TY - GEN
T1 - Theoretical and Simulation-Based Validation of Switching Counts in Cascaded H-bridge Five-Level Inverters with Carrier Phase-Shifted SPWM Towards Orbital Power Systems for SpaceX AI Data Centers
AU - Li, Zhengxing
AU - Li, Jinfeng
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - To address the challenge of indistinguishable switching events in timing diagrams of pulse width modulation (PWM) under high carrier frequencies for modern multilevel inverters, e.g., cascaded H-bridge (CHB) inverters, this research introduces a robust calculation framework for identifying the Metal-Oxide-Semiconductor Field-Effect Transistor (MOSFET) switching counts by integrating theoretical derivation with low-frequency carrier simulation. Focusing on a single-phase five-level CHB inverter controlled by carrier phase-shifted sinusoidal PWM (CPS-SPWM), this work establishes a verbalized relationship where the switching frequency is determined by the ratio of the carrier and modulation frequencies. Validation through a reduced-carrier simulation demonstrates that the scaled results are highly consistent with theoretical predictions (0% deviation). This approach effectively eliminates the visualization constraints associated with high-frequency waveforms and provides a precise quantitative basis for switching loss assessment, demonstrating significant engineering value and application potential in guiding the modulation strategy optimization for multilevel inverter-based power electronic subsystems targeting motor drives for the renewable energy industry towards the net-zero vision. The validated framework not only supports loss assessment for terrestrial renewable energy systems but also extends to the design of efficient, high-power-density power electronic subsystems for emerging solar-powered orbital applications, e.g., SpaceX's AI satellite data centers, where reliable power management via accurate switching loss prediction is paramount towards space-based AI infrastructure.
AB - To address the challenge of indistinguishable switching events in timing diagrams of pulse width modulation (PWM) under high carrier frequencies for modern multilevel inverters, e.g., cascaded H-bridge (CHB) inverters, this research introduces a robust calculation framework for identifying the Metal-Oxide-Semiconductor Field-Effect Transistor (MOSFET) switching counts by integrating theoretical derivation with low-frequency carrier simulation. Focusing on a single-phase five-level CHB inverter controlled by carrier phase-shifted sinusoidal PWM (CPS-SPWM), this work establishes a verbalized relationship where the switching frequency is determined by the ratio of the carrier and modulation frequencies. Validation through a reduced-carrier simulation demonstrates that the scaled results are highly consistent with theoretical predictions (0% deviation). This approach effectively eliminates the visualization constraints associated with high-frequency waveforms and provides a precise quantitative basis for switching loss assessment, demonstrating significant engineering value and application potential in guiding the modulation strategy optimization for multilevel inverter-based power electronic subsystems targeting motor drives for the renewable energy industry towards the net-zero vision. The validated framework not only supports loss assessment for terrestrial renewable energy systems but also extends to the design of efficient, high-power-density power electronic subsystems for emerging solar-powered orbital applications, e.g., SpaceX's AI satellite data centers, where reliable power management via accurate switching loss prediction is paramount towards space-based AI infrastructure.
KW - carrier phase-shifted PWM
KW - cascaded H-bridge
KW - five-level inverter
KW - MOSFET switching count
KW - MOSFET switching loss
KW - multilevel inverter
KW - orbital power systems
KW - power converters
KW - renewable energy systems
KW - space power electronics
KW - SpaceX
UR - https://www.scopus.com/pages/publications/105043598296
U2 - 10.1109/AEEES69423.2026.11556830
DO - 10.1109/AEEES69423.2026.11556830
M3 - Conference contribution
AN - SCOPUS:105043598296
T3 - 8th Asia Energy and Electrical Engineering Symposium, AEEES 2026
SP - 180
EP - 184
BT - 8th Asia Energy and Electrical Engineering Symposium, AEEES 2026
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 8th Asia Energy and Electrical Engineering Symposium, AEEES 2026
Y2 - 27 March 2026 through 30 March 2026
ER -