Optimal Placement of STATCOMs in Multi-infeed Power Electronic Systems for Small Signal Stability

Author(s):  
Hui Yuan ◽  
Pan Dai ◽  
Qian Xu ◽  
Guangjin Shen ◽  
Huanhai Xin
2019 ◽  
Vol 8 (3) ◽  
pp. 4000-4004

Among the apparent toughness, when compared to various other small-signal approaches, is the natural linkage along with circuit concept. This makes them achievable to become attached by means of basic circuit rules. Having said that, careful focus ought to be actually spent when creating this association given that the insusceptibilities secured with linearization are local area variables, commonly referred to locally determined recommendation structures. To enable the operations of these insusceptibilities utilizing standard circuit legislations, a unified/global endorsement must be actually determined. Though this concern was actually appropriately attended to on the state-space versions, a thorough evaluation as well as an explanation relating to the linked resistances and stability effects are actually still missing. Eventually, this paper intents to describe a variety of the prospective hurdles that exist around stability study of electricity converters particularly when these are actually used in distributed age group requests


Symmetry ◽  
2021 ◽  
Vol 13 (2) ◽  
pp. 157
Author(s):  
Jiawei Yu ◽  
Ziqian Yang ◽  
Jurgen Kurths ◽  
Meng Zhan

Traditional power systems have been gradually shifting to power-electronic-based ones, with more power electronic devices (including converters) incorporated recently. Faced with much more complicated dynamics, it is a great challenge to uncover its physical mechanisms for system stability and/or instability (oscillation). In this paper, we first establish a nonlinear model of a multi-converter power system within the DC-link voltage timescale, from the first principle. Then, we obtain a linearized model with the associated characteristic matrix, whose eigenvalues determine the system stability, and finally get independent subsystems by using symmetry approximation conditions under the assumptions that all converters’ parameters and their susceptance to the infinite bus (Bg) are identical. Based on these mathematical analyses, we find that the whole system can be decomposed into several equivalent single-converter systems and its small-signal stability is solely determined by a simple converter system connected to an infinite bus under the same susceptance Bg. These results of large-scale multi-converter analysis help to understand the power-electronic-based power system dynamics, such as renewable energy integration. As well, they are expected to stimulate broad interests among researchers in the fields of network dynamics theory and applications.


First of the practical defiance's in unsystematized electrical networks is Congestion management. Two manners of percussions used in Congestion management are frill manners and cost free manners. In this paper work congestion is released by using cost free manners seeing (Flexible AC Transmission Systems) FACTS controller like SVC (Static Var compensator), STATCOM, TCSC (Thyristor controlled series Compensator), and SSSC (Static Synchronous Series Compensators) devices. Manifold-objective functions are presumed for congestion management. Small signal stability, voltage profile, and Real power loss reduction are considered objective functions in this paper. The optimal placement of FACTS controller are institute by using sensitivity founded Eigen value analysis and Continuation Power Flow (CPF). The suggested algorithm has used to define optimal placement of FACTS controller and deciphering optimal power flow (OPF) to advance voltage profile and minimize the real power losses within real and reactive power generation margin. The recital analysis has been implemented for IEEE 39 bus test system using MATLAB/PSAT (toolbox) software. Results display the suggested technique has a competency to advance the “Voltage profile, small signal stability, Loss minimization”.


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