Sensor arrangement for the contactless sensing of angles of rotation on a rotating part
10330498 ยท 2019-06-25
Assignee
Inventors
Cpc classification
G01R27/267
PHYSICS
International classification
Abstract
In one embodiment, a sensor arrangement for the contactless sensing of angles of rotation on a rotating part includes a disk-shaped target, a coil arrangement, and an evaluation and control unit. The disc-shaped target is coupled to the rotating part and includes at least two metal surfaces that influence the inductances in the flat detection coils due to eddy current effects as a function of the degree of overlap. The disc-shaped target can generate at least one piece of information for ascertaining the instantaneous angle of rotation of the rotating part, in connection with the coil arrangement. The coil arrangement has three flat detection coils uniformly distributed on the circumference of a circle. The evaluation and control unit can generate essentially sinusoidal evaluation signals which represent the changes in inductance of the detection coils and can evaluate them for calculating the angle of rotation.
Claims
1. A sensor arrangement for the contactless sensing of angles of rotation on a rotating part, the sensor arrangement comprising: a disk-shaped target coupled to the rotating part, the disk-shaped target having at least one metal surface and configured to generate at least one piece of information for ascertaining an instantaneous angle of rotation of the rotating part, in connection with a coil arrangement; the coil arrangement having at least one flat detection coil; and an evaluation and control unit operable to generate sinusoidal evaluation signals, the signals representing the changes in inductance of the at least one flat detection coil and further operable to evaluate the signals in order to calculate the angle of rotation, wherein the coil arrangement includes three flat detection coils uniformly distributed on the circumference of a circle, and wherein the disk-shaped target includes at least two metal surfaces configured to influence the inductances in the flat detection coils due to eddy current effects, as a function of a degree of overlap.
2. The sensor arrangement as claimed in claim 1, wherein each of the flat detection coils has two coil sections having an opposite winding sense, the coil sections being arranged opposite one another on the circumference of the circle.
3. The sensor arrangement as claimed in claim 2, wherein the opposite winding sense of the each of the flat detection coils are configured to provide EMC characteristics with respect to emission and coupling-in of interference signals.
4. The sensor arrangement as claimed in claim 2, wherein the two coil sections are further arranged in a distributed manner over the circumference of the circular coil arrangement so that lateral positional tolerances are compensated for.
5. The sensor arrangement as claimed in claim 2, wherein the winding sense of the two coil sections is arranged opposite to one another so that magnetic field at a distance of approximately three coil diameters is minimum and a coupling-in of interference signals are compensated for.
6. The sensor arrangement as claimed in claim 1, wherein the target includes two metal surfaces arranged opposite one another on the circumference of the circle, each of the metal surfaces having an opening angle with a value in the range of 100 to 120.
7. The sensor arrangement as claimed in claim 1, wherein the metal surfaces are configured as at least one of (i) uniform circle segments and (ii) annular segments having a predefined opening angle.
8. The sensor arrangement as claimed in claim 7, wherein the opening angle of each of the metal surfaces has a value in the range of 50 to 120.
9. The sensor arrangement as claimed in claim 1, wherein at least one of (i) the flat detection coils and (ii) the flat coil sections are configured as at least one of (i) uniform circle segments and (ii) annular segments having a predefined opening angle.
10. The sensor arrangement as claimed in claim 9, wherein the opening angle of each of the flat detection coils has a value in the range of 100 to 120.
11. The sensor arrangement as claimed in claim 9, wherein the opening angle of each of the flat coil sections has a value in the range of 50 to 60.
12. The sensor arrangement as claimed in claim 9, wherein a spacing between two conducting path sections of each of the flat detection coils or each of the flat coil sections is configured to be minimum, the conducting path sections extending in a circular arc shape and wherein a spacing between two radially extending conducting path sections of each of the flat detection coils or each of the flat coil sections is configured such that the radially extending conducting path sections are distributed to be uniform over the available surface of each of the flat detection coils or each of the flat coil sections.
13. The sensor arrangement as claimed in claim 12, wherein the spacing between the two conducting path sections of each of the flat detection coils or each of the flat coil sections and the spacing between the two radially extending conducting path sections of each of the flat detection coils or each of the flat coil sections are further configured to provide a high inductance for the at least one flat detection coil or flat coil sections.
14. The sensor arrangement as claimed in claim 1, wherein the target includes four metal surfaces uniformly distributed on the circumference of the circle, each of the metal surfaces having an opening angle with a value in the range of 50 to 60.
15. The sensor arrangement as claimed in claim 1, wherein the evaluation and control unit are further configured to generate the sinusoidal evaluation signals which are three phase-shifted.
16. The sensor arrangement as claimed in claim 15, wherein the evaluation and control unit are further configured to evaluate the sinusoidal evaluation signals in order to calculate the angle of rotation in an unambiguous range of 180.
17. A sensor arrangement for the contactless sensing of angles of rotation on a rotating part, the sensor arrangement comprising: a disk-shaped target coupled to the rotating part, the disk-shaped target having at least one metal surface and configured to generate at least one piece of information for ascertaining an instantaneous angle of rotation of the rotating part, in connection with a coil arrangement; the coil arrangement having at least one flat detection coil; and an evaluation and control unit operable to generate sinusoidal evaluation signals, the signals representing the changes in inductance of the at least one flat detection coil and further operable to evaluate the signals in order to calculate the angle of rotation, wherein the coil arrangement includes three flat detection coils uniformly distributed on the circumference of a circle, wherein the disk-shaped target includes at least two metal surfaces configured to influence the inductances in the flat detection coils due to eddy current effects, as a function of a degree of overlap, wherein a spacing between two conducting path sections of each of the flat detection coils or each of the flat coil sections is configured to be minimum, the conducting path sections extending in a circular arc shape, and wherein a spacing between two radially extending conducting path sections of each of the flat detection coils or each of the flat coil sections is configured such that the radially extending conducting path sections are distributed to be uniform over the available surface of each of the flat detection coils or each of the flat coil sections.
