantially uniform current distribution around the loop and having a directional radiation pattern in a plane perpendicular to the plane of the loop with core of ferromagnetic material
    • H01Q7/08Ferrite rod or like elongated core

Definitions

  • This invention relates to electronic article surveillance (EAS) systems and more particularly to an EAS antenna system adapted for environments having wide exits and entrances.
  • EAS electronic article surveillance
  • EAS systems are detection systems that allow the identification of a marker or tag within a given detection region.
  • EAS systems have many uses, but most often they are used as security systems for preventing shoplifting in stores or removal of property in office buildings.
  • EAS systems come in many different forms and make use of a number of different technologies.
  • a typical EAS system includes an electronic detection unit, markers and/or tags, and a detacher or deactivator.
  • the detection units can, for example, be formed as pedestal units, buried under floors, mounted on walls, or hung from ceilings.
  • the detection units are usually placed in high traffic areas, such as entrances and exits of stores or office buildings.
  • the markers and/or tags have special characteristics and are specifically designed to be affixed to or embedded in merchandise or other objects sought to be protected. When an active marker passes through a marker detection region, the EAS system sounds an alarm, a light is activated, and/or some other suitable alert devices are activated to indicate the removal of the marker from the prescribed area.
  • EAS systems operate with these same general principles using either transceivers, which each transmit and receive, or a separate transmitter and receiver.
  • the transmitter is placed on one side of the detection region and the receiver is placed on the opposite side of the detection region.
  • the transmitter produces a predetermined excitation signal in a marker detection region. In the case of a retail store, this detection region is usually formed at a checkout aisle or an exit.
  • the marker When an EAS marker enters the detection region, the marker has a characteristic response to the excitation signal, which can be detected.
  • the marker may respond to the signal sent by the transmitter by using a simple semiconductor junction, a tuned circuit composed of an inductor and capacitor, soft magnetic strips or wires, or vibrating resonators.
  • the receiver subsequently detects this characteristic response.
  • the characteristic response of the marker is distinctive and not likely to be created by natural circumstances.
  • EAS systems are often called upon for coverage of a large detection area, such as a wide mall store entrance.
  • the mall store entrance can sometimes cover the width of the mall store itself.
  • Such relatively large detection areas require special design considerations.
  • the EAS system used for coverage must be carefully designed to avoid any gaps through which a marker might pass through undetected, while simultaneously avoiding false alarming caused by markers attached to store inventory which may be displayed near the detection region.
  • wide mall store entrances may need detection areas up to 4 to 5 meters wide, or wider.
  • wide exits and wide entrances refer to exits/entrances having widths greater than about 2.5 meters, and which are typically 4 to 5 meters or wider.
  • Attempts at solutions to the wide entrance environment include adding additional antennas in the floor and/or ceiling. Adding loop antennas in existing flooring causes many problems, as the floor must be torn up in order to install the loop antenna.
  • U.S. Patent No. 6,400,273 discloses an example of a wide exit solution that includes additional floor and ceiling mounted antennas.
  • a large loop transmit antenna is mounted either in the floor or the ceiling, and several large ferrite core receiver antennas are mounted in the floor or ceiling.
  • loop pedestal antennas can also be mounted at the ends of the detection zone, but are limited in range and cannot cover a wide exit. Multiple antennas can be spaced apart with overlapping detection zones to cover a wide area.
  • the floor and ceiling mounted loop transmit antenna and ferrite core receiver antennas have serious installation requirements because of their size.
  • the present invention is an electronic article surveillance antenna system for wide exit interrogation zones and, in a first aspect, includes a first and a second transmit antenna, each adapted for installation on opposite sides of a wide interrogation zone.
  • a third transmit antenna is adapted for installation adjacent the ceiling of the wide interrogation zone.
  • the first, second, and third transmit antennas are connectable to a transmitter for generation of an interrogation signal for transmission into the wide interrogation zone.
  • a plurality of amorphous core receiver antennas are adapted for installation in the grout region of a floor, or under the flooring, of the wide interrogation zone.
  • the output of each of the plurality of amo ⁇ hous core receiver antennas are connectable to a receiver for detection of a response signal from an electronic article surveillance tag disposed in the wide interrogation zone.
  • the response signal is responsive to the interrogation signal.
  • the system may further include a fourth transmit antenna.
