Movatterモバイル変換


[0]ホーム

URL:


US20160261217A1 - Induction motor flux and torque control - Google Patents

Induction motor flux and torque control
Download PDF

Info

Publication number
US20160261217A1
US20160261217A1US15/156,183US201615156183AUS2016261217A1US 20160261217 A1US20160261217 A1US 20160261217A1US 201615156183 AUS201615156183 AUS 201615156183AUS 2016261217 A1US2016261217 A1US 2016261217A1
Authority
US
United States
Prior art keywords
flux
stator
rotor
reference frame
commanded
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US15/156,183
Inventor
Yifan Tang
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Atieva Inc
Original Assignee
Atieva Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Atieva IncfiledCriticalAtieva Inc
Priority to US15/156,183priorityCriticalpatent/US20160261217A1/en
Publication of US20160261217A1publicationCriticalpatent/US20160261217A1/en
Assigned to TRINITY CAPITAL FUND III, L. P.reassignmentTRINITY CAPITAL FUND III, L. P.INTELLECTUAL PROPERTY SECURITY AGREEMENTAssignors: ATIEVA, INC
Assigned to YINLONG ELECTRIC VEHICLE (HK) GROUP LIMITEDreassignmentYINLONG ELECTRIC VEHICLE (HK) GROUP LIMITEDSECURITY INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: ATIEVA USA, INC, ATIEVA, INC.
Assigned to ATIEVA INC.reassignmentATIEVA INC.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: ATIEVA USA INC.
Assigned to ATIEVA USA, INC., AVB METRICS, LLC, ATIEVA, INC.reassignmentATIEVA USA, INC.RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS).Assignors: TRINITY CAPITAL FUND III, L.P.
Assigned to ATIEVA USA, INC., AVB METRICS, LLC, ATIEVA, INC.reassignmentATIEVA USA, INC.RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS).Assignors: YINLONG ELECTRIC VEHICLE (HK) GROUP LIMITED
Assigned to AYAR THIRD INVESTMENT COMPANYreassignmentAYAR THIRD INVESTMENT COMPANYSECURITY INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: ATIEVA, INC.
Assigned to ATIEVA, INC.reassignmentATIEVA, INC.RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS).Assignors: AYAR THIRD INVESTMENT COMPANY
Abandonedlegal-statusCriticalCurrent

Links

Images

Classifications

Definitions

Landscapes

Abstract

An induction motor controller is provided. The induction motor controller includes a first module that derives a commanded stator voltage vector, in a stator flux reference frame, via a rotor flux regulator loop and a torque regulator loop, which process at least partially in the stator flux reference frame. The induction motor controller includes a second module that processes the commanded stator voltage vector to produce AC (alternating current) power for an induction motor.

Description

Claims (20)

