F02N2300/2006

SYSTEM AND METHOD FOR CONTROLLING VEHICLE STOP-START FUNCTION BASED ON MEASURED AND PREDICTED CRANKING VOLTAGES AND ADAPTIVE ADJUSTMENT OF CIRCUIT RESISTANCE

A vehicle determines a first resistance of a starter motor and a starter cable connected thereto based at least in part on the first voltage of a power source. The vehicle determines a predicted minimum battery voltage based at least in part on the first resistance of the starter motor and the starter cable. The vehicle, in response to the predicted minimum battery voltage satisfying a threshold, enables a vehicle stop-start function, and, in response to the predicted minimum battery voltage failing to satisfy the threshold, disables the vehicle stop-start function.

Vehicle and method of controlling the same

A vehicle and a method use an Idle Stop and Go (ISG) system. The vehicle includes: a battery; a battery sensor configured to measure a lowest voltage of the battery at a time of startup of the vehicle; a driving unit including an engine of the vehicle; and a controller. The controller is configured to: compare a first lowest voltage predicted using a current lowest voltage of the battery with a reference value to determine whether the lowest voltage of the battery has been changed; in response to determining the lowest voltage of the battery has been changed, calculate a difference between the current lowest voltage of the battery and an immediately previous lowest voltage of the battery; calculate an accumulated current between a current of the battery at the immediately previous time point and a current of the battery at the current time point; calculate a correction voltage for the accumulated current; predict a second lowest voltage using at least one of the difference between the current lowest voltage of the battery and the immediately previous lowest voltage of the battery or the correction voltage; compare the second lowest voltage with a second determination value; and control the driving unit to control entry into a stop of the ISG system according to a result of the comparison.

Vehicle propulsion systems and methods

A host vehicle includes a combustion engine configured to provide a propulsion torque to satisfy a propulsion demand. The vehicle also includes at least one sensor configured to detect a position of a reference vehicle. A vehicle controller is programmed to determine a path between a current host vehicle location and an upcoming intersection. The controller is also programmed to forecast a path clearance time at which the host vehicle is able to traverse the intersection in response to sensor data indicating the reference vehicle moving within the path ahead of the host vehicle. The controller is further programmed to deactivate the engine prior to a host vehicle stop based on the path clearance time being greater than a time threshold.

HYBRID VEHICLE CONTROL SYSTEM
20210061258 · 2021-03-04 ·

In a hybrid vehicle control system, when a first traveling mode using torque of an electric motor is switched to a second traveling mode using torque of an engine, a controller performs an engine start control by applying an engagement pressure to a first clutch and by cranking the engine by the electric motor, so as to start the engine. Specifically, the controller obtains a predicted start time and an actual start time by the engine start control, and corrects the engagement pressure so as to decrease the engagement pressure applied to the first clutch at a subsequent time of starting the engine, when the actual start time is shorter than the predicted start time.

INTELLIGENT STARTING AND CHARGING SYSTEM AND METHOD
20210075245 · 2021-03-11 ·

A battery starting and charging system that monitors battery and other sensor readings; tracks vehicle state, determines a charging voltage based on battery temperature and vehicle state; sets the alternator to charge the battery with the charging voltage; determines current collected parameters based on the battery and other sensor readings; and makes vehicle start predictions based on the current collected parameters. The system can also determine whether the vehicle actually started; add the current collected parameters to a set of start events if it started, and to a set of no-start events if it didn't start. The start prediction can also be based on the sets of start and no-start events for one or multiple vehicles. The collected parameters and start predictions can also be based on collected weather data. The system can use a local interconnect network (LIN) alternator with a LIN network.

Systems and methods for determining engine start time during predicted acceleration events

A method may include predicting an acceleration event of a vehicle. The method may further include predicting a maximum speed of the predicted acceleration event. The method may also include determining an engine start time based on the predicted maximum speed. The method may still further include starting an engine of the vehicle at the engine start time.

Control device for vehicle

A control device for a vehicle includes an electronic control unit configured to perform an automatic driving control, to determine whether there is a possibility that a start control of an engine and a gear shift control of an automatic transmission are concurrently executed in a future traveling under the automatic driving control, during execution of the automatic driving control, and to first execute one control of the start control of the engine and the gear shift control of the automatic transmission in the future traveling and execute the other control after the one control finishes, when the electronic control unit determines that there is the possibility that the start control of the engine and the gear shift control of the automatic transmission are concurrently executed in the future traveling under the automatic driving control.

Methods and systems for engine start following idle-stop

Methods and systems are provided for restarting an engine following an engine idle-stop. In one example, a method may include upon receiving an engine restart request during an engine idle-stop, initiating combustion in a selected cylinder and based on a predicted time of attainment of peak pressure in the cylinder, activating a starter motor.

Apparatus and method for control of powertrain stop position

A method of stopping an engine crankshaft includes selecting a target angular position at which the engine crankshaft is to be stopped and detecting an actual angular position of the engine crankshaft and a rotational speed of the engine crankshaft. A stopping torque in calculated based on the actual angular position of the engine crankshaft and the rotational speed of the engine crankshaft. The stopping torque is applied to the engine crankshaft via a motor/generator operably connected to the engine crankshaft. The engine crankshaft is stopped at the target angular position via the application of the stopping torque.

Control system having at least one electronic control unit for controlling an internal combustion engine in a hybrid vehicle

In a control system having at least one electronic control unit for controlling an internal combustion engine in a hybrid vehicle, the control unit is designed in such a way that it evaluates input signals for detecting data for identifying a current situation and for identifying at least one situation forecast in the near future with regard to an expected speed curve and at least the predicted current traffic light phase duration. Depending thereon and on a change in load brought about by a driver interaction, the control unit controls, in a manner that is adaptive to the situation, the restart and shutoff of the internal combustion engine independently of a currently predefined EV mode speed limit and/or EV mode load limit.