MAGNETIC ANGULAR POSITION SENSOR CIRCUIT
20210333086 ยท 2021-10-28
Assignee
Inventors
Cpc classification
G01R33/091
PHYSICS
G01D2205/40
PHYSICS
G01R33/0011
PHYSICS
G01D5/145
PHYSICS
G01R33/072
PHYSICS
International classification
Abstract
Sensor arrangements are disclosed. A magnetic sensor is mounted to a printed circuit board. A pole element is arranged next to the magnetic sensor. The pole element acts as a magnetic field concentrator for the magnetic sensor. A movable magnet may be positioned in proximity to the magnetic sensor and the pole element. The movable magnet may be held in a magnet holding element. The magnet holding element may be attached to a rotatable element, such as a shaft.
Claims
1. A sensor arrangement, comprising: a magnetic sensor to receive a magnetic field; and a pole element arranged next to the magnetic sensor, the pole element to concentrate the magnetic field receivable by the magnetic sensor.
2. The sensor arrangement according to claim 1, wherein the pole element is arranged directly adjacent to the magnetic sensor.
3. The sensor arrangement according to claim 1, wherein the magnetic sensor is mounted to a printed circuit board.
4. The sensor arrangement according to claim 3, wherein the pole element is mounted to the printed circuit board, the pole element mounted directly adjacent to the magnetic sensor mounted to the printed circuit board.
5. The sensor arrangement according to claim 1, wherein the pole element is made of ferromagnetic material.
6. The sensor arrangement according to claim 5, wherein the ferromagnetic material is steel.
7. The sensor arrangement according to claim 1, further comprising a movable magnet positioned proximate to the magnetic sensor and the pole element.
8. The sensor arrangement according to claim 7, further comprising a magnet holding element, the movable magnet positioned in the magnet holding element.
9. The sensor arrangement according to claim 8, wherein the magnet holding element is attachable to a rotatable member.
10. The sensor arrangement according to claim 7, wherein the movable magnet has a cuboid shape.
11. The sensor arrangement according to claim 1, further comprising a housing, and wherein the magnetic sensor and the pole element are mounted to a printed circuit board, the printed circuit board disposed in the housing.
12. The sensor arrangement according to claim 1, wherein the magnetic sensor is a Hall-effect sensor.
13. A sensor arrangement, comprising: a magnetic sensor to receive a magnetic field; a pole element arranged next to the magnetic sensor, the pole element to concentrate the magnetic field receivable by the magnetic sensor; and a magnet disposed in movable relation to the magnetic sensor and the pole element, the magnet having a cuboid shape.
14. The sensor arrangement according to claim 13, wherein the pole element is arranged directly adjacent to the magnetic sensor.
15. The sensor arrangement according to claim 13, wherein the magnetic sensor is mounted to a printed circuit board.
16. The sensor arrangement according to claim 15, wherein the pole element is mounted to the printed circuit board, the pole element mounted directly adjacent to the magnetic sensor mounted to the printed circuit board.
17. The sensor arrangement according to claim 13, wherein the pole element is made of ferromagnetic material.
18. The sensor arrangement according to claim 17, wherein the ferromagnetic material is steel.
19. The sensor arrangement according to claim 13, wherein the magnetic sensor is a Hall-effect sensor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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[0013] The sensor arrangement 100 may further include a movable magnet 108. The movable magnet 108 may be positioned proximate to the magnetic sensor 102. In one implementation, the movable magnet 108 is held or positioned in a magnet holding element 110. The magnet holding element 110 may be coupled to a shaft 112. In one implementation, the magnet holding element 110 is coupled to the shaft 112, which is associated with a vane-throttle in a vehicle, such as an automobile. Movement of the shaft 112 along its axis will cause the magnet holding element 110 and the associated movable magnet 108 to rotate in an arc. The arc of rotation is shown by line 114.
[0014] In one implementation, the movable magnet 108 has a cuboid shape. Using a magnet having a cuboid shape, rather than an irregular shape (e.g., an arched or round shape), provides for a sensor arrangement 100 that is relatively inexpensive to manufacture.
[0015] Rotation of the movable magnet 108 may be sensed by the magnetic sensor 102. The magnetic sensor 102 may output a value proportional to the rotation of the movable magnet 108. More specifically, as the movable magnet 108 is rotated, its magnetic field distribution and an air-gap 116 (i.e., the distance between the movable magnet 108 and the magnetic sensor 102) change. The radial and axial components of the magnetic field are in phase sinusoidal distributed, whereas the normal magnetic distribution (i.e., a third magnetic component normal to the plane created by radial and axially components of the magnetic field) has a phase-shift of 90 degrees. These distributions are detected by the magnetic sensor 102 and processed in logic associated with the magnetic sensor 102. The output of the magnetic sensor 102 is a radiometric output correlating a detected rotation of the moveable magnet 108 to an output voltage.
[0016] In one implementation, the magnetic sensor 102 is a Hall-effect magnetic field orientation sensor MLX90360 from Melexis Microelectronic Integrated Systems NV.
[0017] The pole element 106 may function as a concentrator for the magnetic field associated with the moveable magnet 108. Specifically, the pole element 106 may function to attract and focus or concentrate the magnetic field generated by the movable magnet 108. The focused or concentrated magnetic field is guided to the magnetic sensor 102 by the pole element 106.
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[0022] While exemplary sensor arrangements are disclosed, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted without departing from the spirit and scope of the claims of the application. Other modifications may be made to adapt a particular situation or material to the teachings disclosed above without departing from the scope of the claims. Therefore, the claims should not be construed as being limited to any one of the particular embodiments disclosed, but to any embodiments that fall within the scope of the claims.