IP Library Granted Patent US 11,893,175
Granted Patent B2
US 11,893,175 · App. 17/931,810 · Granted Feb 6, 2024

Providing a driven shield during capacitance measurement

Inventor: Anders Vinje (Trondheim, NO)
Assignee: Microchip Technology Incorporated
G06F3/0412G06F3/044G06F3/0418G06F3/0446G06F3/04166G06F3/04186G06F3/041662G06F2203/04107
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Quick Facts
Patent No.
US 11,893,175
App. No.
17/931,810
Granted
Feb 6, 2024
Kind
B2
Abstract

One or more examples of the present disclosure relate generally to systems and methods for canceling mutual capacitive effects in a capacitance measurement. Some examples relate to providing a driven shield during capacitance measurement. Some examples relate to providing such a driven shield using rail-to-rail voltage.

Claims (30)

1. A method of providing a driven shield, the method comprising:

taking a capacitance measurement at a sensed line during a measurement phase of a measurement acquisition cycle, the measurement phase including a positive pre-charge measurement phase and a negative pre-charge measurement phase;

applying a voltage to at least one non-sensed line during the measurement phase of the measurement acquisition cycle;

holding the voltage at a first voltage rail during one of the positive pre-charge measurement phase and the negative pre-charge measurement phase; and

varying the voltage, in a generally increasing or decreasing manner, from the first voltage rail to a second voltage rail during the other one of the positive pre-charge measurement phase and the negative pre-charge measurement phase.

2. The method of claim 1 , wherein varying the voltage, in a generally increasing or decreasing manner, from the first voltage rail to the second voltage rail during the other one of the positive pre-charge measurement phase and the negative pre-charge measurement phase comprises:

varying the voltage, in a generally increasing or decreasing manner, from the first voltage rail to the second voltage rail during an integration and measurement phase of the other one of the positive pre-charge measurement phase and the negative pre-charge measurement phase.

3. The method of claim 2 , comprising:

starting varying the voltage from the first voltage rail after a start of the integration and measurement phase; and

ending varying the voltage to the second voltage rail before an end of the integration and measurement phase.

4. The method of claim 1 , wherein the varying the voltage comprises asserting a second voltage rail subsequent to an asserted first voltage rail.

5. The method of claim 2 , wherein at least one of the first voltage rail and the second voltage rail is equal to ground, and at least one of the first voltage rail and the second voltage rail is equal to a supply voltage.

6. The method of claim 1 , wherein a total voltage change at the sensed line during the measurement acquisition cycle is substantially the same as a total voltage change at the at least one non-sensed line during the measurement acquisition cycle.

7. The method of claim 1 , wherein the taking a capacitance measurement at the sensed line during the measurement phase of the measurement acquisition cycle comprises:

taking a self-capacitance measurement at the sensed line during the measurement phase of the measurement acquisition cycle comprises.

8. An apparatus, comprising:

a measurement circuit to take self-capacitance measurements of a sensed line during at least two measurement phases of a measurement acquisition cycle, the at least two measurement phases including a positive pre-charge measurement phase and a negative pre-charge measurement phase; and

a driven shield circuit to generate a shield voltage at a non-sensed line during the at least two measurement phases of the measurement acquisition cycle, wherein to generate the shield voltage, the driven shield circuit to:

hold the shield voltage at a first voltage rail during one of the positive pre-charge measurement phase or the negative pre-charge measurement phase; and

change the shield voltage, in an increasing or a decreasing manner, from the first voltage rail to a second voltage rail during the other one of the positive pre-charge measurement phase or the negative pre-charge measurement phase.

9. The apparatus of claim 8 , wherein the driven shield circuit to vary the shield voltage in accordance with one of a rising edge of a pre-charge cycle or a falling edge of the pre-charge cycle.

10. The apparatus of claim 8 , wherein one or more of the positive pre-charge measurement phase or the negative pre-charge measurement phase includes a pre-charge phase, a charge redistribution phase, and an integration and measurement phase.

11. The apparatus of claim 8 , wherein the driven shield circuit to change the shield voltage having a polarity that is different than a polarity of a sensor voltage change during the other one of the positive pre-charge measurement phase or the negative pre-charge measurement phase.

12. The apparatus of claim 8 , wherein the measurement circuit to cause a sensor voltage to change from the first voltage rail to the second voltage rail, or vice-versa, during the measurement acquisition cycle.

13. A system, comprising:

a touch sensor;

a measurement circuit to take self-capacitance measurements of a sensed line of the touch sensor during at least two measurement phases of a measurement acquisition cycle, the at least two measurement phases including a positive pre-charge measurement phase and a negative pre-charge measurement phase; and

a driven shield circuit to generate a shield voltage at a non-sensed line of the touch sensor during the at least two measurement phases of the measurement acquisition cycle, wherein to generate the shield voltage, the driven shield circuit to:

hold the shield voltage at a first voltage rail during one of the positive pre-charge measurement phase or the negative pre-charge measurement phase; and

change the shield voltage, in an increasing or a decreasing manner, from the first voltage rail to a second voltage rail during the other one of the positive pre-charge measurement phase or the negative pre-charge measurement phase.

Continuity (4)
Division 15997518 · Jun 4, 2018
Continuation PCTUS2018033511 · May 18, 2018
Provisional Application 62508848 · May 19, 2017
Related Publication 20230010436A1 · Jan 12, 2023