IP Library Granted Patent US 9,608,545
Granted Patent B1
US 9,608,545 · App. 15/058,635 · Granted Mar 28, 2017

Switching interference suppression in motor driving circuits using space vector pulse width modulation (PWM)

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Quick Facts
Patent No.
US 9,608,545
App. No.
15/058,635
Granted
Mar 28, 2017
Kind
B1
Abstract

Circuits and methods for driving a load are disclosed. An exemplary driving circuit may include a plurality of switching devices and a controller electrically connected to the plurality of switching devices. The controller may be configured to provide a switching signal for controlling switching operations of the switching devices. The controller may also be configured to determine whether the switching signal falls within a predetermined dead zone. When it is determined that the switching signal falls within the predetermined dead zone, the controller may be configured to modify the switching signal by moving a space vector corresponding to the switching signal to a boundary of the predetermined dead zone. In addition, the controller may be configured to provide the modified switching signal to the switching devices.

Claims (53)

1. A driving circuit for driving a load, comprising:

a plurality of switching devices; and

a controller electrically connected to the plurality of switching devices, wherein the controller is configured to:

provide a switching signal for controlling switching operations of the switching devices;

determine whether the switching signal falls within a predetermined dead zone, the predetermined dead zone having a lower limit and a higher limit;

when it is determined that the switching signal falls within the predetermined dead zone, modify the switching signal by moving a space vector corresponding to the switching signal to a boundary of the predetermined dead zone; and

provide the modified switching signal to the switching devices;

wherein the controller is configured to determine whether the switching signal falls within the predetermined dead zone by:

determining whether a decomposition coefficient of the space vector corresponding to the switching signal is between the lower and higher limits, the decomposition coefficient corresponding to a proportion of the space vector decomposed along a boundary of a sector in which the space vector is located, wherein the sector is defined by two adjacent switching vectors corresponding to two different switching states of the plurality of switching devices; and

determining that the switching signal falls within the predetermined dead zone when it is determined that the decomposition coefficient of the space vector corresponding to the switching signal is between the lower and higher limits.

2. The driving circuit of claim 1 , wherein the controller is configured to:

replace the decomposition coefficient with one of the higher or the lower limit that is closer to the decomposition coefficient.

3. The driving circuit of claim 1 , wherein the controller is configured to:

modify the switching signal by projecting the space vector corresponding to the switching signal to a closest boundary of the predetermined dead zone, wherein a line connecting the space vector corresponding to the switching signal and a space vector corresponding to the modified switching signal is perpendicular to the closest boundary.

4. The driving circuit of claim 1 , wherein the controller is configured to:

determine whether the switching signal falls within an overlapping area of first and second predetermined dead zones; and

when it is determined that the switching signal falls within the overlapping area of the first and second dead zones, modify the switching signal by moving the space vector corresponding to the switching signal to an intersection between a first boundary of the first dead zone and a second boundary of the second dead zone.

5. The driving circuit of claim 1 , wherein the predetermined dead zone indicates a time interval in which no switching event is allowed.

6. The driving circuit of claim 1 , wherein the plurality of switching devices include insulated gate bipolar transistors (IGBTs).

7. A method for driving a load, comprising:

providing a switching signal for controlling switching operations of a plurality of switching devices;

determining whether the switching signal falls within a predetermined dead zone, the predetermined dead zone having a lower limit and a higher limit;

when it is determined that the switching signal falls within the predetermined dead zone, modifying the switching signal by moving a space vector corresponding to the switching signal to a boundary of the predetermined dead zone; and

providing the modified switching signal to the switching devices;

wherein determining whether the switching signal falls within the predetermined dead zone includes:

determining whether a decomposition coefficient of the space vector corresponding to the switching signal is between the lower and higher limits, the decomposition coefficient corresponding to a proportion of the space vector decomposed along a boundary of a sector in which the space vector is located, wherein the sector is defined by two adjacent switching vectors corresponding to two different switching states of the plurality of switching devices; and

determining that the switching signal falls within the predetermined dead zone when it is determined that the decomposition coefficient of the space vector corresponding to the switching signal is between the lower and higher limits.

8. The method of claim 7 , comprising:

replacing the decomposition coefficient with one of the higher or the lower limit that is closer to the decomposition coefficient.

9. The method of claim 7 , comprising:

modifying the switching signal by projecting the space vector corresponding to the switching signal to a closest boundary of the predetermined dead zone, wherein a line connecting the space vector corresponding to the switching signal and a space vector corresponding to the modified switching signal is perpendicular to the closest boundary.

10. The method of claim 7 , comprising:

determining whether the switching signal falls within an overlapping area of first and second predetermined dead zones; and

when it is determined that the switching signal falls within the overlapping area of the first and second dead zones, modifying the switching signal by moving the space vector corresponding to the switching signal to an intersection between a first boundary of the first dead zone and a second boundary of the second dead zone.

11. The method of claim 7 , wherein the predetermined dead zone indicates a time interval in which no switching event is allowed.

