Applied Sciences | |
Dynamic Behavior of a Sliding-Mode Control Based on a Washout Filter with Constant Impedance and Nonlinear Constant Power Loads | |
JohnE. Candelo-Becerra1  Miguel Monsalve-Rueda2  FredyE. Hoyos3  | |
[1] Faculty of Mines, Department of Electrical Energy and Automation, Universidad Nacional de Colombia, Sede Medellín, Medellín 050041, Colombia;Faculty of Mines, Department of Process and Energy, Universidad Nacional de Colombia, Sede Medellín, Medellín 050041, Colombia;Faculty of Science, School of Physics, Universidad Nacional de Colombia, Sede Medellín, Medellín 050034, Colombia; | |
关键词: dc-dc power converters; constant impedance load; constant power load; sliding-mode control; washout filter; zad-fpic; | |
DOI : 10.3390/app9214548 | |
来源: DOAJ |
【 摘 要 】
Power converters (PCs) with their control techniques help regulate voltages of nodes in microgrids with different types of loads such as resistive, inductive, nonlinear, constant power, or critical loads. However, constant power loads (CPLs) affect the stability of the voltage in the output of PCs and are usually difficult to regulate with traditional control techniques. The sliding-mode control (SMC) with the washout filter technique has been recently proposed to address this issue, but studies that consider the phenomenon and parameters present in real systems are required. Therefore, this paper focuses on evaluating the dynamic behavior of an SMC based on a washout filter using three different loads: A constant impedance load (CIL), a nonlinear CPL, and a combination of CIL and CPL. The CIL considered a resistance connected to the circuit, whereas the nonlinear CPL was designed by using a buck converter with zero average dynamics and fixed-point induction control techniques (ZAD-FPIC). The tests consisted of creating some variations in the reference signals to identify the output voltage and the error that the control brings according to the different loads. Besides, this study focuses on representing the dynamic behavior of signals when loads change, considering quantization effects, system discretization, delay effects, and parasitic resistors. Additionally, bifurcation diagrams are created by changing the control parameter
【 授权许可】
Unknown