US2004263110A1PendingUtilityA1

Induction generator system and method

Assignee: DG POWER SYSTEMS INCPriority: Jan 26, 2001Filed: May 21, 2004Published: Dec 30, 2004
Est. expiryJan 26, 2021(expired)· nominal 20-yr term from priority
H02P 9/30H02K 17/42
30
PatentIndex Score
0
Cited by
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Claims

Abstract

An induction generator having one or more energy windings and one or more auxiliary windings where the auxiliary windings have fixed and switched capacitors which are used to control the induction generator output under variable load conditions. The auxiliary windings are electrically and magnetically isolated from the energy windings. The fixed capacitors are used under minimum load condition and the switched capacitors added in response to controls signals. The control signals are determined by analyzing the load voltage and current and the voltage across the particular capacitor being added. The induction generator is included in systems where the generator is rotationally driven by an engine and which couples the energy windings to a power grid and/or to a variable load. The engine may also employ a controller that receives the load current and voltage signals to determine engine speed.

Claims

exact text as granted — not AI-modified
1 . A rotary induction machine comprising: 
 a cylindrical stator;    a rotor axially rotatably positioned in the center of said stator;    rotor windings integral to said rotor;    a three-phase energy winding integral to said stator and magnetically coupled to said rotor windings;    a first three-phase auxiliary winding integral to said stator and magnetically coupled to said rotor windings and electrically isolated from said energy winding, said three-phase auxiliary winding comprising three branch windings electrically coupled forming three-phase electrical terminals;    a first capacitor electrically coupled across each of said three-phase electrical terminals;    a second capacitor coupled with a first branch switch across a portion of a first one of said three branch windings; and    a control circuit for gating said first branch switch in response to parameters of a first voltage corresponding to a first selected branch winding and parameters of a voltage and a current corresponding to said energy winding.    
     
     
         2 . The rotary induction machine of  claim 1 , wherein a third capacitor is coupled with a second branch switch across a portion of a second one of said three branch windings, said second branch switch gated by said control circuit in response to parameters of a second voltage corresponding to a second selected branch winding and said parameters of said voltage and current corresponding to said energy winding.  
     
     
         3 . The rotary induction machine of  claim 2 , wherein a fourth capacitor is coupled with a third branch switch across a portion of a third one of said three branch windings, said third branch switch gated by said control circuit in response to parameters of a third voltage corresponding to a third selected branch winding and said parameters of said voltage and current corresponding to said energy winding.  
     
     
         4 . The rotary induction machine of  claim 3 , wherein said second, third and fourth capacitors are not equal.  
     
     
         5 . The rotary induction machine of  claim 1 , wherein said first voltage corresponds to the voltage across said second capacitor.  
     
     
         6 . The rotary induction machine of  claim 1 , wherein said parameters of said voltage of said energy winding comprise the output voltage amplitude across a phase of said energy winding supplying a load.  
     
     
         7 . The rotary induction machine of  claim 1 , wherein said parameters of said current of said energy winding comprise the output current amplitude in a phase of said energy winding supplying a load across a phase said energy winding.  
     
     
         8 . The rotary induction machine of  claim 1 , wherein said parameters of said voltage and current of said energy winding comprise the phase relationship of said voltage and said current of said energy winding resulting from a load across said phase of said energy winding.  
     
     
         9 . The rotary induction machine of  claim 5 , wherein said parameter of said first voltage corresponds to a measure of the zero crossing time of said first voltage.  
     
     
         10 . The rotary induction machine of  claim 1 , where said branch switch is gated on based on a first value of said parameter of said first voltage and gated off based on a second value of said parameter of said first voltage.  
     
     
         11 . The rotary induction machine of  claim 1 , wherein said branch switch is an electronic switch operable to conduct alternating current (AC) when gated on.  
     
     
         12 . (cancelled)  
     
     
         13 . A rotary induction machine comprising: 
 a cylindrical stator;    a rotor axially and rotatably disposed in the center of said stator;    rotor windings integral to said rotor;    an energy winding integral to said stator and magnetically coupled to said rotor windings;    an auxiliary winding integral to said stator and magnetically coupled to said rotor windings and electrically isolated from said energy winding;    an energy storage device coupled with a branch switch across a portion of said auxiliary winding; and    a control circuit for gating said branch switch in response to parameters of a voltage corresponding to said auxiliary winding and parameters of a voltage and a current corresponding to said energy winding.    
     
     
         14 . A rotary induction machine comprising: 
 a stator and rotor axially disposed in the center of said stator;    rotor windings integral to said rotor;    a three-phase n energy winding integral to said stator and magnetically coupled to said rotor windings;    a three-phase auxiliary winding integral to said stator and magnetically coupled to said rotor windings and electrically isolated from said energy winding, said three-phase auxiliary winding comprising three branch windings electrically coupled forming three-phase electrical terminals;    a first capacitance electrically coupled across each of said three-phase electrical terminals;    a first switched winding integral to a first phase of said energy winding and coupled with a first branch switch across a portion of said first capacitance corresponding to said first energy phase; and    a control circuit for gating said first branch switch in response to parameters of a first voltage corresponding to a first selected branch winding and parameters a voltage and a current corresponding to said energy winding.    
     
     
         15 . The rotary induction machine of  claim 14 , wherein a second switched winding integral to a second phase of said energy winding is coupled with a second branch switch across a portion of a second capacitance corresponding to said second energy phase, said second branch switch gated by said control circuit in response to a second voltage corresponding to a second selected branch winding and said voltage and current corresponding to said energy winding.  
     
     
         16 . The rotary induction machine of  claim 15 , wherein a third switched winding integral to a third phase of said energy winding is coupled with a third branch switch across a portion of a third capacitance corresponding to said third energy phase, said third branch switch gated by said control circuit in response to a third voltage corresponding to a third selected branch winding and said voltage and current corresponding to said energy winding.

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