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Hybrid Modulated Model Predictive Control in a Modular Multilevel Converter for Multi-Terminal Direct Current Systems
In this paper a hybrid modulated model predictive control (HM2PC) strategy for modular-multilevel-converter (MMC) multi-terminal direct current (MTDC) systems is proposed for supplying power to passive networks or weak AC systems, with the control objectives of maintaining the DC voltage, voltage st...
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Published in: | Energies (Basel) 2018-07, Vol.11 (7), p.1861 |
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description | In this paper a hybrid modulated model predictive control (HM2PC) strategy for modular-multilevel-converter (MMC) multi-terminal direct current (MTDC) systems is proposed for supplying power to passive networks or weak AC systems, with the control objectives of maintaining the DC voltage, voltage stability and power balance of the proposed system. The proposed strategy preserves the desired characteristics of conventional model predictive control method based on finite control set (FCS-MPC) methods, but deals with high switching frequency, circulating current and steady-state error in a superior way by introducing the calculation of the optimal output voltage level in each bridge arm and the specific duty cycle in each Sub-Module (SM), both of which are well-suited for the control of the MMC system. In addition, an improved multi-point DC voltage control strategy based on active power balanced control is proposed for an MMC-MTDC system supplying power to passive networks or weak AC systems, with the control objective of coordinating the power balance between different stations. An MMC-HVDC simulation model including four stations has been established on MATLAB/Simulink (r2014b MathWorks, Natick, MA, USA). Simulations were performed to validate the feasibility of the proposed control strategy under both steady and transient states. The simulation results prove that the strategy can suppress oscillations in the MMC-MTDC system caused by AC side faults, and that the system can continue functioning if any one of the converters are tripped from the MMC-MTDC network. |
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The proposed strategy preserves the desired characteristics of conventional model predictive control method based on finite control set (FCS-MPC) methods, but deals with high switching frequency, circulating current and steady-state error in a superior way by introducing the calculation of the optimal output voltage level in each bridge arm and the specific duty cycle in each Sub-Module (SM), both of which are well-suited for the control of the MMC system. In addition, an improved multi-point DC voltage control strategy based on active power balanced control is proposed for an MMC-MTDC system supplying power to passive networks or weak AC systems, with the control objective of coordinating the power balance between different stations. An MMC-HVDC simulation model including four stations has been established on MATLAB/Simulink (r2014b MathWorks, Natick, MA, USA). Simulations were performed to validate the feasibility of the proposed control strategy under both steady and transient states. The simulation results prove that the strategy can suppress oscillations in the MMC-MTDC system caused by AC side faults, and that the system can continue functioning if any one of the converters are tripped from the MMC-MTDC network.</description><identifier>ISSN: 1996-1073</identifier><identifier>EISSN: 1996-1073</identifier><identifier>DOI: 10.3390/en11071861</identifier><language>eng</language><publisher>Basel: MDPI AG</publisher><subject>Computer simulation ; Control methods ; Control systems ; Converters ; Direct current ; Electric potential ; Feasibility studies ; hybrid modulated model predictive control ; MMC-MTDC ; multi-point DC control ; optimal output voltage level ; Oscillations ; Predictive control ; Strategy ; Switching theory ; Voltage ; Voltage stability</subject><ispartof>Energies (Basel), 2018-07, Vol.11 (7), p.1861</ispartof><rights>2018. 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The proposed strategy preserves the desired characteristics of conventional model predictive control method based on finite control set (FCS-MPC) methods, but deals with high switching frequency, circulating current and steady-state error in a superior way by introducing the calculation of the optimal output voltage level in each bridge arm and the specific duty cycle in each Sub-Module (SM), both of which are well-suited for the control of the MMC system. In addition, an improved multi-point DC voltage control strategy based on active power balanced control is proposed for an MMC-MTDC system supplying power to passive networks or weak AC systems, with the control objective of coordinating the power balance between different stations. An MMC-HVDC simulation model including four stations has been established on MATLAB/Simulink (r2014b MathWorks, Natick, MA, USA). Simulations were performed to validate the feasibility of the proposed control strategy under both steady and transient states. The simulation results prove that the strategy can suppress oscillations in the MMC-MTDC system caused by AC side faults, and that the system can continue functioning if any one of the converters are tripped from the MMC-MTDC network.