What is claimed is:
1. An induction motor controller, comprising:
a first module that derives a commanded stator voltage vector, in a stator flux reference frame, via a rotor flux regulator loop and a torque regulator loop, which process at least partially in the stator flux reference frame; and
a second module that processes the commanded stator voltage vector to produce AC (alternating current) power for an induction motor.
2. The induction motor controller ofclaim 1, wherein:
the second module transforms the commanded stator voltage vector from the stator flux reference frame to a phase voltage reference frame, applying vector rotation according to a stator flux angle;
the second module generates pulse width modulation switching controls for a DC (direct current) to AC inverter from the commanded stator voltage vector as transformed to the phase voltage reference frame; and
the second module generates three-phase AC power for the induction motor from the pulse width modulation switching controls.
3. The induction motor controller ofclaim 1, further comprising:
a third module that produces a torque, a stator flux angle, a rotor flux, a stator current vector expressed in the stator flux reference frame, and a rotor current vector expressed in the stator flux reference frame, from a stator voltage vector expressed in a phase voltage reference frame, a stator current of at least two phases, and a rotational speed of a rotor of the induction motor.
4. The induction motor controller ofclaim 3, wherein:
the rotor flux is coupled from the third module to a flux regulator of the first module;
the torque is coupled from the third module to a torque regulator of the first module;
the stator flux angle is coupled from the third module to the second module;
the stator voltage vector expressed in the phase voltage reference frame is produced by the second module from the commanded stator voltage vector expressed in the stator flux reference frame; and
the stator current of at least two phases is provided by the second module.
5. The induction motor controller ofclaim 1, further comprising:
a third module that applies a rotor flux current model and a rotor flux voltage model to generate a rotor flux and a torque, wherein the rotor flux regulator loop includes the rotor flux as an input to the first module, and the torque regulator loop includes the torque as an input to the first module.
6. The induction motor controller ofclaim 1, further comprising:
a fourth module that generates a commanded torque and a commanded rotor flux, limiting the commanded torque to less than or equal to a maximum commanded torque and limiting the commanded rotor flux to greater than or equal to a minimum commanded rotor flux and less than or equal to a maximum commanded rotor flux, the commanded torque and the commanded rotor flux coupled as inputs to the first module.
7. The induction motor controller ofclaim 1, wherein:
the first module includes a torque regulator that processes a portion of the torque regulator loop and produces a projection of the commanded stator voltage vector onto a quadrature axis in the stator flux reference frame; and
the first module includes a rotor flux regulator that processes a portion of the rotor flux regulator loop and produces a projection of the commanded stator voltage vector onto a direct axis in the stator flux reference frame.
8. An induction motor controller, comprising:
a torque regulator that processes in a stator flux reference frame a commanded torque, a torque, a commanded rotor flux, and a rotational speed of a rotor of an induction motor, to produce a commanded stator voltage projected onto a quadrature axis in the stator flux reference frame;
a rotor flux regulator that processes in the stator flux reference frame the commanded rotor flux and a rotor flux, to produce the commanded stator voltage projected onto a direct axis in the stator flux reference frame; and
a stator flux reference frame to phase voltage reference frame vector rotation module that applies a stator flux angle to transform the commanded stator voltage, as projected onto the direct axis and the quadrature axis, from a first vector expressed in the stator flux reference frame to a second vector expressed in the phase voltage reference frame.
9. The induction motor controller ofclaim 8, further comprising:
a flux and torque estimator that generates the stator flux angle, the rotor flux, the torque, a rotor current vector expressed in the stator flux reference frame, and a stator current vector expressed in the stator flux reference frame, from a stator voltage vector expressed in the phase voltage reference frame, a stator current of at least two phases, and the rotational speed of the rotor; and
the flux and torque estimator including a phase voltage reference frame to stator flux reference frame vector rotation module that transforms current vectors from the phase voltage reference frame to the stator flux reference frame.
10. The induction motor controller ofclaim 8, further comprising a flux and torque estimator that includes:
a stator phase current reference frame to phase voltage reference frame vector rotation module that transforms a stator current of at least two phases to a stator current vector expressed in the phase voltage reference frame;
a rotor flux current model that generates a first rotor flux vector expressed in the phase voltage reference frame from the stator current vector expressed in the phase voltage reference frame and the rotational speed of the rotor;
a rotor flux voltage model that generates a second rotor flux vector expressed in the phase voltage reference frame from a stator voltage vector expressed in the phase voltage reference frame, the stator current vector expressed in the phase voltage reference frame, and an estimation correction factor;
an estimator regulator that generates the estimation correction factor from the first rotor flux vector expressed in the phase voltage reference frame and the second rotor flux vector expressed in the phase voltage reference frame;
a rotor flux magnitude calculator that generates the rotor flux from the first rotor flux vector expressed in the phase voltage reference frame;
a stator flux calculator that generates a stator flux vector expressed in the phase voltage reference frame from the second rotor flux vector expressed in the phase voltage reference frame and the stator current vector expressed in the phase voltage reference frame;
a rotor current calculator that generates a rotor current vector expressed in the phase voltage reference frame from the first rotor flux vector expressed in the phase voltage reference frame and the stator flux vector expressed in the phase voltage reference frame;
a torque calculator that generates the torque from the stator current vector expressed in the phase voltage reference frame and the stator flux vector expressed in the phase voltage reference frame;
a stator flux angle calculator that generates the stator flux angle from the stator flux vector expressed in the phase voltage reference frame; and
a phase voltage reference frame to stator flux reference frame vector rotation module that generates the rotor current vector expressed in the stator flux reference frame and the stator current vector expressed in the stator flux reference frame, from the rotor current vector expressed in the phase voltage reference frame, the stator current vector expressed in the phase voltage reference frame, and the stator flux angle.
11. The induction motor controller ofclaim 10, wherein:
the estimator regulator includes a PI (proportional-integral) controller;
the stator flux calculator includes a model of inductances for windings of the induction motor;
