Han Zhang, Rui Liu, Yunwei Li
Current grid codes require grid-forming (GFM) inverters to provide voltage support capability during grid faults to ensure stability and resilience of power systems. While research on voltage support capability for GFM inverters with adaptive virtual impedance (AVI) under symmetrical grid faults has been conducted, its findings cannot be directly applied to asymmetrical grid faults (ASGFs). This limitation arises because ASGFs introduce negative- and zero-sequence networks, significantly complicating the theoretical analysis. Given the prevalence and complexity of ASGFs, a comprehensive theoretical framework for analyzing voltage support capability is essential. To address this gap, this article first presents the implementation of AVI for GFM inverters under ASGFs. Positive-, negative-, and zero-sequence networks are then established to model the system, and a key assumption regarding voltages at fault locations and the X/R ratio of AVI is rigorously validated through quantitative analysis. Based on this verified assumption and the derived sequence networks, the voltage support capability is systematically analyzed and visualized using phasor diagrams. Furthermore, the optimal phase angle of the AVI is derived to maximize the voltage support capability, and its influence on transient stability margin is analyzed. Ultimately, experimental results demonstrate the effectiveness of the presented AVI, as well as the key assumption, the voltage support capability analysis and the transient stability margin evaluation for GFM inverters under ASGFs.