Patent classifications
B60L7/22
A POWER SYSTEM AND AN ASSOCIATED METHOD THEREOF
A power system including at least one electrical machine, plurality of doubly fed induction machines (DFIMs), a plurality of first power converters, and a speed regulation unit is presented. The electrical machine includes a mechanical input end and at least one of a first stator winding terminal and a first rotor winding terminal. Each DFIM includes a second stator winding terminal, a second rotor winding terminal, and a mechanical output end. At least one of the first stator winding terminal and the first rotor winding terminal is coupled to one of first power converters and the second rotor winding terminal of each DFIM is coupled to one of the first power converters. The speed regulation unit is coupled to at least one of the mechanical input end and the mechanical output end.
Vehicle power supply apparatus
A vehicle power supply apparatus includes a generator, a first electricity storage, a second electricity storage, a switch, a generator controller, and a switch controller. The generator controller controls the generator into a first electric power generation state and a second electric power generation state higher in electric power generation voltage than the first electric power generation state. The switch controller controls the switch into an electrically-conductive state and a cutoff state. The switch controller controls the switch into the electrically-conductive state and the generator controller controls the generator into the first electric power generation state when a high-load apparatus is stopped. The high-load apparatus is one of a plurality of electrical loads coupled to the first electricity storage. The switch controller controls the switch into the cutoff state and the generator controller controls the generator into the second electric power generation state when the high-load apparatus is in operation.
Vehicle power supply apparatus
A vehicle power supply apparatus includes a generator, a first electricity storage, a second electricity storage, a switch, a generator controller, and a switch controller. The generator controller controls the generator into a first electric power generation state and a second electric power generation state higher in electric power generation voltage than the first electric power generation state. The switch controller controls the switch into an electrically-conductive state and a cutoff state. The switch controller controls the switch into the electrically-conductive state and the generator controller controls the generator into the first electric power generation state when a high-load apparatus is stopped. The high-load apparatus is one of a plurality of electrical loads coupled to the first electricity storage. The switch controller controls the switch into the cutoff state and the generator controller controls the generator into the second electric power generation state when the high-load apparatus is in operation.
ONE-PEDAL DRIVE SYSTEM FOR A VEHICLE
A vehicle includes an accelerator pedal, a brake pedal, an electric machine, friction brakes, and a controller. The electric machine is configured to propel the vehicle and to brake the vehicle during regenerative braking. The friction brakes are configured to brake the vehicle. The controller is programmed to, responsive to an operator selection of a one-pedal drive mode, decrease vehicle speed via regenerative braking in response to releasing the accelerator pedal. The controller is further programmed to transition the vehicle to an inhibit state in which the friction brakes are applied to prevent vehicle creep in response to receiving an automated signal to disable the one-pedal drive mode and vehicle speed becoming zero while the one-pedal drive mode is selected.
COMBINATION BRAKE-GENERATOR INVERTED MOTOR
A brake-generator system and associated method including: a rotor secured to a vehicle wheel, the rotor including a housing cylinder and a plurality of magnets affixed to an inner surface of the housing cylinder, where the plurality of magnets are radially arranged with alternating polarity; and a stator fixed to a vehicle wheel axle, the stator including a plurality of steel laminations and a plurality of conductor blocks, each conductor block of the plurality of conductor blocks being disposed in a slot formed in a steel lamination of the plurality of steel laminations; where the plurality of conductor blocks include a plurality of windings for carrying selectively-applied electrical current, such that with the rotor disposed around the stator and current being applied to the plurality of windings, a braking of the vehicle wheel results.
EFFICIENT REGENERATIVE ELECTRICAL BRAKING
Provided are embodiments for a braking system, where the system includes a controller, a motor coupled to an H-bridge network, a DC link coupled to the motor, and an electrical braking system electrically coupled to the motor. The electrical braking system includes a sense circuit configured to sense a condition of the DC link, a brake resistor coupled to the DC link, a drive circuit coupled to the sense circuit, and a transformer for regeneration. Also, provided are embodiments of a method for operating an efficient regenerative resonance electrical braking system
EFFICIENT REGENERATIVE ELECTRICAL BRAKING
Provided are embodiments for a braking system, where the system includes a controller, a motor coupled to an H-bridge network, a DC link coupled to the motor, and an electrical braking system electrically coupled to the motor. The electrical braking system includes a sense circuit configured to sense a condition of the DC link, a brake resistor coupled to the DC link, a drive circuit coupled to the sense circuit, and a transformer for regeneration. Also, provided are embodiments of a method for operating an efficient regenerative resonance electrical braking system
METHODS AND SYSTEMS FOR A HYBRID ELECTRIC VEHICLE
Methods and systems are provided for an oil heater of a hybrid electric vehicle. The oil heater comprises a metal foam comprising a plurality of pores. The oil heater is activated during a regenerative braking event where an oil temperature is less than a predefined temperature.
Rail transit braking energy recovery system and hybrid power rail transit
A rail transit braking energy recovery system. The rail transit braking energy recovery system comprises a braking motor, a fuel battery, an electrolytic bath, and a hydrogen tank. The braking motor is used for converting braking energy of the rail transit into electric energy. An output end of the braking motor is connected to a power input end of the electrolytic bath. The electrolytic bath comprises a hydrogen output end and an oxygen output end, the hydrogen output end is connected to the hydrogen tank, and the hydrogen tank is connected to the fuel battery and is used for supplying hydrogen to the fuel battery. In the system, only the electrolytic bath is structurally added, and the existing vehicle-mounted hydrogen tank is directly used for storing hydrogen, therefore the structure is simple, the self weight of the vehicle body is reduced, the energy conversion efficiency is high, and at the same time, the injection of hydrogen is reduced and the operation cost is reduced. In addition, the purity of the hydrogen obtained by means of electrolysis is high, so that the hydrogen can be directly supplied to the fuel battery to be used without being processed. Also provided is a hybrid power rail transit system.
Rail transit braking energy recovery system and hybrid power rail transit
A rail transit braking energy recovery system. The rail transit braking energy recovery system comprises a braking motor, a fuel battery, an electrolytic bath, and a hydrogen tank. The braking motor is used for converting braking energy of the rail transit into electric energy. An output end of the braking motor is connected to a power input end of the electrolytic bath. The electrolytic bath comprises a hydrogen output end and an oxygen output end, the hydrogen output end is connected to the hydrogen tank, and the hydrogen tank is connected to the fuel battery and is used for supplying hydrogen to the fuel battery. In the system, only the electrolytic bath is structurally added, and the existing vehicle-mounted hydrogen tank is directly used for storing hydrogen, therefore the structure is simple, the self weight of the vehicle body is reduced, the energy conversion efficiency is high, and at the same time, the injection of hydrogen is reduced and the operation cost is reduced. In addition, the purity of the hydrogen obtained by means of electrolysis is high, so that the hydrogen can be directly supplied to the fuel battery to be used without being processed. Also provided is a hybrid power rail transit system.