Sliding Mode Controller in a Multiloop Framework for a Grid-Connected VSI With LCL Filter
This paper proposes a multiloop framework for current control of grid-connected voltage source inverters (VSIs) with LCL output filter. The discrete-time model is of third-order with a nonminimum phase zero when controlling the grid side current. This poses some difficulties on the design of most ty...
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Veröffentlicht in: | IEEE transactions on industrial electronics (1982) 2018-06, Vol.65 (6), p.4714-4723 |
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creator | Vieira, Rodrigo Padilha Martins, Leandro Tome Massing, Jorge Rodrigo Stefanello, Marcio |
description | This paper proposes a multiloop framework for current control of grid-connected voltage source inverters (VSIs) with LCL output filter. The discrete-time model is of third-order with a nonminimum phase zero when controlling the grid side current. This poses some difficulties on the design of most types of controllers. Motivated by this problem, the inner loop is implemented by a discrete-time sliding mode control law to ensure the tracking of the converter side current. This can be achieved regardless the grid impedance and voltage, making the converter to behave like a current source inverter with a capacitive+inductive ( CL ) filter. Thus, the problem of current control falls from a third-order system to a second-order system. Several types of controllers can be designed to implement the outer loop based on the equivalent CL circuit. In this work, a resonant controller with a virtual resistor was applied. Simulations and experimental results are presented to validate the proposal. |
doi_str_mv | 10.1109/TIE.2017.2772143 |
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The discrete-time model is of third-order with a nonminimum phase zero when controlling the grid side current. This poses some difficulties on the design of most types of controllers. Motivated by this problem, the inner loop is implemented by a discrete-time sliding mode control law to ensure the tracking of the converter side current. This can be achieved regardless the grid impedance and voltage, making the converter to behave like a current source inverter with a capacitive+inductive ( CL ) filter. Thus, the problem of current control falls from a third-order system to a second-order system. Several types of controllers can be designed to implement the outer loop based on the equivalent CL circuit. In this work, a resonant controller with a virtual resistor was applied. Simulations and experimental results are presented to validate the proposal.</description><identifier>ISSN: 0278-0046</identifier><identifier>EISSN: 1557-9948</identifier><identifier>DOI: 10.1109/TIE.2017.2772143</identifier><identifier>CODEN: ITIED6</identifier><language>eng</language><publisher>New York: IEEE</publisher><subject>Capacitors ; Computer simulation ; Controllers ; Converters ; Current control ; Electric potential ; Harmonic analysis ; Impedance ; LCL filter ; multiloop control ; Sliding mode control ; sliding mode control (SMC) ; Switches ; Voltage control</subject><ispartof>IEEE transactions on industrial electronics (1982), 2018-06, Vol.65 (6), p.4714-4723</ispartof><rights>Copyright The Institute of Electrical and Electronics Engineers, Inc. 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The discrete-time model is of third-order with a nonminimum phase zero when controlling the grid side current. This poses some difficulties on the design of most types of controllers. Motivated by this problem, the inner loop is implemented by a discrete-time sliding mode control law to ensure the tracking of the converter side current. This can be achieved regardless the grid impedance and voltage, making the converter to behave like a current source inverter with a capacitive+inductive ( CL ) filter. Thus, the problem of current control falls from a third-order system to a second-order system. Several types of controllers can be designed to implement the outer loop based on the equivalent CL circuit. In this work, a resonant controller with a virtual resistor was applied. Simulations and experimental results are presented to validate the proposal.</description><subject>Capacitors</subject><subject>Computer simulation</subject><subject>Controllers</subject><subject>Converters</subject><subject>Current control</subject><subject>Electric potential</subject><subject>Harmonic analysis</subject><subject>Impedance</subject><subject>LCL filter</subject><subject>multiloop control</subject><subject>Sliding mode control</subject><subject>sliding mode control (SMC)</subject><subject>Switches</subject><subject>Voltage control</subject><issn>0278-0046</issn><issn>1557-9948</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><sourceid>RIE</sourceid><recordid>eNo9kE1Lw0AURQdRsFb3gpsB16nvTZL5WEpoayHFRaviKiSTGZ2aZuokRfz3prS4eot77n1wCLlFmCCCelgvphMGKCZMCIZJfEZGmKYiUiqR52QETMgIIOGX5KrrNgCYpJiOyPuqcbVrP-jS14Zmvu2DbxoTqGtpSZf7pneN9zs6C-XW_PjwRa0PQzIPro4GvDW6NzV9XS3om-s_aZ7ldOaa3oRrcmHLpjM3pzsmL7PpOnuK8uf5InvMI80U9lHMuEGUDLg2wlYmZUrFqpIKOEOwUGnUSpWWlcxUoBmirmVsa8urGKVW8ZjcH3d3wX_vTdcXG78P7fCyYAAsUVzwZKDgSOnguy4YW-yC25bht0AoDgKLQWBxEFicBA6Vu2PFGWP-cYnAuRTxHwEuanA</recordid><startdate>20180601</startdate><enddate>20180601</enddate><creator>Vieira, Rodrigo Padilha</creator><creator>Martins, Leandro Tome</creator><creator>Massing, Jorge Rodrigo</creator><creator>Stefanello, Marcio</creator><general>IEEE</general><general>The Institute of Electrical and Electronics Engineers, Inc. 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The discrete-time model is of third-order with a nonminimum phase zero when controlling the grid side current. This poses some difficulties on the design of most types of controllers. Motivated by this problem, the inner loop is implemented by a discrete-time sliding mode control law to ensure the tracking of the converter side current. This can be achieved regardless the grid impedance and voltage, making the converter to behave like a current source inverter with a capacitive+inductive ( CL ) filter. Thus, the problem of current control falls from a third-order system to a second-order system. Several types of controllers can be designed to implement the outer loop based on the equivalent CL circuit. In this work, a resonant controller with a virtual resistor was applied. 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subjects | Capacitors Computer simulation Controllers Converters Current control Electric potential Harmonic analysis Impedance LCL filter multiloop control Sliding mode control sliding mode control (SMC) Switches Voltage control |
title | Sliding Mode Controller in a Multiloop Framework for a Grid-Connected VSI With LCL Filter |
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