IP Library › Granted Patent US 10,288,658
Granted Patent B2
US 10,288,658 · App. 15/886,173 · Granted May 14, 2019

Enhancing sensitivity and robustness of mechanical rotation and position detection with capacitive sensors

Inventor: Peter Spevak (Moosburg a.d. Isar, DE)
Assignee: Texas Instruments Incorporated
G01R27/2605G01D5/2405G01D5/2412G01D5/2415G01N27/228G01N27/24G06F3/0362G06F3/0383G01R31/028G01R31/2829G06F3/0416G09G2320/029
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Quick Facts
Patent No.
US 10,288,658
App. No.
15/886,173
Granted
May 14, 2019
Kind
B2
Abstract

Described example user interface control apparatus includes a first structure, with a first side, conductive capacitor plate structures spaced along a first direction on the first side, a movable second structure with an auxiliary conductive structure, and an interface circuit to provide excitation signals to, and receive sense signals from, the conductive capacitor plate structures to perform a mutual capacitance test and a self-capacitance test of individual ones of the conductive capacitor plate structures to determine a position of the second structure or a user's finger relative to the first structure along the first direction.

Claims (57)

1. A control apparatus for a user interface, comprising:

a first structure, including a plurality of conductive capacitor plate structures spaced from one another along a first direction on a first side of the first structure;

a second structure movable relative to the first structure along the first direction, the second structure including a second side facing the first side of the first structure, and an auxiliary conductive structure positioned on the second side of the second structure to move along the first direction to selectively modify a capacitance associated with a given one of the conductive capacitor plate structures when the auxiliary conductive structure is positioned proximate the given one of the capacitor plate structures; and

an interface circuit to provide excitation signals to the conductive capacitor plate structures and receive sense signals from the conductive capacitor plate structures to perform a mutual capacitance test of groups of the conductive capacitor plate structures and to perform a self-capacitance test of individual ones of the conductive capacitor plate structures to provide a position signal that represents a position of the second structure or a user's finger relative to a position of the first structure along the first direction according to signals from the conductive capacitor plate structures during one of the mutual capacitance test and the self-capacitance test.

2. The control apparatus of claim 1 , wherein:

the conductive capacitor plate structures are spaced from one another by a first distance along the first direction;

the first structure further includes:

a second side opposite to the first side; and

a further conductive structure on the second side, the further conductive structure being spaced from the conductive capacitor plate structures by a second distance along a second direction; and

the auxiliary conductive structure is spaced from the conductive capacitor plate structures by a third distance along the second direction.

3. The control apparatus of claim 2 , wherein:

the second distance is greater than the first distance; and

the first distance is greater than the third distance.

4. The control apparatus of claim 3 , wherein the interface circuit is configured to provide an excitation signal to the given one of the conductive capacitor plate structures and to receive a sense signal from a neighboring conductive capacitor plate structure to perform the mutual capacitance test of the groups of the conductive capacitor plate structures.

5. The control apparatus of claim 4 , wherein the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive a sense signal from the given one of the conductive capacitor plate structures, and control a voltage of the neighboring conductive capacitor plate structure to perform the self-capacitance test of the given one of the conductive capacitor plate structures.

6. The control apparatus of claim 5 , wherein:

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and set the voltage of the neighboring conductive capacitor plate structure to a first voltage value to perform a first self-capacitance test of the given one of the conductive capacitor plate structures; and

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and allow the neighboring conductive capacitor plate structure to float to perform a second self-capacitance test of the given one of the conductive capacitor plate structures.

7. The control apparatus of claim 5 , wherein:

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and set the voltage of the neighboring conductive capacitor plate structure to a first voltage value to perform a first self-capacitance test of the given one of the conductive capacitor plate structures; and

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and set the voltage of the neighboring conductive capacitor plate structure to a second voltage value to perform a second self-capacitance test of the given one of the conductive capacitor plate structures.

8. The control apparatus of claim 1 , wherein the interface circuit is configured to provide an excitation signal to the given one of the conductive capacitor plate structures, receive a sense signal from the given one of the conductive capacitor plate structures, and control a voltage of a neighboring conductive capacitor plate structure to perform the self-capacitance test of the given one of the conductive capacitor plate structures.

9. The control apparatus of claim 8 , wherein:

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and set the voltage of the neighboring conductive capacitor plate structure to a first voltage value to perform a first self-capacitance test of the given one of the conductive capacitor plate structures; and

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and allow the neighboring conductive capacitor plate structure to float to perform a second self-capacitance test of the given one of the conductive capacitor plate structures.

10. The control apparatus of claim 8 , wherein:

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and set the voltage of the neighboring conductive capacitor plate structure to a first voltage value to perform a first self-capacitance test of the given one of the conductive capacitor plate structures; and

the interface circuit is configured to provide the excitation signal to the given one of the conductive capacitor plate structures, receive the sense signal from the given one of the conductive capacitor plate structures, and set the voltage of the neighboring conductive capacitor plate structure to a second voltage value to perform a second self-capacitance test of the given one of the conductive capacitor plate structures.

11. The control apparatus of claim 1 , wherein the interface circuit is configured to provide an excitation signal to the given one of the conductive capacitor plate structures and to receive a sense signal from a neighboring conductive capacitor plate structure to perform the mutual capacitance test of the groups of the conductive capacitor plate structures.