  • the plurality of amorphous core receiver antennas can be configured in a plurality of orthogonal pairs of amorphous core receiver antennas.
  • Each of the transmit antennas can be loop antennas. Alternately, each of the transmit antennas can be magnetic core antennas.
  • the electronic article surveillance antenna system for wide exit interrogation zones includes a first and a second transmit loop antenna.
  • Each of the first and second transmit loop antennas are adapted for installation on opposite sides of a wide interrogation zone.
  • a third transmit loop antenna is adapted for installation adjacent a ceiling of the wide interrogation zone.
  • the first, second, and third loop transmit antennas are connectable to a transmitter for generation of an interrogation signal for transmission into the wide interrogation zone.
  • a plurality of amorphous core receiver antennas includes one each adapted for installation on opposite sides of the wide interrogation zone and one each adapted for installation adjacent the third transmit loop antenna.
  • the output of each of the plurality of amorphous core receiver antennas is connectable to a receiver for detection of a response signal from an electronic article surveillance tag disposed in the wide interrogation zone. The response signal is responsive to the interrogation signal.
  • the system may further include two each of the plurality of amorphous core receiver antennas adapted for installation on opposite sides of the wide interrogation zone and two each of the plurality of amo ⁇ hous core receiver antennas adapted for installation adjacent the third transmit loop antenna.
  • the system may further include a fourth transmit loop antenna and two each of the plurality of amo ⁇ hous core receiver antennas adapted for installation adjacent the fourth transmit loop antenna.
  • Figure 1 is a top perspective view of an amo ⁇ hous core receiver antenna used with the present invention.
  • Figure 2 is a perspective view of one implementation of array of receiver antennas of Fig. 1.
  • Figure 3 is a top perspective view of a large amo ⁇ hous core receiver antenna used with the present invention.
  • Figure 4 is a top perspective view of a large amo ⁇ hous core transmitter antenna used with the present invention.
  • Figure 5 is a schematic representation of one embodiment of the present invention.
  • Figures 6-8 are plots of the EAS tag pick rate for the embodiment of Fig. 5 for a 14- foot wide by 10-foot high entrance.
  • Figures 9-11 are plots of the EAS tag pick rate for the embodiment of Fig. 5 for an 18-foot wide by 10-foot high entrance.
  • Figure 12 is a schematic representation of a second embodiment of the present invention.
  • Figures 13-15 are plots of the EAS tag pick rate for the embodiment of Fig. 12 for a 14-foot wide by 10-foot high entrance.
  • Figures 16-18 are plots of the EAS tag pick rate for the embodiment of Fig. 12 for an 18-foot wide by 10-foot high entrance.
  • Figure 19A is a schematic representation of a third embodiment of the present invention.
  • Figure 19B is a partial cross-sectional view taken along line 19B in Fig. 19 A.
  • Figures 20-22 are plots of the EAS tag pick rate for the embodiment of Fig. 19 for a 14-foot wide by 10-foot high entrance.
  • DETAILED DESCRIPTION OF THE INVENTION During the early research phase for a solution to the wide exit antenna project, it was discovered that an amo ⁇ hous core receiver antenna is significantly more sensitive compared to traditional loop antennas and ferrite core receiver antennas. In fact, the amo ⁇ hous core receiver antenna had a higher sensitivity over the ferrite antenna by a factor of 10 - 20 per unit volume of core material.
  • This early research led to the invention of the core transceiver antenna, U.S. Patent Application No. 10/037,337, filed on December 21, 2001, the disclosure of which is inco ⁇ orated herein by reference.
  • a very small and thin core receiver antenna could be made so that it could fit inside of the grout region in tile floors, or be easily mounted under the tile in the floor.
  • An array of such receiver antennas could be used as a receiver antenna array for very wide detection systems.
  • larger core receiver antennas can be used on the ceiling and/or sidewalls of the entrance zone if the floor installation was not desired.
  • Either traditional loop transmitter antennas or core transmitter antennas could comprise the excitation field source for such a wide detection system.
  • amo ⁇ hous core receiver antenna 2 is illustrated, which is sized to fit into the grout region of a conventional tile floor.
  • Core receiver antenna 2 consists of about 30 layers of a suitable amo ⁇ hous ribbon 4, such as VC6025F available from Vacuumschmelze GmBH Co. (D-6450 Hanau, Germany), or other amo ⁇ hous alloy with similar magnetic properties.
