The present invention relates to a magneto-resistive or magnetostrictive differential sensor system in which a pair of resistance elements are provided which change resistance upon exposure to a changing magnetic field.
Background
Sensor elements which operate on the basis of magnetic influence on elements which change their resistance upon change of a magnetic field to which they are exposed are known--see, for example, the referenced textbook, Siemens Data Book, Vol. 1, chapter on "Sensors", particularly pages 60-69. Sensors of this type have two magnetic field resistors which are serially connected to a source of direct current. The sensor voltage is tapped off at the junction of the two resistors.
The Invention
It is an object to provide a sensor system which has a higher output voltage than heretofore available.
Briefly, the common junction of the magnetically responsive resistance elements is connected to a reference for example a ground or chassis point. A current supply means is connected to the respective free terminals of the pair of resistance elements to supply a current thereto which, at any temperature, is constant. The output sensing voltage is obtained by coupling the output to the free terminals of the resistance elements.
The sensor system in accordance with the present invention has the advantage with respect to prior art sensors that, with otherwise all conditions being identical, the sensor output voltage is double that previously obtained. This permits use of the sensor elements in environments which have a wider air gap than previously possible. The sensor system in accordance with the present invention, additionally, is essentially immune to noise and disturbance signals which may be coupled to the sensor system by the supply lines thereto, since such noise or disturbance signals, as far as the sensor element output voltage is concerned, effectively cancel each other. Thus, the sensor system is more reliable and the output voltage requires less processing.
Connecting the center of the pair of sensor resistors to reference potential permits connecting this center tap to a housing which, additionally, is connected to ground or chassis. Thus, a connector line in the supply cable can be saved. Any disturbance which might be coupled to the sensor elements due to erroneous reference voltage, coupled to the sensor elements by ground or chassis currents is eliminated by the differential evaluation of the output from the ungrounded sensor element terminals.
Drawings
FIG. 1 is a general schematic and partly perspective view of the construction of a differential field plate sensor system;
FIG. 2 is the equivalent circuit diagram of the sensor system, connected to current sources; and
FIG. 3 is a diagram similar to FIG. 2, in which disturbance voltages are additionally indicated and used in connection with the explanation of the invention and how disturbance effects are eliminated.
Detailed Description
FIG. 1 shows the principal arrangement of a differential sensor system. A gear-like rotor 1 is magnetically coupled to a stator. The stator has a permanent magnet 2, a substrate 3, for example of ferrite, and magnetic field plate resistors 4a, 4b thereon forming the sensor elements. A magnetic return yoke 5, for example of soft iron, is provided.
Basic Operation
Upon rotation of the rotor, the flux of the magnetic field from the permanent magnet through the resistors 4a, 4b will change, so that the resistor elements 4a, 4b will change their resistance values in accordance with change of flux.
The electrical equivalent circuit and connection of the resistors 4a, 4b is shown in FIG. 2.
The resistor pair 4a, 4b are connected to a common junction J which, in turn, is connected to ground or chassis or, in other words, to a reference voltage point. The free terminals of the resistor pair 4a, 4b are connected to a double current source 20, which provides a constant current I.sub.o to the resistor pair 4a, 4b. The current is constant for a constant temperature, changing in value only, as a function of temperature-dependent resistance changes of the resistors 4a, 4b, and such other components as are connected to the circuit in accordance with well known and standard temperature compensation technology. The output voltage U.sub.A is taken across the free terminals 10a, 10b of the resistor pair 4a, 4b. The output voltage will vary, with a frequency representative of the speed of the rotor, and proportional thereto.
A high resistance voltage divider, built of two equal resistors 21a, 21b is also connected across the terminals 10a, 10b.
The voltage U.sub.A * is tapped off between the junction J' of the resistor pair 21a, 21b forming a voltage divider; the voltage U.sub.A * could also be picked off the junction J. This voltage is connected to a comparator 22, to be compared therein with a constant reference voltage U.sub.o. Deviation of the voltage U.sub.A * from the voltage U.sub.o is connected to the constant current source 20 as a control signal to control the level or value of the current I.sub.o by controlling the current source 20 in accordance with well kown current control technology. The voltage U.sub.o is the maximum permissible average supply voltage of the field plates 4a, 4b at which, within their operating range, the current through the field plate resistors 4a, 4b will not thermally overload the resistors 4a, 4b. Control of the current I.sub.o, with respect to temperature, is necessary in order to compensate the influence on resistance due to temperature variations. Control is so effected that, regardless of temperatures, and in quiescent condition, each one of the field plates will have the voltage U.sub.o thereacross. Upon drop in resistance, the current is then suitably raised. The output voltage then will be in accordance with the relationship: ##EQU1## wherein R is the quiescent resistance of the field plates 4a, 4b, respectively, and .DELTA.R is the change in resistance upon change of magnetic field as the rotor 1 rotates, with the teeth or gaps, respectively, passing over the field plates.
FIG. 3 illustrates, schematically, how disturbance voltages are eliminated. The sensor 30, which can be identical to the sensor shown in FIG. 1, is connected over supply lines 31 with the current sources 32a, 32b, which correspond to the current source 20 of FIG. 2. Additionally, disturbance and noise voltage sources U.sub.St1 and U.sub.St2 are shown, schematically indicating the influence of noise voltages on the respective connection lines. The supply lines 31, as well as the chassis or ground line 33, may have disturbance voltages, schematically shown by the sources U.sub.St1 and U.sub.St2 applied thereto. Since there disturbance voltages are coupled to the sensor in the form of similar in-phase signals, they are eliminated from the sensor output voltage across the terminals 10a, 10b by cancelling each other.