Optimized Power Flow Control to Minimize Congestion in a Modern Power System

被引:1
作者
Bodenstein, Max [1 ]
Liere-Netheler, Ingo [2 ]
Schuldt, Frank [3 ]
von Maydell, Karsten [3 ]
Hartmann, Alexander K. [4 ]
Agert, Carsten [3 ]
机构
[1] PSI Software AG, D-63741 Aschaffenburg, Germany
[2] Westnetz GmbH, D-44139 Dortmund, Germany
[3] DLR Inst Networked Energy Syst, D-26129 Oldenburg, Germany
[4] Carl von Ossietzky Univ Oldenburg, Dept Phys, D-26129 Oldenburg, Germany
关键词
power flow control; distribution system; congestion management; renewable energy integration; curtailment; UPFC; FACTS; optimization; load flow analysis; LOCATION;
D O I
10.3390/en16124594
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The growing integration of renewable energy sources (RES) into the power system causes congestion to occur more frequently. In order to reduce congestion in the short term and to make the utilization of the power system more efficient in the long term, power flow control (PFC) in the transmission system has been proposed. However, exemplary studies show that congestion will increase also in the distribution system if the transmission system is expanded. For this reason, the potential of PFC to reduce congestion in a model of a real 110 kV distribution system is investigated. Several Unified Power Flow Controller (UPFC) devices are optimized in terms of their number and placement in the power system, their size, control parameters, and costs, by using a Parallel Tempering approach as well as a greedy algorithm. Two optimization variants are considered, one reducing the number of degrees of freedom by integrating system knowledge while the other does not. It is found that near a critical grid state and disregarding costs, PFC can reduce congestion significantly (99.13%). When costs of the UPFCs are taken into account, PFC can reduce congestion by 73.2%. A basic economic analysis of the costs reveals that the usage of UPFCs is profitable. Furthermore, it is found that the reduction in the solution space of the optimization problem leads to better results faster and that, contrary to expectations, the optimization problem is simple to solve. The developed methods allow not only for the determination of the optimal use of UPFCs to minimize congestion, but also to estimate their profitability.
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页数:19
相关论文
共 42 条
[21]   Selection of optimal number and location of thyristor-controlled phase shifters using genetic based algorithms [J].
Ippolito, L ;
Siano, P .
IEE PROCEEDINGS-GENERATION TRANSMISSION AND DISTRIBUTION, 2004, 151 (05) :630-637
[22]   OPTIMIZATION BY SIMULATED ANNEALING [J].
KIRKPATRICK, S ;
GELATT, CD ;
VECCHI, MP .
SCIENCE, 1983, 220 (4598) :671-680
[23]  
Kremser, 2000, VERSUCHSANLEITUNG
[24]  
Kundur P., 1993, POWER SYSTEM STABILI
[25]   Simulation of Incidental Distributed Generation Curtailment to Maximize the Integration of Renewable Energy Generation in Power Systems [J].
Liere-Netheler, Ingo ;
Schuldt, Frank ;
von Maydell, Karsten ;
Agert, Carsten .
ENERGIES, 2020, 13 (16)
[26]   EQUATION OF STATE CALCULATIONS BY FAST COMPUTING MACHINES [J].
METROPOLIS, N ;
ROSENBLUTH, AW ;
ROSENBLUTH, MN ;
TELLER, AH ;
TELLER, E .
JOURNAL OF CHEMICAL PHYSICS, 1953, 21 (06) :1087-1092
[27]   Control frameworks for transactive energy storage services in energy communities [J].
Mignoni, Nicola ;
Scarabaggio, Paolo ;
Carli, Raffaele ;
Dotoli, Mariagrazia .
CONTROL ENGINEERING PRACTICE, 2023, 130
[28]   Finding low-temperature states with parallel tempering, simulated annealing and simple Monte Carlo [J].
Moreno, JJ ;
Katzgraber, HG ;
Hartmann, AK .
INTERNATIONAL JOURNAL OF MODERN PHYSICS C, 2003, 14 (03) :285-302
[29]   Phase changes in 38-atom Lennard-Jones clusters. I. A parallel tempering study in the canonical ensemble [J].
Neirotti, JP ;
Calvo, F ;
Freeman, DL ;
Doll, JD .
JOURNAL OF CHEMICAL PHYSICS, 2000, 112 (23) :10340-10349
[30]   Use of UFPC for optimal power flow control [J].
Noroozian, M ;
Angquist, L ;
Ghandhari, M ;
Andersson, G .
IEEE TRANSACTIONS ON POWER DELIVERY, 1997, 12 (04) :1629-1634