the stator flux reference frame to phase voltage reference frame vector rotation module performs a second transformation that is an inverse of a first transformation performed by the phase voltage reference frame to stator flux reference frame vector rotation module; and
each of the rotor flux current model, the rotor flux voltage model, the rotor flux magnitude calculator, the rotor current calculator, the stator flux calculator, the torque calculator and the stator flux angle calculator is lookup-table-based or real-time-calculation-based.
12. The induction motor controller ofclaim 8, further comprising:
a space vector modulation module that generates pulse width modulation (PWM) switching controls, and generates a stator voltage vector expressed in the phase voltage reference frame, from the commanded stator voltage received as the second vector and a DC (direct current) voltage of a power source; and
a DC to AC (alternating current) inverter that generates three-phase AC power for the induction motor from the PWM switching controls.
13. The induction motor controller ofclaim 8, further comprising:
a flux and torque limiter that generates a minimum commanded rotor flux, a maximum commanded rotor flux, and a maximum commanded torque, from a stator current vector expressed in the stator flux reference frame, a rotor current vector expressed in the stator flux reference frame, an inverter temperature, a motor temperature, and the rotational speed of the rotor.
14. The induction motor controller ofclaim 8, further comprising a flux and torque limiter that includes:
a rotor current limiter that generates a maximum rotor current from the rotational speed of the rotor, a rotor current vector expressed in the stator flux reference frame, and a motor temperature;
a field weakener that generates a maximum stator flux from the rotational speed of the rotor and a DC (direct current) voltage of a power source;
a stator current limiter that generates a maximum stator current from the rotational speed of the rotor, a stator current vector expressed in the stator flux reference frame, and an inverter temperature;
a low rotor flux limiter that generates a minimum commanded rotor flux from the maximum rotor current and the rotational speed of the rotor;
a high rotor flux limiter that generates a maximum commanded rotor flux from the maximum stator flux and the maximum stator current;
a stator-based torque limiter that generates a maximum stator-based commanded torque from the maximum stator flux and the maximum stator current;
a rotor-based torque limiter that generates a maximum rotor-based commanded torque from the maximum rotor current and the maximum commanded rotor flux; and
a final torque limiter that generates a maximum commanded torque from the maximum rotor-based commanded torque and the maximum stator-based commanded torque;
wherein each of the rotor current limiter, the field weakener, the stator current limiter, the low rotor flux limiter, the high rotor flux limiter, the stator-based torque limiter, and the rotor-based torque limiter is lookup-table-based or real-time-calculation-based.
15. The induction motor controller ofclaim 8, further comprising a flux and torque limiter that includes:
a rotor current limiter that decreases a maximum rotor current in response to an increased motor temperature;
a field weakener that decreases a maximum stator flux in response to the rotational speed of the rotor exceeding a base speed and further decreases the maximum stator flux in response to a decreasing DC (direct current) voltage of a power source;
a stator current limiter that decreases a maximum stator current in response to an increased inverter temperature;
a low rotor flux limiter that sets a minimum commanded rotor flux consistent with readiness to accelerate the rotor;
a high rotor flux limiter that sets a maximum commanded rotor flux based upon the maximum stator flux and the maximum stator current;
a stator-based torque limiter that sets a maximum stator-based commanded torque based upon a product of the maximum stator flux and the maximum stator current;
a rotor-based torque limiter that sets a maximum rotor-based commanded torque based upon a product of the maximum rotor current and the maximum commanded rotor flux; and
a final torque limiter that sets a maximum commanded torque selected as a lesser of the maximum rotor-based commanded torque and the maximum stator-based commanded torque.
16. The induction motor controller ofclaim 8, further comprising:
a torque command generator that generates the commanded torque from a maximum commanded torque and an initial commanded torque, the maximum commanded torque applied to the initial commanded torque as a torque limit; and
a rotor flux command generator that generates the commanded rotor flux from a minimum commanded rotor flux, a maximum commanded rotor flux, and the commanded torque, the minimum commanded rotor flux and the maximum commanded rotor flux applied to the commanded rotor flux as flux limits.
17. The induction motor controller ofclaim 8, wherein:
the torque regulator includes a proportional-integral (PI) controller having a difference between the commanded torque and the torque as an input; and
the torque regulator includes a feedforward summation having as inputs an output of the PI controller and a product of the commanded rotor flux and the rotational speed of the rotor, the feedforward summation having as an output the commanded stator voltage projected onto the quadrature axis in the stator flux reference frame.
18. The induction motor controller ofclaim 8, wherein:
the rotor flux regulator includes a proportional-integral-derivative (PID) controller having as inputs the commanded rotor flux and the rotor flux, and having as an output the commanded stator voltage projected onto the direct axis in the stator flux reference frame.
19. A method of controlling an induction motor, comprising:
generating a stator voltage vector, in a stator flux reference frame, the generating including,
generating a quadrature axis projection of a commanded stator voltage vector expressed in the stator flux reference frame from a commanded torque, a torque, a commanded rotor flux, and a rotational speed of a rotor of the induction motor; and
generating a direct axis projection of the commanded stator voltage vector expressed in the stator flux reference frame from the commanded rotor flux and a rotor flux, wherein the stator voltage vector, in the stator flux reference frame, includes the direct axis projection of the commanded stator voltage vector and the quadrature axis projection of the commanded stator voltage vector;
transforming the stator voltage vector from the stator flux reference frame to a phase voltage reference frame; and
producing alternating current (AC) power for an induction motor, from the stator voltage vector of the phase voltage reference frame, wherein at least one step of the method is performed by a processor.
20. The method ofclaim 19, wherein generating the quadrature axis projection of the commanded stator voltage vector expressed in the stator flux reference frame includes:
subtracting the torque from the commanded torque to form a torque error;
adding a first term proportional to the torque error and a second term proportional to an integral of the torque error to form a PI (proportional-integral) controller output;
multiplying the rotational speed of the rotor by the commanded rotor flux to form a feedforward quantity; and
adding the feedforward quantity to the PI controller output to form the quadrature axis projection of the commanded stator voltage vector expressed in the stator flux reference frame.
US15/156,1832013-07-232016-05-16Induction motor flux and torque controlAbandonedUS20160261217A1 (en)

