Komparasi PID, FLC, dan ANFIS sebagai Kontroller Dual Axis Tracking Photovoltaic berbasis Bat Algorithm

Authors

  • Hidayatul Nurohmah Universitas Darul Ulum
  • Machrus Ali Universitas Darul Ulum
  • Dwi Ajiatmo Universitas Darul Ulum

Keywords:

Artificial Intellegence, Bat Algoritm (BA), Dual Axis tracking, Photovoltaic

Abstract

Photovoltaic is a renewable electrical energy generator that is very suitable for tropical countries that get a lot of sunlight. However, this generator has low efficiency. To overcome this deficiency, several researchers have optimized the conventional dual-axis tracking solar method. Research is needed to optimize using artificial intelligence, in this case, the Adaptive Neuro-Fuzzy Inference System (ANFIS) and Bat Algorithm (BA). By comparing the performance of the model without control, conventional PID model, PID Auto tuning MatLab, Fuzzy Logic Controller (FLC) method, ANFIS method, and ANFIS-BA method. The simulation results show that the best model design on the horizontal axis and vertical axis dual tracking photovoltaic is ANFIS-BA with the smallest overshot, smallest undershot, and the fastest settling time of all model designs.      

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Published

2022-09-09

How to Cite

[1]
H. Nurohmah, M. Ali, and D. Ajiatmo, “Komparasi PID, FLC, dan ANFIS sebagai Kontroller Dual Axis Tracking Photovoltaic berbasis Bat Algorithm”, jeetech, vol. 3, no. 2, pp. 71-77, Sep. 2022.