IP Library Granted Patent US 9,434,431
Granted Patent B2
US 9,434,431 · App. 14/537,835 · Granted Sep 6, 2016

Intuitive drive-by-wire steering with redundant mechanical control

Inventors: Daniel Kee Young Kim (Vancouver, WA); Colin Wade (Santa Cruz, CA)
Assignee: Lit Motors Corporation
B62D61/02B62D37/06B62K3/007B62K21/00
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Quick Facts
Patent No.
US 9,434,431
App. No.
14/537,835
Granted
Sep 6, 2016
Kind
B2
Abstract

A drive-by-wire steering system on a vehicle requiring counter-steering includes a driver input mechanism, for example, a steering wheel, joystick, voice command receiver, or keyboard, and a control system. A sensor receives driver input and sends that information to the control system. An engagement mechanism, for example, a clutch, separates the driver input mechanism from controlling the vehicle. The control system further includes at least one actuator, a wheel, and a mechanical linkage controllable via the engagement mechanism in order for the control system to articulate a steering mechanism, for example, the front wheel of the vehicle, as appropriate.

Claims (23)

1. A drive-by-wire steering system on a vehicle, comprising:

a road wheel having a direction capable of adjustment a road wheel actuator coupled to the road wheel via a mechanical linkage to adjust the direction of the road wheel and thereby steer the vehicle;

a driver input mechanism to receive driver input for steering the vehicle;

an engagement-disengagement mechanism to mechanically couple and decouple the driver input mechanism to/from the road wheel, via the mechanical linkage, the driver input mechanism to adjust the direction of the road wheel, via the mechanical linkage, based on the driver input, when the driver input mechanism is mechanically coupled by the engagement-disengagement mechanism to the road wheel, via the mechanical linkage;

an electronic steering control system; and

a steering sensor to receive the driver input from the driver input mechanism and send the driver input to the electronic steering control system, the electronic steering control system to control the road wheel actuator to adjust the direction of the road wheel, based on the driver input, when the driver input mechanism is mechanically decoupled by the engagement-disengagement mechanism from the road vehicle.

2. The drive-by-wire steering system of claim 1 , wherein the engagement-disengagement mechanism to mechanically couple the driver input mechanism to the road wheel upon a failure of the electronic steering control system.

3. The drive-by-wire steering system of claim 1 , further comprising a haptic feedback system coupled to the driver input mechanism, the haptic system to generate torque and feedback to indicate driver effort and road conditions to a driver.

4. A method for controlling a vehicle:

receiving user input from a steering mechanism, via a first sensor;

receiving vehicle state data via a second sensor;

receiving external data via a third sensor;

receiving and analyzing at a control processor coupled to the first, second and third sensor, the user input, vehicle state data, and external data; and

generating command signals to a steering actuator to actuate a road wheel direction of the vehicle in accordance with the user input.

5. A control system comprising:

a processor;

a memory module;

a control algorithm stored in the memory module and executed via the processor to:

receive data from a plurality of sensors indicating driver input, orientation of a frame of a vehicle, orientation of a front wheel of the vehicle with respect to the frame, orientations and rotational speeds of a plurality of flywheels included in a gyroscope unit coupled to the frame, and a speed of the vehicle;

determine a current vehicle state based, at least in part, on the received data;

adjust an output torque of the gyroscope unit by adjusting a rotational velocity of a tilt of at least one of the flywheels from an axis of rotation normal to an axis of rotation of the front wheel of the vehicle based, at least in part, on the current vehicle state, wherein adjusting the rotational velocity of the tilt of at least one of the flywheels comprises increasing the rotational velocity of the tilt of the at least one of the flywheels to increase the output torque of the gyroscope unit, and wherein adjusting the rotational velocity of the tilt of at least one of the flywheels comprises minimizing the rotational velocity of the tilt of the at least one of the flywheels to use the output torque of the gyroscope unit for a prolonged period of time; and

adjust a direction of a wheel of the vehicle via electric command based, at least in part, on the current vehicle state.

6. The control algorithm of claim 5 , further executed via the processor to adjust the output torque of the gyroscope unit by adjusting the rotational velocity of the tilt of at least one of the flywheels from the axis of rotation normal to the axis of rotation of the front wheel of the vehicle based, at least in part, on the current vehicle state to stabilize or steer the vehicle.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Mar 6, 2020
From: KIM, DANIEL S.; KIM, HOOJA
To: LIT MOTORS INC.
Reel/Frame 052038/0813 →
SECURITY INTEREST Recorded Jan 10, 2020
From: LIT MOTORS CORPORATION
To: KIM, DANIEL S.; KIM, HOOJA
Reel/Frame 051481/0772 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2015
From: KIM, DANIEL KEE YOUNG; WADE, COLIN
To: LIT MOTORS CORPORATION
Reel/Frame 035031/0804 →
Continuity (2)
Provisional Application 61902721 · Nov 11, 2013
Related Publication 20150166099A1 · Jun 18, 2015