Priority Applications (1)

Application NumberPriority DateFiling DateTitle
US15/156,183US20160261217A1 (en)2013-07-232016-05-16Induction motor flux and torque control

Applications Claiming Priority (2)

Application NumberPriority DateFiling DateTitle
US13/948,326US9344026B2 (en)2013-07-232013-07-23Induction motor flux and torque control
US15/156,183US20160261217A1 (en)2013-07-232016-05-16Induction motor flux and torque control

Related Parent Applications (1)

Application NumberTitlePriority DateFiling Date
US13/948,326ContinuationUS9344026B2 (en)2013-07-232013-07-23Induction motor flux and torque control

Publications (1)

Publication NumberPublication Date
US20160261217A1true US20160261217A1 (en)2016-09-08

Family

ID=52389924

Family Applications (2)

Application NumberTitlePriority DateFiling Date
US13/948,326Active2034-05-09US9344026B2 (en)2013-07-232013-07-23Induction motor flux and torque control
US15/156,183AbandonedUS20160261217A1 (en)2013-07-232016-05-16Induction motor flux and torque control

Family Applications Before (1)

Application NumberTitlePriority DateFiling Date
US13/948,326Active2034-05-09US9344026B2 (en)2013-07-232013-07-23Induction motor flux and torque control

Country Status (4)

CountryLink
US (2)US9344026B2 (en)
EP (1)EP3025422B1 (en)
CN (1)CN105580266B (en)
WO (1)WO2015013304A1 (en)

Cited By (8)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US10277115B2 (en)2016-04-152019-04-30Emerson Climate Technologies, Inc.Filtering systems and methods for voltage control
US10284132B2 (en)2016-04-152019-05-07Emerson Climate Technologies, Inc.Driver for high-frequency switching voltage converters
US10305373B2 (en)2016-04-152019-05-28Emerson Climate Technologies, Inc.Input reference signal generation systems and methods
US10312798B2 (en)2016-04-152019-06-04Emerson Electric Co.Power factor correction circuits and methods including partial power factor correction operation for boost and buck power converters
US10437317B2 (en)2016-04-152019-10-08Emerson Climate Technologies, Inc.Microcontroller architecture for power factor correction converter
US10656026B2 (en)2016-04-152020-05-19Emerson Climate Technologies, Inc.Temperature sensing circuit for transmitting data across isolation barrier
US10763740B2 (en)2016-04-152020-09-01Emerson Climate Technologies, Inc.Switch off time control systems and methods
US10804829B2 (en)*2018-07-262020-10-13Siemens Gamesa Renewable Energy A/SAssessing wind turbine generator rotor temperature

