Abstract
With the advent of wide-bandgap devices, power converters are achieving higher performance switching capabilities. As a result, manufacturers are increasingly focused on reducing the complexity of power converters and enhancing the production and assembly process by transitioning from modular to highly integrated designs, which are high-density bidirectional converters (HDBCs). As a result, near-field (NF) coupling is becoming a concern for stable operation in HDBCs. Optimization for the power loop and gate drive (GD) can be achieved through computational electromagnetics tools and circuit simulators, allowing for a detailed visualization of NF distributions. In addition, the GD impedance can be fine-tuned by optimizing the gate-source trace layout, while near-electric field coupling must be considered when implementing a shielding layer between the GD and high dv/dt nodes. This work presents a workflow for GD and power loop NF coupling modeling and optimization in HDBCs, aimed at mitigating issues such as mistriggering of switching devices and electromagnetic interference concerns in low-voltage systems.
| Original language | English |
|---|---|
| Pages (from-to) | 1334-1351 |
| Number of pages | 18 |
| Journal | IEEE Transactions on Electromagnetic Compatibility |
| Volume | 67 |
| Issue number | 4 |
| DOIs | |
| State | Published - 2025 |
Keywords
- Bidirectional converter
- computational electromagnetics modeling (CEM)
- decoupling capacitor (DCAP)
- gate drive (GD)
- high-density converter
- near-field (NF)
- power loop
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