  • a suitable amo ⁇ hous ribbon 4 such as VC6025F available from Vacuumschmelze GmBH Co. (D-6450 Hanau, Germany), or other amo ⁇ hous alloy with similar magnetic properties.
  • Each amo ⁇ hous ribbon is of approximate dimension of 1 cm. wide by 20 cm. long, and is coated with a thin insulting layer. The coating on each ribbon is sufficient to electrically isolate all layers to prevent eddy current losses.
  • a thin dielectric layer is then placed around the core and an electrical winding 6 is placed surrounding the core.
  • winding 6 is capacitively resonated to form a resonant R, L, and C series circuit.
  • a secondary winding 8 is then placed over the first to allow an electrically isolated output, which can be cabled into a conventional electronic article surveillance receiver input.
  • the primary winding 6 and secondary winding 8 should be over the middle 75% of the core.
  • a layout of a small array of core receiver antennas 2 mounted on the floor is illustrated.
  • Two core receiver antennas 2 form an orthogonal pair 10.
  • Three orthogonal pairs 10 are shown, but fewer or more pairs can be implemented in a particular installation depending on the width of the entrance/exit.
  • Each orthogonal pair 10 of receiver core antennas 2 are summed electrically and forms one channel input.
  • Orthogonal pairs 10 are summed rather than parallel pairs to improve noise immunity. If noise were mainly coming from one direction, summing in an orthogonal manner will yield improved signal/noise ratio.
  • large amo ⁇ hous core receiver antenna 12 is very similar to amo ⁇ hous core receiver antenna 2, described above.
  • a typical overall size of antenna 12 is about 75 cm. long by 2 cm. wide by about 30 ribbons thick. In some installations it may not be possible to use small core receiver antennas 2 installed in the floor, as shown in Fig. 2. Alternately, an array of larger core receiver antennas 12 maybe placed overhead on, or above the ceiling, and/or on the sidewalls of the entrance zone of the store.
  • magnetic core transmit antenna 14 which includes a long ferrite or magnetic material core with excitation windings, is illustrated.
  • a plurality of ferrite blocks each about 1 inch wide by 0.5 inch high and 3 inches long, is glued together to form a closely bound chain.
  • Suitable ferrite blocks are Phillips 3C90 soft ferrite blocks.
  • a plastic, or similar, housing 15 encloses and protects the ferrite core.
  • An array of windings connected in series/parallel combinations is employed to maximize the power transfer from the electronics into the ferrite core, thus maximizing the field distribution.
  • the ferrite core transmit antenna 14 is a much smaller profile than a conventional loop transmit antenna.
  • a wide store entrance with an array of conventional loop antennas 16 is illustrated.
  • Two loop antennas 16 are shown overhead and one on each sidewall.
  • An array of small core receiver antennas 2 are mounted in the floor.
  • Testing using a conventional magnetomechanical EAS system resulted in an overall pick rate of 97% with the configuration shown in Fig. 5 in an entrance with dimensions of 14 feet wide and 10 feet high.
  • Figs. 6-8 the results of the above-mentioned performance test in a 14- foot wide by 10-foot high entrance are shown for an EAS tag in the lateral, horizontal, and vertical orientations, respectively.
  • the pick rate is an indication of system performance and indicates how well the system can detect an EAS tag in the surveillance zone of the store entrance formed by the antenna configuration. It is the probability of tag detection.
  • the shaded area of each figure shows detection of an EAS tag. In the examples below the pick rate is determined in the region extending from 0 to about 150 centimeters above the floor.
  • Figs. 9-11 the results of a similar test to the above-mentioned performance test for an 18-foot wide by 10-foot high entrance are shown for the lateral, horizontal, and vertical orientations, respectively, with an overall pick of 94%.
  • a wide store entrance with an array of ferrite transmit antennas 14 is illustrated.
  • Two ferrite transmit antennas 14 are mounted in or on the ceiling, and one on each sidewalk
  • An array of small core receiver antennas 2 are mounted in the floor.
  • Testing using a conventional magnetomechanical EAS system resulted in an overall pick rate of 94% with the configuration shown in Fig. 12 in an entrance with dimensions of 14 feet wide and 10 feet high.
  • Figs. 13-15 the results of the above-mentioned performance test for the configuration shown in Fig. 12 in a 14-foot wide by 10-foot high entrance are shown for the lateral, horizontal, and vertical orientations, respectively.
