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    • 3. 发明申请
    • METHOD OF CONTROLLING A VARIABLE SPEED WIND TURBINE
    • 控制变速风力涡轮机的方法
    • US20110140433A1
    • 2011-06-16
    • US13003773
    • 2009-07-07
    • Erik Carl Lehnskov Miranda
    • Erik Carl Lehnskov Miranda
    • H02P9/04
    • H02P9/007F03D7/0276F03D7/028F03D7/044F05B2220/70646F05B2270/335H02P27/05H02P2101/15Y02E10/723Y02E10/725
    • in a method of controlling a variable speed wind turbine, said wind turbine comprising a double-fed asynchronous generator having rotor windings and stator windings and means for controlling the wind turbine speed, the method comprises the following steps:—measuring or calculating, based on measured parameters, the active electrical power (Pr) in the rotor windings, comparing the active electrical power (Pr) in the rotor windings with a preset limit (PrLimit), when the active electrical power (Pr) in the rotor windings exceeds the preset limit (PrLimit), controlling the wind turbine speed to minimize the difference between the active electrical power (Pr) in the rotor windings and a preset reference (PrRef). The rotor power (Pr) is kept at a reduced level, thus avoiding overload of wind turbine generator components.
    • 在控制变速风力涡轮机的方法中,所述风力涡轮机包括具有转子绕组和定子绕组的双馈异步发电机和用于控制风力涡轮机转速的装置,该方法包括以下步骤: - 基于 测量参数,转子绕组中的有功电功率(Pr),将转子绕组中的有功功率(Pr)与预设极限(PrLimit)进行比较,当转子绕组中的有功功率(Pr)超过预设值 限制(PrLimit),控制风力涡轮机的速度以最小化转子绕组中的有功功率(Pr)与预设参考值(PrRef)之间的差异。 转子功率(Pr)保持在降低的水平,从而避免风力发电机组件过载。
    • 4. 发明申请
    • Method for controlling doubly-fed machine
    • 双馈机控制方法
    • US20050189896A1
    • 2005-09-01
    • US11042505
    • 2005-01-26
    • Reijo VirtanenOsmo Pasuri
    • Reijo VirtanenOsmo Pasuri
    • H02P9/00H02P23/30H02P27/05H02P7/00
    • H02P9/007H02P23/30H02P27/05
    • A method for operating a doubly-fed machine by determining its rotational speed (nact), forming a rotational speed reference (nref), measuring network voltage and current, and calculating network active power (Pact) and reactive power (Qact). Thereafter, calculating shaft torque (T) based on active power (Pact) and rotating speed (nact), forming a frequency reference (Fref) for the inverter based on machine rotating speed (nact), rotating speed reference (nref), shaft torque (T), and the known pole pair number and network frequency, forming a reactive power reference (Qref) for the machine. Forming an Ir compensation reference (IRref) for the inverter on the basis of the reactive reference (Qref) and the reactive power (Qact), and controlling the inverter to produce rotor voltage based on frequency reference (Fref) and the IR compensation reference
    • 一种用于通过确定其旋转速度(n>动作)来操作双馈机器的方法,形成转速参考(n ref),测量网络电压和电流,以及 计算网络有功功率(P 动作)和无功功率(Q 动作)。 此后,基于有功功率(P< SUB>)和旋转速度(n<<>)计算轴转矩(T),形成频率基准(F SUB) SUB>),基于机器转速(n act ),转速参考(n ref),轴转矩(T)和已知极对数 和网络频率,为机器形成无功功率参考(Q SUB)。 基于无功参考(Q />)和无功功率(Q )形成用于逆变器的Ir补偿参考(IR >),并且控制逆变器基于频率参考(F />)和IR补偿参考产生转子电压
    • 9. 发明申请
    • ELECTRIC MOTOR
    • 电动马达
    • US20110050150A1
    • 2011-03-03
    • US12863342
    • 2008-01-18
    • Magnus Lindmark Lilliestrale
    • Magnus Lindmark Lilliestrale
    • H02P6/08
    • H02P23/08H02P23/0004H02P27/05
    • The present invention relates to a device for controlling the speed of an electric motor, wherein the said motor is arranged to be connected to a voltage source, wherein the said motor comprises a stator winding and a rotor winding, wherein, in operation, a rotating stator field having a first rotational frequency is generated in the stator winding, wherein the said stator field, in operation, is arranged to induce a first rotor field having a second rotational frequency in the said rotor winding. The device comprises frequency converter means for generating a second rotor voltage having a third rotational frequency from a voltage in the rotor winding being induced from the said stator field, for being supplied to the said rotor winding, wherein the said second rotor voltage being generated by the said frequency converter, in operation, is arranged to generate a second rotating rotor field in the said rotor winding so that, in operation, the rotor rotates with a rotational frequency substantially being the difference between the rotational frequency of the stator field and the rotational frequency of the generated second rotor field.
