Differential Protection Scheme for Distribution Lines Considering the Role of Photovoltaic Grid-connected Control With Integrated Multiple Harmonic Information
|更新时间:2026-01-08
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Differential Protection Scheme for Distribution Lines Considering the Role of Photovoltaic Grid-connected Control With Integrated Multiple Harmonic Information
籍宏震, 王媛媛, 叶宇轩, et al. Differential Protection Scheme for Distribution Lines Considering the Role of Photovoltaic Grid-connected Control With Integrated Multiple Harmonic Information[J]. 2026, 46(1): 255-271.
DOI:
籍宏震, 王媛媛, 叶宇轩, et al. Differential Protection Scheme for Distribution Lines Considering the Role of Photovoltaic Grid-connected Control With Integrated Multiple Harmonic Information[J]. 2026, 46(1): 255-271. DOI: 10.13334/j.0258-8013.pcsee.241564.
Differential Protection Scheme for Distribution Lines Considering the Role of Photovoltaic Grid-connected Control With Integrated Multiple Harmonic Information
To mitigate the impact of photovoltaic (PV) control strategies on the protection of distribution network lines
this paper proposes a novel differential protection scheme based on fault component current amplitude
phase
and harmonic content information. When a short-circuit fault occurs in the distribution network
the response patterns of the inner and outer loop control signals of the PV grid-connection to different fault types and transition resistance levels are analyzed. Furthermore
by incorporating the control effects of the proportional-integral (PI) within the converter
analytical expressions for the fundamental wave and the second and third harmonic components of the fault current in the PV output are derived
and an equivalent model of the PV with parallel output from multi-frequency current sources is constructed. By synthesizing various fault component information
under low transition resistance
protection criteria are established using the amplitude-phase characteristics of the fundamental frequency of the fault component. Under high transition resistance
the protection’s ability to withstand transition resistance is enhanced by integrating the second and third harmonic content of the fault component
ultimately achieving an integration of PV control characteristics and differential protection scheme design. A simulation model is constructed in Matlab for verification
and the results demonstrate that the protection scheme can adapt to various fault scenarios and possesses strong tolerance to transition resistance.