Claims
- 1. An inductive position sensor for detecting the position of an object, comprising:
- a bobbin;
- a movable target element coupled to the object, the target being mounted for movement along a longitudinal axis of the bobbin;
- a plurality of serially connected coils, C, wound on the bobbin, each of said coils having N.sub.i turns selected such that the plurality of coils have a total inductance that varies according to a desired inductance function, L(x), as the position of the target element is varied along the longitudinal axis of the bobbin, x being the position of the target element along said axis, wherein the number of turns, N.sub.i, in each coil being equal to the number defined by the process which comprises:
- determining a vector potential, A, and a current density, J, within the sensor due to a known current passing through the coils of the position sensor;
- completing a set of equations having the form: ##EQU12## wherein each equation relates a point on the desired inductance function to the number of turns, N.sub.i, in each coil and the energy stored in the position sensor at a target element position x; and
- optimizing the set of equations to determine the number of turns, N.sub.i, that each coil should contain such that the total inductance of the position sensor varies according to the desired inductance function.
- 2. The inductive position sensor of claim 1, where the term 1/ .sub.ij is determined by the formula: ##EQU13## where A.sub.i is the vector potential in the position sensor due to a current flowing in i.sup.th coil and J.sub.j is the current density the position sensor due to a current flowing within the j.sup.th coil.
- 3. The inductive position sensor of claim 2, wherein the step of determining the vector potential, A, and the current density, J, is performed on a computer using a finite element analysis program.
- 4. An inductive position sensor for detecting the position of an object, comprising:
- a bobbin;
- a movable target element coupled to the object, the target being mounted for movement along a longitudinal axis of the bobbin;
- a plurality of serially connected coils, C, wound on the bobbin, each coil having N.sub.i turns, such that the plurality of coils have a total inductance that varies according to a desired inductance function, L(x), as the position of the target element is varied along the longitudinal axis of the bobbin, x being the position of the target element along said axis, wherein the number of turns, N.sub.i, in each coil being equal to the number defined by the process which comprises:
- applying a known current to each coil of the plurality of coils sequentially;
- measuring an induced voltage in the coil in which the current is applied;
- measuring an induced voltage in each of the remaining coils in the sensor;
- completing a set of equations having the form: ##EQU14## wherein each equation relates a point on the desired inductance function to the number of turns, N.sub.i, in each coil and the energy stored in the position sensor at a target element position x; and
- optimizing the set of equations to determine the number of turns, N.sub.i, that each coil should contain such that the total inductance of the position sensor varies according to the desired inductance function.
- 5. The inductive position sensor of claim 4, wherein the term 1/ .sub.ij is determined by the formula: ##EQU15## where v.sub.ij is the voltage induced in the j.sup.th coil due to a current flowing in the i.sup.th coil, N.sub.i and N.sub.j are the number of turns in the i.sup.th and j.sup.th coils, respectively, i is the magnitude of the current flowing in the i.sup.th coil and .omega. is the frequency of the known current applied.
- 6. A position sensor for detecting the position of an object, comprising:
- a non-magnetic bobbin;
- a movable target element coupled to the object, the target being mounted for movement along a longitudinal axis of the bobbin;
- a plurality of serially connected coils, C, wound on the non-magnetic bobbin each of which has N.sub.i turns, such that the plurality of coils have a total resistance that varies according to a desired resistance function R(x), as the position of a target element is varied along the longitudinal axis of the bobbin, x being the position of the target element along said axis, wherein the number of turns, N.sub.i, in each coil being defined by the process which comprises:
- determining a vector potential, A, and a current density, J, within the sensor due to a known current passing through the coils of the position sensor;
- completing a set of equations having the form: ##EQU16## wherein each equation relates a point on the desired resistance function to a DC resistance of each coil, the conductance of each coil and the number of turns, N.sub.i, in each coil, J.sub.i is the current density in the position sensor due to a current flowing in coil i; and
- optimizing the set of equations to determine the number of turns, N.sub.i, that each coil should contain such that the total resistance of the position sensor varies according to the desired resistance function.
- 7. A position sensor for detecting the position of an object, comprising:
- a non-magnetic bobbin;
- a target element coupled to the object, the target being adapted to move along a longitudinal axis of the bobbin;
- a plurality of serially connected coils, C, wound on the non-magnetic bobbin the coils having N.sub.i turns, such that the position sensor has a total impedance that varies according to a desired impedance function, Z(x), as the position of the target element is varied along the longitudinal axis of the bobbin, x being the position of the target element along said axis, wherein the number of turns, N.sub.i, each coil contains being equal to the number defined by the process which comprises:
- determining a vector potential, A, and a current density, J, within the sensor due to a known current passing through the coils of the position sensor;
- completing a set of equations having the form: ##EQU17## wherein each equation relates a point on the desired impedance function to a DC resistance of each coil, the conductance of each coil and the energy stored in the position sensor; and optimizing the set of equations to determine the number of turns, N.sub.i, that each coil should contain such that the total impedance of the position sensor varies according to the desired impedance function.
Parent Case Info
This application is a continuation application based on prior application Ser. No. 07/892,164, filed Jun. 2, 1992 now abandoned.
US Referenced Citations (5)
Continuations (1)
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Number |
Date |
Country |
Parent |
892164 |
Jun 1992 |
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