Claims
- 1. A circuit for selectively charging and discharging a differential capacitive sensor having first and second capacitive sensors, the first capacitive sensor having a first sensor electrode and a first reference electrode and the second capacitive sensor having a second sensor electrode and a second reference electrode, the second reference electrode being connected to the first reference electrode, the circuit comprising:
- a first diode having a cathode for connection to a first time-varying voltage source and an anode connected to the first sensor electrode;
- a second diode having an anode for connection to the first time-varying voltage source and a cathode connected to the second sensor electrode;
- a third diode having a cathode for connection to a second time-varying voltage source having the same amplitude and phase the first time-varying voltage source and an anode connected to the second sensor electrode; and
- a fourth diode having an anode for connection to the second time-varying voltage source and a cathode connected to the first sensor electrode.
- 2. The circuit of claim 1, wherein the differential capacitive sensor includes first and second capacitive guards, the first guard having a first guard electrode for connection to the first time-varying voltage source and having a third reference electrode connected to the first and second reference electrodes, and the second guard having a second guard electrode for connection to the second time-varying voltage source and a fourth reference electrode connected to the first, second and third reference electrodes.
- 3. The circuit of claim 2, wherein the first, second, third and fourth reference electrodes form a single reference plate electrode.
- 4. The circuit of claim 1, further comprising means for measuring currents into the first and second time-varying voltage sources to determine a difference between the capacitances of the first and second capacitive sensors, the current into the first time-varying voltage source having a polarity and amplitude based on a difference between a current through the first diode and a current through the second diode, and the current into the second time-varying voltage source having a polarity and amplitude based on a difference between a current through the third diode and a current through the fourth diode.
- 5. The circuit of claim 4, wherein:
- the current into the first time-varying voltage source is positive and the current into the second time-varying voltage source is negative and has the same amplitude as the current into the first time-varying voltage source when the capacitance of the first sensor is greater than the capacitance of the second sensor;
- the current into the first time-varying voltage source is negative and the current into the second time-varying voltage source is positive and has the same amplitude as the current into the first time-varying voltage source when the capacitance of the first sensor is less than the capacitance of the second sensor; and
- the current into the first time-varying voltage source and the current into the second time-varying voltage source are both zero when the capacitance of the first sensor and the capacitance of the second sensor are equal.
- 6. The circuit of claim 4, wherein the means for measuring the current into the first and second time-varying voltage sources comprises:
- a first amplifier having an inverting input, a non-inverting input, and an output, the inverting input being electrically connected to the first time-varying voltage source and the non-inverting input being connected to electrical ground;
- a second amplifier having an inverting input, a non-inverting input, and an output, the inverting input being electrically connected to the second time-varying voltage source and the non-inverting input being connected to electrical ground; and
- a voltage summing circuit having a first input connected to the output of the first amplifier and a second input connected to the output of the second amplifier, and having an output for outputting a difference between a first voltage at the output of the first amplifier and a second voltage at the output of the second amplifier.
- 7. The circuit of claim 6, wherein the first and second amplifiers are current-to-voltage converting amplifiers.
- 8. The circuit of claim 6, including:
- a first resistor connected between the inverting input and the output of the first amplifier and a first capacitor connected between the inverting input of the first amplifier and electrical ground; and
- a second resistor connected between the inverting input and the output of the second amplifier and a second capacitor connected between the inverting input of the second amplifier and electrical ground.
- 9. A circuit for selectively charging and discharging a differential capacitive sensor having first and second capacitive sensors, the first capacitive sensor having a first sensor electrode and a first reference electrode and the second capacitive sensor having a second sensor electrode and a second reference electrode, the second reference electrode being connected to the first reference electrode, the circuit comprising:
- first means for providing a path from a first time-varying voltage source to charge the second capacitive sensor and for blocking a path to discharge the second capacitive sensor through the first time-varying voltage source;
- second means for providing a path from a second time-varying voltage source having the same amplitude and phase as the first time-varying voltage source to charge the first capacitive sensor and for blocking a path to discharge the first capacitive sensor through the second time-varying voltage source;
- third means for providing a path to discharge the first capacitive sensor through the first time-varying voltage source and for blocking a path from the first time-varying voltage source to charge the first capacitive sensor; and
- fourth means for providing a path to discharge the second capacitive sensor through the second time-varying voltage source and for blocking a path from the second time-varying voltage source to charge the second capacitive sensor.
- 10. The circuit of claim 9, wherein the differential capacitive sensor includes first and second capacitive guards for shielding the first and second sensor electrodes in substantially all directions except toward the first and second reference electrodes, respectively.
