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MQ
Verified CAS / Academic Author2 Decoded Studies

Prof. MU Qing

China Electric Power Research Institute, Beijing 100192, China

Co-Affiliations:School of Electrical Engineering, Beijing Jiaotong University

Research Publications & English Decoded Briefs

Showing 2 publications
Power Automation Equipment2026DOI: 10.16081/j.epae.202606022

A Blocking-State Prediction Method for MMC Oriented to Large-Step Electromagnetic Transient Real-Time Simulation

Real-time electromagnetic transient simulation of modular multilevel converters (MMCs) on multi-core CPU platforms at large time steps is constrained by the difficulty of predicting diode conduction states during blocking operation. Conventional direct prediction methods sample node voltages at the previous time step and extrapolate the next switching state; at 50 μs, however, multiple natural commutation events can occur within a single step, producing over-shoot, numerical oscillation, and elevated prediction failure rates. This work proposes a blocking-state prediction method grounded in the internal topological and electrical constraints of submodules. Diodes exhibiting identical behavior under blocking are aggregated into a unified equivalent circuit, and a constraint-based state prediction mechanism with enhanced robustness is constructed, eliminating reliance on high-speed FPGA timestamping or variable-step rollback. Offline and real-time simulations on the ADPSS platform demonstrate that at a 50 μs step the proposed method maintains computational error within 3‰–7‰, substantially reduces prediction failure probability relative to direct prediction, and completes a single simulation step in approximately 22.23 μs on a multi-core CPU architecture, satisfying the 50 μs real-time constraint. The method provides a viable pathway for efficient CPU-based real-time simulation of large-scale MMC systems.

Power Automation Equipment2026DOI: 10.16081/j.epae.202605011

Constant-Parameter VBR Modeling and Analysis of Synchronous Generators Considering Magnetic Saturation Characteristics

Traditional electromagnetic transient simulation of synchronous generators suffers from insufficient numerical stability, low computational efficiency, and inadequate representation of magnetic saturation. To improve the reliability of power grid security and stability analysis, this paper proposes an improved modeling scheme based on the voltage-behind-reactance (VBR) method, focusing on the performance deficiencies of conventional current-source equivalent models. The scheme constructs a decoupled machine-network interface circuit with constant resistance-inductance branches via constant-parameterization, employs piecewise linearization of the flux-current characteristic curve to accurately represent magnetic saturation, and adopts a hybrid explicit-implicit Euler discretization to avoid algebraic loops. Validation on a single-machine infinite-bus benchmark and fault condition tests on the IEEE 14-bus system using MATLAB/Simulink demonstrate that the proposed model significantly enhances computational efficiency and numerical stability for large-step simulations while maintaining excellent accuracy in fault transient scenarios. Compared with the MATLAB/Simulink SPS model, the proposed model achieves a 55.6% improvement in computational efficiency under equal simulation accuracy, with two-norm voltage errors of 0.33% and 0.3% at nodes 5 and 9, and current errors of 0.51% and 0.41%, respectively. The model is suitable for large-scale electromagnetic transient simulation analysis of power systems.