  • a wide store entrance with an array of conventional loop antennas 16 and an array of large amo ⁇ hous core receiver antennas 12 is illustrated.
  • An array of core receiver antennas 12 are mounted in or on the ceiling, and two on each sidewalk
  • the array of core receivers 12 is shown and includes two sets of four antennas in the orientation illustrated.
  • the loop antennas 16 are not shown in Fig. 19B for clarity.
  • Testing using a conventional magnetomechanical EAS system with the configuration shown in Figs. 19A and 19B in an entrance with dimensions of 14 feet wide and 10 feet high resulted in a maximum pick rate of 91% with the overhead receiver antennas mounted at 8.5 feet above the floor.
  • Figs. 20-22 the results of the above-mentioned performance test for the configuration shown in Fig. 19 in a 14-foot wide by 10-foot high entrance are shown for the lateral, horizontal, and vertical orientations, respectively. If small core receiver antennas 2 mounted in the floor are added to this configuration, the pick rate increases to 100%.

Abstract

An electronic article surveillance antenna system for wide exit interrogation zones is provided. In a first aspect, a first and a second transmit antenna, each adapted for installation on opposite sides of a wide interrogation zone. A third transmit antenna is adapted for installation adjacent the ceiling of the wide interrogation zone. The first, second, and third transmit antennas are connectable to a transmitter for generation of an interrogation signal for transmission into the wide interrogation zone. A plurality of amorphous core receiver antennas are adapted for installation in the grout region of a floor of the wide interrogation zone. The output of each of the plurality of amorphous core receiver antennas are connectable to a receiver for detection of a response signal from an electronic article surveillance tag disposed in the wide interrogation zone. The response signal is responsive to the interrogation signal

Description

WIDE EXIT ELECTRONIC ARTICLE SURVEILLANCE ANTENNA SYSTEM
CROSS REFERENCES TO RELATED APPLICATIONS Not Applicable
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR
DEVELOPMENT Not Applicable
BACKGROUND OF THE INVENTION Field of the Invention
This invention relates to electronic article surveillance (EAS) systems and more particularly to an EAS antenna system adapted for environments having wide exits and entrances. Description of the Related Art
Electronic Article Surveillance (EAS) systems are detection systems that allow the identification of a marker or tag within a given detection region. EAS systems have many uses, but most often they are used as security systems for preventing shoplifting in stores or removal of property in office buildings. EAS systems come in many different forms and make use of a number of different technologies.
A typical EAS system includes an electronic detection unit, markers and/or tags, and a detacher or deactivator. The detection units can, for example, be formed as pedestal units, buried under floors, mounted on walls, or hung from ceilings. The detection units are usually placed in high traffic areas, such as entrances and exits of stores or office buildings. The markers and/or tags have special characteristics and are specifically designed to be affixed to or embedded in merchandise or other objects sought to be protected. When an active marker passes through a marker detection region, the EAS system sounds an alarm, a light is activated, and/or some other suitable alert devices are activated to indicate the removal of the marker from the prescribed area.
Common EAS systems operate with these same general principles using either transceivers, which each transmit and receive, or a separate transmitter and receiver. Typically the transmitter is placed on one side of the detection region and the receiver is placed on the opposite side of the detection region. The transmitter produces a predetermined excitation signal in a marker detection region. In the case of a retail store, this detection region is usually formed at a checkout aisle or an exit. When an EAS marker enters the detection region, the marker has a characteristic response to the excitation signal, which can be detected. For example, the marker may respond to the signal sent by the transmitter by using a simple semiconductor junction, a tuned circuit composed of an inductor and capacitor, soft magnetic strips or wires, or vibrating resonators. The receiver subsequently detects this characteristic response. By design, the characteristic response of the marker is distinctive and not likely to be created by natural circumstances.
EAS systems are often called upon for coverage of a large detection area, such as a wide mall store entrance. The mall store entrance can sometimes cover the width of the mall store itself. Such relatively large detection areas require special design considerations. For example, the EAS system used for coverage must be carefully designed to avoid any gaps through which a marker might pass through undetected, while simultaneously avoiding false alarming caused by markers attached to store inventory which may be displayed near the detection region.