12. The control apparatus of claim 1 , wherein the first direction is circumferential relative to an axis.

13. The control apparatus of claim 1 , wherein the first direction is linear.

14. The control apparatus of claim 1 , further comprising:

an integer number N optical sources positioned on the first side of the first structure to selectively direct light away from the first side, N being greater than I;

an integer number N optical sensors positioned on the first side of the first structure to selectively sense light directed toward the first side of the first structure, individual optical sensors positioned proximate, the optical sources and optical sensors forming N optical device pairs spaced from one another along the first direction; and

a reflector positioned on the second side of the second structure to move along the first direction to selectively reflect light from one of the optical sources to the corresponding optical sensor of a given one of the optical device pairs when the reflector is positioned proximate the given one of the optical device pairs;

wherein the interface circuit is configured to provide the position signal according to signals from the optical sensors and signals from the conductive capacitor plate structures.

15. A control apparatus for a user interface, comprising:

a first structure, including a first side, a plurality of conductive capacitor plate structures spaced from one another by a first distance along a first direction on the first side, a second side

opposite to the first side, and a further conductive structure on the second side of the first structure, the further conductive structure being spaced from the plurality of conductive capacitor plate structures by a second distance along a second direction;

a second structure movable relative to the first structure along the first direction, the second structure including a second side facing the first side of the first structure, and an auxiliary conductive structure positioned on the second side of the second structure to move along the first direction to selectively modify a capacitance associated with a given one of the plurality of conductive capacitor plate structures when the auxiliary conductive structure is positioned proximate the given one of the plurality of capacitor plate structures, the auxiliary conductive structure being spaced from the plurality of conductive capacitor plate structures by a third distance along the second direction; and

an interface circuit to provide excitation signals to the plurality of conductive capacitor plate structures and receive sense signals from the plurality of conductive capacitor plate structures to provide a position signal that represents a position of the second structure or a user's finger relative to a position of the first structure along the first direction according to signals from the plurality of conductive capacitor plate structures during a capacitance test;

wherein the second distance is greater than the first distance, and the first distance is greater than the third distance.

16. The control apparatus of claim 15 , wherein the first direction is circumferential relative to an axis.

17. The control apparatus of claim 15 , wherein the first direction is linear.

18. The control apparatus of claim 15 , further comprising:

an integer number N optical sources positioned on the first side of the first structure to selectively direct light away from the first side, N being greater than I;

an integer number N optical sensors positioned on the first side of the first structure to selectively sense light directed toward the first side of the first structure, individual optical sensors positioned proximate a corresponding one of optical sources, the optical sources and optical sensors forming N optical device pairs spaced from one another along the first direction; and

a reflector positioned on the second side of the second structure to move along the first direction to selectively reflect light from one of the optical sources to the corresponding optical sensor of a given one of the optical device N pairs when the reflector is positioned proximate the given one of the N optical device pairs;

wherein the interface circuit is configured to provide the position signal according to signals from the optical sensors and signals from the plurality of conductive capacitor plate structures.

19. A method of detecting a relative position of a stationary first user interface structure and a user's finger or a second user interface structure movable relative to the stationary first user interface structure along a first direction, the stationary first user interface structure having a plurality of conductive capacitor plate structures spaced from one another along the first direction, the method comprising:

performing a mutual capacitance test for groups of the plurality of conductive capacitor plate structures, including providing an excitation signal to a given one of the plurality of conductive capacitor plate structures, receiving a sense signal from a neighboring conductive capacitor plate structure, and determining a mutual capacitance associated with the given one of the conductive capacitor plate structures according to the corresponding sense signal;

performing at least one self-capacitance test for individual ones of the plurality of conductive capacitor plate structures, including providing the excitation signal to the given one of the plurality of conductive capacitor plate structures, controlling a voltage of the neighboring conductive capacitor plate structure while providing the excitation signal to the given one of the plurality of conductive capacitor plate structures, receiving the sense signal from the given one of the plurality of conductive capacitor plate structures, and determining a self-capacitance associated with the given one of the plurality of conductive capacitor plate structures according to the corresponding sense signal; and

processing measured capacitances to identify the relative position of the stationary first user interface structure and the user's finger or the second user interface structure according to mutual capacitances and self-capacitances associated with the individual conductive capacitor plate structures.

20. The method of claim 19 , further comprising:

performing a first self-capacitance test for the individual ones of the plurality of conductive capacitor plate structures, including providing the excitation signal to the given one of the plurality of conductive capacitor plate structures, setting the voltage of the neighboring conductive capacitor plate structure to a first voltage value while providing the excitation signal to the given one of the plurality of conductive capacitor plate structures, receiving the sense signal from the given one of the plurality of conductive capacitor plate structures, and determining a first self-capacitance associated with the given one of the plurality of conductive capacitor plate structures according to the corresponding sense signal;

performing a second self-capacitance test for the individual ones of the plurality of conductive capacitor plate structures, including providing the excitation signal to the given one of the plurality of conductive capacitor plate structures, setting the voltage of the neighboring conductive capacitor plate structure to a second voltage value or allowing the neighboring conductive capacitor plate structure to float while providing the excitation signal to the given one of the plurality of conductive capacitor plate structures, receiving the sense signal from the given one of the plurality of conductive capacitor plate structures, and determining a second self-capacitance associated with the given one of the conductive capacitor plate structures according to the corresponding sense signal; and

processing measured capacitances to identify the relative position of the stationary first user interface structure and the user's finger or the second user interface structure according to mutual capacitances and the first and second self-capacitances associated with the individual of the plurality of conductive capacitor plate structures.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2018
From: SPEVAK, PETER
To: TEXAS INSTRUMENTS INCORPORATED
Reel/Frame 044799/0810 →
Continuity (2)
Provisional Application 62453575 · Feb 2, 2017
Related Publication 20180217190A1 · Aug 2, 2018
Cited By (1)
US 12,353,653