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Verified CAS / Academic Author2 Decoded Studies

Prof. GUO Xizheng

School of Electrical Engineering, Beijing Jiaotong University, Beijing 100044, 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.202605012

Real-Time Simulation Modeling Method for Power Electronic Converters Based on Network Tearing

Complex converter topologies operating at elevated switching frequencies impose severe hardware resource and simulation-step constraints on FPGA-based hardware-in-the-loop (HIL) real-time simulation. Conventional binary-resistor modeling requires storing a distinct nodal admittance matrix for every switch state and resolving the algebraic loop between switch voltage and switch state through iterative computation, which inflates memory consumption and renders the achievable time step unpredictable. This work proposes a network tearing technique (NTT) that decomposes the high-order nodal voltage equations of the converter into multiple low-order subsystems linked only through equivalent circuits at tearing points, permitting independent modeling of each subsystem and a substantial reduction in stored matrix coefficients. The switch-state decision process is simplified and reformulated as a predictor-corrector scheme that replaces iterative solving, eliminating zero-crossing oscillation while shortening the critical solution path. An LLC resonant converter was modeled offline and validated against MATLAB/Simulink with a computational error not exceeding 0.1%. The FPGA implementation, using lookup-table coefficient updates with dimensioned hardware logic and variable bit widths, achieves a 70 ns simulation step. Real-time waveforms deviate from the hardware experimental platform by no more than 5%, and hardware memory consumption is reduced by 50% relative to the monolithic iterative model.

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.