IP Library › Granted Patent US 10,415,286
Granted Patent B1
US 10,415,286 · App. 15/678,651 · Granted Sep 17, 2019

Hinge with feedback

Inventors: John A. Porcella (Sunnyvale, CA); Michael A. Damianakis (Sunnyvale, CA); Robert L. Coish (Sunnyvale, CA); Matthew B. Frazer (Sunnyvale, CA)
Assignee: Apple Inc.
E05D11/10E05D3/02E05D11/00E05D11/1028E05F15/40E05F15/60F16C11/04G05B6/02G06F3/016G06F3/041H02K11/21H02K11/24H02P7/18H02P8/20E05Y2400/202E05Y2400/53E05Y2400/81E05Y2900/132E05Y2900/531E05Y2900/606
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Quick Facts
Patent No.
US 10,415,286
App. No.
15/678,651
Granted
Sep 17, 2019
Kind
B1
Abstract

An assembly includes a first structure, a second structure, a hinge that connects the first structure to the second structure for rotation of the first structure relative to the second structure around an axis, and a motion control component. The motion control component applies a feedback force to the hinge in response to an external force that is applied to the first structure. A magnitude of the feedback force is determined based on a current angular position of the first structure relative to the second structure.

Claims (42)

1. An assembly, comprising:

a first structure;

a second structure;

a hinge that connects the first structure to the second structure for rotation of the first structure relative to the second structure around an axis; and

a motion control component that applies a feedback force to the hinge in response to an external force that is applied to the first structure,

wherein the motion control component is configured to determine a direction of the external force,

wherein the motion control component is configured to determine that the external force has been released, and

wherein the motion control component is configured, in response to the determination that the external force has been released, to determine a rest position based on a current angular position of the first structure relative to the second structure and an offset value and to apply the feedback force in opposition to the direction of the external force subsequent to release of the external force until the rest position is reached.

2. The assembly of claim 1 , wherein the feedback force applied to the hinge by the motion control component to urge the first structure toward the rest position is a simulated spring action of the first structure with respect to the second structure.

3. The assembly of claim 1 , further comprising:

a controller that regulates the feedback force based on a force profile that specifies the magnitude for the feedback force at each of a plurality of angular positions of the first structure relative to the second structure.

4. The assembly of claim 3 , wherein the motion control component includes a position sensor that outputs a position signal indicative of the current angular position of the first structure relative to the second structure.

5. The assembly of claim 3 , wherein the force profile includes a first high resistance area near a first end limit of travel of the first structure with respect to the second structure, a second high resistance area near a second end limit of travel of the first structure with respect to the second structure, and an intermediate area between the first high resistance area and the second high resistance area, wherein the magnitude of the feedback force applied when the current angular position is in the first high resistance area and the second high resistance area is greater than the magnitude of the feedback force applied when the current angular position is in the intermediate area.

6. The assembly of claim 3 , wherein the force profile includes one or more simulated detent positions, wherein the feedback force is applied to the first structure toward the simulated detent positions when the current angular position is within a threshold value from the simulated detent positions.

7. The assembly of claim 1 , wherein the motion control component includes a stepper motor that applies the feedback force by application of torque to the hinge.

8. The assembly of claim 1 , wherein the motion control component includes piezoelectric elements that vary the magnitude of the feedback force.

9. The assembly of claim 1 , further comprising:

a display screen located on the first structure.

10. The assembly of claim 1 , wherein the first structure is a display screen portion of a laptop computer and the second structure is a base portion of the laptop computer.

11. An assembly, comprising:

a first structure;

a second structure;

a hinge that connects the first structure to the second structure for rotation of the first structure relative to the second structure around an axis; and

a motion control component that applies a feedback force to the hinge in response to an external force that is applied to the first structure,

a display screen located on the first structure; and

a light sensor that is located on the first structure and outputs a light signal, wherein the controller determines a glare estimate based on the light signal and sets a simulated detent position at an angular position of the first structure with respect to the second structure that minimizes glare from light incident on the display screen, wherein the motion control component applies the feedback force to the first structure toward the simulated detent position when a current angular position of the first structure with respect to the second structure is within a threshold value relative to the simulated detent position.

12. The assembly of claim 11 , wherein the first structure is a display screen portion of a laptop computer and the second structure is a base portion of the laptop computer.

13. The assembly of claim 11 , wherein the motion control component includes a stepper motor that applies the feedback force by application of torque to the hinge.

14. The assembly of claim 11 , wherein the motion control component includes piezoelectric elements that vary the magnitude of the feedback force.

15. An assembly, comprising:

a first structure;

a second structure;

a hinge that connects the first structure to the second structure for rotation of the first structure relative to the second structure around an axis;

a touch sensor that detects contact by a user, wherein the touch sensor outputs a touch signal, wherein the touch sensor is an electrical sensor that detects contact by the user by monitoring an electrical signal; and

a motion control component that applies a feedback force to the hinge according to a first force profile to restrain motion of the first structure relative to the second structure when the touch signal is below a threshold and applies the feedback force to the hinge according to a second force profile in opposition to a direction of an external force applied by the user when the touch signal is above the threshold.

16. The assembly of claim 15 , further comprising:

a position sensor that outputs a position signal indicative of a current angular position of the first structure relative to the second structure, wherein the feedback force is determined based on the current angular position.

17. The assembly of claim 15 , further comprising:

a display screen located on the first structure.

18. The assembly of claim 15 , wherein the first structure is a display screen portion of a laptop computer and the second structure is a base portion of the laptop computer.

19. The assembly of claim 15 , wherein the motion control component includes a stepper motor that applies the feedback force by application of torque to the hinge.

20. The assembly of claim 15 , wherein the motion control component includes piezoelectric elements that vary the magnitude of the feedback force.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2019
From: PORCELLA, JOHN A.; DAMIANAKIS, MICHAEL A.; COISH, ROBERT L.; FRAZER, MATTHEW B.
To: APPLE INC.
Reel/Frame 049956/0712 →
Continuity (1)
Provisional Application 62396963 · Sep 20, 2016
Cited By (7)
US 12,189,436 US 12,189,452 US 12,210,604 US 12,346,191 US 12,517,562 US 12,531,035 US 12,656,872