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Design of nonlinear backstepping double-integral sliding mode controllers to stabilize the dc-bus voltage for dc–dc converters feeding cpls

Version 2 2024-05-30, 14:02
Version 1 2023-10-23, 23:36
journal contribution
posted on 2024-05-30, 14:02 authored by SK Ghosh, TK Roy, MAH Pramanik, MA Mahmud
This paper proposes a composite nonlinear controller combining backstepping and double-integral sliding mode controllers for DC–DC boost converter (DDBC) feeding by constant power loads (CPLs) to improve the DC-bus voltage stability under large disturbances in DC distribution systems. In this regard, an exact feedback linearization approach is first used to transform the nonlinear dynamical model into a simplified linear system with canonical form so that it becomes suitable for designing the proposed controller. Another important feature of applying the exact feedback linearization approach in this work is to utilize its capability to cancel nonlinearities appearing due to the incremental negative-impedance of CPLs and the non-minimum phase problem related to the DDBC. Second, the proposed backstepping double integral-sliding mode controller (BDI-SMC) is employed on the feedback linearized system to determine the control law. Afterwards, the Lyapunov stability theory is used to analyze the closed-loop stability of the overall system. Finally, a simulation study is conducted under various operating conditions of the system to validate the theoretical analysis of the proposed controller. The simulation results are also compared with existing sliding mode controller (ESMC) and proportional-integral (PI) control schemes to demonstrate the superiority of the proposed BDI-SMC.

History

Journal

Energies

Volume

14

Article number

6753

Pagination

1-16

Location

Basel, Switzerland

ISSN

1996-1073

eISSN

1996-1073

Language

eng

Publication classification

C1 Refereed article in a scholarly journal

Issue

20

Publisher

MDPI