Energy Storage Dynamic Configuration of Active Distribution Networks—Joint Planning of Grid Structures
Abstract
:1. Introduction
2. Related Works
3. Construction of ADN Network Planning Model for ESS Energy Storage Dynamic Configuration
3.1. ESS Dynamic Configuration and Mathematical Model Design
3.2. Design of ADN Network Planning Model for ESS Energy Storage Dynamic Configuration
4. Application Effect of ADN Grid Planning Model for Dynamic Configuration of Energy Storage
4.1. Three Examples and Grid Planning and Energy Storage Configuration Results
4.2. The Results of Energy Storage Configuration at Different Nodes and the Comprehensive Effect of ESS
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
ADN | Active Distribution Network | Annual growth rate of load | |
DG | Distributed Generation | The ratio of rated energy storage power to peak load power | |
ESS | Energy Storage System | Annual reduction in power distribution network losses | |
Rated power of energy storage for node in the quarter | The number of days in the season | ||
Rated Energy Storage Capacity for Node in the quarter | Number of system bus routes | ||
Income from deferred construction | Distribution network lines | ||
Delayed total investment | Line resistance | ||
Inflation rate | The square of the current before the line is connected to the energy storage system | ||
Internal rate of return | The square of the current after the line is connected to energy storage | ||
Delaying investment period | Network loss benefits of peak and valley electricity prices | ||
Electricity price for the hour | Charging power for node installation energy storage | ||
Grid connected backup effect | Total number of nodes in the system | ||
Reserve capacity price | The total energy storage capacity connected to the energy storage device | ||
Reserve value consumed for energy storage equipment replacement | The total power of energy storage connected to the energy storage device | ||
Demand side response profit | Recovery coefficient | ||
ESS unit power investment cost | The time scale of operational and planning decision variables | ||
Unit rated capacity | Active power of energy storage charging and discharging in typical daily scenarios | ||
ESS unit power operation and maintenance cost | ESS configuration variables | ||
Annual operation and maintenance cost of unit energy storage rated power | Construction decision volume | ||
Planning period | Power consumption of power users at starting node | ||
Revenue from sales of electricity in the distribution network in the year | The operating power of the energy storage installed at starting node | ||
Electricity purchase expenses for distribution network in the year | The power generation of starting node connected to DG | ||
Active power flowing from starting node to end node through line | A certain route | ||
Collection of lines connected to node | Reactive power generated by DG | ||
A certain node | Node reactive power required by electricity users | ||
Reactive power flowing from starting node to end node through line | The voltage square of node | ||
The rated current carrying capacity of the type of line construction | |||
The total rated capacity of ADN energy storage devices | |||
Reactive power in the type of line | The total rated power of ADN energy storage devices | ||
Active power in the type of line | Is the node connected to ESS | ||
Minimum value of total energy storage power with added ADN | Minimum total ESS capacity for adding ADN | ||
Maximum value of total energy storage power with added ADN | Maximum total ESS capacity for adding ADN | ||
Electricity price for the hour of the season | The operating power of the energy storage installed at starting node | ||
Network loss power of distribution network | - | - |
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Energy Storage Method | Type | Power Level (MW) | Discharge Time | Life Cycle | Efficiency (%) |
---|---|---|---|---|---|
Electrochemical energy storage | Lead-acid battery | 0.001~50 | 1 min~3 h | 400–600 times | 50~70 |
Lithium ion batteries | 0.001~10 | 1 min~n h | 600–2000 times | 80~90 | |
Liquid flow battery | 0.01~100 | 1~20 h | >10,000 times | 70~80 | |
Mechanical energy storage | Compressed air energy storage | 100~300 | 6~20 h | >20 years | 50~60 |
Flywheel energy storage | 0.05~5 | 15 s~15 min | >20 years | 80–90 | |
Pumped storage energy | 100~2000 | 4~10 h | >30 years | 65~75 | |
Electromagnetic energy storage | Supercapacitor | 0.01~1 | 1 s~30 s | >30,000 times | 90~95 |
Superconducting magnetic energy storage | 0.01–20 | 5 s~5 min | >20 years | 80~95 |
Node Number | Load/kVa | Parameters | Numerical Value |
---|---|---|---|
1 | - | CNY 1001/kWh | |
2 | 188 + j16 | CNY 45/kWh | |
3 | 176 + j112 | 4 MW | |
4 | 136 + j79 | 500 kW | |
5 | 178 + j108 | 2% | |
6 | 160 + j99 | 10% |
Category | Example 1 | Example 2 | Example 3 |
---|---|---|---|
Cost of grid construction/CNY 104 | 78.26 | 88.57 | 67.36 |
ESS investment cost/CNY 104 | - | 312.11 | 312.11 |
ESS arbitrage income/CNY 104 | - | 435.26 | 435.26 |
Network loss cost/CNY 104 | 24.09 | 21.02 | 18.56 |
Transportation energy storage cost/CNY 104 | - | - | 6 |
Profit | −102.35 | −13.56 | 21.23 |
Example | Season | Node | (10 MW) | (10 MW) |
---|---|---|---|---|
Example 2 | Fixed configuration | 4 | 0.0905 | 0.1000 |
5 | 0.1185 | 0.0130 | ||
6 | 0.0905 | 0.0100 | ||
Example 1 | Spring | 4 | 0.1041 | 0.0113 |
5 | 0.1027 | 0.0112 | ||
6 | 0.0926 | 0.0100 | ||
Summer | 3 | 0.09905 | 0.0118 | |
5 | 0.1185 | 0.0109 | ||
6 | 0.0905 | 0.0998 | ||
Autumn | 4 | 0.1083 | 0.0118 | |
5 | 0.1007 | 0.0998 | ||
6 | 0.0905 | 0.0100 | ||
Winter | 3 | 0.0979 | 0.0108 | |
5 | 0.1110 | 0.0121 | ||
6 | 0.0905 | 0.0100 |
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Luo, Y.; Tian, P.; Yan, X.; Xiao, X.; Ci, S.; Zhou, Q.; Yang, Y. Energy Storage Dynamic Configuration of Active Distribution Networks—Joint Planning of Grid Structures. Processes 2024, 12, 79. https://doi.org/10.3390/pr12010079
Luo Y, Tian P, Yan X, Xiao X, Ci S, Zhou Q, Yang Y. Energy Storage Dynamic Configuration of Active Distribution Networks—Joint Planning of Grid Structures. Processes. 2024; 12(1):79. https://doi.org/10.3390/pr12010079
Chicago/Turabian StyleLuo, Yiming, Peigen Tian, Xin Yan, Xi Xiao, Song Ci, Qi Zhou, and Yi Yang. 2024. "Energy Storage Dynamic Configuration of Active Distribution Networks—Joint Planning of Grid Structures" Processes 12, no. 1: 79. https://doi.org/10.3390/pr12010079
APA StyleLuo, Y., Tian, P., Yan, X., Xiao, X., Ci, S., Zhou, Q., & Yang, Y. (2024). Energy Storage Dynamic Configuration of Active Distribution Networks—Joint Planning of Grid Structures. Processes, 12(1), 79. https://doi.org/10.3390/pr12010079