Commutation Behavior and Stray Inductance Analysis of a FC-3L-BDC Phase-Leg PEBB
Abstract
:1. Introduction
- The selection procedure of IGBT devices regarding isolation and blocking voltages.
- Step-by-step analysis of how the stray inductance is presented in the commutation paths of FC-3L-BDC and the influences of stray inductance on the switching behavior of IGBT devices.
- Design guidelines of an FC-3L-BDC phase-leg PEBB with an extremely low commutation stray inductance and high isolation voltage.
- The accurate stray inductance measurement of a capacitor and single IGBT in a half-bridge package and stray inductance estimation and verification of the FC-3L-BDC phase-leg PEBB.
- Checking for the turn-off and coupling overvoltage of IGBTs over the entire current range, and snappy reverse recovery of FWDs at one-tenth of the nominal current of IGBT devices.
2. Operation Principle of FC-3L-BDC
3. Analysis of Commutation Paths of FC-3L-BDC
3.1. Commutation Paths
3.2. The Influences of Commutation Path Stray Inductance
4. The Design of FC-3L-BDC Phase-Leg PEBB
4.1. Selection of IGBT Devices
4.2. Description of PEBB
- Cost effectiveness, by using industry-standardized IGBT devices and metal film capacitors.
- Production efficiency, by using a laminated bus bar.
- Maintainability, by using force-air cooling and a single phase-leg configuration. Only the flying capacitors are integrated in the PEBB. The high-voltage-side DC-link capacitors are installed in the converter cabinet. In this approach, the weight of the PEBB can be minimized.
- A symmetrical layout should be adopted. Actually, if the placement direction of IGBT devices is consistent and aligned, the symmetry of the layout can be guaranteed.
- Reduce the difference in stray inductance between the outer and inner commutation paths. Reduce Lσ_O as much as possible.
- Completely overlap the copper planar sheets in each layer.
- Since the commutation current directions of “H−” and “H+” layers are opposite, the two layers should be arranged next to each other.
- Since the commutation current directions of “FLY+”, “FLY−”, and “LA” layers are opposite, the three layers should be arranged next to each other.
4.3. Clearance and Creepage Distances
5. Stray Inductance Estimation
5.1. Lumped Stray Inductance Model of PEBB with Mutual Coupling Consideration
5.2. Estimation of Stray Inductance of Laminated Bus Bars
5.3. Stray Inductance of IGBT
5.4. Stray Inductance of Flying Capacitor and DC-Link Capacitor
5.5. Effective Stray Inductance of Commutation Loop
6. Experimental Results
6.1. Test Bench Description
6.2. Double-Pulse Test for the FC-3L-BDC Phase-Leg PEBB
6.3. The Influence of Current Paths on IGBT Switching Characteristics
6.4. The Influence of IGBT Position on IGBT Switching Characteristics
6.5. Stray Inductance Measurements
6.6. Comparison of Outer and Inner Commutation Paths
6.7. Switching Energy Loss Measurements
6.8. Verification of Snappy Reverse Recovery in the FWD
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Energy Transmit Direction | Relationship of High-Voltage Side and Low-Voltage Side | Working Mode |
---|---|---|
High-Voltage Side to Low-Voltage Side | VL < VH/2 | Buck, 0 < D < 0.5 |