Families Citing this family (17)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US9722524B2 (en)*2012-12-062017-08-01Nidec CorporationMotor controller
CN105432015A (en)*2013-08-092016-03-23株式会社安川电机 Motor drive system and motor control device
JP6211353B2 (en)*2013-09-032017-10-11Ntn株式会社 Electric vehicle control device
US9831812B2 (en)*2015-02-272017-11-28Nutech VenturesDirect torque control of AC electric machines
CN104967378B (en)*2015-05-272018-10-23北京金风科创风电设备有限公司 Method and device for suppressing vibration and noise of wind power generator
US9755567B2 (en)*2015-11-042017-09-05GM Global Technology Operations LLCDetermination of permanent magnetic flux in an electric machine
CN111295831A (en)*2017-08-292020-06-16Gkn汽车有限公司 Method for Field Oriented Control of Permanently Excited Synchronous Reluctance Machines
WO2019109102A1 (en)2017-12-012019-06-06Future Motion, Inc.Control system for electric vehicles
WO2019113537A1 (en)2017-12-072019-06-13Future Motion, Inc.Dismount controls for one-wheeled vehicle
US20200127588A1 (en)*2018-10-192020-04-23GM Global Technology Operations LLCSymmetric control of an asymmetric ac motor via a flux regulator operating based on a targeted time constant versus sampling period ratio
US10456658B1 (en)2019-02-112019-10-29Future Motion, Inc.Self-stabilizing skateboard
EP3700081A1 (en)*2019-02-212020-08-26Siemens AktiengesellschaftMethod for operating a system comprising at least two mechanically coupled asynchronous motors, computer program with an implementation of the method and system operating according to the method
US11273364B1 (en)2021-06-302022-03-15Future Motion, Inc.Self-stabilizing skateboard
US11299059B1 (en)2021-10-202022-04-12Future Motion, Inc.Self-stabilizing skateboard
CN114362602B (en)*2022-01-182023-06-13华侨大学 A control method, device, equipment and readable storage medium of a multi-phase motor
US11890528B1 (en)2022-11-172024-02-06Future Motion, Inc.Concave side rails for one-wheeled vehicles
US12187373B1 (en)2024-02-292025-01-07Future Motion, Inc.Skateboard footpads having foot engagement structures and traction inserts

Citations (22)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4418308A (en)*1982-08-091983-11-29General Electric CompanyScalar decoupled control for an induction machine
US6137258A (en)*1998-10-262000-10-24General Electric CompanySystem for speed-sensorless control of an induction machine
US6281659B1 (en)*1999-03-192001-08-28Fuji Electric Co., Ltd.Induction motor drive and a parameter estimation method thereof
US20050057208A1 (en)*2003-09-172005-03-17Seibel Brian J.Method and apparatus to regulate loads
US20060186914A1 (en)*2005-02-232006-08-24International Rectifier CorporationPhase-loss detection for rotating field machine
US20070035263A1 (en)*2005-08-122007-02-15Siemens Energy & Automation, Inc.System and method for parallel control of variable frequency drives
US20080116842A1 (en)*2006-11-172008-05-22Bing ChengMethod and apparatus for motor control
US20080136380A1 (en)*2003-08-062008-06-12Siemens AktiengesellschaftMethod for Controlled Application of a Stator Current Set Point Value and of a Torque Set Point Value for a Converter-Fed Rotating-Field Machine
US20100090629A1 (en)*2008-10-152010-04-15Tesla Motors, Inc.Flux controlled motor management
US20110241578A1 (en)*2010-03-312011-10-06Hyundai Motor CompanyMethod for controlling permanent magnet synchronous motor
US20120007528A1 (en)*2009-03-302012-01-12Junnosuke NakatsugawaAc motor control device and ac motor driving system
US8115441B2 (en)*2007-07-192012-02-14Hamilton Sundstrand CorporationOn-line measurement of an induction machine's rotor time constant by small signal d-axis current injection
US20120081065A1 (en)*2009-05-182012-04-05Bombardier Transportation GmbhOvercurrent limiting for the closed-loop control of converter-fed three-phase machines
US20120091941A1 (en)*2010-10-152012-04-19Lsis Co., Ltd.Flux controller for induction motor
US20120181970A1 (en)*2006-07-242012-07-19Kabushiki Kaisha ToshibaVariable-flux motor drive system
US20130009575A1 (en)*2011-07-052013-01-10Lsis Co., Ltd.Apparatus for operating interior permanent magnet synchronous motor
US20130088179A1 (en)*2011-10-112013-04-11Mitsubishi Electric CorporationSynchronous machine control apparatus
US20130093370A1 (en)*2011-10-122013-04-18Lsis Co., Ltd.Parameter estimating apparatus for permanent magnet synchronous motor driving system
US20130241449A1 (en)*2012-03-142013-09-19Whirlpool CorporationApparatus and method of braking applied in a laundry treating appliance
US20130249448A1 (en)*2012-03-222013-09-26Mitsubishi Electric CorporationSynchronous machine control apparatus
US20140203754A1 (en)*2013-01-242014-07-24Rolls-Royce PlcMethod of controlling an ac machine and controller for controlling an ac machine
US20150381101A1 (en)*2013-04-012015-12-31Fuji Electric Co., Ltd.Power converter