    • 本发明涉及一种用于控制电动机速度的装置,其中所述电动机被布置为连接到电压源,其中所述电动机包括定子绕组和转子绕组,其中,在操作中,旋转 在定子绕组中产生具有第一旋转频率的定子场,其中在操作中所述定子磁场被布置成在所述转子绕组中引起具有第二转动频率的第一转子磁场。 该装置包括变频器装置,用于从所述定子磁场感应出的转子绕组中的电压产生具有第三转数的第二转子电压,以供给所述转子绕组,其中所述第二转子电压由 所述变频器在操作中被布置成在所述转子绕组中产生第二旋转转子磁场,使得在运行中,转子以基本上是定子磁场的旋转频率和旋转频率之间的差的旋转频率旋转 所产生的第二转子磁场的频率。
    • 10. 发明申请
    • Engine start system with a regulated permanent magnet machine
    • US20080315584A1
    • 2008-12-25
    • US11820639
    • 2007-06-20
    • Gregory I. RozmanMatthew L. WilhideArthur A. Pershall
    • Gregory I. RozmanMatthew L. WilhideArthur A. Pershall
    • H02P9/04F02N11/04
    • H02P9/305H02P1/46H02P9/48H02P27/05H02P2207/076
    • An electromechanical power transfer system that transfers power between a direct current (DC) electrical power system and a prime mover, comprises: a permanent magnet machine (PMM) comprising a permanent magnet (PM) rotor that rotates a drive shaft of the prime mover, a stator with a multiphase alternating current (AC) winding coupled to the AC bus for developing a rotating magnetic field with a magnetic flux path that causes rotation of the PM rotor and a control coil with a winding that has a configuration to generate a magnetic field with flux that varies the reactance of the stator winding upon the application of current through the control coil; a plurality of AC current sensors for sensing the current in each phase of the multi-phase AC bus and generating respective AC bus current signals that represent the current level of each phase; an average current detector that receives the AC bus current signals and generates a respective current load feedback signal; a back electromotive force (emf) detector coupled to the AC bus that detects back emf generated by the stator in response to the application of AC power to the stator and generates a back emf signal representative of the detected level of back emf; a rotor position/speed estimator that receives the back emf signal and generates an estimated rotor position signal that is representative of the position of the rotor, an estimated rotor speed signal that is representative of the speed of the rotor and a closed loop enable signal that indicates a speed for the electrical starting system to switch from an open loop mode of operation to a closed loop mode of operation; a control coil current sensor for generating a control coil current signal in a control coil current feedback loop that is representative of the level of electrical current in the control coil; a first speed switch that switches between an open loop position reference signal that represents a desired position of the rotor in an open loop mode and the estimated rotor position signal that represents the position of the rotor in a closed loop mode to provide a position reference signal; a second speed switch that switches between an open loop current reference signal that represents a desired control coil current level in the open loop mode and a closed loop current reference signal that represents a desired control coil current level in the closed loop mode to provide a control coil current reference signal; an inverter/rectifier system for converting DC power from the DC power system to multiphase alternating current (AC) power on an AC bus; a control coil current regulator system for regulating current through the control coil; wherein the inverter/rectifier system responds to the position reference signal, the current load feedback signal and a current load reference signal to regulate acceleration of the PMM; wherein the control coil current regulator system responds to the control coil current reference signal and the control coil current feedback signal to regulate current in the PMM; and wherein the power transfer system starts in the open loop mode, the rotor position/speed estimator generates the closed loop enable signal that indicates a speed for the electrical starting system to switch from the open loop mode of operation to the closed loop mode of operation at a predetermined rotor speed, and the first and second speed switches respond to the closed loop enable mode to switch from their open loop mode to their closed loop mode.