When conventional EAS antenna systems, typically formed of loop antennas, are used in openings wider than about 2.5 meters, detection performance begins to deteriorate. Wide mall store entrances may need detection areas up to 4 to 5 meters wide, or wider. As used herein, wide exits and wide entrances refer to exits/entrances having widths greater than about 2.5 meters, and which are typically 4 to 5 meters or wider. Attempts at solutions to the wide entrance environment include adding additional antennas in the floor and/or ceiling. Adding loop antennas in existing flooring causes many problems, as the floor must be torn up in order to install the loop antenna.
U.S. Patent No. 6,400,273 discloses an example of a wide exit solution that includes additional floor and ceiling mounted antennas. A large loop transmit antenna is mounted either in the floor or the ceiling, and several large ferrite core receiver antennas are mounted in the floor or ceiling. As known in the art, loop pedestal antennas can also be mounted at the ends of the detection zone, but are limited in range and cannot cover a wide exit. Multiple antennas can be spaced apart with overlapping detection zones to cover a wide area. The floor and ceiling mounted loop transmit antenna and ferrite core receiver antennas have serious installation requirements because of their size. BRIEF SUMMARY OF THE INVENTION
The present invention is an electronic article surveillance antenna system for wide exit interrogation zones and, in a first aspect, includes a first and a second transmit antenna, each adapted for installation on opposite sides of a wide interrogation zone. A third transmit antenna is adapted for installation adjacent the ceiling of the wide interrogation zone. The first, second, and third transmit antennas are connectable to a transmitter for generation of an interrogation signal for transmission into the wide interrogation zone. A plurality of amorphous core receiver antennas are adapted for installation in the grout region of a floor, or under the flooring, of the wide interrogation zone. The output of each of the plurality of amoφhous core receiver antennas are connectable to a receiver for detection of a response signal from an electronic article surveillance tag disposed in the wide interrogation zone. The response signal is responsive to the interrogation signal.
The system may further include a fourth transmit antenna.
The plurality of amorphous core receiver antennas can be configured in a plurality of orthogonal pairs of amorphous core receiver antennas.
Each of the transmit antennas can be loop antennas. Alternately, each of the transmit antennas can be magnetic core antennas.
In a second aspect of the present invention, the electronic article surveillance antenna system for wide exit interrogation zones includes a first and a second transmit loop antenna. Each of the first and second transmit loop antennas are adapted for installation on opposite sides of a wide interrogation zone. A third transmit loop antenna is adapted for installation adjacent a ceiling of the wide interrogation zone. The first, second, and third loop transmit antennas are connectable to a transmitter for generation of an interrogation signal for transmission into the wide interrogation zone. A plurality of amorphous core receiver antennas includes one each adapted for installation on opposite sides of the wide interrogation zone and one each adapted for installation adjacent the third transmit loop antenna. The output of each of the plurality of amorphous core receiver antennas is connectable to a receiver for detection of a response signal from an electronic article surveillance tag disposed in the wide interrogation zone. The response signal is responsive to the interrogation signal.
The system may further include two each of the plurality of amorphous core receiver antennas adapted for installation on opposite sides of the wide interrogation zone and two each of the plurality of amoφhous core receiver antennas adapted for installation adjacent the third transmit loop antenna.
The system may further include a fourth transmit loop antenna and two each of the plurality of amoφhous core receiver antennas adapted for installation adjacent the fourth transmit loop antenna.
Objectives, advantages, and applications of the present invention will be made apparent by the following detailed description of embodiments of the invention.
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
Figure 1 is a top perspective view of an amoφhous core receiver antenna used with the present invention.
Figure 2 is a perspective view of one implementation of array of receiver antennas of Fig. 1.
Figure 3 is a top perspective view of a large amoφhous core receiver antenna used with the present invention.
Figure 4 is a top perspective view of a large amoφhous core transmitter antenna used with the present invention.
Figure 5 is a schematic representation of one embodiment of the present invention.
Figures 6-8 are plots of the EAS tag pick rate for the embodiment of Fig. 5 for a 14- foot wide by 10-foot high entrance.
Figures 9-11 are plots of the EAS tag pick rate for the embodiment of Fig. 5 for an 18-foot wide by 10-foot high entrance.
Figure 12 is a schematic representation of a second embodiment of the present invention.
Figures 13-15 are plots of the EAS tag pick rate for the embodiment of Fig. 12 for a 14-foot wide by 10-foot high entrance.
