Sensor element, test device, and method for testing a data carrier having a spin resonance feature

US12586435B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-12586435-B2
Application numberUS-202318863047-A
CountryUS
Kind codeB2
Filing dateMay 5, 2023
Priority dateMay 6, 2022
Publication dateMar 24, 2026
Grant dateMar 24, 2026

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  5. First independent claim

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Abstract

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A sensor element is for testing a flat data carrier having a spin resonance feature. The sensor element includes a magnetic core having an air gap, which is delimited by two pole surfaces of the magnetic core and into which the flat data carrier can be inserted in order to be tested, a polarization device for generating a static magnetic flux in the air gap, and a resonator device for exciting the spin resonance feature of the data carrier to be tested in the air gap. The resonator device has a signal source and a plurality of stripline resonators which are simultaneously fed from the signal source, and the stripline resonators are formed in a planar manner with a main extension plane which is plan-parallel to at least one of the pole surfaces of the magnetic core.

First claim

Opening claim text (preview).

The invention claimed is: 1 . A sensor element for testing a planar data carrier having a spin resonance feature, comprising: a magnetic core having an air gap which is delimited by two pole faces of the magnetic core and into which the planar data carrier can be introduced for testing purposes, a polarization device for creating a static magnetic flux in the air gap, and a resonator unit for exciting the spin resonance feature of the data carrier to be tested in the air gap, wherein the resonator unit comprises a signal source, and a resonator device having a plurality of stripline resonators, which are fed simultaneously from the signal source, and in that the stripline resonators have a planar design with a principal plane of extent that is plane-parallel to at least one of the pole faces of the magnetic core. 2 . The sensor element according to claim 1 , wherein the resonator unit comprises exactly one signal source and all stripline resonators of the resonator device are fed simultaneously from the one signal source. 3 . The sensor element according to claim 1 , wherein the plurality of stripline resonators form an N×M array of N signal branches electrically connected in parallel with M series-connected stripline resonators per signal branch, where N and M are natural numbers and at least one of the values of N and M is greater than 1. 4 . The sensor element according to claim 3 , wherein the plurality of stripline resonators form an N×1 array of N parallel-connected stripline resonators, where N≥2. 5 . The sensor element according to claim 3 , wherein the plurality of stripline resonators form a 1×M array of M series-connected stripline resonators, where M≥2. 6 . The sensor element according to claim 3 , wherein the plurality of stripline resonators form an N×M array of stripline resonators partly connected in series and partly connected in parallel, where N≥2 and M≥2. 7 . The sensor element according to claim 1 , wherein the stripline resonators of the resonator device have the same resonant frequency. 8 . The sensor element according to claim 1 , wherein the polarization device creates a static magnetic flux in the air gap, which has substantially the same strength at all stripline resonators in that the static magnetic flux at the location of the stripline resonators has a maxi-mum deviation of 2% or less. 9 . The sensor element according to claim 1 , wherein the principal plane of extent is perpendicular to the direction of the static magnetic flux created by the polarization device, in that the principal plane of extent of the stripline resonators is plane-parallel to the two pole faces of the magnetic core bounding the air gap. 10 . The sensor element according to claim 1 , wherein the stripline resonators of the resonator device are all arranged in the same plane. 11 . The sensor element according to claim 1 , wherein the resonator unit is designed and configured for operation of the signal source at a high output power, at which signal saturation occurs when the spin resonance feature is tested using a single one of the stripline resonators. 12 . The sensor element according to claim 1 , wherein the arrangement of stripline resonators has a smaller areal extent than the data carrier to be tested. 13 . The sensor element according to claim 1 , wherein the stripline resonators have a rectangular embodiment with an aspect ratio of less than 3:1. 14 . The sensor element according to claim 1 , wherein the stripline resonators form independent electromagnetic modes of the excitation field, wherein the overall excitation field has local minimal between the stripline resonators. 15 . The sensor element according to claim 1 , wherein the air gap has a height of less than 10 mm. 16 . The sensor element according to claim 1 , wherein the sensor element has a modulation device for generating a time-varying magnetic modulation field in the air gap, wherein the modulation frequency for all of the stripline resonators of the resonator device is equal. 17 . A test apparatus for testing a planar data carrier having a spin resonance feature, comprising: a sensor element according to claim 1 , and a transport device, which guides the planar data carriers to be tested along a transport path through the air gap of the magnetic core, wherein the transport device is advantageously designed and configured for high-speed transport of the planar data carriers to be tested along the transport path. 18 . A method for testing a planar data carrier having a spin resonance feature, by means of a sensor element or a test apparatus according to claim 17 , wherein in the method a planar data carrier to be tested is guided along a transport path through the air gap of the magnetic core of the aforementioned sensor element, a static magnetic flux is created using the polarization device and a time-varying magnetic modulation field is created in the air gap using a modulation device, and the plurality of stripline resonators of the resonator device are fed simultaneously by the signal source and the resonator device is used to excite the spin resonance feature of the data carrier to be tested. 19 . The method according to claim 18 , wherein the resonator device is fed by the signal source with a high output power, at which signal saturation occurs when the spin resonance feature is tested using a single one of the stripline resonators.

Assignees

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Classifications

  • Assessment of an electric or a magnetic field, e.g. spatial mapping, determination of a B0 drift or dosimetry · CPC title

  • using permanent magnets · CPC title

  • Open magnet assemblies for improved access to the sample, e.g. C-type or U-type magnets · CPC title

  • by using nuclear magnetic resonance (G01N24/12 takes precedence) · CPC title

  • by using electron paramagnetic resonance (G01N24/12 takes precedence) · CPC title

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What does patent US12586435B2 cover?
A sensor element is for testing a flat data carrier having a spin resonance feature. The sensor element includes a magnetic core having an air gap, which is delimited by two pole surfaces of the magnetic core and into which the flat data carrier can be inserted in order to be tested, a polarization device for generating a static magnetic flux in the air gap, and a resonator device for exciting …
Who is the assignee on this patent?
Giesecke & Devrient Currency Technology Gmbh
What technology area does this patent fall under?
Primary CPC classification G07D7/04. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Mar 24 2026 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).