Solid-State Transformers in Modern Distribution Grids: A Comprehensive Review of Principles, Topologies, Key Technologies, Applications, and Challenges
Abstract
1. Introduction
2. Operating Principles and Development History of SSTs
2.1. Operating Principles of SSTs
2.2. Evolution of SST Technology
2.2.1. Stage of Theoretical Exploration and Concept Establishment
2.2.2. Stage of Architecture Formation and Prototype Validation
2.2.3. Stage of Engineering Demonstration and Application
2.2.4. Stage of Device Upgrading and Performance Iteration
3. SST Topologies
3.1. Single-Stage and Two-Stage Topologies
3.2. Three-Stage Topologies
3.2.1. CHB-Based Topology
3.2.2. NPC-Based Topology
3.2.3. MMC-Based Topology
3.3. Emerging Topologies
4. Core Components and Key Control Technologies of SSTs
4.1. Core Components of SSTs
4.1.1. Power Semiconductor Devices
4.1.2. HF Magnetic Components
4.2. Key Control Technologies of SSTs
4.2.1. Input-Stage AC/DC Control Technology
4.2.2. Isolation-Stage DC/DC Control Technology
4.2.3. Output-Stage DC/AC Control Technology
5. Application Scenarios and Demonstration Projects of SSTs
5.1. Application Scenarios of SSTs
5.1.1. Data Centers
5.1.2. Charging Stations
5.1.3. Smart Distribution Grids and Microgrids
5.1.4. Military and Specialized Industrial Applications
5.2. Demonstration Applications of SSTs
6. Challenges Facing SSTs
6.1. Technical Challenges
6.2. Application Challenges
6.2.1. System Cost
6.2.2. Thermal Management
6.2.3. EMC
6.2.4. Reliability and High-Frequency Magnetic Integration
7. Conclusions and Future Outlook
- (1)
- Device level
- (2)
- System level
- (3)
- Control level
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Characteristic Dimension | Conventional Transformer | SST |
|---|---|---|
| Working principle | Electromagnetic induction (50/60 Hz) | High-frequency (HF) power electronic conversion (≥1 kHz) |
| Volume/Weight | Large and heavy | Small and lightweight |
| Core function |
|
|
| Controllability | uncontrollable | Real-time and flexible control |
| Response speed | Slow (millisecond-level) | Extremely fast (microsecond-level) |
| Efficiency | High over a wide load range | Lower self-efficiency with system-level loss reduction potential |
| Fault handling |
|
|
| Comparative Analysis of SST Topologies: Topology Classification | Single-Stage [49,50,51,52,53,54] | Multi-Stage | |||
|---|---|---|---|---|---|
| Two-Stage [54,55] | Three-Stage [54,56,57,58] | ||||
| Cascaded H-Bridge (CHB) | Neutral Point Clamped (NPC) | Modular MULTILEVEL Converter (MMC) | |||
| Power/ Voltage rating | 2–10 kVA 20–480 V | 5–100 kVA 220 V–10 kV | 1 kVA–3.3 MVA 39 V–5 kV | ||
| Efficiency Potential | High | Medium | Lower theoretical potential; high pratical efficiency possible with optimized design | ||
| Functionality and Control Flexibility | Low | Medium | High | ||
| Applications |
|
|
| ||
| Advantages |
|
|
|
|
|
| Disadvantages |
|
|
|
|
|
| Cost | Low | Medium | Medium | Low | High |
| Characteristic | Si | SiC | GaN |
|---|---|---|---|
| Voltage rating | 600 V–6.5 kV | 650 V–15 kV+ | 200–650 V |
| Switching frequency |
(SJ MOSFETs)
(IGBT/GTO) |
|
|
| Conduction loss | High | Low | Extremely low |
| Electron mobility (cm2/V·s) | 1350 | 370–900 | 1700 |
| Switching loss | High | Low | Extremely low |
| Thermal conductivity (W/cm·K) | 1.5 | 3.2–4.9 | 2.5 |
| Cost ($/A) | 0.15–0.2 | 0.45–0.80 | 0.3–0.5 |