Figures 16-18 are plots of the EAS tag pick rate for the embodiment of Fig. 12 for an 18-foot wide by 10-foot high entrance.
Figure 19A is a schematic representation of a third embodiment of the present invention.
Figure 19B is a partial cross-sectional view taken along line 19B in Fig. 19 A.
Figures 20-22 are plots of the EAS tag pick rate for the embodiment of Fig. 19 for a 14-foot wide by 10-foot high entrance. DETAILED DESCRIPTION OF THE INVENTION During the early research phase for a solution to the wide exit antenna project, it was discovered that an amoφhous core receiver antenna is significantly more sensitive compared to traditional loop antennas and ferrite core receiver antennas. In fact, the amoφhous core receiver antenna had a higher sensitivity over the ferrite antenna by a factor of 10 - 20 per unit volume of core material. This early research led to the invention of the core transceiver antenna, U.S. Patent Application No. 10/037,337, filed on December 21, 2001, the disclosure of which is incoφorated herein by reference. The research also demonstrated that a very small and thin core receiver antenna could be made so that it could fit inside of the grout region in tile floors, or be easily mounted under the tile in the floor. An array of such receiver antennas could be used as a receiver antenna array for very wide detection systems. In addition to the small floor-mounted core receiver antennas, larger core receiver antennas can be used on the ceiling and/or sidewalls of the entrance zone if the floor installation was not desired. Either traditional loop transmitter antennas or core transmitter antennas could comprise the excitation field source for such a wide detection system.
Referring to Fig. 1, amoφhous core receiver antenna 2 is illustrated, which is sized to fit into the grout region of a conventional tile floor. Core receiver antenna 2 consists of about 30 layers of a suitable amoφhous ribbon 4, such as VC6025F available from Vacuumschmelze GmBH Co. (D-6450 Hanau, Germany), or other amoφhous alloy with similar magnetic properties. Each amoφhous ribbon is of approximate dimension of 1 cm. wide by 20 cm. long, and is coated with a thin insulting layer. The coating on each ribbon is sufficient to electrically isolate all layers to prevent eddy current losses. A thin dielectric layer is then placed around the core and an electrical winding 6 is placed surrounding the core. Typically, winding 6 is capacitively resonated to form a resonant R, L, and C series circuit. A secondary winding 8 is then placed over the first to allow an electrically isolated output, which can be cabled into a conventional electronic article surveillance receiver input. Preferably, the primary winding 6 and secondary winding 8 should be over the middle 75% of the core.
Referring to Fig. 2, a layout of a small array of core receiver antennas 2 mounted on the floor is illustrated. Two core receiver antennas 2 form an orthogonal pair 10. Three orthogonal pairs 10 are shown, but fewer or more pairs can be implemented in a particular installation depending on the width of the entrance/exit. Each orthogonal pair 10 of receiver core antennas 2 are summed electrically and forms one channel input. Orthogonal pairs 10 are summed rather than parallel pairs to improve noise immunity. If noise were mainly coming from one direction, summing in an orthogonal manner will yield improved signal/noise ratio.
Referring to Fig. 3, large amoφhous core receiver antenna 12 is very similar to amoφhous core receiver antenna 2, described above. A typical overall size of antenna 12 is about 75 cm. long by 2 cm. wide by about 30 ribbons thick. In some installations it may not be possible to use small core receiver antennas 2 installed in the floor, as shown in Fig. 2. Alternately, an array of larger core receiver antennas 12 maybe placed overhead on, or above the ceiling, and/or on the sidewalls of the entrance zone of the store.
Referring to Fig. 4 magnetic core transmit antenna 14, which includes a long ferrite or magnetic material core with excitation windings, is illustrated. In one embodiment, a plurality of ferrite blocks, each about 1 inch wide by 0.5 inch high and 3 inches long, is glued together to form a closely bound chain. Suitable ferrite blocks are Phillips 3C90 soft ferrite blocks. A plastic, or similar, housing 15 encloses and protects the ferrite core. An array of windings connected in series/parallel combinations is employed to maximize the power transfer from the electronics into the ferrite core, thus maximizing the field distribution. The ferrite core transmit antenna 14 is a much smaller profile than a conventional loop transmit antenna.
