Method and apparatus for controlling operation of a rotary electric machine
US-2021159826-A1 · May 27, 2021 · US
US12237791B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12237791-B2 |
| Application number | US-202318182640-A |
| Country | US |
| Kind code | B2 |
| Filing date | Mar 13, 2023 |
| Priority date | Mar 13, 2023 |
| Publication date | Feb 25, 2025 |
| Grant date | Feb 25, 2025 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A method, apparatus, and control system are described for operating a multiphase motor drive system including a rotary electric machine and an inverter. An AC choke filter is arranged proximal to output leads from the inverter. A reference temperature associated with the AC choke filter is determined along with an operating point of the electric machine. Operation of the inverter is controlled based upon a temperature of the AC choke filter, the reference temperature, and an operating point of the electric machine. This includes modifying a switching frequency and a PWM type in a manner that reduces the AC choke filter temperature by reducing the occurrence of switching events to protect the AC choke filter based on temperature feedback.
Opening claim text (preview).
What is claimed is: 1. A control system for a multi-phase rotary electric machine, comprising: an inverter configured to transfer electric energy between a rechargeable energy storage device (RESS) and the multi-phase rotary electric machine (electric machine) via a plurality of output leads; an AC choke filter that includes an inductor that is in-line or is placed, wherein the AC choke filter is arranged proximal to the plurality of output leads; a temperature monitor, wherein the temperature monitor is arranged to determine a temperature of the AC choke filter; and a controller, the controller being operatively connected to the inverter and in communication with the temperature monitor; the controller including an instruction set, the instruction set being executable to: determine a reference temperature associated with the AC choke filter, determine an operating point of the electric machine, and control operation of the inverter based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine. 2. The control system of claim 1 , wherein the instruction set is executable to control the inverter to operate the electric machine based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine. 3. The control system of claim 1 , wherein the instruction set being executable to control operation of the inverter based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine comprises the instruction set being executable to adjust a switching frequency for the inverter to achieve a temperature of the AC choke filter that is less than the reference temperature for the operating point of the electric machine. 4. The control system of claim 3 , wherein the instruction set being executable to adjust the switching frequency for the inverter to achieve a temperature of the AC choke filter that is less than the reference temperature for the operating point of the electric machine comprises the instruction set being executable to reduce the switching frequency for the inverter to reduce the temperature of the AC choke filter. 5. The control system of claim 1 , wherein the instruction set being executable to control operation of the inverter comprises the instruction set being executable to determine a PWM control strategy for the inverter based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine. 6. The control system of claim 5 , wherein the PWM control strategy comprises one of a space-vector PWM (SVPWM) switching strategy and a discontinuous PWM (DPWM) switching strategy, and wherein the instruction set being executable to control operation of the inverter based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine comprises the instruction set being executable to transition between the DPWM switching strategy and the SVPWM switching strategy to achieve a temperature of the AC choke filter that is less than the reference temperature for the operating point of the electric machine. 7. The control system of claim 5 , comprising the instruction set being executable to: determine, for each of a plurality of candidate PWM control strategies, an effect on a noise-vibration-harshness (NVH) parameter; and select one of the candidate PWM control strategies based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine, wherein the one of the candidate PWM control strategies is selected to minimize the effect on the NVH parameter. 8. A control system for a multi-phase rotary electric machine (electric machine), comprising: an inverter configured to transfer electric energy between a rechargeable energy storage device (RESS) and the electric machine via a plurality of output leads; an AC choke filter that includes an inductor that is in-line or is placed, wherein the AC choke filter is arranged proximal to the plurality of output leads; a temperature monitor, wherein the temperature monitor is arranged to determine a temperature of the AC choke filter; and a controller, the controller being operatively connected to the inverter and in communication with the temperature monitor; the controller including an instruction set, the instruction set being executable to: determine a commanded output from the electric machine; determine a reference temperature associated with the AC choke filter, determine an operating point of the electric machine, and control operation of the inverter in response to the commanded output and based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine. 9. The control system of claim 8 wherein the instruction set is executable to control the inverter to operate the electric machine in response to the commanded output and based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine. 10. The control system of claim 8 , wherein the instruction set being executable to control operation of the inverter in response to the commanded output and based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine comprises the instruction set being executable to adjust a switching frequency for the inverter to achieve a temperature of the AC choke filter that is less than the reference temperature for the operating point of the electric machine. 11. The control system of claim 10 , wherein the instruction set being executable to adjust the switching frequency for the inverter to achieve a temperature of the AC choke filter that is less than the reference temperature for the operating point of the electric machine comprises the instruction set being executable to reduce the switching frequency for the inverter to reduce the temperature of the AC choke filter. 12. The control system of claim 8 , wherein the instruction set being executable to control operation of the inverter comprises the instruction set being executable to determine a PWM control strategy for the inverter in response to the commanded output and based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine. 13. The control system of claim 12 , wherein the PWM control strategy comprises one of a space-vector PWM (SVPWM) switching strategy and a discontinuous PWM (DPWM) switching strategy, and wherein the instruction set being executable to control operation of the inverter in response to the commanded output and based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine comprises the instruction set being executable to transition between the DPWM switching strategy and the SVPWM switching strategy to achieve a temperature of the AC choke filter that is less than the reference temperature for the operating point of the electric machine. 14. The control system of claim 12 , comprising the instruction set being executable to: determine, for each of a plurality of candidate PWM control strategies, an effect on a noise-vibration-harshness (NVH) parameter; and select one of the candidate PWM control strategies based upon the temperature of the AC choke filter, the reference temperature, and the operating point of the electric machine, wherein the one of the candidate PWM control strate
Control strategies in general, e.g. linear type, e.g. P, PI, PID, using robust control · CPC title
based on the temperature of a drive component or a semiconductor component · CPC title
Reduction of harmonics · CPC title
wherein the PWM mode is adapted on the running conditions of the motor, e.g. the switching frequency · CPC title
characterised by the circuit arrangement or by the kind of wiring · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.