Patent classifications
B60L1/00
Electric work vehicle
Provided is an electric work vehicle having a simple configuration, yet allowing a hydraulic cylinder to function appropriately even in a low-temperature environment. An electric work vehicle includes a first hydraulic cylinder, a second hydraulic cylinder and a third hydraulic cylinder and includes also a hydraulic system for feeding work oil to these hydraulic cylinders and a traveling motor. The hydraulic system includes an oil heating circuit for heating the work oil using heat generated from the traveling motor.
CONTROL UNIT FOR A VEHICLE
A control unit for a vehicle. The control unit includes: interfaces for the connection to two independently redundant communication networks, messages to and from the control unit being transferrable via a second communication network, and vice versa, in the event of a failure of a first communication network; and interfaces for the electrical supply of the control unit via two independently redundant low-voltage networks. it being possible to electrically supply the control unit via a second low-voltage network, and vice versa, in the event of an error in a first low-voltage network.
CONTROL UNIT FOR A VEHICLE
A control unit for a vehicle. The control unit includes: interfaces for the connection to two independently redundant communication networks, messages to and from the control unit being transferrable via a second communication network, and vice versa, in the event of a failure of a first communication network; and interfaces for the electrical supply of the control unit via two independently redundant low-voltage networks. it being possible to electrically supply the control unit via a second low-voltage network, and vice versa, in the event of an error in a first low-voltage network.
Power supply system
A power supply system 1 includes: first power lines (21p, 21n) to which a first battery (B1) is connected; second power lines (31p, 31n) to which a second battery (B2) is connected; a voltage converter (5) which converts voltage; a power converter which converts electric power; a management ECU (71) and converter ECU (73) which operates the voltage converter (5); a smoothing capacitor connected to the first power lines (21p, 21n); and a motor ECU (72) which executes system interruption processing of determining the existence of failure of the contactors (22m, 22s, 32m, 32s) based on a change in voltage of the smoothing capacitor. The management ECU (71) and converter ECU (73) operate the voltage converter (5) so that a state in which the static voltage of the first battery (B1) is higher by at least the determination potential difference than the static voltage of the second battery (B2).
Transport climate control system power architecture
A transport climate control system is disclosed. The system includes a compressor, a motor-generator-rectifier machine, a belt drive connected to the motor-generator-rectifier machine and the compressor, at least one condenser fan, at least one evaporator fan, and a DC to DC converter. The motor-generator-rectifier machine connects to the at least one condenser fan, the at least one evaporator fan, and the DC to DC converter. The motor-generator-rectifier machine includes a motor, a low voltage generator connected to the motor, and a rectifier connected to the low voltage generator. The motor-generator-rectifier machine can provide a first low voltage DC power to the at least one condenser fan, the at least one evaporator fan, and the DC to DC converter. The DC to DC converter can convert the first low voltage DC power to a second low voltage DC power that is different from the first low voltage DC power.
ENERGY MANAGEMENT FOR ELECTRIFIED FIRE FIGHTING VEHICLE
An electrified fire fighting vehicle includes a battery pack, an electromagnetic device, an engine, and a controller. The controller is configured to monitor a state-of-charge of the battery pack, operate the electromagnetic device using stored energy in the battery pack to provide a performance condition including (i) accelerating the electrified fire fighting vehicle to a driving speed of at least 50 miles-per-hour in an acceleration time and (ii) maintaining or exceeding the driving speed for a period of time, and start and operate the engine in response to a start condition to facilitate reserving sufficient stored energy in the battery pack such that the state-of-charge is maintained above a minimum state-of-charge threshold that is sufficient to facilitate the performance condition. The acceleration time is 30 second or less. An aggregate of the acceleration time and the period of time is at least 3 minutes.
Method and Device for Monitoring an On-Board Electrical System of a Vehicle
A device monitors an on-board power supply system having different on-board system components and operated by way of a machine-learned power management system. The device includes a reference unit which is designed, for a state of the on-board power supply system and for an action effected on the basis of the state of the power management system, to determine a reference reward which would be produced during operation of a reference on-board system. Furthermore, the device includes a reward unit which is designed, for the state and for the action, to determine an actual reward which is produced during operation of the on-board power supply system. The device further includes a monitoring unit, which is designed to monitor the on-board power supply system on the basis of the actual reward and on the basis of the reference reward.
RAILWAY CARRIAGE WITH VEHICLE MONITORING SYSTEM AND ASSOCIATED MONITORING METHOD
A railway carriage has a number of batteries, a charger associated with each of the batteries and at least one piece of equipment powered by the batteries, and a vehicle monitoring system. The monitoring system includes at least one sensor of a battery state parameter for each battery, a communication network adapted to receive information from each sensor of a battery state parameter and from each charger, and to transmit the received information to a processor. The processor is adapted to process information relating to a battery whose associated charger is switched off or defective using the information received for the other batteries.
ESTIMATION DEVICE
An estimation device is provided with a braking-driving force acquiring unit that acquires, based on a signal from a sensor that detects a force, braking-driving force information as information indicating a braking force or a driving force applied to wheels of the vehicle; a wheel load acquiring unit that acquires, based on the braking-driving force information, a wheel load received by the wheels from a road surface; and an estimation unit that estimates, based on a value of the wheel load of each wheel included in the vehicle, a gravity center position of the vehicle.
POWER SUPPLY SYSTEM
The present disclosure includes an inverter connected to a power supply unit via a positive electrode side electrical path and a negative electrode side electrical path and including switching elements, a rotary electric machine including windings connected to each other at a neutral point and inputting and outputting power from and to the power supply unit via the inverter, a connection path electrically connecting an intermediate point between the storage batteries of the power supply unit to the neutral point of the windings, and a device including a first terminal and a second terminal enabling energization between the power supply unit and the device. The first terminal is connected to the connection path, and the second terminal is connected to at least one of the positive electrode side electrical path and the negative electrode side electrical path.