Dynamics and operation of renewable-based power systems



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Dynamics and operation of renewable-based power systems g

.General Comments In this section, the formal definition of power system stability from is presented. The intent in was to provide a physically based definition which, while conforming to definitions from system theory, can be easily understood and readily applied by power system engineering practitioners.

For the system transformation resulting from connection of converter interfaced generation and load power-electronics based control devices, described in.Formal Definition Power system stability is the ability of an electric power system, for a given initial operating condition, to regain a state of operating equilibrium after being subjected to a physical disturbance, with most system variables bounded so that practically the entire system remains intact. Fig. 2. Classification of power system stability

The major contributions of this work are as follows:

A novel lab-test setup is developed to study the fault behavior of SIs. Details of wiring and PHIL configuration are presented.A simulation model is developed to specifically allow for fault behavior studies. Encountered modeling challenges as well as their solutions are reported. Researchers working in this field can benefit from these and design different test environments.Based on the result analyses, the fault behavior of SIs is documented. This behavior is correlated to the location and duration of the fault in the system. This is especially important as these devices are novel and very dynamic. Understanding their behavior is key to their widespread deployment which, in turn, facilitates renewable energy penetration.Grid codes and manufacturer notes are analyzed to further investigate fault behavior.

Figure 3. Protection issues with inverter interfaced DGs. Using the summation of all fault current contributions may seem a convenient and simple solution. However, the issue is more complex. DGs may stop generation at any time due to a myriad of reasons, e.g., due to intermittent renewable source or increase its generation output and, hence, the fault current contribution, in case of a fault. Furthermore, the distribution network may disconnect from the utility grid and continue its islanded operation. Any fault under these circumstances will experience much smaller fault current, yet it needs to be properly identified and isolated


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