Patent classifications
Y02T10/60
METHOD AND APPARATUS FOR CONTROLLING TERRAIN DRIVING MODE OF HYBRID VEHICLE
Disclosed herein is a method of controlling a terrain driving mode of a hybrid vehicle, including defining demand torque required for vehicle driving depending on driver demand and an environment of a driving road, differentiating demand torque in response to the terrain driving mode, calculating accumulated driving energy from a time point of an operation in the terrain driving mode based on the differentiated demand torque, and determining a terrain driving method based on the calculated accumulated driving energy and a state of energy (SoE) in consideration of a state of charge (SoC) and a voltage condition of a battery cell.
CONTROL APPARATUS OF POWER TRANSMISSION SYSTEM FOR VEHICLE
A control apparatus of a power transmission system for a vehicle calculates estimated driving force while taking account of inertia loss torque and a transmission efficiency, during execution of automatic parking control for automatically parking the vehicle at a target parking position. During execution of automatic parking control, the control apparatus sets a traveling mode to a gear traveling mode in which power is transmitted via a gear mechanism, or sets the traveling mode to a belt traveling mode in which power is transmitted via a stepless speed change mechanism, and fixes the speed ratio of the stepless speed change mechanism to the lowest-side speed ratio.
APPARATUS AND METHOD FOR SHIFT CONTROL IN VEHICLE
An apparatus for shift control in a vehicle is provided. The apparatus includes storage configured to store speed profiles corresponding to respective gears of the vehicle for each of a plurality of downhill slopes, and a controller configured to perform the shift control in the vehicle based on the speed profiles, when the vehicle coasts on a downhill road.
VEHICULAR SPEED CONTROL SYSTEM WITH AUTOMATIC SETTING PARAMETERS
A driver assist system for a vehicle includes a vehicle speed sensor disposed at a vehicle. An ECU includes a processor for processing sensor data generated by the vehicle speed sensor. The ECU, responsive to processing at the ECU of sensor data generated by the vehicle speed sensor, determines speed of the vehicle. The ECU, responsive to determining that the speed of the vehicle reaches a vehicle soft lock speed, automatically enables a vehicle speed soft lock. The ECU, responsive to the vehicle reducing speed to the vehicle soft lock speed by coasting, maintains the current vehicle speed at the vehicle soft lock speed. The ECU, responsive to the speed of the vehicle increasing a multiple of a vehicle speed increment above the vehicle soft lock speed, automatically sets an increased vehicle soft lock speed that is the multiple of the vehicle speed increment above the vehicle soft lock speed.
METHOD OF IMPROVING FUEL EFFICIENCY OF FUEL CELL ELECTRIC VEHICLE BY USING NAVIGATION INFORMATION, AND APPARATUS AND SYSTEM THEREFOR
Disclosed are a method of improving fuel efficiency of a fuel cell electric vehicle, and an apparatus and a system therefor. The method includes collecting navigation information and vehicle speed information, calculating a coasting line when a specified event point is detected based on the navigation information, determining whether deceleration is necessary by comparing a current traveling speed with a coasting line speed corresponding to a current location, and changing a criterion for determining whether to enter a fuel cell stop (FC STOP) state when the deceleration is necessary as a determination result.
Control architecture for predictive and optimal vehicle operations in a single vehicle environment
There is disclosed a cloud computing control system for vehicle speed control and also for control of a vehicle in a platoon. The cloud computing control system determines a speed trajectory and neutral coasting command for a first vehicle of the platoon and a vehicle controller determines a reference speed for the first vehicle in response to the speed trajectory and the neutral coasting command, and is response to one or more vehicle specific factors associated with the first vehicle.
ECO-FRIENDLY VEHICLE AND METHOD OF CONTROLLING COASTING FOR THE SAME
A method of controlling coasting of an eco-friendly vehicle includes: determining at least one effective event among deceleration events configured with a target speed in a forward driving path; setting a closest effective event based on a current position among the at least one effective event as a first candidate event; determining whether at least one second candidate event corresponding to an event needed to be followed is present among remaining effective events except for the first candidate event of the at least one effective event; and, when the at least one second candidate event is present, determining a target event among the first candidate event and the second candidate event in consideration of a control start point.
APPARATUS OF CONTROLLING ENGINE INCLUDING ELECTRIC SUPERCHARGER BASED ON DRIVER'S TENDENCY, AND METHOD THEREOF
An apparatus of controlling an engine including an electric supercharger includes: an engine to combust fuel to generate power; a drive motor to assist the power of the engine and selectively operate as a generator to generate electrical energy; a battery configured to supply electrical energy to the drive motor and to be charged by the electrical energy generated from the drive motor; a plurality of electric superchargers respectively installed in a plurality of intake lines through which an ambient air flows to be supplied to a combustion chamber of the engine; and a controller that based on a determined driving tendency, adjusts a target speed of the electric superchargers of the plurality of electric superchargers, determine a driving mode of the electric superchargers, limits a maximum output of the engine, and variably adjusts a SOC electricity-generating region where the engine charges the battery.
Braking force control system, device, and method
A vehicular breaking force control system includes: a plurality of actuators capable of generating a braking force for a vehicle; a coasting state detection unit configured to detect that a coasting state has been established; a target braking force calculation unit configured to calculate a target braking force on the basis of a state of the vehicle when the coasting state detection unit detects that the coasting state has been established; and a braking force distribution control unit configured to determine a distribution braking force that is a braking force to be caused to be generated by each actuator, such that the distribution braking force is equal to or less than a braking force generable by the actuator and a sum of the distribution braking forces is equal to the target braking force, and to perform control of causing each actuator to generate the distribution braking force.
Optimization of concurrent operation of predictive cruise control and idle coast management control
A powertrain including a prime mover and an electronically controllable clutch. The powertrain structured selectably engages the clutch to provide power from the prime mover to drive one or more ground contacting wheels and to selectably disengage the clutch to decouple with one or more ground contacting wheels. The electronic control system operatively communicates with the prime mover and the electronically controllable clutch, and uses a predictive cruise control (PCC) controller and an idle coast management (ICM) controller, to control vehicle speed during concurrent operation of the PCC controller and the ICM controller.