Enhancing the Stability of an Isolated Electric Grid by the Utilization of Energy Storage Systems: A Case Study on the Rafha Grid

被引:3
作者
Alsalman, Amer S. [1 ]
Alharbi, Talal [1 ]
Mahfouz, Ahmed A. [1 ]
机构
[1] Qassim Univ, Coll Engn, Dept Elect Engn, Buraydah 52571, Qassim, Saudi Arabia
关键词
batteries; energy storage; power system stability; power system transients; power system dynamics; power system control; power system modeling; renewable energy resources; lithium-Ion batteries; VOLTAGE STABILITY; PENETRATION;
D O I
10.3390/su151713269
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A system's stability is affected by the generation types in the interconnected power system. For example, synchronous generators usually have high inertia sharing with the power system since they have rotating mass, and they usually have primary frequency response capability. On the other hand, renewable energy sources (RES) neither provide inertia to the system nor have a primary frequency response capability; hence, adding RES will impact the power system's voltage, angle, and frequency stability. Battery energy storage systems (BESSs) have many applications in the future electric grid. From the stability perspective, BESSs can be used to increase the power system's stability. A case study was conducted on the Rafha microgrid in the Kingdom of Saudi Arabia (KSA) to inspect a BESS's influence on the Rafha microgrid's stability and the impact of changing the BESS's location, which might cause changes in the system stability after contingencies. In addition, we investigated which dynamic stability is affected if the BESS's capacity changes. The microgrid is tested using contingencies that affect the system's frequency, angle, and voltage stability using the power system simulator for engineering (PSS/E) software as a simulation platform. Finally, we investigated the technical impact of utilizing a BESS and its influence on economic operation.
引用
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页数:24
相关论文
共 33 条
[1]   Static voltage stability improvement with battery energy storage considering optimal control of active and reactive power injection [J].
Adewuyi, Oludamilare Bode ;
Shigenobu, Ryuto ;
Ooya, Kazuki ;
Senjyu, Tomonobu ;
Howlader, Abdul Motin .
ELECTRIC POWER SYSTEMS RESEARCH, 2019, 172 :303-312
[2]   Renewable Portfolio Standard from the Perspective of Policy Network Theory for Saudi Arabia Vision 2030 Targets [J].
Ali, Amjad ;
Alsulaiman, Fahad A. ;
Irshad, Kashif ;
Shafiullah, Md ;
Malik, Sheraz Alam ;
Memon, Abdul Hameed .
2021 4TH INTERNATIONAL CONFERENCE ON ENERGY CONSERVATION AND EFFICIENCY (ICECE 2021), 2021, :47-51
[3]   LVRT and Reactive Power/Voltage Support of Utility-Scale PV Power Plants during Disturbance Conditions [J].
Alrumayh, Omar ;
Sayed, Khairy ;
Almutairi, Abdulaziz .
ENERGIES, 2023, 16 (07)
[4]  
Amrouche S. O., 2015, 2015 3 INT REN SUST, P1, DOI 10.1109/IRSEC.2015.7454988
[5]  
Ayadi Faten, 2020, 2020 9th International Conference on Renewable Energy Research and Application (ICRERA), P394, DOI 10.1109/ICRERA49962.2020.9242765
[6]   Sizing of Energy Storage for Grid Inertial Support in Presence of Renewable Energy [J].
Bera, Atri ;
Chalamala, Babu R. ;
Byrne, Raymond H. ;
Mitra, Joydeep .
IEEE TRANSACTIONS ON POWER SYSTEMS, 2022, 37 (05) :3769-3778
[7]   Energy Storage Technologies: The Past and the Present [J].
Boicea, Valentin A. .
PROCEEDINGS OF THE IEEE, 2014, 102 (11) :1777-1794
[8]  
Chamorro HR, 2020, PROC IEEE INT SYMP, P918, DOI [10.1109/isie45063.2020.9152296, 10.1109/ISIE45063.2020.9152296]
[9]  
Corporation N.A.E.R., 2021, Performance, Modeling, and Simulations of BPS-Connected Battery Energy Storage Systems and Hybrid Power Plants
[10]   Frequency response of energy storage systems in grids with high level of wind power penetration - Gotland case study [J].
Daraiseh, Firas .
IET RENEWABLE POWER GENERATION, 2020, 14 (08) :1282-1287