2020
DOI: 10.3390/en13246627
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Realization of 485 Level Inverter Using Tri-State Architecture for Renewable Energy Systems

Abstract: In this paper, a ‘k’-state inverter producing a higher number of voltage levels was designed, and we studied the inverter’s working. Further, a tri-state inverter was derived from the ‘k’-state inverter, which could build a maximum number of output voltage levels with the requirement of fewer components, thereby reducing the cost and size. A single Tri-state architecture generates three direct current (D.C.) voltage levels; therefore, cascading five tri-state architectures can generate 242 levels of DC voltage… Show more

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Cited by 6 publications
(4 citation statements)
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References 27 publications
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“…Blocking voltage for the fundamental units of the inverter when the level shifter is placed at location 1 is presented in equations ( 5) and (6),…”
Section: A Generalized Ccsi Topology With Connecting Switchesmentioning
confidence: 99%
“…Blocking voltage for the fundamental units of the inverter when the level shifter is placed at location 1 is presented in equations ( 5) and (6),…”
Section: A Generalized Ccsi Topology With Connecting Switchesmentioning
confidence: 99%
“…Using large number of switches, a symmetric MLI topology is designed and experimented in [52]. Also various topologies of MLI were designed using optimal number of switches [53][54][55][56][57].…”
Section: Issues In MLI With Low Device Countmentioning
confidence: 99%
“…CHB-MLI is highly modular and relatively simpler to control in comparison with the other two topologies. Further, it does not require any voltage balancing circuits as it employs independent dc sources [5][6][7]. Nevertheless, in conventional CHB-MLI, the required number of power switches increases by four for any additional dc source.…”
Section: Introductionmentioning
confidence: 99%