18. A sensor arrangement for the contactless sensing of angles of rotation on a rotating part, the sensor arrangement comprising: a disk-shaped target coupled to the rotating part, the disk-shaped target having at least one metal surface and configured to generate at least one piece of information for ascertaining an instantaneous angle of rotation of the rotating part, in connection with a coil arrangement; the coil arrangement having at least one flat detection coil; and an evaluation and control unit operable to generate sinusoidal evaluation signals, the signals representing the changes in inductance of the at least one flat detection coil and further operable to evaluate the signals in order to calculate the angle of rotation, wherein the coil arrangement includes three flat detection coils uniformly distributed on the circumference of a circle, wherein the disc-shaped target includes at least two metal surfaces configured to influence the inductances in the flat detection coils due to eddy current effects, as a function of a degree of overlap, wherein at least one of (i) the flat detection coils and (ii) the flat coil sections are configured as at least one of (i) uniform circle segments and (ii) annular segments having a predefined opening angle and the opening angle of each of the flat detection coils has a value in the range of 100 to 120, and wherein the target includes two metal surfaces arranged opposite one another on the circumference of the circle, each of the metal surfaces having an opening angle with a value in the range of 100 to 120.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION
(9) As is apparent from
(10) As is furthermore apparent from
(11) As is furthermore apparent from
(12) As is furthermore apparent from
(13)
(14) Here, r.sub.a denotes an outer radius, r.sub.i denotes an inner radius of the corresponding detection coil 42, 44, 46, r.sub.m denotes a radial expansion of a free surface in the center of the corresponding coil 42, 44, 46, and B denotes the conducting path width. Both the minimum conducting path width B and the minimum spacing d.sub.K between two circular arc-shaped conducting path sections L.sub.B are, for example, 125 m. The values for the remaining variables are, for example, r.sub.a=8.35 mm, r.sub.i=4 mm, and r.sub.m=0.75 mm. Using the above formula, a winding count of N=7.7 results for the depicted exemplary embodiment.
(15) The spacing d.sub.R of the radially extending conducting path sections L.sub.R is chosen in such a way that the radially extending conducting path sections L.sub.R are distributed as uniformly as possible over the entire available surface of the corresponding detection coil 42, 44, 46. The suitable conducting path spacing d.sub.R may be approximately calculated using equation (2).
(16)
(17) In the depicted first exemplary embodiment, the spacing d.sub.R is, for example, 480 m. A length X representing the perpendicular spacing between the center of the coil and the outermost radial conducting path sections L.sub.R may be determined using equation (3).
(18)
(19) Here, denotes the angle formed by the radially extending conducting path sections L.sub.R of the left and right coil halves; denotes the opening angle of the circular conducting path sections L.sub.R. In the depicted first exemplary embodiment of the coil arrangement 40, =120 and =100.
(20) As is apparent from the associated characteristic curve diagram according to
(21) As is furthermore apparent from
(22) As is apparent in particular from
(23) As is furthermore apparent from
(24) It is possible to measure the inductance of the six coil sections 42.1A and 42.2A, 44.1A and 44.2A, and 46.1A and 46.2A separately, and to carry out the correction corresponding to the following specification, where L.sub.m represents the calculated average value of the inductance of the coil section, which results from the measured inductances of the coil sections 42.1A, 42.2A, 44.1A, 44.2A, 46.1A, 46.2A of the respective detection coil 42A, 44A, 46A and which may be determined according to equation (4). Here, L1 and L2 each represent the measured inductance of the corresponding coil sections 42.1A, 42.2A, 44.1A, 44.2A, 46.1A, 46.2A.
L.sub.m=(L1+L2)/2(4)
(25) The calculation may take place in the evaluation and control unit 10. In the depicted second exemplary embodiment, the two coil sections 42.1A, 42.2A, 44.1A, 44.2A, 46.1A, 46.2A of the detection coils 42A, 44A, 46A are electrically connected in series. Since the coupling factors between the coil sections 42.1A, 42.2A, 44.1A, 44.2A, 46.1A, 46.2A are relatively small, with k<0.02, the inductances are additive. The formation of the average thus takes place in a virtually analog manner, without computing effort. In addition, the number of connections between the coil arrangement 40A and the evaluation and control unit 10 is reduced. To reduce the susceptibility to interference and to reduce the field emissions, each of the coil sections 42.1A, 42.2A, 44.1A, 44.2A, 46.1A, 46.2A is wound in the opposite sense, as already indicated above. As a result, the far-field magnetic field strength is reduced. Assuming a homogeneous interference field, equal voltages having a different sign in each case are induced in the two coil sections 42.1A, 42.2A, 44.1A, 44.2A, 46.1A, 46.2A. Due to the series connection, the two voltages ideally offset each other at zero.
(26) As is furthermore apparent from
(27) Similarly to the first exemplary embodiment, the spacing d.sub.R of the radially extending conducting path sections L.sub.R is chosen in such a way that the radial radially extending conducting path sections L.sub.R are distributed as uniformly as possible over the entire available surface of the corresponding coil section 42.1A, 42.2A, 44.1A, 44.2A, 46.1A, 46.2A. The suitable conducting path spacing d.sub.R may also be approximately calculated using equation (2). In the depicted second exemplary embodiment, the spacing d.sub.R is, for example, 230 m. In addition, in the depicted second exemplary embodiment of the coil arrangement 40A, =60 and =50.
(28) As is apparent from the associated characteristic curve diagram according to