Common-mode noise suppression and DC ripple reduction techniques

DE602019072838T2Inactive Publication Date: 2025-07-23HAMILTON SUNDSTRAND CORP
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
DE602019072838
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-04-12
Filing Date
2019-11-22
Publication Date
2025-07-23
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Conventional motor drive systems face challenges in achieving effective common mode noise cancellation and DC ripple reduction while minimizing weight and size, which is critical for electric and hybrid electric propulsion systems, and there is a need for economically viable solutions.

Method used

Implementing a motor drive system with phase-shifted three-phase winding sets and carrier signals to cancel common mode noise and reduce DC ripple, utilizing a 60-degree electrical displacement of motor windings and 180-degree signal shift for inverters, thereby minimizing the need for EMI filters and DC link capacitors.

Benefits of technology

This approach achieves significant noise reduction and capacitor volume reduction, resulting in a lighter, more efficient, and cost-effective motor drive system with improved power density.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader
Need to check novelty before this filing date? Find Prior Art

Description

Background Technological Field

[0001] The present disclosure relates to motor drive systems, and more particularly to reducing common mode noise cancellation and reducing ripple in motor drives.Description of Related Art

[0002] A variety of devices are known in the motor drive art. In typical motor drives, EMI filter and DC link capacitors are designed and sized to meet EMI and power quality standards and requirements. However, these passive components can contribute to over 60% of the total system weight and volume. For more electric and / or hybrid electric propulsion driven aircrafts, reducing the weight of the electrical components is crucial to system integration, as well as to meeting fuel efficiency and performance requirements.

[0003] The conventional methods and systems have generally been considered satisfactory for their intended purpose. However, there is still a need in the art for systems and devices having improved noise cancellation and ripple reduction while also being smaller and lighter. There also remains a need in the art for such system and components that are economically viable. The present disclosure may provide a solution for at least one of these remaining challenges.

[0004] BASLER BRUNO ET AL: "Reduction of DC link capacitor stress for double three-phase drive unit through shifted control and phase displacement", 2015 IEEE 11TH INTERNATIONAL CONFERENCE ON POWER ELECTRONICS AND DRIVE SYSTEMS, IEEE, 9 June 2015 (2015-06-09), pages 887-889, XP033194831, DOI: 10.1109 / PEDS.2015.7203488 teaches control strategies for multi-phase motors, ZHANG XUNING ET AL: "Impact of interleaving on common-mode EMI filter weight reduction of paralleled three-phase voltage-source converters", 2013 IEEE ENERGY CONVERSION CONGRESS AND EXPOSITION, IEEE, 15 September 2013 (2013-09-15), pages 1669-1675, XP032516303, DOI: 10. 1 109 / ECCE.2013.6646907 relates to the impact of interleaving angle on weight reduction in motor drive systems. US 2010 / 072928 A1 teaches an inverter drive system for vehicles. WO 2014 / 207858 A1 teaches a rotating machine drive system. US 2019 / 047613 A1 teaches a control apparatus for a three-phase rotary machine.Summary of the Invention

[0005] A motor drive system is provided as defined by claim 1.

[0006] A method of limiting common noise in a motor is provided as defined by claim 5.

[0007] These and other features of the systems and methods of the subject disclosure will become more readily apparent to those skilled in the art from the following detailed description of the preferred embodiments taken in conjunction with the drawings.Brief Description of the Drawings

[0008] So that those skilled in the art to which the subject invention appertains will readily understand how to make and use the devices and methods of the subject invention without undue experimentation, preferred embodiments thereof will be described in detail herein below with reference to certain figures, wherein: Fig. 1 is a schematic block diagram of a motor drive system; Fig. 2 is a schematic view of a motor Fig. 1, showing a connection to a pair of inverters; and Fig. 3 is a graphical representation of common mode noise reduction at different motor winding phase displacement angles and under different module indexes. Detailed Description

[0009] Reference will now be made to the drawings wherein like reference numerals identify similar structural features or aspects of the subject invention. For purposes of explanation and illustration, and not limitation, a partial view of an exemplary embodiment of a motor drive system in accordance with the invention is shown in Fig. 1 and is designated generally by reference character 100. This disclosure describes techniques to cancel common mode noise and reduce high frequency and low frequency DC ripple current in order minimize the EMI filter and DC link capacitor in a motor controller, and as a result significantly improve the motor drive system power density. The high frequency DC ripple is from the pulse width modulation (PWM) switching ripple, and the low frequency DC ripple is from the third harmonic of the output fundamental frequency.

