Control Strategy for Energy Storage Batteries to Suppress Subsynchronous Oscillations in Wind Farms

With the rapid integration of renewable energy sources, subsynchronous oscillations (SSOs) in wind farms have become a critical stability challenge. This paper proposes a dual-loop control strategy leveraging energy storage batteries to mitigate SSOs in doubly-fed induction generator (DFIG)-based wind farms through coordinated damping enhancement and resonance suppression.

1. System Modeling and Oscillation Mechanism

The DFIG system with series compensation can be represented by the state-space model:

$$
\dot{\boldsymbol{x}} = \boldsymbol{A}\boldsymbol{x} + \boldsymbol{B}\boldsymbol{u}
$$

Key parameters affecting SSO characteristics include:

Parameter Value Unit
Rotor Resistance 0.0137 pu
Stator Leakage Reactance 0.191 pu
Series Compensation 4-6%

The damping ratio calculation reveals instability under series compensation:

$$
\xi = -\frac{\sigma_i}{\sqrt{\sigma_i^2 + \omega_i^2}}
$$

where $\sigma_i$ and $\omega_i$ represent real and imaginary parts of eigenvalues.

2. Energy Storage Battery Control Architecture

The proposed control strategy combines proportional-resonant (PR) control with supplementary damping:

Component Function Parameters
PR Controller Frequency-selective gain $K_p=1$, $K_r=30$
Phase Compensator Delay correction $T_1=0.02\text{s}$, $T_2=0.01\text{s}$
Limiter Output saturation ±20% Prated

The PR controller transfer function is:

$$
G_{PR}(s) = K_p + \frac{K_r\omega_c s}{s^2 + 2\omega_c s + \omega_r^2}
$$

3. Coordinated Control Implementation

The energy storage battery system implements dual-loop control:

$$
\begin{cases}
P^* = P_{ref} + \Delta P_{SSDC}\\
Q^* = Q_{ref} + \Delta Q_{SSDC}
\end{cases}
$$

Where supplementary signals are generated through:

$$
\Delta P_{SSDC} = \frac{K_d s}{1 + T_f s} \cdot \frac{1 – T_1 s}{1 + T_2 s} \cdot P_{osc}
$$

4. Operational Verification

Simulation results under varying conditions demonstrate the effectiveness of energy storage battery control:

Scenario Oscillation Amplitude Damping Ratio
Without Control 0.35 pu -0.12
With PSSDC 0.08 pu 0.18
With P+QSSDC 0.03 pu 0.25

The energy storage battery demonstrates superior oscillation suppression across different operating points:

$$
\text{THD}_{\text{improvement}} = \frac{\sum|H_{\text{pre}}(f_{\text{sso}})| – \sum|H_{\text{post}}(f_{\text{sso}})|}{\sum|H_{\text{pre}}(f_{\text{sso}})|} \times 100\% > 85\%
$$

5. Conclusion

This paper validates that energy storage battery systems with properly designed supplementary controllers can effectively mitigate SSOs in wind farms through:

  1. Frequency-selective damping injection
  2. Active power modulation
  3. Dynamic impedance shaping

The control strategy maintains effectiveness under varying wind speeds (7.5-10.5 m/s) and series compensation levels (4-6%), proving the energy storage battery’s adaptability in modern power systems.

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