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
JPS61196787A (en)*1985-02-251986-08-30Fanuc LtdTorque control system for induction motor
US5032771A (en)*1990-08-091991-07-16Allen-Bradley Company, Inc.Slip control based on sensing voltage fed to an induction motor
US5585709A (en)*1993-12-221996-12-17Wisconsin Alumni Research FoundationMethod and apparatus for transducerless position and velocity estimation in drives for AC machines
US6222335B1 (en)*2000-01-272001-04-24General Motors CorporationMethod of controlling a voltage-fed induction machine
US6388419B1 (en)*2000-09-012002-05-14Ford Global Technologies, Inc.Motor control system
US6433506B1 (en)*2001-03-292002-08-13Ford Global Technologies, Inc.Sensorless control system for induction motor employing direct torque and flux regulation
US6924617B2 (en)*2003-06-232005-08-02General Motors CorporationPosition sensorless control algorithm for AC machine
KR100809170B1 (en)2004-05-142008-03-03미쓰비시덴키 가부시키가이샤Synchronous machine control apparatus
US7187155B2 (en)2004-05-142007-03-06Rockwell Automation Technologies, Inc.Leakage inductance saturation compensation for a slip control technique of a motor drive
US7023168B1 (en)2004-09-132006-04-04General Motors CorporationField weakening motor control system and method
US6965212B1 (en)2004-11-302005-11-15Honeywell International Inc.Method and apparatus for field weakening control in an AC motor drive system
WO2006124010A1 (en)2005-05-162006-11-23General Motors CorporationCurrent regulation for a field weakening motor control system and method
US7745949B2 (en)2008-02-262010-06-29General Electric CompanyMethod and apparatus for assembling electrical machines
JP4582168B2 (en)*2008-03-212010-11-17株式会社デンソー Rotating machine control device and rotating machine control system
KR101376389B1 (en)*2010-11-302014-03-20엘에스산전 주식회사Flux controller for induction motor
WO2012063352A1 (en)*2010-11-112012-05-18三菱電機株式会社Motor control system and safety monitoring method therefor
EP2469692B1 (en)2010-12-242019-06-12ABB Research Ltd.Method for controlling a converter
US9608738B2 (en)2012-04-272017-03-28The Board Of Trustees Of The University Of IllinoisSystem and method for broadband doppler compensation

Patent Citations (22)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4418308A (en)*1982-08-091983-11-29General Electric CompanyScalar decoupled control for an induction machine
US6137258A (en)*1998-10-262000-10-24General Electric CompanySystem for speed-sensorless control of an induction machine
US6281659B1 (en)*1999-03-192001-08-28Fuji Electric Co., Ltd.Induction motor drive and a parameter estimation method thereof
US20080136380A1 (en)*2003-08-062008-06-12Siemens AktiengesellschaftMethod for Controlled Application of a Stator Current Set Point Value and of a Torque Set Point Value for a Converter-Fed Rotating-Field Machine
US20050057208A1 (en)*2003-09-172005-03-17Seibel Brian J.Method and apparatus to regulate loads
US20060186914A1 (en)*2005-02-232006-08-24International Rectifier CorporationPhase-loss detection for rotating field machine
US20070035263A1 (en)*2005-08-122007-02-15Siemens Energy & Automation, Inc.System and method for parallel control of variable frequency drives
US20120181970A1 (en)*2006-07-242012-07-19Kabushiki Kaisha ToshibaVariable-flux motor drive system
US20080116842A1 (en)*2006-11-172008-05-22Bing ChengMethod and apparatus for motor control
US8115441B2 (en)*2007-07-192012-02-14Hamilton Sundstrand CorporationOn-line measurement of an induction machine's rotor time constant by small signal d-axis current injection
US20100090629A1 (en)*2008-10-152010-04-15Tesla Motors, Inc.Flux controlled motor management
US20120007528A1 (en)*2009-03-302012-01-12Junnosuke NakatsugawaAc motor control device and ac motor driving system
US20120081065A1 (en)*2009-05-182012-04-05Bombardier Transportation GmbhOvercurrent limiting for the closed-loop control of converter-fed three-phase machines
US20110241578A1 (en)*2010-03-312011-10-06Hyundai Motor CompanyMethod for controlling permanent magnet synchronous motor
US20120091941A1 (en)*2010-10-152012-04-19Lsis Co., Ltd.Flux controller for induction motor
US20130009575A1 (en)*2011-07-052013-01-10Lsis Co., Ltd.Apparatus for operating interior permanent magnet synchronous motor
US20130088179A1 (en)*2011-10-112013-04-11Mitsubishi Electric CorporationSynchronous machine control apparatus
US20130093370A1 (en)*2011-10-122013-04-18Lsis Co., Ltd.Parameter estimating apparatus for permanent magnet synchronous motor driving system
US20130241449A1 (en)*2012-03-142013-09-19Whirlpool CorporationApparatus and method of braking applied in a laundry treating appliance
US20130249448A1 (en)*2012-03-222013-09-26Mitsubishi Electric CorporationSynchronous machine control apparatus
US20140203754A1 (en)*2013-01-242014-07-24Rolls-Royce PlcMethod of controlling an ac machine and controller for controlling an ac machine
US20150381101A1 (en)*2013-04-012015-12-31Fuji Electric Co., Ltd.Power converter

