B60W2510/00

SYSTEM AND METHOD FOR SYNCHROPHASING AIRCRAFT ENGINES

Systems and method for synchrophasing aircraft engines are disclosed. One method comprises receiving data indicative of a sensed vibration level associated with a first aircraft engine and a second aircraft engine operating at a substantially same operating speed and commanding one or more momentary changes in operating speed of the second aircraft engine until the sensed vibration level substantially reaches a target vibration level. The momentary changes in operating speed of the second aircraft engine is commanded irrespective of phase information associated with imbalances of the first and second aircraft engines.

Braking system of industrial vehicle

A braking system of an industrial vehicle includes an accumulator accumulating hydraulic oil, a hydraulic oil cooler cooling the hydraulic oil, an electromagnetic switch valve switching between an oil channel for the accumulator that allows supplying the hydraulic oil from a hydraulic pump to the accumulator and an oil channel for the hydraulic cooler that allows supplying the hydraulic oil from the hydraulic pump to the hydraulic oil cooler, and a controller controlling the electromagnetic switch valve to switch from the oil channel for the hydraulic cooler to the oil channel for the accumulator with timing of an increase after a drop in an engine speed when a cargo-handling operation is detected while an oil is at a setting pressure value or less and while the engine speed is at a setting engine speed or less.

STATE ESTIMATION DEVICE, STATE ESTIMATION METHOD, AND STORAGE MEDIUM
20240001931 · 2024-01-04 ·

A state estimation device includes: a behavior acquiring unit configured to acquire information on vehicle behavior of front wheels and rear wheels of a vehicle; and an estimation unit configured to estimate that road surface damage is present when a value associated with the front wheels in the information on vehicle behavior is greater than a first threshold value and a value associated with the rear wheels is greater than a second threshold value.

Vehicle control systems
10809730 · 2020-10-20 · ·

Apparatuses, systems, and methods are provided for the utilization of vehicle control systems to cause a vehicle to take preventative action responsive to the detection of a near short term adverse driving scenario. A vehicle control system may receive information corresponding to vehicle operation data and ancillary data. Based on the received vehicle operation data and the received ancillary data, a multi-dimension risk score module may calculate risk scores associated with the received vehicle operation data and the received ancillary data. Subsequently, the vehicle control systems may cause the vehicle to perform at least one of a close call detection action and a close call detection alert to lessen the risk associated with the received vehicle operation data and the received ancillary data.

Machine Control System Providing Actionable Management Information and Insight Using Agricultural Telematics

A machine control system includes an agricultural work machine having an ECU coupled via a system bus to control engine functions, a GPS receiver, data collector, and specialized guidance system including a stored program. The data collector captures agricultural geospatial data including location data for the work machine and data from the ECU, and executes the stored program to: (a) capture geometries of the farm; (b) capture agricultural geospatial data; (c) automatically classify the agricultural geospatial data using the geometries of the farm, into activity/event categories including operational, travel, and ancillary events; (d) aggregate the classified data to create geospatial data events; (e) match the geospatial data events to a model to generate matched events; (f) use the matched events to generate actionable information for the working machine in real time or near real-time; and (g) send operational directives to the agricultural work machine based on the actionable information.

METHOD OF CONTROLLING AN INTERNAL COMBUSTION ENGINE OF A VEHICLE, AND A CONTROL SYSTEM FOR SUCH AN INTERNAL COMBUSTION ENGINE
20190389477 · 2019-12-26 ·

A method of controlling an internal combustion engine of a vehicle comprises the following steps: on determining that the engine is running, determining whether or not the engine was started using a remote start procedure; if the engine is determined to have been started using the remote start procedure, starting a timer to run for a predetermined period; determining whether a door of the driver compartment has been opened or closed after the determining that the engine is running; if it is determined that a door has been opened, determining whether a transmission of the vehicle has been engaged; if the transmission has not been engaged, turning off the engine on expiry of the period; if the transmission has been engaged, terminating the method; if the engine is determined not to have been started using the remote start procedure, performing a check to establish whether a driver compartment of the vehicle has any occupants; starting a timer to run for a predetermined period if the check reveals that there are no occupants in the driver compartment of the vehicle; resetting the timer in the event that an occupant is detected in the driver compartment of the vehicle before expiry of the period, otherwise turning off the engine on expiry of the period.

BRAKING SYSTEM OF INDUSTRIAL VEHICLE

A braking system of an industrial vehicle includes an accumulator accumulating hydraulic oil, a hydraulic oil cooler cooling the hydraulic oil, an electromagnetic switch valve switching between an oil channel for the accumulator that allows supplying the hydraulic oil from a hydraulic pump to the accumulator and an oil channel for the hydraulic cooler that allows supplying the hydraulic oil from the hydraulic pump to the hydraulic oil cooler, and a controller controlling the electromagnetic switch valve to switch from the oil channel for the hydraulic cooler to the oil channel for the accumulator with timing of an increase after a drop in an engine speed when a cargo-handling operation is detected while an oil is at a setting pressure value or less and while the engine speed is at a setting engine speed or less.

APPARATUS AND METHOD FOR CONTROLLING VEHICLE
20240199081 · 2024-06-20 · ·

Provided are an apparatus and a method for controlling an autonomous vehicle. The apparatus for controlling the autonomous vehicle includes a sensor that acquires sensed data on a vehicle surrounding, a driving device that drives the vehicle, and a processor that detects a passenger based on the sensed data, determines a stop point for stopping the vehicle in a stop zone, determines a decelerating section till a specific distance from the stop point, and controls the driving device so that a speed of the vehicle at an end point of decelerating section is lower than a speed of the vehicle at the starting point of the decelerating section.

ENERGY EFFICIENT PREDICTIVE POWER SPLIT FOR HYBRID POWERTRAINS

Methods and systems for operating a hybrid vehicle having a first power source that uses a rechargeable battery and a second power source that uses a fuel. Preview information relating to upcoming road and traffic is used to generate a speed reference. A transmission torque reference is calculated using the speed reference and upcoming road information. A predictive power split plan is then determined by optimizing use of the first and second power sources to satisfy the transmission torque reference. At least a first sample of the predictive power split plan is then implemented.

Machine Control System Providing Actionable Management Information and Insight Using Agricultural Telematics

A machine control system includes an agricultural work machine having an ECU coupled via a system bus to control engine functions, a GPS receiver, data collector, and specialized guidance system including a stored program. The data collector captures agricultural geospatial data including location data for the work machine and data from the ECU, and executes the stored program to: (a) capture geometries of the farm; (b) capture agricultural geospatial data; (c) automatically classify the agricultural geospatial data using the geometries of the farm, into activity/event categories including operational, travel, and ancillary events; (d) aggregate the classified data to create geospatial data events; (e) match the geospatial data events to a model to generate matched events; (f) use the matched events to generate actionable information for the working machine in real time or near real-time; and (g) send operational directives to the agricultural work machine based on the actionable information.