- 11. The circuit of claim 10, wherein the first guard has a first guard electrode for connection to the first time-varying voltage source and a third reference electrode connected to the first and second reference electrodes, and the second guard has a second guard electrode for connection to the second time-varying voltage source and a fourth reference electrode connected to the first, second and third reference electrodes.
- 12. The circuit of claim 11, wherein the first, second, third and fourth reference electrodes form a single reference plate electrode.
- 13. The circuit of claim 9, further comprising means for measuring currents into the first and second time-varying voltage sources to determine a difference between the capacitances of the first and second capacitive sensor, the current into the first time-varying voltage source having a polarity and amplitude based on a difference between a current through the third means and a current through the first means, and the current into the second time-varying voltage source having a polarity and amplitude based on a difference between a current through the fourth means and a current through the second means.
- 14. The circuit of claim 13, wherein:
- the current into the first time-varying voltage source is positive and the current into the second time-varying voltage source is negative and has the same amplitude as the current into the first time-varying voltage source when the capacitance of the first sensor is greater than the capacitance of the second sensor;
- the current into the first time-varying voltage source is negative and the current into the second time-varying voltage source is positive and has the same amplitude as the current into the first time-varying source when the capacitance of the first sensor is less than the capacitance of the second sensor; and
- the current into the first time-varying voltage source and the current into the second time-varying voltage source are both zero when the capacitance of the first sensor and the capacitance of the second sensor are equal.
- 15. The circuit of claim 13, wherein the means for measuring the current into the first and second time-varying voltage sources comprises:
- a first amplifier having an inverting input, a non-inverting input, and an output, the inverting input being electrically connected to the first time-varying voltage source and the non-inverting input being connected to electrical ground;
- a second amplifier having an inverting input, a non-inverting input, and an output, the inverting input being electrically connected to the second time-varying voltage source and the non-inverting input being connected to electrical ground; and
- a voltage summing circuit having a first input connected to the output of the first amplifier and a second input connected to the output of the second amplifier, and having an output for outputting a difference between a first voltage at the output of the first amplifier and a second voltage at the output of the second amplifier.
- 16. The circuit of claim 15, wherein the first and second amplifiers are current-to-voltage converting amplifiers.
- 17. The circuit of claim 15, including:
- a first resistor connected between the inverting input and the output of the first amplifier and a first capacitor connected between the inverting input of the first amplifier and electrical ground; and
- a second resistor connected between the inverting input and the output of the second amplifier and a second capacitor connected between the inverting input of the second amplifier and electrical ground.
- 18. A method of determining a difference between capacitances associated with first and second capacitive sensors, the method comprising:
- charging the second capacitive sensor with a first charging current from a first time-varying voltage source and charging the first capacitive sensor with a second charging current from a second time-varying voltage source having the same amplitude as the first time-varying voltage source while blocking discharge of the second capacitive sensor through the first time-varying voltage source and blocking discharge of the first capacitive sensor through the second time-varying voltage source;
- subsequently discharging the first capacitive sensor with a first discharge current into the first time-varying voltage source and discharging the second capacitive sensor with a second discharge current into the second time-varying voltage source while blocking charging of the first capacitive sensor from the first time-varying voltage source and blocking charging of the second capacitive sensor from the second time-varying voltage source; and
- measuring currents into the first and second time-varying voltage sources to determine the difference between the capacitances associated with the first and second capacitive sensors, the current into the first time-varying voltage source having a polarity and amplitude based on a difference between the first discharge current and the first charging current, and the current into the second time-varying voltage source having a polarity and amplitude based on a difference between the second discharge current and the second charging current.
- 19. The method of claim 18, wherein:
- the current into the first time-varying voltage source is positive and the current into the second time-varying voltage source is negative when the capacitance associated with the first sensor is greater than the capacitance associated with the second sensor;
- the current into the first time-varying voltage source is negative and the current into the second time-varying voltage source is positive when the capacitance associated with the first sensor is less than the capacitance associated with the second sensor; and
- the current into the first time-varying voltage source and the current into the second time-varying voltage source are equal when the capacitance associated with the first sensor and the capacitance associated with the second sensor are equal.
Parent Case Info
This is a division of application Ser. No. 08/436,171, filed May 9, 1995, now U.S. Pat. No. 5,650,730.
US Referenced Citations (11)
Foreign Referenced Citations (2)
| Number |
Date |
Country |
| 0289212A1 |
Nov 1988 |
EPX |
| 2115553 |
Sep 1983 |
GBX |
Divisions (1)
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Number |
Date |
Country |
| Parent |
436171 |
May 1995 |
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