Cited By (13)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US10656026B2 (en)2016-04-152020-05-19Emerson Climate Technologies, Inc.Temperature sensing circuit for transmitting data across isolation barrier
US10284132B2 (en)2016-04-152019-05-07Emerson Climate Technologies, Inc.Driver for high-frequency switching voltage converters
US10305373B2 (en)2016-04-152019-05-28Emerson Climate Technologies, Inc.Input reference signal generation systems and methods
US10312798B2 (en)2016-04-152019-06-04Emerson Electric Co.Power factor correction circuits and methods including partial power factor correction operation for boost and buck power converters
US10320322B2 (en)2016-04-152019-06-11Emerson Climate Technologies, Inc.Switch actuation measurement circuit for voltage converter
US10437317B2 (en)2016-04-152019-10-08Emerson Climate Technologies, Inc.Microcontroller architecture for power factor correction converter
US10277115B2 (en)2016-04-152019-04-30Emerson Climate Technologies, Inc.Filtering systems and methods for voltage control
US10763740B2 (en)2016-04-152020-09-01Emerson Climate Technologies, Inc.Switch off time control systems and methods
US10770966B2 (en)2016-04-152020-09-08Emerson Climate Technologies, Inc.Power factor correction circuit and method including dual bridge rectifiers
US10928884B2 (en)2016-04-152021-02-23Emerson Climate Technologies, Inc.Microcontroller architecture for power factor correction converter
US11387729B2 (en)2016-04-152022-07-12Emerson Climate Technologies, Inc.Buck-converter-based drive circuits for driving motors of compressors and condenser fans
US12136872B2 (en)2016-04-152024-11-05Copeland LpBuck-converter-based drive circuits for driving motors of compressors and condenser fans
US10804829B2 (en)*2018-07-262020-10-13Siemens Gamesa Renewable Energy A/SAssessing wind turbine generator rotor temperature

Also Published As

Publication numberPublication date
US9344026B2 (en)2016-05-17
CN105580266A (en)2016-05-11
US20150028792A1 (en)2015-01-29
EP3025422A4 (en)2018-01-17
EP3025422B1 (en)2024-09-25
WO2015013304A1 (en)2015-01-29
CN105580266B (en)2020-04-21
EP3025422A1 (en)2016-06-01

Similar Documents

PublicationPublication DateTitle
US9344026B2 (en)Induction motor flux and torque control
US10521519B2 (en)Induction motor flux and torque control with rotor flux estimation
CN110224648B (en)Permanent magnet synchronous motor parameter identification and position sensorless control method and system
Yoo et al.Novel speed and rotor position estimation strategy using a dual observer for low-resolution position sensors
JP4989075B2 (en) Electric motor drive control device and electric motor drive system
JP5693652B2 (en) Synchronous machine controller
CN106685304B (en)Optimizing regenerative braking control of an electric motor using a lookup table
Gunabalan et al.Speed sensorless vector control of induction motor drive with PI and fuzzy controller
JP5939316B2 (en) Induction motor control device and induction motor control method
CN103620945A (en)Control device
US11418140B2 (en)Induction motor flux and torque control
KR20210126758A (en) Electric motor drive system and control method
Lin et al.An improved flux observer for sensorless permanent magnet synchronous motor drives with parameter identification
CN109728755A (en)A kind of PMSM inverting TSM control method
JP2011050178A (en)Motor control device and generator control device
Magzoub et al.Analysis and modeling of indirect field-oriented control for PWM-driven induction motor drives
WO2015131182A1 (en)Induction motor flux and torque control
Sayouti et al.Sensor less low speed control with ANN MRAS for direct torque controlled induction motor drive
JP2022083905A (en) Motor control method and motor control system
Ameid et al.Sensorless speed estimation and backstepping control of induction motor drive using model reference adaptive system
Renukrishna et al.Sensorless vector control of induction motor drives using rotor flux observer
JP2003088156A (en)Controller of brushless motor
US20240372494A1 (en)Method for Controlling a Three-Phase Electric Machine and Control Unit and System Thereof
Wang et al.High performance field-weakening control algorithm of sensorless induction motor using speed adaptive full-order observer
Wang et al.A modified discretization method for discrete full-order flux observer of induction motor

