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Implementation of Optimization-Based PI Controller Tuning for Non-Ideal Differential Boost Inverter

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TLDR
In this paper, a closed-loop non-ideal differential boost inverter (DBI) employing a PI controller is proposed to change a voltage source inverter's traditional behavior, which generates lesser output voltage with higher THD.
Abstract
The demand for renewable energy to sustain today’s vulnerability towards depleting fossil fuels is a crucial agenda for research. Various inverter topologies have been proposed to convert renewable sources into a usable form. But output THD, additional filtering components at line frequency (leading to bulky circuitry), lower efficiency, etc., are some of the limitations faced in all those topologies. This paper aims to change a voltage source inverter’s traditional behavior, which generates lesser output voltage with higher THD. The paper proposes a closed-loop non-ideal differential boost inverter (DBI) employing a PI controller. The optimization techniques such as, genetic algorithm (GA) and bacterial foraging optimization algorithm (BFOA) are incorporated to accentuate the PI controller’s performance to produce a better response during line and load disturbance conditions with reduced THD. DBI performance is evaluated on a laboratory prototype with different loading conditions. A comparison between the algorithms and the previous topologies from the literature survey has also been provided to validate this research’s claims. This paper’s required simulation study is carried out using MATLAB, and real-time validation is carried out using dSPACE 1104 with sampling time of one $\mu \text{s}$ .

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Optimal Quick-Response Variable Structure Control for Highly Efficient Single-Phase Sine-Wave Inverters

TL;DR: In this article, an optimal quick-response variable structure control with a single-phase sine-wave inverter application is proposed, which keeps harmonic distortion as low as possible under various conditions of loading.
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Integration of charging station to the smart grid power network by using robust immune feedback adaptive and Rao optimization approaches

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References
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Journal ArticleDOI

Feedback controller design for a boost converter through evolutionary algorithms

TL;DR: In this article, a systematic design procedure for the output voltage regulation of a boost-type DC-DC converter employing evolutionary algorithms is presented, where the feedback controller design is formulated as an optimisation problem and the controller constants are identified via evolutionary search.
Journal ArticleDOI

Dead Time Effect on the Double-Loop Control Strategy for a Boost Inverter

TL;DR: In this paper, a double-loop control strategy was introduced with proportional integral (PI) controllers used in each loop, and the dc offset and the clipping of the boost converters are attributed to the dead time and parameter mismatch between the boosting converters.
Journal ArticleDOI

Switched-Capacitor Differential Boost Inverter: Design, Modeling, and Control

TL;DR: In this article, static and dynamic analysis of the SC differential boost inverter is performed under different types of modulation and a generalized and reduced order equivalent circuit and a small-signal average model are proposed, as well as a static gain linearization technique that reduces the harmonic distortion of the output voltage.
Proceedings ArticleDOI

Robust Controller Identification for a Boost Type DC-DC Converter Using Genetic Algorithm

TL;DR: A novel method of feedback controller design for a boost type dc-dc converter using exact model of boost converter in conjunction with evolutionary search results in a robust controller structure which guarantees excellent dynamic response at all operating points is presented.
Journal ArticleDOI

Utilization of Bacterial Foraging Algorithm for Optimization of Boost Inverter Parameters

G. Arunkumar, +1 more
- 02 Jun 2016 - 
TL;DR: In this paper, a boost inverter model capable of coping with changes in load as well as line parameters is proposed to achieve an output AC voltage higher than the input DC voltage.
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