System for measuring angular position and method of stray field cancellation
US-2019301893-A1 · Oct 3, 2019 · US
US10969246B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10969246-B2 |
| Application number | US-201916412683-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 15, 2019 |
| Priority date | Jul 27, 2018 |
| Publication date | Apr 6, 2021 |
| Grant date | Apr 6, 2021 |
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An apparatus for sensing a rotating body includes a unit to be detected including a first pattern portion having first patterns and a second pattern portion having second patterns, and configured to rotate around a shaft, a sensor module including a first sensor and a third sensor disposed opposite to the first pattern portion with the rotating shaft interposed therebetween, a second sensor and a fourth sensor disposed opposite to the second pattern portion with the rotating shaft interposed therebetween, and a rotation information calculator configured to calculate a first compensation sensing value based on a sum of a sensing value of the first sensor and a sensing value of the third sensor, and to calculate a second compensation sensing value based on a sum of a sensing value of the second sensor and a sensing value of the fourth sensor.
Opening claim text (preview).
What is claimed is: 1. An apparatus for sensing a rotating body, comprising: a unit to be detected comprising a first pattern portion having first patterns and a second pattern portion having second patterns, and being configured to rotate around a rotating shaft; a sensor module comprising a first sensor disposed opposite to the first pattern portion, a second sensor disposed opposite to the second pattern portion, a third sensor disposed opposite to the first pattern portion and disposed with the rotating shaft interposed with the first sensor, and a fourth sensor disposed opposite to the second pattern portion and disposed with the rotating shaft interposed with the second sensor; and a rotation information calculator configured to calculate a first compensation sensing value based on a sum of a first sensing value of the first sensor and a third sensing value of the third sensor, and to calculate a second compensation sensing value based on a sum of a second sensing value of the second sensor and a fourth sensing value of the fourth sensor. 2. The apparatus for sensing a rotating body of claim 1 , wherein the first sensing value and the third sensing value have a same phase, and the second sensing value and the fourth sensing value have a same phase. 3. The apparatus for sensing a rotating body of claim 1 , wherein the first patterns and the second patterns have a size and a separation distance, corresponding to a reference angle. 4. The apparatus for sensing a rotating body of claim 3 , wherein the first patterns and the second patterns are disposed to have a difference in angles corresponding to half of the reference angle. 5. The apparatus for sensing a rotating body of claim 4 , wherein the first sensor, the second sensor, the third sensor, and the fourth sensor have a size corresponding to a difference in angles corresponding to half of the reference angle. 6. The apparatus for sensing a rotating body of claim 1 , wherein the first pattern portion comprises two first patterns having a size and a separation distance between the two first patterns corresponding to 90°, and the second pattern portion comprises two second patterns having a size and a separation distance between the two second patterns corresponding to 90°. 7. An apparatus for sensing a rotating body, comprising: a unit to be detected comprising a first pattern portion having first patterns and a second pattern portion having second patterns, and being configured to rotate around a rotating shaft; a sensor module comprising a first sensor disposed opposite to the first pattern portion, a second sensor disposed opposite to the second pattern portion, a third sensor having a difference in angles with the first sensor, and disposed opposite to the first pattern portion, and a fourth sensor having a difference in angles with the second sensor, and disposed opposite to the second pattern portion; and a rotation information calculator configured to calculate a first compensation value based on an average value of a first sensing value of the first sensor and a third sensing value of the third sensor, and to calculate a second compensation value based on an average value of a second sensing value of the second sensor and a fourth sensing value of the fourth sensor, wherein the first sensing value of the first sensor and the third sensing value of the third sensor have a phase difference of 180°, and the second sensing value of the second sensor and the fourth sensing value of the fourth sensor have a phase difference of 180°. 8. The apparatus for sensing a rotating body of claim 7 , wherein the first patterns and the second patterns have a size and a separation distance, corresponding to a reference angle. 9. The apparatus for sensing a rotating body of claim 8 , wherein the first patterns and the second patterns are disposed to have a difference in angles corresponding to half of the reference angle. 10. The apparatus for sensing a rotating body of claim 9 , wherein the first sensor, the second sensor, the third sensor, and the fourth sensor have a size corresponding to a difference in angles corresponding to half of the reference angle. 11. The apparatus for sensing a rotating body of claim 7 , wherein the first pattern portion comprises two first patterns having a size and a separation distance between the two first patterns corresponding to 90°, and the second pattern portion comprises two second patterns having a size and a separation distance between the two second patterns corresponding to 90°. 12. The apparatus for sensing a rotating body of claim 11 , wherein the first sensor and the third sensor are disposed to have a difference in angles of 90°, and the second sensor and the fourth sensor are disposed to have a difference in angles of 90°. 13. The apparatus for sensing a rotating body of claim 7 , wherein the first pattern portion comprises three first patterns having a size and a separation distance between each of the three first patterns corresponding to 60°, and the second pattern portion comprises three second patterns having a size and a separation distance between each of the three second patterns corresponding to 60°. 14. The apparatus for sensing a rotating body of claim 13 , wherein the first sensor and the third sensor are disposed to have a difference in angles of 60°, and the second sensor and the fourth sensor are disposed to have a difference in angles of 60°. 15. The apparatus for sensing a rotating body of claim 7 , wherein the rotation information calculator is further configured to calculate a first compensation sensing value, by subtracting the first compensation value from the first sensing value of the first sensor or the third sensing value of the third sensor, and to calculate a second compensation sensing value, by subtracting the second compensation value from the second sensing value of the second sensor or the fourth sensing value of the fourth sensor. 16. The apparatus for sensing a rotating body of claim 15 , wherein the rotation information calculator is further configured to calculate rotation information comprising any one or any combination of a rotation direction, a rotation angle, and an angular velocity from the first compensation sensing value and the second compensation sensing value.
influencing characteristics of pulses or pulse trains; generating pulses or pulse trains · CPC title
by influencing the self-induction of one or more coils (G01D5/22 takes precedence) · CPC title
by a movable ferromagnetic element, e.g. a core (G01D5/2033 takes precedence) · CPC title
using other sensors · CPC title
for measuring angles or tapers; for testing the alignment of axes · CPC title
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