12. A driver integrated circuit (IC) for controlling a driving circuit, the driver IC comprising:

a memory storing software instructions for providing a switching signal for controlling switching operations of a plurality of switching devices of the driving circuit; and

a processing device communicatively connected with the memory, wherein the software instructions, when executed by the processing device, cause the processing device to perform operations including:

determining whether the switching signal falls within a predetermined dead zone, the predetermined dead zone having a lower limit and a higher limit;

when it is determined that the switching signal falls within the predetermined dead zone, modifying the switching signal by moving a space vector corresponding to the switching signal to a boundary of the predetermined dead zone; and

providing the modified switching signal to the switching devices;

wherein determining whether the switching signal falls within the predetermined dead zone includes:

determining whether a decomposition coefficient of the space vector corresponding to the switching signal is between the lower and higher limits, the decomposition coefficient corresponding to a proportion of the space vector decomposed along a boundary of a sector in which the space vector is located, wherein the sector is defined by two adjacent switching vectors corresponding to two different switching states of the plurality of switching devices; and

determining that the switching signal falls within the predetermined dead zone when it is determined that the decomposition coefficient of the space vector corresponding to the switching signal is between the lower and higher limits.

13. The driver IC of claim 12 , wherein the operations include:

replacing the decomposition coefficient with one of the higher or the lower limit that is closer to the decomposition coefficient.

14. The driver IC of claim 12 , wherein the operations include:

modifying the switching signal by projecting the space vector corresponding to the switching signal to a closest boundary of the predetermined dead zone, wherein a line connecting the space vector corresponding to the switching signal and a space vector corresponding to the modified switching signal is perpendicular to the closest boundary.

15. The driver IC of claim 12 , wherein the operations include:

determining whether the switching signal falls within an overlapping area of first and second predetermined dead zones; and

when it is determined that the switching signal falls within the overlapping area of the first and second dead zones, modifying the switching signal by moving the space vector corresponding to the switching signal to an intersection between a first boundary of the first dead zone and a second boundary of the second dead zone.

16. The driver IC of claim 12 , wherein the predetermined dead zone indicates a time interval in which no switching event is allowed.

17. The driver IC of claim 12 , wherein the plurality of switching devices include insulated gate bipolar transistors (IGBTs).

Assignments (10)
SECURITY INTEREST Recorded Sep 25, 2024
From: FARADAY&FUTURE, INC.
To: SENYUN INTERNATIONAL LTD.
Reel/Frame 069048/0500 →
SECURITY INTEREST Recorded Aug 15, 2022
From: FARADAY&FUTURE INC.
To: FF SIMPLICY VENTURES LLC
Reel/Frame 061176/0756 →
RELEASE OF SECURITY INTEREST RECORDED AT REEL/FRAME 050234/0069 Recorded Jun 8, 2022
From: ARES CAPITAL CORPORATION, AS SUCCESSOR COLLATERAL AGENT
To: CITY OF SKY LIMITED; EAGLE PROP HOLDCO LLC; FARADAY & FUTURE INC.; FARADAY FUTURE LLC; FF EQUIPMENT LLC; FF HONG KONG HOLDING LIMITED; FF INC.; FF MANUFACTURING LLC; ROBIN PROP HOLDCO LLC; SMART KING LTD.; SMART TECHNOLOGY HOLDINGS LTD.; FARADAY SPE, LLC
Reel/Frame 060314/0263 →
ACKNOWLEDGEMENT OF SUCCESSOR COLLATERAL AGENT UNDER INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Jul 29, 2021
From: BIRCH LAKE FUND MANAGEMENT, LP, AS RETIRING AGENT
To: ARES CAPITAL CORPORATION, AS SUCCESSOR AGENT
Reel/Frame 057019/0140 →
SECURITY INTEREST Recorded Oct 14, 2020
From: ROYOD LLC
To: BIRCH LAKE FUND MANAGEMENT, LP
Reel/Frame 054076/0157 →
ACKNOWLEDGEMENT OF SUCCESSOR COLLATERAL AGENT UNDER INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Mar 5, 2020
From: BIRCH LAKE FUND MANAGEMENT, LP, AS RETIRING AGENT
To: ROYOD LLC, AS SUCCESSOR AGENT
Reel/Frame 052102/0452 →
SECURITY INTEREST Recorded May 1, 2019
From: CITY OF SKY LIMITED; EAGLE PROP HOLDCO LLC; FARADAY FUTURE LLC; FE EQUIPMENT LLC; FF HONG KONG HOLDING LIMITED; FF INC.; FF MANUFACTURING LLC; ROBIN PROP HOLDCO LLC; SMART KING LTD.; SMART TECHNOLOGY HOLDINGS LTD.; FARADAY SPE, LLC; FARADAY & FUTURE INC.
To: BIRCH LAKE FUND MANAGEMENT, LP
Reel/Frame 050234/0069 →
RELEASE OF SECURITY INTEREST Recorded Jan 14, 2019
From: SEASON SMART LIMITED
To: FARADAY&FUTURE INC.
Reel/Frame 048069/0704 →
SECURITY INTEREST Recorded Dec 28, 2017
From: FARADAY&FUTURE INC.
To: SEASON SMART LIMITED
Reel/Frame 044969/0023 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2016
From: YIM, JUNG SIK; HITI, SILVA; SCHULZ, STEVEN E.
To: FARADAY&FUTURE INC.
Reel/Frame 037896/0439 →