Please use this identifier to cite or link to this item: https://repository.unej.ac.id/xmlui/handle/123456789/99852
Title: Comparison of Intelligence Control Systems for Voltage Controlling on Small Scale Compressed Air Energy Storage
Authors: WIDJONARKO, Widjonarko
SOENOKO, Rudy
WAHYUDI, Slamet
SISWANTO, Eko
Keywords: ANFIS
artificial neural network
fuzzy
small scale compressed air energy storage (SS-CAES)
voltage controlling
Issue Date: 1-Mar-2019
Publisher: Energies, Volume 12, Issue 5 (March-1 2019)
Abstract: This study presents the strategy of controlling the air discharge in the prototype of small scale compressed air energy storage (SS-CAES) to produce a constant voltage according to the user set point. The purpose of this study is to simplify the control of the SS-CAES, so that it can be integrated with a grid based on a constant voltage reference. The control strategy in this study is carried out by controlling the opening of the air valve combined with a servo motor using three intelligence control systems (fuzzy logic, artificial neural network (ANN), and adaptive neuro-fuzzy inference system (ANFIS)). The testing scenario of this system will be carried out using two scenes, including changing the voltage set point and by switching the load. The results that were obtained indicate that ANN has the best results, with an average settling time of 2.05S in the first test scenario and 6.65S in the second test scenario.
URI: http://repository.unej.ac.id/handle/123456789/99852
Appears in Collections:LSP-Jurnal Ilmiah Dosen

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