A novel higher-order sliding mode control for DC-DC boost converter system in PMDC motor exploring mismatched disturbances

Author:

R Dhanasekar,Srinivasan Ganesh Kumar,Rivera Marco

Abstract

Purpose The purpose of this study is to stabilize the rotating speed of the permanent magnet direct current (PMDC) motor driven by a DC-DC boost converter under mismatched disturbances (i.e.) under varying load circumstances like constant, frictional, fan type, propeller and undefined torques. Design/methodology/approach This manuscript proposes a higher order sliding mode control to elevate the dynamic behavior of the speed controller and the robustness of the PMDC motor. A second order classical sliding surface and proportional-integral-derivative sliding surface (PIDSS) are designed and compared. Findings For the boost converter with PMDC motor, both simulation and experimentation are exploited. The prototype is built for an 18 W PMDC motor with field programmable gate arrays. The suggested sliding mode with second order improves the robustness of the arrangement under disturbances with a wide range of control. Both the simulation and experimental setup shows satisfactory results. Originality/value According to software-generated mathematical design and experimental findings, PIDSS exhibits excellent performance with respect to settling speed, steady-state error and peak overshoot.

Publisher

Emerald

Reference37 articles.

1. Active disturbance rejection control of DC–DC boost converter: a review with modifications for improved performance;IET Power Electronics,2019

2. Sliding mode control of quadratic boost converters based on Min-Type control strategy;IEEE Access,2023

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4. Modelling and controlling a new PV/FC/battery DC–DC converter suitable for DC motor;The Journal of Engineering,2022

5. PMSM drive fed by sliding mode controlled PFC boost converter;Arabian Journal for Science and Engineering,2014

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