A decentralized control algorithm based on the DC power flow model for avoiding cascaded failures in power networks

Author(s):  
Saleh Al-Takrouri ◽  
Andrey V. Savkin ◽  
Vassilios G. Agelidis
Energies ◽  
2020 ◽  
Vol 13 (13) ◽  
pp. 3308
Author(s):  
Xingpeng Li

Though the full AC power flow model can accurately represent the physical power system, the use of this model is limited in practice due to the computational complexity associated with its non-linear and non-convexity characteristics. For instance, the AC power flow model is not incorporated in the unit commitment model for practical power systems. Instead, an alternative linearized DC power flow model is widely used in today’s power system operational and planning tools. However, DC power flow model will be useless when reactive power and voltage magnitude are of concern. Therefore, a linearized AC (LAC) power flow model is needed to address this issue. This paper first introduces a traditional LAC model and then proposes an enhanced data-driven linearized AC (DLAC) model using the regression analysis technique. Numerical simulations conducted on the Tennessee Valley Authority (TVA) system demonstrate the performance and effectiveness of the proposed DLAC model.


2021 ◽  
Author(s):  
Yang Bai ◽  
Zhongfei Chen ◽  
Peng Yu ◽  
Long Wang ◽  
Hui Song ◽  
...  

Author(s):  
João Alberto Passos Filho ◽  
Othon Ferreira Avila ◽  
Paula Oliveira La Gatta

AbstractThe main objective of this paper is to review and compare two methodologies to solve the power flow problem considering active power generation droop control. The first methodology is based on a DC power flow model, and the second one is based on a conventional full Newton power flow formulation. The study of two test systems is used to validate the proposed analysis; the first one is the 11-bus system with two distinct areas, and the second one is the 39-bus New England power system. The results presented validate and indicate the effectiveness of the DC power flow approach in order to estimate the steady-state system frequency deviations.


Author(s):  
Wanyun Zhong ◽  
Mingguo Hong ◽  
Kenneth A. Loparo ◽  
Ryan Schoppe ◽  
Gary Rosenwald

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