Abstract

The potential of utilizing doubly-fed induction generator (DFIG)-based wind farms to improve power system damping performance and to enhance small signal stability has been proposed by many researchers. However, the simultaneous coordinated tuning of a DFIG power oscillation damper (POD) with other damping controllers is rarely involved. A simultaneous robust coordinated multiple damping controller design strategy for a power system incorporating power system stabilizer (PSS), static var compensator (SVC) POD and DFIG POD is presented in this paper. This coordinated damping control design strategy is addressed as an eigenvalue-based optimization problem to increase the damping ratios of oscillation modes. Both local and inter-area electromechanical oscillation modes are intended in the optimization design process. Wide-area phasor measurement unit (PMU) signals, selected by the joint modal controllability/ observability index, are utilized as SVC and DFIG POD feedback modulation signals to suppress inter-area oscillation modes. The robustness of the proposed coordinated design strategy is achieved by simultaneously considering multiple power flow situations and operating conditions. The recently proposed Grey Wolf optimizer (GWO) algorithm is adopted to efficiently optimize the parameter values of multiple damping controllers. The feasibility and effectiveness of the proposed coordinated design strategy are demonstrated through frequency-domain eigenvalue analysis and nonlinear time-domain simulation studies in two modified benchmark test systems. Moreover, the dynamic response simulation results also validate the robustness of the recommended coordinated multiple damping controllers under various system operating conditions.

Highlights

  • Sustained power system oscillation has become a serious problem for power system operation and control nowadays

  • 1 + sTr where bSVC is the reactance of static var compensator (SVC), Kr and Tr are the gain and time constant of SVC regulator, v, v0ref and vsPOD are system bus voltage, initial reference voltage and additional power oscillation damper (POD) output modulating v min signal of SVC, respectively

  • Since we mainly focus on the electromechanical dynamic behavior of wind generators, the dynamic model of doubly-fed induction generator (DFIG)-based wind turbine depicted in Figure 4 is adopted in this study [35]

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Summary

Introduction

Sustained power system oscillation has become a serious problem for power system operation and control nowadays. The coordinated control of DFIG POD and local PSSs to damp power system oscillations is investigated in [31], and the parameter optimization problem of the damping controllers considering system uncertainties is solved by an improved firefly algorithm. A simultaneous robust coordinated multiple damping controllers design strategy is presented in this paper to suppress local and inter-area low frequency oscillation modes and enhance power. The joint modal controllability/observability index is employed system dynamic stability throughwide-area simultaneously optimizing wide-areadesign signal to choose the most appropriate feedback signals multiple for PODslocal [32].PSSs. POD is adopted in this strategy is addressed as an eigenvalue-based optimization problem [33]. The linear modal analysis and optimization problem, the GWO algorithm, the parameter optimizationtest design procedure for nonlinear time-domain dynamic simulationand of two modified benchmark systems with and the coordinated multiple damping controllers are depicted.

Mathematical
AVR with
DFIG-Based
Linearized Power System Dynamic Model
Selection of the Wide-Area Feedback Signals
Formulation of the Optimization Problem
Application of GWO Algorithm
Case Study of Two-area Kundur Test System
Study System
Eigenvalue Analysis without Controllers and with PSSs Only assumed as follows
Eigenvalue Analysis with PSSs and SVC POD
Nonlinear Time-Domain Simulation
10. System power flow flow transmission transmission
10. System
12. System
Robustness Analysis
Case Study of New England Test System
Case Study have of New
The Selection of Wide-Area Feedback Signals for PODs
Proposed Method
Robustness
17. Relative
Findings
Conclusions
Full Text
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