Legal Events

DateCodeTitleDescription
ASAssignment

Owner name:TRINITY CAPITAL FUND III, L. P., ARIZONA

Free format text:INTELLECTUAL PROPERTY SECURITY AGREEMENT;ASSIGNOR:ATIEVA, INC;REEL/FRAME:042125/0897

Effective date:20170331

ASAssignment

Owner name:YINLONG ELECTRIC VEHICLE (HK) GROUP LIMITED, HONG KONG

Free format text:SECURITY INTEREST;ASSIGNORS:ATIEVA, INC.;ATIEVA USA, INC;REEL/FRAME:044457/0942

Effective date:20171027

Owner name:YINLONG ELECTRIC VEHICLE (HK) GROUP LIMITED, HONG

Free format text:SECURITY INTEREST;ASSIGNORS:ATIEVA, INC.;ATIEVA USA, INC;REEL/FRAME:044457/0942

Effective date:20171027

ASAssignment

Owner name:ATIEVA INC., CAYMAN ISLANDS

Free format text:ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:ATIEVA USA INC.;REEL/FRAME:046696/0768

Effective date:20180808

ASAssignment

Owner name:ATIEVA, INC., CAYMAN ISLANDS

Free format text:RELEASE BY SECURED PARTY;ASSIGNOR:TRINITY CAPITAL FUND III, L.P.;REEL/FRAME:047529/0619

Effective date:20180912

Owner name:ATIEVA USA, INC., CALIFORNIA

Free format text:RELEASE BY SECURED PARTY;ASSIGNOR:TRINITY CAPITAL FUND III, L.P.;REEL/FRAME:047529/0619

Effective date:20180912

Owner name:AVB METRICS, LLC, CALIFORNIA

Free format text:RELEASE BY SECURED PARTY;ASSIGNOR:TRINITY CAPITAL FUND III, L.P.;REEL/FRAME:047529/0619

Effective date:20180912

ASAssignment

Owner name:ATIEVA, INC., CAYMAN ISLANDS

Free format text:RELEASE BY SECURED PARTY;ASSIGNOR:YINLONG ELECTRIC VEHICLE (HK) GROUP LIMITED;REEL/FRAME:047620/0451

Effective date:20180914

Owner name:ATIEVA USA, INC., CALIFORNIA

Free format text:RELEASE BY SECURED PARTY;ASSIGNOR:YINLONG ELECTRIC VEHICLE (HK) GROUP LIMITED;REEL/FRAME:047620/0451

Effective date:20180914

Owner name:AVB METRICS, LLC, CALIFORNIA

Free format text:RELEASE BY SECURED PARTY;ASSIGNOR:YINLONG ELECTRIC VEHICLE (HK) GROUP LIMITED;REEL/FRAME:047620/0451

Effective date:20180914

ASAssignment

Owner name:AYAR THIRD INVESTMENT COMPANY, SAUDI ARABIA

Free format text:SECURITY INTEREST;ASSIGNOR:ATIEVA, INC.;REEL/FRAME:047199/0221

Effective date:20180916

STCVInformation on status: appeal procedure

Free format text:APPEAL BRIEF (OR SUPPLEMENTAL BRIEF) ENTERED AND FORWARDED TO EXAMINER

ASAssignment

Owner name:ATIEVA, INC., CALIFORNIA

Free format text:RELEASE BY SECURED PARTY;ASSIGNOR:AYAR THIRD INVESTMENT COMPANY;REEL/FRAME:048811/0472

Effective date:20190402

STCVInformation on status: appeal procedure

Free format text:EXAMINER'S ANSWER TO APPEAL BRIEF MAILED

STCVInformation on status: appeal procedure

Free format text:ON APPEAL -- AWAITING DECISION BY THE BOARD OF APPEALS

STCBInformation on status: application discontinuation

Free format text:ABANDONED -- AFTER EXAMINER'S ANSWER OR BOARD OF APPEALS DECISION


[8]ページ先頭

©2009-2025 Movatter.jp