</description><subject>Computer simulation</subject><subject>Control methods</subject><subject>Control systems</subject><subject>Converters</subject><subject>Direct current</subject><subject>Electric potential</subject><subject>Feasibility studies</subject><subject>hybrid modulated model predictive control</subject><subject>MMC-MTDC</subject><subject>multi-point DC control</subject><subject>optimal output voltage level</subject><subject>Oscillations</subject><subject>Predictive control</subject><subject>Strategy</subject><subject>Switching theory</subject><subject>Voltage</subject><subject>Voltage stability</subject><issn>1996-1073</issn><issn>1996-1073</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><sourceid>PIMPY</sourceid><sourceid>DOA</sourceid><recordid>eNpNUU1LAzEUXETBUr34CwLehNVkk2azR6mfUFFQzyHJvpWU7aa-ZAv990Zb1Hd5HzPM8JiiOGP0kvOGXsHAGK2ZkuygmLCmkWVe-eG_-bg4jXFJc3HOOOeTYnzYWvQteQrt2JsEPxP05AWh9S75DZB5GBKGnviBmD0PydPYJ9_DJlMzvgFMgKQLe6B8A1z5wfTkxiO4ROYjIgyJvG5jglU8KY4600c43fdp8X53-zZ_KBfP94_z60XpuGSpFMJC7UQ1c0ooQTvTUKs6UXV1a2SjFACfWds2wjD4RirlhJBgpa2ckk7yafG4022DWeo1-pXBrQ7G659DwA9tMHnXg1ayAjprmKXZ0TClKLWCt9Ty2tUK2qx1vtNaY_gcISa9DCPmH6OuGFUz1tQVzayLHcthiBGh-3VlVH-npP9S4l9BUYS5</recordid><startdate>20180701</startdate><enddate>20180701</enddate><creator>Wu, Zhi</creator><creator>Chu, Jiawei</creator><creator>Gu, Wei</creator><creator>Huang, Qiang</creator><creator>Chen, Liang</creator><creator>Yuan, Xiaodong</creator><general>MDPI AG</general><scope>AAYXX</scope><scope>CITATION</scope><scope>ABUWG</scope><scope>AFKRA</scope><scope>AZQEC</scope><scope>BENPR</scope><scope>CCPQU</scope><scope>DWQXO</scope><scope>PIMPY</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>PRINS</scope><scope>DOA</scope><orcidid>https://orcid.org/0000-0003-4803-3920</orcidid></search><sort><creationdate>20180701</creationdate><title>Hybrid Modulated Model Predictive Control in a Modular Multilevel Converter for Multi-Terminal Direct Current Systems</title><author>Wu, Zhi ; Chu, Jiawei ; Gu, Wei ; Huang, Qiang ; Chen, Liang ; Yuan, Xiaodong</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c361t-44be7c425c84840fa90b8f42f7da6988ee35bbd94a1e0b8f28c446eb6b2c86c63</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2018</creationdate><topic>Computer simulation</topic><topic>Control methods</topic><topic>Control systems</topic><topic>Converters</topic><topic>Direct current</topic><topic>Electric potential</topic><topic>Feasibility studies</topic><topic>hybrid modulated model predictive control</topic><topic>MMC-MTDC</topic><topic>multi-point DC control</topic><topic>optimal output voltage level</topic><topic>Oscillations</topic><topic>Predictive control</topic><topic>Strategy</topic><topic>Switching theory</topic><topic>Voltage</topic><topic>Voltage stability</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Wu, Zhi</creatorcontrib><creatorcontrib>Chu, Jiawei</creatorcontrib><creatorcontrib>Gu, Wei</creatorcontrib><creatorcontrib>Huang, Qiang</creatorcontrib><creatorcontrib>Chen, Liang</creatorcontrib><creatorcontrib>Yuan, Xiaodong</creatorcontrib><collection>CrossRef</collection><collection>ProQuest Central (Alumni)</collection><collection>ProQuest Central</collection><collection>ProQuest Central Essentials</collection><collection>ProQuest Central</collection><collection>ProQuest One Community College</collection><collection>ProQuest Central</collection><collection>Publicly Available Content (ProQuest)</collection><collection>ProQuest One Academic Eastern Edition (DO NOT USE)</collection><collection>ProQuest One Academic</collection><collection>ProQuest One Academic UKI Edition</collection><collection>ProQuest Central China</collection><collection>DOAJ Directory of Open Access Journals</collection><jtitle>Energies (Basel)</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Wu, Zhi</au><au>Chu, Jiawei</au><au>Gu, Wei</au><au>Huang, Qiang</au><au>Chen, Liang</au><au>Yuan, Xiaodong</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Hybrid Modulated Model Predictive Control in a Modular Multilevel Converter for Multi-Terminal Direct Current Systems</atitle><jtitle>Energies (Basel)</jtitle><date>2018-07-01</date><risdate>2018</risdate><volume>11</volume><issue>7</issue><spage>1861</spage><pages>1861-</pages><issn>1996-1073</issn><eissn>1996-1073</eissn><abstract>In this paper a hybrid modulated model predictive control (HM2PC) strategy for modular-multilevel-converter (MMC) multi-terminal direct current (MTDC) systems is proposed for supplying power to passive networks or weak AC systems, with the control objectives of maintaining the DC voltage, voltage stability and power balance of the proposed system. The proposed strategy preserves the desired characteristics of conventional model predictive control method based on finite control set (FCS-MPC) methods, but deals with high switching frequency, circulating current and steady-state error in a superior way by introducing the calculation of the optimal output voltage level in each bridge arm and the specific duty cycle in each Sub-Module (SM), both of which are well-suited for the control of the MMC system. In addition, an improved multi-point DC voltage control strategy based on active power balanced control is proposed for an MMC-MTDC system supplying power to passive networks or weak AC systems, with the control objective of coordinating the power balance between different stations. An MMC-HVDC simulation model including four stations has been established on MATLAB/Simulink (r2014b MathWorks, Natick, MA, USA). Simulations were performed to validate the feasibility of the proposed control strategy under both steady and transient states. The simulation results prove that the strategy can suppress oscillations in the MMC-MTDC system caused by AC side faults, and that the system can continue functioning if any one of the converters are tripped from the MMC-MTDC network.</abstract><cop>Basel</cop><pub>MDPI AG</pub><doi>10.3390/en11071861</doi><orcidid>https://orcid.org/0000-0003-4803-3920</orcidid><oa>free_for_read</oa></addata></record> |
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subjects | Computer simulation Control methods Control systems Converters Direct current Electric potential Feasibility studies hybrid modulated model predictive control MMC-MTDC multi-point DC control optimal output voltage level Oscillations Predictive control Strategy Switching theory Voltage Voltage stability |
title | Hybrid Modulated Model Predictive Control in a Modular Multilevel Converter for Multi-Terminal Direct Current Systems |
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