IP Library Patent Application 14230315
Patent Application
App. No. 14/230,315

METHODS AND APPARATUS FOR CAPACITIVE FORCE SENSING ON KEYBOARD KEYS USING A COMPRESSIBLE DIELECTRIC

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Quick Facts
Patent No.
US None
App. No.
14/230,315
Abstract

An input device including a keyboard having a plurality of key assemblies, each of at least a subset of the key assemblies including a key cap having a top surface configured to be contacted by an input object, a key base disposed underneath the key cap and including a capacitive sensor, and a deformable dielectric disposed between the key cap and the key base. The deformable dielectric and the capacitive sensor have a first area of contact when the key cap is in a non-activated position, and a second area of contact greater than the first area during activation of the key cap.

Claims (35)

1 . An input device including a keyboard having a plurality of key assemblies, wherein each of at least a subset of the key assemblies comprises:

a key cap having a top surface configured to be contacted by an input object;

a key base disposed underneath the key cap and including a capacitive sensor;

a deformable dielectric disposed between the key cap and the key base; and

wherein the deformable dielectric and the capacitive sensor have a first area of contact when the key cap is in a non-activated position, and further wherein the deformable dielectric and the capacitive sensor have a second area of contact greater than the first area during activation of the key cap.

2 . The input device of claim 1 , wherein the deformable dielectric is disposed on one of: i) a non-touch portion of the key cap opposite the top surface; and i) the key base.

3 . The input device of claim 1 , wherein the key cap, key base, and deformable dielectric are configured to form an increasing area of contact between the deformable dielectric and the capacitive sensor in response to downward motion of the key cap.

4 . The input device of claim 3 , wherein the increasing area of contact in response to downward motion of the key cap is monotonic.

5 . The input device of claim 1 , wherein the first area of contact is non-zero.

6 . The input device of claim 1 , wherein the capacitive sensor is configured to detect a variable capacitance based on the deformable dielectric having a greater dielectric constant than air.

7 . The input device of claim 1 , wherein the deformable dielectric comprises a force sensitive material which changes at least one electrical property in response to applied force.

8 . The input device of claim 1 , further comprising a processing system communicatively coupled to the capacitive sensor, the processing system configured to:

determine a variable capacitance associated with the capacitive sensor;

determine a change in the variable capacitance in response to downward motion of the key cap; and

determine a state of the key cap based on the change in variable capacitance.

9 . The input device of claim 8 , wherein determining the variable resistance in response to downward motion of the key cap comprises determining a change in the variable capacitance in response to an increasing area of overlap between the deformable dielectric and the capacitive sensor.

10 . The input device of claim 8 , wherein the processing system is configured to determine a force applied to the key cap.

11 . The input device of claim 8 , wherein the state of the key cap comprises at least one of:

a binary state above or below a threshold position;

an analog position of the key cap below the threshold position; and

a level of force applied to the key cap.

12 . The input device of claim 1 , wherein the key base includes a planar translation effecting (PTE) mating feature including a ramp configured such that the key cap translates vertically and laterally in a planar manner relative to the PTE feature in response to the input object contact.

13 . The input device of claim 1 , wherein the key base includes a four bar linkage configured to translate the key cap vertically and laterally in a planar manner in response to the input object contact.

14 . The input device of claim 1 , wherein each of at least a subset of the key assemblies further comprises a first magnetic component and a second magnetic component configured to magnetically cooperate with the first magnetic component to return the key cap to a nominal position following a keystroke.

15 . The input device of claim 1 , wherein the deformable dielectric provides at least a partial restoring force to the key cap in response to user input on the key cap.

16 . The input device of claim 1 , wherein the capacitive sensor comprises a plurality of parallel conductors separated by a distance in the range of about 50 to about 150 micrometers.

17 . The input device of claim 16 , wherein the plurality of parallel conductors comprises an inter-digitated pattern.

18 . The input device of claim 1 , wherein the capacitive sensor comprises a transmitter electrode and a receiver electrode forming a transcapacitive coupling which varies with an increasing area of overlap between the deformable dielectric and the capacitive sensor in response to downward motion of the key cap.

19 . The input device of claim 1 , wherein the key cap, key base, and deformable dielectric are configured such that the capacitive sensor is substantially insensitive to proximity of a conductive input object.

20 . A processing system for use with a keyboard of the type including a plurality of key assemblies each comprising a key cap, a key base including a capacitive sensor disposed underneath the key cap, and a deformable dielectric disposed between the key cap and the capacitive sensor, the processing system communicatively coupled to each of the capacitive sensors and configured to determine a change in a variable capacitance of each capacitive sensor in response to an increasing area of contact between the deformable dielectric and the capacitive sensor.

21 . The processing system of claim 20 configured to determine a respective analog signal for each capacitive sensor, the analog signal based on key cap travel between a non-activated position and an activated position.

22 . The processing system of claim 21 further configured to determine a binary output for each capacitive sensor based on the analog signal crossing a threshold value.

23 . In a keyboard of the type including a key cap, a key base including a capacitive sensor disposed underneath the key cap, and a deformable dielectric disposed between the key cap and the capacitive sensor, a method for determining a change in a variable capacitance of the capacitive sensor in response to an increasing area of contact between the deformable dielectric and the capacitive sensor, the method comprising:

measuring a first transcapacitance value of the capacitive sensor when the key cap is in a non-activated position; and

measuring a second transcapacitance value of the capacitive sensor when the key cap is in an activated position.

Assignments (3)
SECURITY INTEREST Recorded Sep 27, 2017
From: SYNAPTICS INCORPORATED
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 044037/0896 →
SECURITY INTEREST Recorded Oct 3, 2014
From: SYNAPTICS INCORPORATED
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 033889/0039 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 31, 2014
From: BULEA, MIHAI
To: SYNAPTICS INCORPORATED
Reel/Frame 032562/0707 →