Claims
- 1. An integrated sensor device for detecting a distance between the sensor device and an object, the sensor device comprising:
a first capacitor plate for forming a first capacitance between the first capacitor plate and the object when positioned adjacent to the object; a second capacitor plate for forming a second capacitance between the second capacitor plate and the object when positioned adjacent to the object, the first and second capacitor plates being arranged in a substantially planar pattern in which a plurality of faces of the first capacitor plate are positioned adjacent to and facing a plurality of faces of the second capacitor plate; and an amplifier having an input and an output, the input being connected to one of the first and second capacitor plates and the output being connected to another one of the first and second capacitor plates to form a negative feedback branch that includes the first and second capacitances, whereby an output voltage is established at the amplifier output that is proportional to a distance between the first capacitor plate and the object.
- 2. The sensor device of claim 1, further comprising a layer of insulating material contacting outer surfaces of the first and second capacitor plates, such that the insulating material is positioned between the capacitor plates and the object.
- 3. The sensor device of claim 1, further comprising:
a grounding element surrounding the first and second capacitor plates in a plane, the grounding element being coupled to ground to provide a discharge path for electrostatic discharge caused by the object.
- 4. The sensor device of claim 1 wherein the first and second capacitor plates are arranged in an interdigitating pattern in which fingers of the first capacitor plate are interspersed with fingers of the second capacitor plate.
- 5. The sensor device of claim 4 wherein the first capacitor plate surrounds the second capacitor plate in a plane.
- 6. The sensor device of claim 1 wherein the first and second capacitor plates are arranged in a spiral pattern.
- 7. The sensor device of claim 1 wherein the first capacitor plate is C-shaped and has two ends that define a gap and the second capacitor plate includes an inner portion surrounded on at least three sides by the first capacitor plate, an outer portion positioned outside the first capacitor plate, and a connector portion connecting the inner portion with the outer portion.
- 8. The sensor device of claim 1 wherein the first capacitor plate includes two rectangular portions positioned in diagonally opposite sections of a rectangular sensor cell and a connector portion that connects the two rectangular portions and the second capacitor plate includes two rectangular portions positioned in diagonally opposite sections of the rectangular sensor cell and a connector portion that connects the two rectangular portions of the second capacitor plate and crosses the connector portion of the first capacitor plate.
- 9. A sensor device comprising:
an array of distance detecting cells for detecting a distance between an object and the sensor device, wherein the cells each comprise a capacitive distance sensor that includes a first capacitor plate positioned facing the object and thereby defining a capacitive element indicative of the distance being detected therebetween; and one or more grounding elements positioned between the cells of the array, each cell having one or more of the grounding elements positioned between the cell and one or more adjacent cells, each grounding element being coupled to ground to provide a discharge path for electrostatic discharge.
- 10. The sensor device of claim 9 wherein the one or more grounding elements includes a grounding element grid that includes grounding grid segments between each cell and its immediately adjacent cells.
- 11. The sensor device of claim 9 wherein each cell further includes a second capacitor plate and the first and second capacitor plates are arranged in an interdigitating pattern in which fingers of the first capacitor plate are interspersed with fingers of the second capacitor plate.
- 12. The sensor device of claim 11 wherein each cell further includes a second capacitor plate and the first capacitor plate surrounds the second capacitor plate in a plane.
- 13. The sensor device of claim 9 wherein each cell further includes a second capacitor plate and the first and second capacitor plates are arranged in a spiral pattern.
- 14. The sensor device of claim 9 wherein each cell further includes a second capacitor plate and the first capacitor plate is C-shaped and has two ends that define a gap and the second capacitor plate includes an inner portion surrounded on at least three sides by the first capacitor plate, an outer portion positioned outside the first capacitor plate, and a connector portion connecting the inner portion with the outer portion.
- 15. The sensor device of claim 9 wherein the first capacitor plate of each cell includes two rectangular portions positioned in diagonally opposite sections of the cell and a connector portion that connects the two rectangular portions and each cell further includes a second capacitor plate that includes two rectangular portions positioned in diagonally opposite sections of the rectangular sensor cell and a connector portion that connects the two rectangular portions of the second capacitor plate and crosses the connector portion of the first capacitor plate.
- 16. A method of making a capacitive distance sensor for detecting a distance between the sensor and an object, the sensor including one or more sensor cells each with first and second capacitor plates, the method comprising:
determining an expected range of sizes of the object the sensor will be used to detect; determining a total perimeter value for each of a plurality of capacitor patterns, each capacitor pattern including a different arrangement of the first and second capacitor plates, the total perimeter value being the sum of perimeter values for the first and second capacitor plates; selecting a capacitor pattern from among a plurality of capacitor patterns based on the expected size of the object and on the total perimeter values determined for the plurality of capacitor patterns, the selecting step including selecting whichever one of the plurality of capacitor patterns has the largest total perimeter value if the object the sensor will be used to detect is smaller than each of the one or more sensor cells; and forming the selected capacitor pattern in at least one of the one or more sensor cells.
Priority Claims (1)
Number |
Date |
Country |
Kind |
96830068.1 |
Feb 1996 |
EP |
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CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a division of U.S. patent application Ser. No. 09/614,093, entitled “Capacitive Distance Sensor,” filed Jul. 11, 2000, and allowed Oct. 26, 2001, which is a division of U.S. patent application Ser. No. 09/040,261, now issued as U.S. Pat. No. 6,114,862, which is a continuation-in-part of U.S. patent application Ser. No. 09/019,496 entitled “Capacitive Distance Sensor,” filed Feb. 5, 1998, now issued as U.S. Pat. No. 6,320,394, which is a continuation-in-part of U.S. Patent Application entitled “Capacitive Distance Sensor,” filed Feb. 13, 1997 and given Ser. No. 08/799,548, now abandoned, all assigned to STMicroelectronics.
Divisions (2)
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Number |
Date |
Country |
Parent |
09614093 |
Jul 2000 |
US |
Child |
10054182 |
Jan 2002 |
US |
Parent |
09040261 |
Mar 1998 |
US |
Child |
09614093 |
Jul 2000 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09019496 |
Feb 1998 |
US |
Child |
09040261 |
Mar 1998 |
US |
Parent |
08799548 |
Feb 1997 |
US |
Child |
09019496 |
Feb 1998 |
US |