simulink model for 16 bus microgrids
#1

Hi, I am Vedaste I am a student in Power system and automation, masters degree. I need this Simulink model of 16 bus microgrids to help me in my research
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#2

Photovoltaic (PV) generation is the technique used by the photovoltaic cell to convert solar energy into electrical energy. Today, photovoltaic generation is growing faster and faster as a source of renewable energy. However, the disadvantage is that photovoltaic generation is intermittent to depend on weather conditions. Therefore, storage of battery power is necessary to help obtain a stable and reliable output of the photovoltaic generation system for the loads and to improve the constant and dynamic behaviors of the entire generation system.


The photovoltaic array is first connected to the common DC bus via a booster converter, in which the battery is also connected by a bidirectional DC / DC converter and is then integrated into the AC mains via a DC inverter / Common AC. The monitoring of the maximum power point helps the photovoltaic array to generate the maximum power to the grid and the storage of the battery power can be loaded and unloaded to balance the power between the photovoltaic generation and the electricity grid. Finally, different cases are simulated, and the results have verified the validity of models and control schemes.

In a microgrid, the micro-sources and storage devices are connected to the feeders through the microcentrifuge controllers (MCs) and the coordination between the micro-sources is carried out by the central controller (CC). The microgrid is connected to the mains voltage medium level at the common coupling point (PCC) through the circuit breakers. When a microgrid is connected to the grid, the operational control of the voltage and frequency is made entirely by the grid; However, the amicrogrid still supplies critical loads on the PCC, thus, acting as a PQ bus. In island condition, a microgrid has to operate independently, regardless of the grid, to control the voltage and frequency of the microgrid and therefore acts as a PV (power voltage) bus.

Operation and management in both modes is controlled and coordinated with the help of local micro-controllers (MCs) and the central controller (CC) at the global level. Similar to the traditional frequency control of the synchronous generator, frequency and voltage control of the microprocessor frequency can also be performed using fall control methods. The present work provides fast response characteristics for voltage and frequency control as compared to the secondary control. The analogy between the control of the inverter and the control of the synchronous generator in an island microgrid is analyzed. In the islanding mode, there is a need to have a reference voltage and frequency signals in the control of the microgrid inverter.
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