Rotary encoder

By integrating a magnetic yoke in the rotary encoder, the magnetic flux density is enhanced, allowing the use of less expensive magnets, thus reducing production costs.

JP2026006613AInactive Publication Date: 2026-01-16TAMAGAWA SEIKI CO LTD
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Patent Information

Application Number
JP2024105714
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2026-01-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Magnetic generators with the large Barkhausen effect require high magnetic flux density, leading to increased product costs due to the need for expensive magnets.

Method used

Incorporating a plate-shaped yoke made of a magnetic material, such as iron, into the rotary encoder to enhance magnetic flux density, allowing the use of less expensive magnets with lower flux density.

Benefits of technology

The configuration increases magnetic flux density, enabling the use of less expensive magnets and reducing manufacturing costs.

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Abstract

To provide a rotary encoder capable of reducing a manufacturing cost.SOLUTION: The rotary encoder 10 includes a magnetic detection element 2 and a magnetic field generation part 3, and the magnetic field generation part 3 is provided with a yoke 4. The magnetic flux density can be increased by providing the yoke 4 in the magnetic field generator 3. A permanent magnet can be used as the magnetic field generator 3. A plate-like body made of a magnetic material can be used as the yoke 4, and the yoke 4 is provided at the end of the magnetic field generation part 3 on the side farther from the magnetic power generation element.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a rotary encoder, and more particularly to a rotary encoder that can be manufactured at reduced cost. [Background technology]

[0002] Conventional rotary encoders equipped with magnetic generating elements having the large Barkhausen effect use a magnetic field generating unit such as a magnet. Patent applications have been filed for rotary encoders equipped with magnetic generating elements having the large Barkhausen effect.

[0003] For example, Patent Document 1 listed below discloses a power generating element, an encoder, and a manufacturing method for a magnetic member that can increase power generation, which includes a power generating element consisting of a magnetic member that generates a large Barkhausen effect, a coil wound around the magnetic member, and a ferrite member attached to the end of the magnetic member, and a ferrite member consisting of a main body located inside a columnar space and a protrusion located outside.The columnar space is surrounded by an imaginary plane that is formed by assuming that the outer edge of the coil extends on both sides in the winding axis direction, and is formed so as to be sandwiched between two imaginary planes that contact both ends of the magnetic member and are perpendicular to the winding axis direction. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] WO2022 / 230651 "Power generating element, encoder, and method for manufacturing magnetic member" Summary of the Invention [Problem to be solved by the invention]

[0005] A magnetic generator with the large Barkhausen effect cannot generate electricity unless there is a certain level of magnetic flux density. Therefore, depending on the product structure and the environment in which the product is used, a magnet that can generate a high magnetic flux density may be required, which ultimately leads to a rise in product costs.

[0006] SUMMARY OF THE INVENTION In view of the above problems of the prior art, the problem to be solved by the present invention is to provide a rotary encoder that can reduce manufacturing costs. [Means for solving the problem]

[0007] As a result of studying the above-mentioned problems, the inventors of the present application found that the problem can be solved by bringing a plate-shaped structure made of a magnetic material such as iron into contact with the side of a magnetic field generating section such as a magnet, away from the magnetic generating element, in a rotary encoder equipped with a magnetic generating element having a large Barkhausen effect, and having the plate-shaped structure act as a yoke. Further studies based on this finding led to the completion of the present invention. That is, the invention claimed in this application, or at least the invention disclosed therein, as a means for solving the above-mentioned problems is as follows:

[0008] [1] A rotary encoder comprising a magnetic detection element and a magnetic field generating unit, characterized in that the magnetic field generating unit is provided with a yoke. [2] A rotary encoder comprising a magnetic generating element having a large Barkhausen effect, a magnetic detecting element having a Hall effect or a magnetoresistance effect, and a magnetic field generating unit, characterized in that the magnetic field generating unit is provided with a yoke. [3] A rotary encoder according to either [1] or [2], characterized in that the magnetic field generating unit is constructed by joining two or more magnetic field generating unit units magnetized in the axial direction in the radial direction, and adjacent magnetic field generating unit units are arranged so that their magnetic poles are different. [4] The rotary encoder according to either [1] or [2], wherein the yoke is a plate-shaped body made of a magnetic material. [5] The rotary encoder according to either [1] or [2], characterized in that the yoke is provided at the end of the magnetic field generating unit that is farther away from the magnetic generating element. [Effects of the Invention]

[0009] Because the rotary encoder of the present invention is configured as described above, it is possible to increase the magnetic flux density compared to the conventional configuration without a yoke, and therefore it is possible to use relatively inexpensive magnets with low magnetic flux density, thereby reducing costs. Note that the technology disclosed in Document 1 relates to an encoder structure using a Wiegand wire sensor and is unrelated to the present invention. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a cross-sectional explanatory view conceptually showing the basic configuration of a rotary encoder according to the present invention; [Figure 2] 1 is a cross-sectional explanatory view conceptually showing the operation of a rotary encoder according to the present invention; [Figure 3] 1 is a cross-sectional explanatory diagram conceptually showing the basic configuration of a rotary encoder of the present invention equipped with a magnetic power generating element. [Figure 4] 1 is a perspective explanatory view showing the basic configuration of a magnetic field generating unit of a rotary encoder according to the present invention; [Figure 5] 1 is a cross-sectional view illustrating a main portion of a rotary encoder according to an embodiment of the present invention; DETAILED DESCRIPTION OF THE INVENTION

[0011] The present invention will be described in detail below with reference to the drawings. Figure 1 is a cross-sectional explanatory diagram conceptually showing the basic configuration of a rotary encoder of the present invention. As shown in the figure, this rotary encoder 10 is a rotary encoder equipped with a magnetic detection element 2 and a magnetic field generating unit 3, and its main configuration is that the magnetic field generating unit 3 is provided with a yoke 4. In this rotary encoder 10 with such a configuration, the magnetic flux density can be increased by providing the yoke 4 to the magnetic field generating unit 3. This will be further explained using another drawing.

