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(19) TEPZZ 988 79A_T (11) EP 2 988 279 A1 (12) EUROPEAN PATENT APPLICATION published in accordance with Art. 13(4) EPC (43) Date of publication: 24.02.16 Bulletin 16/08 (21) Application number: 1478028.3 (22) Date of filing: 17.03.14 (1) Int Cl.: G07D 7/04 (16.01) (86) International application number: PCT/CN14/000280 (87) International publication number: WO 14/169698 (23..14 Gazette 14/43) (84) Designated Contracting States: AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR Designated Extension States: BA ME () Priority: 16.04.13 CN 1313149 (71) Applicant: Wuxi Ler Technology Co., Ltd. Wuxi, Jiangsu 2100 (CN) (72) Inventor: BAI, Jianmin Wuxi Jiangsu 2100 (CN) (74) Representative: Oslo Patentkontor AS P.O. Box 7007M 06 Oslo (NO) (4) MAGNETIC HEAD FOR DETECTING MAGNETIC FIELD ON SURFACE OF MAGNETIC PATTERN BASED ON MAGNETO-RESISTANCE TECHNOLOGY (7) A magnetic head for detecting a magnetic field on the surface of a magnetic pattern based on a magneto-resistance technology comprises a support (1) and a PCB (Printed Circuit Board) () arranged on the support (1), and further comprises horizontal excitation structures (, 21) used for generating a magnetic field parallel to the surface of the magnetic head; and a magnetic field detection component (4) based on magneto-resistance (MR) elements (R1-R4), the magnetic field detection component is used for detecting the distribution of vertical components of a leakage magnetic field on the surface of a magnetic pattern. The magnetic head can effectively detect magnetic patterns made of soft magnetic materials or hard magnetic materials. The soft magnetic material is magnetized in an in-plane manner by means of the horizontal excitation structures (, 21), so as to generate a specific leakage magnetic field on the surface of a magnetic pattern. A Wheatstone bridge structure connection based on the MR elements (R1-R4) is adopted to effectively detect the vertical components of such specific leakage magnetic field, thus the features of the magnetic patterns made of the soft magnetic materials or the hard magnetic materials can be effectively detected. EP 2 988 279 A1 Printed by Jouve, 7001 PARIS (FR)

1 EP 2 988 279 A1 2 Description Field of Invention [0001] The present invention relates to a magnetic head for detecting the magnetic field on the surface of a magnetic pattern based on magneto-resistance technology. Background of the Invention [0002] In the field of magnetic anti-counterfeiting of banknotes, audio head technology, magneto-resistance (MR) head technology and giant magneto-resistance (GMR) effect technology are mainly used in the current market; in the field of anti-counterfeiting of bills, audio head technology is mainly adopted. [0003] Audio head technology: This technology uses permalloy and other soft magnetic materials to make a ring structure, which has a gap and is wrapped with a coil. When the air gap of the ring structure quickly passes the surface of a magnetic pattern, induced current will be generated inside the coil based on Faraday s law of electromagnetic induction. By detecting the changes of induced current, the changes of the magnetic field on the surface of the magnetic pattern are known. Main disadvantages of this technology are: 1. It is suitable to detecting the leakage magnetic field on the surface of a hard magnetic material. When it detects a soft magnetic material, an external excitation field needs to be added, but this external excitation field will affect the sensitivity of the magnetic head to a great extent; 2. When multichannel heads are made, it is very difficult to assure consistent sensitivity of the heads in different channels, resulting in a low rate of finished products and high production cost; 3. The magnetic head has very low immunity from interference of external magnetic fields and requires necessary shielding treatment against various kinds of interference sources in a complex working environment. This raises the cost of subsequent application products on the one hand and the design difficulty of subsequent application products on the other hand; 4. The output amplitude of signals is relevant with the speed of the magnetic head relative to the detected magnetic pattern, which adding difficulty to quantitative analysis of signals;. Under the condition that some magnetic fields exist indeed, but they don t have a large spatial difference, the actual output of the magnetic head is very small and the generated magnetic information may not be detected. [0004] MR head technology: This technology uses InSb and other magneto-resistance materials. Two magneto resistors are used to constitute a Wheatstone halfbridge. They have spatial location difference in a plane. By detecting the difference between the magnetic fields on the two magneto resistors, the magnetic field gradient on the surface of the magnetic pattern is detected. Disadvantages of this technology: 1. In this technology, a bias magnetic field must be added in the vertical direction 1 2 3 4 0 of the elements so that the magneto-resistance elements can work. Meanwhile, as the soft magnetic pattern needs to be magnetized vertically, the needed magnetic field is large in general. In order to generate this magnetic field, permanent magnets with strong magnetism are needed to reduce magnetism attenuation, but the inevitability of magnetism attenuation results in possible changes of MR sensitivity. In other words, with the increase of time, the sensitivity of the magnetic head may be altered. 2. The sensitivity of MR elements is low, in the range of 0.2 mv/v/gs-1 mv/v/g in general. This requires a large amplification factor of the subsequent signal processing circuit when a weak magnetic field is measured (in general, the magnetic field intensity of soft magnetic information on banknotes is low). 