Referring to Fig. 5, a wide store entrance with an array of conventional loop antennas 16 is illustrated. Two loop antennas 16 are shown overhead and one on each sidewall. An array of small core receiver antennas 2 are mounted in the floor. Testing using a conventional magnetomechanical EAS system resulted in an overall pick rate of 97% with the configuration shown in Fig. 5 in an entrance with dimensions of 14 feet wide and 10 feet high.
Referring to Figs. 6-8, the results of the above-mentioned performance test in a 14- foot wide by 10-foot high entrance are shown for an EAS tag in the lateral, horizontal, and vertical orientations, respectively. The pick rate is an indication of system performance and indicates how well the system can detect an EAS tag in the surveillance zone of the store entrance formed by the antenna configuration. It is the probability of tag detection. The shaded area of each figure shows detection of an EAS tag. In the examples below the pick rate is determined in the region extending from 0 to about 150 centimeters above the floor. Referring to Figs. 9-11, the results of a similar test to the above-mentioned performance test for an 18-foot wide by 10-foot high entrance are shown for the lateral, horizontal, and vertical orientations, respectively, with an overall pick of 94%.
Referring to Fig. 12, a wide store entrance with an array of ferrite transmit antennas 14 is illustrated. Two ferrite transmit antennas 14 are mounted in or on the ceiling, and one on each sidewalk An array of small core receiver antennas 2 are mounted in the floor. Testing using a conventional magnetomechanical EAS system resulted in an overall pick rate of 94% with the configuration shown in Fig. 12 in an entrance with dimensions of 14 feet wide and 10 feet high.
Referring to Figs. 13-15, the results of the above-mentioned performance test for the configuration shown in Fig. 12 in a 14-foot wide by 10-foot high entrance are shown for the lateral, horizontal, and vertical orientations, respectively.
Referring to Figs. 16-18, the results of a similar test to the above-mentioned performance test in an 18-foot wide by 10-foot high entrance are shown for the lateral, horizontal, and vertical orientations, respectively, with an overall pick of 83%.
Referring to Fig. 19 A, a wide store entrance with an array of conventional loop antennas 16 and an array of large amoφhous core receiver antennas 12 is illustrated. An array of core receiver antennas 12 are mounted in or on the ceiling, and two on each sidewalk Referring also to Fig. 19B, the array of core receivers 12 is shown and includes two sets of four antennas in the orientation illustrated. The loop antennas 16 are not shown in Fig. 19B for clarity. Testing using a conventional magnetomechanical EAS system with the configuration shown in Figs. 19A and 19B in an entrance with dimensions of 14 feet wide and 10 feet high resulted in a maximum pick rate of 91% with the overhead receiver antennas mounted at 8.5 feet above the floor.
Referring to Figs. 20-22, the results of the above-mentioned performance test for the configuration shown in Fig. 19 in a 14-foot wide by 10-foot high entrance are shown for the lateral, horizontal, and vertical orientations, respectively. If small core receiver antennas 2 mounted in the floor are added to this configuration, the pick rate increases to 100%.
Additional configurations resulted in reduced pick rate performance in comparison to the examples illustrated hereinabove. The pick rates demonstrated in the above configurations compare favorably with conventional EAS systems and result in interrogation zones covering wide entrances and are installable in an existing retail store without tearing up the flooring to the extent required for conventional antennas. It is to be understood that variations and modifications of the present invention can be made without departing from the scope of the invention. It is also to be understood that the scope of the invention is not to be inteφreted as limited to the specific embodiments disclosed herein, but only in accordance with the appended claims when read in light of the forgoing disclosure.

Claims

CLAIMS What is claimed is:
1. An electronic article surveillance antenna system for wide exit interrogation zones, comprising: a first and a second transmit antenna, each of said first and said second transmit antennas adapted for installation on opposite sides of a wide interrogation zone; a third transmit antenna adapted for installation adjacent a ceiling of the wide interrogation zone, said first, said second, and said third transmit antennas connectable to a transmitter for generation of an interrogation signal for transmission into the wide interrogation zone; and, a plurality of amoφhous core receiver antennas adapted for installation within a region of a floor of the wide interrogation zone, wherein an output of each of said plurality of amoφhous core receiver antennas being connectable to a receiver for detection of a response signal from an electronic article surveillance tag disposed in the wide interrogation zone, said response signal responsive to said interrogation signal.