[0012] FIG. 2 is a cross-sectional explanatory diagram conceptually illustrating the operation of the rotary encoder of the present invention. In the figure, (a) shows the main parts of the present invention, and (b) shows the main parts of the prior art. In the prior art, magnetic field generating unit 93 generates magnetic fluxes F91 and F92 of equal magnitude and magnetic flux density ((b) in the figure). On the other hand, in the present invention, where the magnetic flux density is increased by yoke 24, the magnetic flux generated by magnetic field generating unit 23 is magnetic flux F1 on the side opposite to the side where yoke 24 is provided, which is greater than magnetic flux F2 on the yoke 24 side. In this way, in the present invention, the effect of increasing magnetic flux density is obtained by yoke 24.

[0013] Fig. 3 is a cross-sectional explanatory diagram conceptually showing the basic configuration of a rotary encoder of the present invention equipped with a magnetic power generating element. As shown in the figure, this rotary encoder 310 has the configuration explained in Fig. 1, i.e., a magnetic detection element 32, a magnetic field generating unit 33, and a yoke 34 provided in the magnetic field generating unit 33, as well as a magnetic power generating element 35 having a large Barkhausen effect. In other words, a rotary encoder with such a configuration is also within the scope of the present invention.

[0014] In the rotary encoder 310 having such a configuration, the magnetic flux density can be increased by providing the yoke 34 in the magnetic field generating unit 33. This effect is as explained above with reference to Figure 2. The magnetic detection element 32 can have a structure that exhibits the Hall effect or magnetoresistance effect.

[0015] 3, the yoke 34 of the rotary encoder 310 of the present invention can be configured to be provided at the end of the magnetic field generating unit 33 that is farther away from the magnetic generating element 35. Note that a magnet or the like is used for the magnetic field generating unit 33, but a plate-like structure made of a magnetic material such as iron can be suitably used as the yoke 34. This is brought into contact with the side of the magnetic field generating unit 33 that is farther away from the magnetic generating element 35, and functions as the yoke 34.

[0016] For example, a plate-like structure such as a washer can be used as the yoke 34. The magnetic flux density can be designed to a desired or appropriate level by adjusting the thickness of the plate-like structure such as a washer, the number of plates to be stacked, and the like.

[0017] 4 is a perspective view illustrating the basic configuration of a magnetic field generating unit of a rotary encoder according to the present invention. As shown in the figure, the magnetic field generating unit 43 is configured by joining two or more axially magnetized magnetic field generating unit units 49 together in the radial direction, with adjacent magnetic field generating unit units 49, 49, arranged so that their magnetic poles are different. That is, the magnetic field generating unit 49 located in the front of the figure has an N pole 46 at its top, while the adjacent magnetic field generating unit 49 located in the rear of the figure has an S pole 47 at its top. On the other hand, the magnetic poles are arranged in the opposite direction at the bottom of each magnetic field generating unit 49, 49. The magnetic fluxes F1d, F1x, F2d, and F2x generated in the axial direction by the magnetic field generating unit 43 are shown in the figure.

[0018] 5 is a cross-sectional view of a main portion of an embodiment of a rotary encoder according to the present invention. As shown in the figure, the rotary encoder 510 of this embodiment includes a magnetic generating element 55 having the large Barkhausen effect, a magnetic detecting element 52 having the Hall effect or magnetoresistance effect, and a magnetic field generating unit 53, with a yoke 54 attached to a magnetic plate at the end of the magnetic field generating unit 53 farther from the magnetic generating element 55. This allows for a higher magnetic flux density than in the prior art configuration. [Industrial Applicability]

[0019] The rotary encoder of the present invention has a higher magnetic flux density than the conventional yoke-less configuration, which allows the use of relatively inexpensive magnets with low magnetic flux density, contributing to cost reduction. Therefore, this invention has high industrial applicability in encoder manufacturing, fields of use, and all related fields. [Explanation of symbols]

[0020] 1, 31, 51...Disc 2, 32, 52...Magnetic detection element 3, 23, 33, 43, 53...Magnetic field generating unit 4, 24, 34, 54...York 8, 28, 38, 58...axis 10, 310, 510... rotary encoder 35, 55...Magnetic power generating element 46…N pole 47…S pole 49...Magnetic field generating unit 50...Substrate F1, F1d, F1x, F2, F2d, F2x...magnetic flux 93...Magnetic field generating unit 98...Axis F91, F92...magnetic flux

Claims

1. A rotary encoder including a magnetic detection element and a magnetic field generation unit, A rotary encoder characterized in that a yoke is provided in the magnetic field generating section.

2. A rotary encoder comprising a magnetic generating element having a large Barkhausen effect, a magnetic detecting element having a Hall effect or a magnetoresistive effect, and a magnetic field generating unit, A rotary encoder characterized in that a yoke is provided in the magnetic field generating section.

3. 3. The rotary encoder according to claim 1, wherein the magnetic field generating unit is configured by joining two or more axially magnetized magnetic field generating unit units together in the radial direction, and adjacent magnetic field generating unit units are arranged so that their magnetic poles are different.

4. 3. The rotary encoder according to claim 1, wherein the yoke is a plate-shaped member made of a magnetic material.

5. 3. The rotary encoder according to claim 1, wherein the yoke is provided at an end of the magnetic field generating unit that is farther away from the magnetic generating element.

Citation Information

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