3. MR elements are noisy. During detection of weak magnetic field signals, sophisticated frequency-locking and amplification technology is needed. As a result, the frequency of the detectable magnetic field signals is limited to some extent. 4. As it adopts a half-bridge structure, it has limited immunity from interference of power supply fluctuations and external coupling signals and requires necessary shielding treatment against various kinds of interference sources in a complex working environment. This raises the cost of subsequent application products on the one hand and the design difficulty of subsequent application products on the other hand.. During design of multichannel heads, it is very difficult to assure consistent sensitivity of the heads in different channels, resulting in a low rate of finished products and high production cost. 6. As the design adopts a gradiometer, only the spatial gradient of the vertical component of the magnetic field can be identified and the actual distribution of the magnetic field cannot be measured intuitively. Under the condition that some magnetic fields exist indeed, but they don t have a large spatial difference, the actual output of the magnetic head is very small and the generated magnetic information may not be detected. [000] GMR technology: This technology may adopt a thin-film process. The sensitivity direction is in the thin film plane. The magnetic head based on this technology is realized mainly by two methods: In one method, two GMR resistors are prepared on the substrate. The sensitivity directions of the two GMR resistors may be consistent or opposite. The two GMR resistors are connected into a form of Wheatstone half-bridge. The plane where the two placed GMR resistors are parallel with the plane where the magnetic pattern to be detected is located. Meanwhile, the relative positions of the two placed GMR resistors may be parallel with or perpendicular to the moving direction of the magnetic pattern. These two methods are both used to detect the gradient value of the in-plane component of leakage flux on the surface of the magnetic pattern in the arrangement direction of the two in-plane GMR resistors. Advantages of this technology are: As a thin-film process is adopted, the production consistence of the products can be easily assured. Disadvantages of this technology are: 1. As gradient detection method is 2

3 EP 2 988 279 A1 4 adopted, the actual distribution of the magnetic field cannot be directly measured. Under the condition that some magnetic fields exist indeed, but they don t have a large spatial difference, the actual output of the magnetic head is very small and the generated magnetic information may not be detected. 2. As it adopts a half-bridge structure, it has limited immunity from interference of power supply fluctuations and external coupling signals and requires necessary shielding treatment against various kinds of interference sources in a complex working environment. This raises the cost of subsequent application products on the one hand and the design difficulty of subsequent application products on the other hand. Summary of the Invention [0006] The object of the present invention is to provide a magnetic head for detecting a soft magnetic pattern based on magneto-resistance technology, which can accurately measure actual size of the vertical component of a magnetic field. The magnetic head tackles the defects of prior art and provides a possibility for quantitative analysis of the leakage flux on the surface of the magnetic pattern. [0007] In order to realize the foregoing object, the present invention adopts the following technical solution: a magnetic head for detecting a magnetic field on the surface of a magnetic pattern based on magneto-resistance technology, comprising a support and a PCB (Printed Circuit Board) arranged on the support, and further comprising a horizontal excitation structures for generating a magnetic field parallel with the surface of the magnetic head; and a magnetic field detection component based on magneto-resistance (MR) elements, which is used for detecting the distribution of the vertical component of a leakage magnetic field on the surface of the magnetic pattern. [0008] Further, the horizontal excitation structure is a structure that two front and back horizontally magnetized permanent magnets placed in front of and behind the magnetic field detection component along the magnetization direction. [0009] Further, the horizontal excitation structure is a structure that two front and back vertically magnetized permanent magnets reversely placed in the symmetric positions in front of and behind the magnetic field detection component along the vertical direction of the magnetization direction. [00] Further, the horizontal excitation structure is a structure that a horizontally magnetized permanent magnet placed at the front/rear end of the magnetic field detection component, and a soft magnetic material block placed at rear/front end of the magnetic field detection component. [0011] Further, the magnetic field detection component is a Wheatstone bridge structure composed of a plurality of MR elements. [0012] Further, the Wheatstone bridge structure is a 1 2 3 4 0 Wheatstone full-bridge structure or a Wheatstone halfbridge structure. [0013] Further, when the Wheatstone bridge structure is a Wheatstone full-bridge structure, two MR elements therein are close to the surface of the magnetic head and another two MR elements are far from the surface of the magnetic head; when the Wheatstone bridge structure is a Wheatstone half-bridge structure, an MR element therein is close to the surface of the magnetic head, and another MR element is far from the surface of the magnetic head. [0014] Further, the sensitive directions of the MR elements are consistent and perpendicular to the surface of the magnetic head. [001] Further, the MR