[0010] Other aspects of the motor drive system are provided in Fig. 2, as will be described. The methods and systems of the invention can be used to decrease the overall weight of the system and to decrease common mode noise in the motor drive system.

[0011] Fig. 1 shows a motor drive system 100 including a motor 102 including two three-phase winding sets 104, 106, wherein each three-phase winding set 104, 106 is connected to a respective three-phase three-level inverter 108, 110. A common DC link capacitor 112 is connected to both of the three-phase winding sets 108, 110. A common EMI filter 114 is connected to both of the three phase winding sets. The outputs of each of the three-level inverters 108, 108 are connected to each set of the three-phase windings of the motor 104, 106.

[0012] The carrier signals used to generate pulse width modulated gate signals for each of the inverters 108, 110 are phase shifted with respect to each other by 180 degrees. The two sets 104, 106 of the three-phases of the motor are phase shifted with respect to each other by 60 degrees electrically. By displacing the two sets of motor windings by 60 degrees electrically, significant amount of common mode noise can be canceled (ideally completely cancelation) and hence minimize the EMI filter; and by shifting the carrier signals of the two inverters by 180 degrees, up to 80% of the high frequency DC current ripple reduction can be realized and reducing the volume of the DC link capacitor by up to 60%.

[0013] A method of limiting common noise in a motor is also disclosed, the method includes driving AC current from a first set three-phase winding set 104 of a motor 102 to a first inverter 108 and driving AC current from a second three-phase winding set 106 of the motor to a second inverter 110 shifted by 180 degrees with respect to the first three-phase winding set 104. If two sets of three phase motor windings are displaced by 60 degrees electrically, and if the rising and falling edges of the inverter switching transients are identical, then common mode noise can be completely canceled and hence eliminate the need for EMI filter. However there is typically some difference in the rising and falling edges of the semiconductor switching waveforms due to intrinsic device characteristics and external parasitics and component parameter mismatches. As a result complete common mode noise cancelation is typically not realistic, but by displacing the motor winding sets by 60 degrees results in significant noise reduction. Fig. 3 shows the common mode noise reduction at different motor winding phase displacement angles and under different module indexes from circuit analysis with realistic switching transients.

[0014] Another passive element that contributes significantly to system weight and volume is the DC link capacitor and the high frequency DC ripple current content is a major sizing factor. By shifting the inverter phases signals by 180 degrees the high frequency DC ripple current can be reduced by up to 80%. A 60% capacitor weight reduction is possible by offsetting the carrier signals to the two sets of inverters by 180 degrees. High frequency components, which are sourced through the DC link capacitors, are significantly reduced with the shift in carrier signals.

[0015] The methods and systems of the present disclosure, as described above and shown in the drawings, provide for electrical power system with superior properties including increased reliability and efficiency, and reduced size, weight, complexity, and / or cost. While the apparatus and methods of the subject disclosure have been showing and described with reference to embodiments, those skilled in the art will readily appreciate that changes and / or modifications may be made thereto without departing from the scope of the invention as defined by the claims.

Claims

1. A motor drive system comprising: a motor (102) including two three-phase winding sets (104, 106), wherein each three-phase winding set is connected to a respective three-phase three-level inverter (108,110); wherein DC current from a first three-phase winding set (104) of the motor is driven to a first inverter (108); wherein DC current from a second three-phase winding set (106) of the motor is driven to a second inverter (110) which is shifted by 180 degrees with respect to the first three-phase winding set; and characterized in that: DC current from the first inverter is driven to an EMI filter (114), wherein a falling edge of each inverter-switching transient is identical; wherein the EMI filter (114) is connected to both of the first three-phase winding set and the second three-phase winding set.

2. The motor drive system of claim 1, wherein a common DC link capacitor (112) is connected to both of the three-phase winding sets.

3. The motor drive system of any preceding claim, wherein first and second phases of each three-phase winding set are phase shifted with respect to a third phase of the three-phase winding set.

4. The motor drive system of claim 3, wherein the first and second phases of each three-phase winding set are shifted by 60 degrees with respect to a third phase of the three-phase winding set.

5. A method of limiting common noise in a motor comprising: driving DC current from a first three-phase winding set of a motor to a first inverter; driving DC current from a second three-phase winding set of the motor to a second inverter shifted by 180 degrees with respect to the first three-phase winding set; characterized by: driving DC current from the first inverter to an EMI filter, wherein a falling edge of each inverter-switching transient is identical; wherein the EMI filter (114) is connected to both of the first three-phase winding set and the second three-phase winding set.

6. The method of claim 5, further comprising driving DC current from the second inverter directly to the EMI filter.