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View moreAbstract: This paper investigates the enactment of battery energy storage system (BESS) and static compensator (STATCOM) in enhancing large-scale power system transient voltage and frequency stability, and improving power export capacity within two interconnected power systems.
In this study, optimal active and reactive power compensation was performed on a continuously loaded power system, using the battery energy storage system (BESS). In order to achieve this, a voltage stability evaluation model which contains information concerning the active and reactive power flow along the transmission line was adopted.
Voltage stability in power systems is defined as the ability of a power system to maintain acceptable voltages at all the buses in the system under normal condition and after being subjected to a disturbance .
Many approaches have been used to analyze voltage stability but an approach that can directly indicate the closeness of power system to voltage collapse can be used to optimally plan for the improvement of the power system voltage stability condition when compensation devices are to be deployed.
Voltage stability assessment of power system has been achieved using various mathematical formulations collectively known as the voltage stability indices , , , . These tools are used for monitoring the voltage stability condition of a power system for effective control and enhancement of its operating condition.
Battery energy storage system model. SOC, state of charge. TABLE 1. Parameters of battery energy storage system model. The state of charge (SOC) is calculated with an integrator, counting the current of the BESS where Umin and Umax are voltage of discharged and fully charged cell, respectively.
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