elements are at least one kind of anisotropic magneto-resistance (AMR) elements, or giant magneto-resistance (GMR) elements or tunneling magneto-resistance (TMR) elements. [0016] Beneficial effects of the present invention: (1) The present invention adopts magneto-resistance technology which has extremely high magnetic field sensitivity, making the subsequent signal processing circuits relatively simple. By mean of horizontal excitation, an excitation field may be directly added to the detected position. As the magnetic pattern is in a form of thin chip macroscopically, its easy magnetization axis is in a horizontal direction and the needed excitation field is small, and thus the permanent magnets needed for generating this magnetic field may be cheap ferrite materials. The present application effectively lowers the production cost, and improves the thermal stability of the excitation field. [0017] (2) The present invention may effectively detect a magnetic pattern made of soft magnetic materials. The soft magnetic materials are magnetized in plane and a specific leakage magnetic field is generated on the surface of the magnetic pattern through horizontal excitation structures; the Wheatstone bridge circuit structure composed of MR elements, which is used for detecting in a vertical direction, may effectively detect the vertical component of leakage flux on the surface of a magnetic pattern and truly reflect the real condition of the leakage magnetic field on the surface of the magnetic pattern, thus effectively detecting the characteristics of the magnetic pattern made of soft magnetic materials, and providing a possibility for quantitative analysis of leakage flux on the surface of the magnetic pattern. The miss detection of the existing magnetic head is prevented in the case that a leakage magnetic field exists indeed, but the in-plane spatial gradient of the magnetic field is small. [0018] (3) The present invention adopts a Wheatstone full-bridge structure and the four magneto-resistors therein have a same sensitivity direction, so it has very good immunity from interference of external electromagnetic fields. 3

EP 2 988 279 A1 6 Brief Description of the Drawings [0019] FIG. 1 is a schematic diagram of the first excitation structure of the present invention; FIG. 2 is a schematic diagram of the second excitation structure of the present invention; FIG. 3 is a schematic diagram of the third excitation structure of the present invention; FIG. 4 is a schematic diagram of the Wheatstone bridge structure of the present invention; FIG. is a schematic diagram for connection of the three bridge circuit of the Wheatstone bridge structure of the present invention; FIG. 6 is a distribution curve of the magnetic field of the present invention; FIG. 7 is a distribution curve of MR elements of the present invention in a magnetic field. Detailed Description [00] FIG. 1 ~ FIG. 3 show a magnetic head for detecting a magnetic field on the surface of a magnetic pattern based on magneto-resistance technology, comprising a support 1 and a PCB (Printed Circuit Board) arranged on the support, and further comprising horizontal excitation structures for generating a magnetic field parallel with the surface of the magnetic head; the magnetic field can magnetize the magnetic pattern made of soft magnetic materials. After the magnetic pattern is magnetized, specific distribution of leakage magnetic field will be generated on its surface. The value of this magnetic field decreases dramatically with the increase of distance from the surface of the magnetic pattern; and a magnetic field detection component based on magneto-resistance (MR) elements, which is used for detecting the distribution of the vertical component of a leakage magnetic field on the surface of the magnetic pattern. [0021] The excitation structures can be realized by various methods: In FIG. 1, the excitation structures are two front and back horizontally magnetized permanent magnets and 21 placed in front of and behind the magnetic field detection component 4 along the magnetization direction. In FIG. 2, the excitation structures are two front and back vertically magnetized permanent magnets and 21 reversely placed in the symmetric positions in front of and behind the magnetic field detection 1 2 3 4 0 component 4 along the vertical direction of the magnetization direction. In FIG. 3, the excitation structures include a horizontally magnetized permanent magnet 21 placed at the front/rear end of the magnetic field detection component 4, and a soft magnetic material block 7 placed at rear/front end of the magnetic field detection component 4. Apart from the above, there are also many other methods by which an excitation field in the horizontal direction can be obtained. [0022] As shown in FIG. 4, the magnetic field detection component is a Wheatstone bridge structure composed of a plurality of MR elements. The sensitive directions of the MR elements therein are consistent and perpendicular to the surface of the magnetic head. The MR elements are at least one kind of anisotropic magneto-resistance (AMR) elements, or giant magneto-resistance (GMR) elements or tunneling magneto-resistance (TMR) elements. When the Wheatstone bridge structure is a Wheatstone full-bridge structure, two MR elements are close to the surface of the magnetic head and another two MR elements are far from the surface of the magnetic head; when the Wheatstone bridge structure is a Wheatstone half-bridge structure, an MR element is close to the surface of the magnetic head, and another MR element is far from the surface of the magnetic head. [0023] FIG. is a specific embodiment: a magnetoresistor R1/R2 (under the condition of half bridge) or two magneto-resistors R1 and R2 (under the condition of full bridge) are close to the surface of the magnetic head; another magneto-resistor R3/R4 (under the condition