Patent classifications
H02P9/305
CONTROL OF A WIND TURBINE GENERATOR FOR REDUCED TONAL AUDIBILITY
A method of controlling a wind turbine generator (1) comprising an electrical generator (10) and a power converter (12), the power converter (12) comprising an electrical switch (14a, 14b) that is configured to process electrical power produced by the electrical generator (10), the method comprising: controlling an output from the electrical switch (14a, 14b) using a variable pulse-width modulated control signal, thereby to control characteristics of output power from the power converter (12); acquiring sample data (26) relating to an electronic signal within the wind turbine generator (1), wherein the sample data (26) is used for controlling the wind turbine generator (1); and dynamically adjusting a frequency (30) at which the sample data is acquired to synchronise data acquisition with a carrier frequency (24) of the control signal.
PORTABLE GENERATOR
A portable generator includes a combustion engine. The portable generator includes an electric generator coupled to the combustion engine. The portable generator can include a load bank. When the electric generator operates at a first voltage and generates less than a threshold amount, the load bank is coupled to the electric generator in a first configuration. When the electric generator operates at a second voltage that is different than the first voltage, the load bank is coupled to the electric generator in a second configuration that is different than the first configuration.
CONTROL OF HYBRID PERMANENT MAGNET MACHINE WITH ROTATING POWER CONVERTER AND ENERGY SOURCE
A hybrid permanent magnet machine has a stator including armature windings. A rotor includes permanent magnets, a main field winding, and a rechargeable energy source. An output voltage control circuit, including an H bridge circuit configured to provide control current magnitude and direction in the main field winding to control the current passing across the main field windings.
INDEPENDENT SPEED VARIABLE FREQUENCY ALTERNATING CURRENT GENERATOR
An independent speed variable frequency alternating current (AC) generator apparatus may include a rotor and a stator, the rotor configured to rotate relative to the stator. The apparatus may further include a magnetic field source attached to the rotor and configured to generate a first rotating magnetic field upon rotation of the rotor, where a rotational frequency of the first rotating magnetic field is dependent on a rotational frequency of the rotor. The apparatus may also include a main rotor winding attached to the rotor and configured to generate a second rotating magnetic field upon the rotation of the rotor, where a rotational frequency of the second rotating magnetic field is independent of the rotational frequency of the rotor.
Method for controlling regulating device for regulating automotive vehicle alternator, corresponding regulating device and alternator
The method of control according to the invention slaves a DC voltage generated by the alternator to a predetermined setpoint value by controlling an excitation current flowing in an excitation circuit comprising an excitation winding of a rotor of the alternator. The excitation current is controlled by means of a semiconductor switch, in turn controlled by a control signal having a predetermined period. The method comprises a detection of a failure of the excitation circuit. At least one short-circuit of the excitation winding is detected. According to another characteristic of the method, the control signal is generated on the basis of a combination of a setpoint signal formed by pulses of the predetermined period exhibiting a duty ratio representative of the setpoint value and of a detection signal indicative of the short-circuit.
Power supply device for internal combustion engine
A power supply device for an internal combustion engine, using a generator driven by an internal combustion engine as a power source and supplying power to a first load that needs to be constantly driven to cause the internal combustion engine to operate and a second load that is permitted not to drive during startup of the engine, wherein a first generation coil for driving the first load and a second generation coil for driving the second load are provided to be magnetically-coupled tightly in the generator, and voltage supplied to a load is boosted to a higher voltage value than conventionally achieved by performing chopper control of an energizing current of the first generation coil and an energizing current of the second generation coil while preventing energization from the second generation coil to a load.
Power generator system and generator exciter device thereof
A power generator system includes a field winding, an alternator, a voltage regulator and a generator exciter device. The field winding generates a magnetic field based on a total excitation voltage thereacross. The alternator generates an output voltage based on the magnetic field. The voltage regulator generates a primary excitation voltage based on the output voltage. The generator exciter device generates an auxiliary excitation voltage. The generator exciter device and the voltage regulator are coupled in series across the field winding, so that the auxiliary excitation voltage and the primary excitation voltage are summed into the total excitation voltage which is not less than the primary excitation voltage in magnitude.
VOLTAGE REGULATION OF PERMANENT MAGNET GENERATOR WITH EXTENDED SPEED RANGE
An electric power system (EPS) may comprise a permanent magnet synchronous generator (PMSG), a high speed rectifier configured to receive a first alternating current (AC) power from the PMSG, and a low speed rectifier configured to receive a second AC power from the PMSG. The low speed rectifier may be configured to receive the first AC power in response to the PMSG rotating at a first rotational speed, and the high speed rectifier may be configured to receive the second AC power in response to the PMSG rotating at a second faster rotational speed.
POWER GENERATOR SYSTEM AND GENERATOR EXCITER DEVICE THEREOF
A power generator system includes a field winding, an alternator, a voltage regulator and a generator exciter device. The field winding generates a magnetic field based on a total excitation voltage thereacross. The alternator generates an output voltage based on the magnetic field. The voltage regulator generates a primary excitation voltage based on the output voltage. The generator exciter device generates an auxiliary excitation voltage. The generator exciter device and the voltage regulator are coupled in series across the field winding, so that the auxiliary excitation voltage and the primary excitation voltage are summed into the total excitation voltage which is not less than the primary excitation voltage in magnitude.
SYSTEM AND METHOD FOR OPERATING A PUMPED STORAGE POWER PLANT WITH A DOUBLE FED INDUCTION MACHINE
A system and method of operating a pumped storage power plant using a double fed induction machine with a frequency converter in a rotor circuit is disclosed. A current target value for the rotor current frequency is determined based on a target power to be transmitted between an electrical grid and the double fed induction machine depending on measured actual operating variables. A current inadmissible synchronous deadband is determined depending on variables characterizing a current state of the pumped storage power plant. The synchronous deadband is determined by a permissible minimum required rotor current frequency or speed difference of the rotor speed from the synchronous speed for the stationary operation. The converter is controlled to generate voltages and currents with the current target value of the rotor current frequency if the current target value of the rotor current frequency or speed does not fall in the current inadmissible synchronous deadband.