High-Voltage Side to Low-Voltage Side | VL > VH/2 | Buck, 0.5 < D < 1 |
Low-Voltage Side to High-Voltage Side | VL < VH/2 | Boost, 0.5 < D < 1 |
Low-Voltage Side to High-Voltage Side | VL > VH/2 | Boost, 0 < D < 0.5 |
Working Mode | Active IGBT | Reverse Recovery FWD | Commutation Paths |
---|---|---|---|
BUCK, 0 < D < 0.5 | V1 | V4 | CDC_LINK-V1-CFLY-V4 |
V2 | V3 | CFLY-V2-V3 | |
BUCK, 0.5 < D < 1 | V1 | V4 | CDC_LINK-V1-CFLY-V4 |
V2 | V3 | CFLY-V2-V3 | |
BOOST, 0 < D < 0.5 | V4 | V1 | CDC_LINK-V1-CFLY-V4 |
V3 | V2 | CFLY-V2-V3 | |
BOOST, 0.5 < D < 1 | V4 | V1 | CDC_LINK-V1-CFLY-V4 |
V3 | V2 | CFLY-V2-V3 |
LA | FLY+ | FLY− | |
LA | 19.00 nH | −2.29 nH | −9.78 nH |
FLY+ | −2.29 nH | 46.17 nH | −29.95 nH |
FLY− | −9.78 nH | −29.95 nH | 42.73 nH |
FLY+ | FLY− | H+ | CC | H− | |
FLY+ | 44.57 nH | −29.13 nH | −4.86 nH | −0.07 nH | −3.78 nH |
FLY− | −29.13 nH | 42.82 nH | 7.11 nH | 0.04 nH | −10.58 nH |
H+ | −4.86 nH | 7.11 nH | 83.89 nH | −0.09 nH | −79.38 nH |
CC | −0.07 nH | 0.04 nH | −0.09 nH | 2.32 nH | −1.54 nH |
H− | −3.78 nH | −10.58 nH | −79.38 nH | −1.54 nH | 108.64 nH |
Capacitor | Double-Pulse Test Method | Impedance Analysis at 1.22 MHz | Resonance Method |
---|---|---|---|
Flying capacitor | 19.33 nH | 20.3 nH | 42.8 nH |
DC-link capacitor | 22.24 nH | 23.22 nH | 54.8 nH |
Active Switch | Gate Signal of V1 | Gate Signal of V2 | Gate Signal of V3 | Gate Signal of V4 |
---|---|---|---|---|
FC charge | On | Off | Off | On |
V1 | Double pulse | Off | Off | Off |
V2 | Off | Double pulse | Off | Of |
V3 | Off | Off | Double pulse | Off |
V4 | Off | Off | Off | Double pulse |
Device under Test | Ppk_on (kW) | Eon (mJ) | Ppk_off (kW) | Eoff (mJ) | Ppk_rr (kW) | Err (mJ) |
---|---|---|---|---|---|---|
V1 (D < 0.5) | 1052 | 455 | 1540 | 592 | 628 | 189 |
V1 (0.5 < D < 1) | 1050 | 457 | 1537 | 591 | 631 | 191 |
V2 (D < 0.5) | 1215 | 487 | 1537 | 560 | 560 | 151 |
V2 (0.5 < D < 1) | 1210 | 492 | 1543 | 567 | 566 | 157 |
Device under Test | Ppk_on (kW) | Eon (mJ) | Ppk_off (kW) | Eoff (mJ) | Ppk_rr (kW) | Err (mJ) |
---|---|---|---|---|---|---|
V1 (D < 0.5) | 1052 | 455 | 1540 | 592 | 628 | 189 |
V2 (D < 0.5) | 1215 | 487 | 1537 | 560 | 560 | 151 |
V3 (D < 0.5) | 1219 | 483 | 1529 | 558 | 556 | 147 |
V4 (D < 0.5) | 1048 | 458 | 1537 | 590 | 631 | 191 |
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Liu, H.; Xie, S.; Dou, Z.; Qi, Y.; Liu, F.; Tan, Y. Commutation Behavior and Stray Inductance Analysis of a FC-3L-BDC Phase-Leg PEBB. Energies 2022, 15, 9651. https://doi.org/10.3390/en15249651
Liu H, Xie S, Dou Z, Qi Y, Liu F, Tan Y. Commutation Behavior and Stray Inductance Analysis of a FC-3L-BDC Phase-Leg PEBB. Energies. 2022; 15(24):9651. https://doi.org/10.3390/en15249651
Chicago/Turabian StyleLiu, Haitao, Shunmeng Xie, Zechun Dou, Yu Qi, Feng Liu, and Yifan Tan. 2022. "Commutation Behavior and Stray Inductance Analysis of a FC-3L-BDC Phase-Leg PEBB" Energies 15, no. 24: 9651. https://doi.org/10.3390/en15249651
APA StyleLiu, H., Xie, S., Dou, Z., Qi, Y., Liu, F., & Tan, Y. (2022). Commutation Behavior and Stray Inductance Analysis of a FC-3L-BDC Phase-Leg PEBB. Energies, 15(24), 9651. https://doi.org/10.3390/en15249651