of half bridge) or two magneto-resistors R3 and R4 (under the condition of full bridge) are far from the surface of the magnetic head. These MR elements are connected together in form of a Wheatstone full-bridge or Wheatstone half-bridge structure (refer to the three connecting methods of bridge circuits a, b and c in FIG. ). As the amplitude of magnetic field felt by the magneto-resistor close to the surface of the magnetic head is much greater than the amplitude of magnetic field felt by the magneto-resistor far from the surface of the magnetic head and the magnetic field of the latter is nearly zero, the magnetic field detection component 4 can detect the real distribution of the vertical component of the leakage magnetic field on the surface of the magnetic pattern. [0024] FIG. 6 shows a curve of changes of resistance of MR elements with the external magnetic field. There are two types: 1. When the external magnetic field is smaller than the saturated magnetic field, the resistance of the MR elements is changed linearly with the external magnetic field, which is called "linear MR elements"; 2. When the external magnetic field is smaller than the saturated magnetic field, the curve of changes of resistance of MR elements with the external magnetic field is a curve in an inverted "V" shape, which is called "V-shaped MR elements". Due to the effect of the error of relative posi- 4

7 EP 2 988 279 A1 8 tions of magnets and MR elements, and the processing error of the magnets and other factors, there may be a magnetic field of certain intensity in the MR element sensitivity direction, but this magnetic field can be controlled within the working range of MR elements. For linear MR elements, permanent magnets are arranged symmetrically to MR elements to make the working ranges of MR elements are close to zero magnetic field (refer to magnetic field distribution curve 6a); for V-shaped MR elements, the asymmetry of the positions of the permanent magnets relative to MR elements may be adjusted to some extent to adjust the working range of MR to the positive magnetic field range or negative magnetic field range (refer to magnetic field distribution curve 6b). [002] FIG. 7 shows the distribution of two components of the MR elements in the magnetic field: FIG. 7a shows the distribution when linear MR elements are in the magnetic field; FIG. 7b shows the distribution when V-shaped MR elements are in the magnetic field. [0026] The foregoing embodiment is only a preferred embodiment of the present invention and not to limit the present invention. All the modifications, equivalent replacements and improvements made without departing from the spirit and principle of the invention shall be in the protective scope of the invention. 1 2 detection component along the vertical direction of the magnetization direction. 4. The magnetic head for detecting a magnetic field on technology as in claim 1, characterized in that the horizontal excitation structure is a structure that a horizontally magnetized permanent magnet placed at the front/rear end of the magnetic field detection component, and a soft magnetic material block placed at rear/front end of the magnetic field detection component.. The magnetic head for detecting a magnetic field on technology as in any one of claim 1 ~ claim 4, characterized in that the magnetic field detection component is a Wheatstone bridge structure composed of a plurality of MR elements. 6. The magnetic head for detecting a magnetic field on technology as in claim, characterized in that the Wheatstone bridge structure is a Wheatstone full-bridge structure or a Wheatstone halfbridge structure. Claims 1. A magnetic head for detecting a magnetic field on technology, comprising a support and a PCB (Printed Circuit Board) arranged on the support, characterized i n that it further comprises horizontal excitation structures for generating a magnetic field parallel with the surface of the magnetic head; and a magnetic field detection component based on magneto-resistance (MR) elements, which is used for detecting the distribution of the vertical component of a leakage magnetic field on the surface of the magnetic pattern. 2. The magnetic head for detecting a magnetic field on technology as in claim 1, characterized in that the horizontal excitation structure is a structure that two front and back horizontally magnetized permanent magnets placed in front of and behind the magnetic field detection component along the magnetization direction. 3. The magnetic head for detecting a magnetic field on technology as in claim 1, characterized in that the horizontal excitation structure is a structure that two front and back vertically magnetized permanent magnets reversely placed in the symmetric positions in front of and behind the magnetic field 3 4 0 7. The magnetic head for detecting a magnetic field on technology as in claim 6, characterized in that when the Wheatstone bridge structure is a Wheatstone full-bridge structure, two MR elements therein are close to the surface of the magnetic head and another two MR elements are far from the surface of the magnetic head; when the Wheatstone bridge structure is a Wheatstone half-bridge structure, an MR element therein is close to the surface of the magnetic head, and another MR element is far from the surface of the magnetic head. 8. The magnetic head for detecting a magnetic field on technology as in claim 7, characterized in that the sensitive directions of the MR elements are consistent and perpendicular to the surface of the magnetic head. 9. The magnetic head for detecting a magnetic field on technology as in claim 8, characterized in that the MR elements are at least one kind of anisotropic magneto-resistance (AMR) elements, or giant magneto-resistance (GMR) elements or tunneling magneto-resistance (TMR) elements.

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