| Application scenarios |
|
|
|
| Category | Initial Permeability /(H/m) | Saturation Flux Density /(T) | Frequency Range /(kHz) | Power Range /(MW) | Advantages | Applications |
|---|---|---|---|---|---|---|
| Silicon steel | 1000–4000 | 1.8–2.03 | 0.05–0.4 | 1–100+ |
|
|
| Ferrite | <2000 | 0.3–0.5 | 50–1000 | <0.1 |
|
|
| Amorphous & nanocrystalline alloy | <100,000 | 1.5–2 | 1–100 | 0.01–1 |
|
|
| Control Method | Advantages | Disadvantages | Applicable Scenarios |
|---|---|---|---|
| Conventional PI/voltage, current injection control [99,100] |
|
|
|
| SMC [101] |
|
|
|
| MPC [104,105,106,107,108] |
|
|
|
| GFM (VSG/droop control) [109,110,111] |
|
|
|
| Country/Region | Year | Rated Capacity/Voltage | Frequency | Conversion Efficiency | Application Scenario | Implementer |
|---|---|---|---|---|---|---|
| USA [134,135] | 2011 | 1 MVA, 13.8 kV | 20 kHz | 97% | Navy laboratory AC/DC hybrid grid | GE and Wolfspeed |
| Switzerland [39] | 2012 | 1.2 MVA, 15 kV | 1.75 kHz | 96% | Geneva railway system | ABB and Swiss Federal Railways |
| China [95] | 2015 | 500 kVA, 10 kV | 12 kHz | 93.72% | Wuhan 10 kV power grid | Team of Prof. Mao Chengxiong, North China Electric Power University and Wuhan Iron and Steel (Group) Corp. |
| China [136,137] | 2017–2020 | 3 MVA, 10 kV | / | 97.89% | Suzhou Tongli AC/DC hybrid grid (EV charging station, data center) | State Grid Jiangsu Electric Power Co., Ltd. Suzhou Power Supply Branch |
| Korea [138] | 2018 | 150 kVA, 13.2 kV | 10 kHz | / | AC/DC hybrid grid | Sungkyunkwan University (SKKU) |
| USA [139] | 2022 | 50 kVA/7.2 kV | 16 kHz | 97.8% | EV charging station, data center power supply | National Renewable Energy Laboratory (NREL) |
| Switzerland [140,141] | 2022 | 166 kVA/7 kV | / | 99% | Medium–high-voltage DC grid hybrid smart grid | ETH Zurich |
| Singapore [142,143] | 2023 | 1.5 MW, 22 kV | / | 98.5% | EV charging station | Nanyang Technological University (NTU), Singapore, Tanah Merah Control, National University of Singapore |
| China [144] | 2024 | 2 MW/10 kV | 14 kHz | 98.3% | LVDC grid interface | Edon Research Laboratory |
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Zhang, J.; Wen, C.; Wang, D.; Chen, Y.; Liu, S.; Gao, T.; Li, X. Solid-State Transformers in Modern Distribution Grids: A Comprehensive Review of Principles, Topologies, Key Technologies, Applications, and Challenges. Electronics 2026, 15, 2839. https://doi.org/10.3390/electronics15132839
Zhang J, Wen C, Wang D, Chen Y, Liu S, Gao T, Li X. Solid-State Transformers in Modern Distribution Grids: A Comprehensive Review of Principles, Topologies, Key Technologies, Applications, and Challenges. Electronics. 2026; 15(13):2839. https://doi.org/10.3390/electronics15132839
Chicago/Turabian StyleZhang, Jiatian, Chuanxin Wen, De’an Wang, Yonghua Chen, Shaohua Liu, Tian Gao, and Xiang Li. 2026. "Solid-State Transformers in Modern Distribution Grids: A Comprehensive Review of Principles, Topologies, Key Technologies, Applications, and Challenges" Electronics 15, no. 13: 2839. https://doi.org/10.3390/electronics15132839
APA StyleZhang, J., Wen, C., Wang, D., Chen, Y., Liu, S., Gao, T., & Li, X. (2026). Solid-State Transformers in Modern Distribution Grids: A Comprehensive Review of Principles, Topologies, Key Technologies, Applications, and Challenges. Electronics, 15(13), 2839. https://doi.org/10.3390/electronics15132839