2. The system of claim 1 further comprising a fourth transmit antenna.
3. The system of claim 1 wherein said plurality of amoφhous core receiver antennas comprise a plurality of orthogonal pairs of amoφhous core receiver antennas.
4. The system of claim 1 wherein each of said transmit antennas are loop antennas.
5. The system of claim 1 wherein each of said transmit antennas are magnetic core antennas.
6. An electronic article surveillance antenna system for wide exit interrogation zones, comprising: a first and a second transmit loop antenna, each of said first and said second transmit loop antennas adapted for installation on opposite sides of a wide interrogation zone; a third transmit loop antenna adapted for installation adjacent a ceiling of the wide interrogation zone, said first, said second, and said third loop transmit antennas connectable to a transmitter for generation of an interrogation signal for transmission into the wide interrogation zone; and, a plurality of amoφhous core receiver antennas, one each adapted for installation on opposite sides of the wide interrogation zone and one each adapted for installation adjacent said third transmit loop antenna, wherein an output of each of said plurality of amoφhous core receiver antennas being connectable to a receiver for detection of a response signal from an electronic article surveillance tag disposed in the wide interrogation zone, said response signal responsive to said interrogation signal.
7. The system of claim 6 further comprising two each of said plurality of amoφhous core receiver antennas adapted for installation on opposite sides of the wide interrogation zone and two each of said plurality of amoφhous core receiver antennas adapted for installation adjacent said third transmit loop antenna.
8. The system of claim 7 further comprising a fourth transmit loop antenna and two each of said plurality of amoφhous core receiver antennas adapted for installation adjacent said fourth transmit loop antenna.
9. The system of claim 8 further comprising two additional pairs of amoφhous core receiver antennas each pair adapted for installation adjacent said third and said fourth transmit loop antennas, respectively, wherein four each of said amoφhous core receiver antennas being disposed in a substantially rectangular pattern and being mounted adjacent each of said third and said fourth transmit loop antennas, respectively.
PCT/US2004/000911 2003-01-14 2004-01-14 Wide exit electronic article surveillance antenna system WO2004066434A2 (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
EP04702216A EP1584124B1 (en) 2003-01-14 2004-01-14 Wide exit electronic article surveillance antenna system
DE602004005419T DE602004005419T2 (en) 2003-01-14 2004-01-14 ELECTRONIC ARTICLE ASSURANCE ANTENNA SYSTEM WITH LARGE OUTPUT
AU2004206510A AU2004206510B2 (en) 2003-01-14 2004-01-14 Wide exit electronic article surveillance antenna system
JP2006500950A JP4317868B2 (en) 2003-01-14 2004-01-14 Electronic article surveillance antenna system for wide exit
CA2512984A CA2512984C (en) 2003-01-14 2004-01-14 Wide exit electronic article surveillance antenna system

Applications Claiming Priority (2)

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US10/341,824 2003-01-14
US10/341,824 US7091858B2 (en) 2003-01-14 2003-01-14 Wide exit electronic article surveillance antenna system

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WO2004066434A2 true WO2004066434A2 (en) 2004-08-05
WO2004066434A3 WO2004066434A3 (en) 2004-11-18

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EP (1) EP1584124B1 (en)
JP (1) JP4317868B2 (en)
CN (2) CN103401057B (en)
AT (1) ATE357712T1 (en)
AU (1) AU2004206510B2 (en)
CA (1) CA2512984C (en)
DE (1) DE602004005419T2 (en)
ES (1) ES2283970T3 (en)
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US20040135690A1 (en) 2004-07-15
ATE357712T1 (en) 2007-04-15
DE602004005419T2 (en) 2007-07-12
AU2004206510B2 (en) 2008-05-22
US7091858B2 (en) 2006-08-15
AU2004206510A1 (en) 2004-08-05
EP1584124A2 (en) 2005-10-12
ES2283970T3 (en) 2007-11-01
JP4317868B2 (en) 2009-08-19
EP1584124A4 (en) 2006-07-19
DE602004005419D1 (en) 2007-05-03
CN103401057B (en) 2017-03-01
CN103401057A (en) 2013-11-20
CA2512984A1 (en) 2004-08-05
JP2006515702A (en) 2006-06-01
EP1584124B1 (en) 2007-03-21
WO2004066434A3 (en) 2004-11-18
CN1748233A (en) 2006-03-15
CA2512984C (en) 2012-12-18

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