An Optimal Wavelet Packets Basis Method for Cascade Hydro-PV-Pumped Storage Generation Systems to Smooth Photovoltaic Power Fluctuations
Abstract
:1. Introduction
- (1)
- This paper reports a new approach constructing a combined cascade hydro-PV-pumped storage (CH-PV-PS) generation system for the first time to smooth PV power fluctuations through appropriate power distribution on a small timescale. Combined with the existing pumped storage power station and cascade hydro power station, the CH-PV-PS generation system is helpful in reducing the cost of smoothing PV power fluctuations and improves the utilization of renewable energy.
- (2)
- The optimal wavelet packet method is modified, and a fuzzy controller is designed to achieve better smoothing effects. Compared with the existing technologies, this proposed method can adaptively search for the optimal decomposition layer and the optimal biases according to the PV fluctuation characteristics. At the same time, considering the operating boundary conditions of energy absorption and absorption devices, the characteristics of each device can be utilized and each device can be operated in a better operation state.
- (3)
- The efficiency of the proposed smoothing method is compared with three different algorithms. As a result, the proposed smoothing method is more effective in smoothing PV power fluctuations and ensuring normal operation of the CH-PV-PS generation system within the multi-constraints.
2. System Structures and Definition of PV Power Fluctuations
2.1. System Description of the CH-PV-PS Generation System
2.2. Definition of the PV Power Fluctuations
3. Smoothing Control Strategy Based on the Optimal Wavelet Packets Basis Method
3.1. Smoothing Control Process
3.2. Improved Wavelet Packet Decomposition Algorithm
4. Reference Power and Ideal Power Trajectory Sequence
4.1. The Ideal Smoothing Power Trajectory Sequence and Its Reference Smoothing Power
4.1.1. The Ideal Smoothing Power Trajectory Sequence
4.1.2. The Reference PV Smoothing Power
4.2. Ideal Power Trajectory Sequence of CHSs and Reference Power of CHSs and VSPSS
4.2.1. Ideal Power Trajectory Sequence of CHSs
4.2.2. The Reference Power of CHSs and VSPSS
5. Fuzzy Control to Optimize the Delay Time
6. Simulation and Discussion
6.1. Filtering Algorithm
6.2. Wavelet Packet Decomposition Algorithm
6.3. The Improved Optimal Wavelet Packet Basis Decomposition Algorithm
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Smoothing System | Advantages | Disadvantages |
---|---|---|
Hybrid energy storage battery | Excellent smoothing effects | Short service life, high maintenance cost, not friendly to the environment |
Controllable loads | Flexible operation, high economic effect | The smoothing effect is heavily influenced by load requirements |
Variable speed pumped storage station | Clean energy, high control accuracy, quick response | Small capacity, expensive, inefficient |
Cascade hydropower stations | Clean energy, large capacity, high economic effect | Poor smoothing effect, slow response, low control accuracy |
{F0 | F1 | F2 | F3 | F4 | F5 | F6 | F7}x1 |
{S0 | S1 | S2 | S3}x2 | {D0 | D1 | D2 | D3}x3 |
{SS0 | SS1}x4 | {DS0 | DS1}x5 | {SD0 | SD1}x6 | {DD0 | DD1}x7 |
d | epc | ||||||
---|---|---|---|---|---|---|---|
ep | VVS | VS | S | M | B | VB | |
VVS | VB | B | M | S | VS | VS | |
VS | VB | B | M | S | VS | VVS | |
S | VB | B | M | VS | VS | VVS | |
M | VB | M | M | S | VS | VVS | |
B | VB | M | S | S | VS | VVS | |
VB | B | M | S | S | VVS | VVS |
Method | Failure to Reach Requirements (%) | Maximum Fluctuation (MW) | Average Fluctuation (MW) | Accumulative Error of VSPS (MW) | Accumulative Error of CHSs (MW) |
---|---|---|---|---|---|
BS 1 | 24.8 | 19.08 | 10.34 | - | - |
FA WO 2 CHSs | 12.12 | 15.41 | 5.34 | 35.75 | - |
WPDA WO CHSs | 11.8 | 14.73 | 4.10 | 47.93 | - |
FA | 9.39 | 15.87 | 4.02 | 24.09 | 8.21 |
WPDA | 7.27 | 12.79 | 3.64 | 0.98 | 10.64 |
OWPDA | 0.3 | 1.9 | 0.67 | 1.17 | 2.38 |
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Wu, F.; Wang, J.; Sun, Z.; Wang, T.; Chen, L.; Han, X. An Optimal Wavelet Packets Basis Method for Cascade Hydro-PV-Pumped Storage Generation Systems to Smooth Photovoltaic Power Fluctuations. Energies 2019, 12, 4642. https://doi.org/10.3390/en12244642
Wu F, Wang J, Sun Z, Wang T, Chen L, Han X. An Optimal Wavelet Packets Basis Method for Cascade Hydro-PV-Pumped Storage Generation Systems to Smooth Photovoltaic Power Fluctuations. Energies. 2019; 12(24):4642. https://doi.org/10.3390/en12244642
Chicago/Turabian StyleWu, Fan, Jun Wang, Zhang Sun, Tao Wang, Lei Chen, and Xiaoyan Han. 2019. "An Optimal Wavelet Packets Basis Method for Cascade Hydro-PV-Pumped Storage Generation Systems to Smooth Photovoltaic Power Fluctuations" Energies 12, no. 24: 4642. https://doi.org/10.3390/en12244642
APA StyleWu, F., Wang, J., Sun, Z., Wang, T., Chen, L., & Han, X. (2019). An Optimal Wavelet Packets Basis Method for Cascade Hydro-PV-Pumped Storage Generation Systems to Smooth Photovoltaic Power Fluctuations. Energies, 12(24), 4642. https://doi.org/10.3390/en12244642