Optimal Design and Operation of Wind Turbines in Radial Distribution Power Grids for Power Loss Minimization

被引:1
|
作者
Phan, Tan Minh [1 ]
Duong, Minh Phuc [2 ]
Doan, Anh Tuan [3 ]
Duong, Minh Quan [3 ]
Nguyen, Thang Trung [1 ]
机构
[1] Ton Duc Thang Univ, Fac Elect & Elect Engn, Power Syst Optimizat Res Grp, Ho Chi Minh City 700000, Vietnam
[2] Dist 7, Ho Chi Minh City 700000, Vietnam
[3] Univ Sci & Technol, Univ Da Nang, Fac Elect Engn, 54 Nguyen Luong Bang St, Da Nang 550000, Vietnam
来源
APPLIED SCIENCES-BASEL | 2024年 / 14卷 / 04期
关键词
radial distribution power grid; power loss; wind turbines; osprey optimization algorithm; walrus optimization algorithm; NETWORK RECONFIGURATION; OPTIMAL ALLOCATION; CAPACITORS; PLACEMENT; DG;
D O I
10.3390/app14041462
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This research proposes a strategy to minimize the active power loss in the standard IEEE 85-node radial distribution power grid by optimizing the placement of wind turbines in the grid. The osprey optimization algorithm (OOA) and walrus optimization algorithm (WOA) are implemented to solve the problem. The two algorithms are validated in three study cases of placing two wind turbines (WTs) in the system for power loss reduction. Mainly, in Case 1, WTs can only produce active power, while in Case 2 and Case 3, WTs can supply both active and reactive power to the grid with different ranges of power factors. In Case 4, the best-applied methods between the two are reapplied to reach the minimum value of the total energy loss within one year. Notably, this case focuses on minimizing the total power loss for each hour in a day under load demand variations and dynamic power supply from WTs. On top of that, this case uses two different sets of actual wind power data acquired from the Global Wind Atlas for the two positions inherited from the previous case. Moreover, the utilization of wind power is also evaluated in the two scenarios: (1) wind power from WTs is fully used for all values of load demand, (2) and wind power from WTs is optimized for each load demand value. The results in the first three cases indicate that the WOA achieves better minimum, mean, and maximum power losses for the two cases than the OOA over fifty trial runs. Moreover, the WOA obtains an excellent loss reduction compared to the Base case without WTs. The loss of the base system is 224.3 kW, but that of Case 1, Case 2, and Case 3 is 115.6, 30.6 kW, and 0.097 kW. The placement of wind turbines in Case 1, Case 2, and Case 3 reached a loss reduction of 48.5%, 84.3%, and 99.96% compared to the Base case. The optimal placement of WTs in the selected distribution power grid has shown huge advantages in reducing active power loss, especially in Case 3. For the last study case, the energy loss in a year is calculated by WSO after reaching hourly power loss, the energy loss in a month, and the season. The results in this case also indicate that the optimization of wind power, as mentioned in Scenario 2, results in a better total energy loss value in a year than in Scenario 1. The total energy loss in Scenario 2 is reduced by approximately 95.98% compared to Scenario 1. So, WOA is an effective algorithm for optimizing the placement and determining the power output of wind turbines in distribution power grids to minimize the total energy loss in years.
引用
收藏
页数:29
相关论文
共 50 条
  • [21] THE DESIGN, CONSTRUCTION AND OPERATION OF 3 HORIZONTAL AXIS WIND TURBINES FOR THE GENERATION OF POWER
    LINDLEY, D
    QUARTON, DC
    PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS PART 1-DESIGN AND CONSTRUCTION, 1986, 80 : 969 - 997
  • [22] Independent Power Producer Approach to Optimal Design and Operation of IES with Wind Power Plants
    Son, Yeong-Geon
    Son, Eun-Tae
    Acquah, Moses-Amoasi
    Choo, Sung-Hoon
    Jo, Hyun-Sik
    Lee, Ji-Eun
    Kim, Dong-Min
    Kim, Sung-Yul
    ENERGIES, 2023, 16 (01)
  • [23] Power fluctuation and power loss of wind turbines due to wind shear and tower shadow
    Wen, Binrong
    Wei, Sha
    Wei, Kexiang
    Yang, Wenxian
    Peng, Zhike
    Chu, Fulei
    FRONTIERS OF MECHANICAL ENGINEERING, 2017, 12 (03) : 321 - 332
  • [24] Harmonic Distortion Minimization in Power Grids with Wind and Electric Vehicles
    Misra, Ritam
    Paudyal, Sumit
    Ceylan, Oguzhan
    Mandal, Paras
    ENERGIES, 2017, 10 (07):
  • [25] Power fluctuation and power loss of wind turbines due to wind shear and tower shadow
    Binrong Wen
    Sha Wei
    Kexiang Wei
    Wenxian Yang
    Zhike Peng
    Fulei Chu
    Frontiers of Mechanical Engineering, 2017, 12 : 321 - 332
  • [26] Efficient spatial distribution of wind power plants given environmental externalities due to turbines and grids
    Grimsrud, Kristine
    Hagem, Cathrine
    Lind, Arne
    Lindhjem, Henrik
    ENERGY ECONOMICS, 2021, 102
  • [27] Influence of weak grids on wind turbines and economics of wind power plants in India
    Rajsekhar, B.
    Van Hulle, Frans
    Gupta, Dipti
    Wind Engineering, 1998, 22 (03): : 171 - 181
  • [28] A power quality-based planning framework for flicker minimization of wind turbines in distribution network
    Ghaffari, Abolfazl
    Askarzadeh, Alireza
    Fadaeinedjad, Roohollah
    Moschopoulos, Gerry
    IET RENEWABLE POWER GENERATION, 2023, 17 (11) : 2687 - 2700
  • [29] Investigation and Minimization of Power Loss in Radial Distribution Network Using Gray Wolf Optimization
    Alqahtani, Mohammed
    Marimuthu, Ponnusamy
    Moorthy, Veerasamy
    Pangedaiah, B.
    Reddy, Ch. Rami
    Kiran Kumar, M.
    Khalid, Muhammad
    ENERGIES, 2023, 16 (12)
  • [30] Active Power Loss Minimization in Radial Distributed Micro Grid Incorporating Distribution Generators
    Angalaeswari, S.
    Jamuna, K.
    EMERGING TRENDS IN ELECTRICAL, COMMUNICATIONS AND INFORMATION TECHNOLOGIES, 2017, 394 : 353 - 360