Claims
- 1. A marker for use in a magnetomechanical electronic article surveillance system, comprising:(a) an amorphous magnetostrictive element; and (b) a biasing element located adjacent said magnetostrictive element; wherein said marker has a deactivation-field-dependent resonant-frequency-shift characteristic having a slope that exceeds 100 Hz/Oe and said biasing element is formed of a semi-hard magnetic material having a coercivity Hc of less than 55 Oe.
- 2. A marker according to claim 1; wherein said deactivation-field-dependent resonant-frequency-shift characteristic has a slope that exceeds 200 Hz/Oe.
- 3. A marker according to claim 2; wherein said deactivation-field-dependent resonant-frequency-shift characteristic has a slope that exceeds 400 Hz/Oe.
- 4. A marker according to claim 1; wherein said biasing element is formed of a semi-hard magnetic material having a coercivity Hc of less than 40 Oe.
- 5. A marker according to claim 4; wherein said biasing element is formed of a semi-hard magnetic material having a coercivity Hc of less than 20 Oe.
- 6. A marker according to claim 1, wherein said biasing element essentially has a composition selected from the group consisting of:Fe77.54Ni19.28Cr0.19Mn0.31Si0.30; Fe80.18Co0.20B13.69Si5.82Mn0.11; and Co55.40Fe29.92Ni11.10Ti3.58 (all expressed in atomic percent).
- 7. A marker for use in a magnetomechanical electronic article surveillance system, comprising:(a) an amorphous magnetostrictive element; and (b) a biasing element located adjacent said magnetostrictive element; wherein said biasing element is formed of a semi-hard magnetic material having a DC magnetization field characteristic such that a DC magnetic field Ha required to achieve saturation of said biasing element is less than 350 Oe; said semi-hard magnetic material having an AC demagnetization field characteristic such that an AC demagnetization field Hmd having a peak amplitude of less than 150 Oe, when applied to said biasing element with said biasing element being in a fully magnetized condition, demagnetizes said biasing element to a level that is no more than 5% of a full magnetization level.
- 8. A marker according to claim 7; wherein said AC demagnetization field characteristic of said bias element is such that when said biasing element is in a fully magnetized condition and is exposed to an AC field Hms having a peak amplitude of 4 Oe, said biasing element remains magnetized at a level that is at least 95% of a full magnetization level.
- 9. A marker according to claim 8; wherein said DC magnetization field characteristic is such that said DC magnetic field Ha required to achieve saturation of said biasing element is less than 200 Oe.
- 10. A marker according to claim 9; wherein said DC magnetization field characteristic is such that said DC magnetic field Ha required to achieve saturation of said biasing element is less than 150 Oe.
- 11. A marker according to claim 10; wherein said DC magnetization field characteristic is such that said DC magnetic field Ha required to achieve saturation of said biasing element is less than 50 Oe.
- 12. A marker according to claim 7, wherein said biasing element essentially has a composition selected from the group consisting of:Fe77.54Ni19.28Cr0.19Mn0.31Si0.30; Fe80.18Co0.20B13.69Si5.82Mn0.11; and Co55.40Fe29.92Ni11.10Ti3.58 (all expressed in atomic percent).
- 13. A method of activating and deactivating an EAS marker for use with a magnetomechanical EAS system, the method comprising the steps of:providing an EAS marker formed of a magnetostrictive element and a biasing element mounted adjacent the magnetostrictive element, said biasing element formed of a semi-hard magnetic material having a coercivity Hc of less 55 Oe; magnetizing said biasing element so that said biasing element provides a magnetic field to bias said magnetostrictive element for resonance at an operating frequency of said EAS system; and deactivating said EAS marker by exposing said marker to an AC field having a peak amplitude of less than 150 Oe.
- 14. A method according to claim 13, wherein said marker has a resonance characteristic that is substantially unchanged when said marker is exposed to an AC field having a peak amplitude of 4 Oe or less.
- 15. A method according to claim 14, wherein said marker has a resonance characteristic that is substantially unchanged when said marker is exposed to an AC field having a peak amplitude of 20 Oe or less.
- 16. A method according to claim 14, wherein said deactivating step is accomplished by exposing said marker to an AC field having a peak amplitude of less than 100 Oe.
- 17. A method according to claim 16, wherein said marker has a resonance characteristic that is substantially unchanged when said marker is exposed to an AC field having a peak amplitude of 12 Oe or less.
- 18. A method according to claim 13, wherein said magnetizing step is performed after said biasing element is mounted in said marker.
- 19. A method according to claim 13, wherein said magnetizing step is performed before said biasing element is mounted in said marker.
REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of application Ser. No. 08/697,629, filed Aug. 28, 1996, now U.S. Pat. No. 5,729,200.
US Referenced Citations (6)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
08/697629 |
Aug 1996 |
US |
Child |
08/912058 |
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US |