Voltage profile improvement in islanded DC microgrid using load shedding method based on DC bus voltage estimation
DC microgrid is a leading technology that enables the integration of distributed generation (DG) units and avoids extreme complexity within the power system. One of the main challenges associated with islanded microgrids is the limited primary resources and variation of DGs' output power. For t...
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Veröffentlicht in: | Electrical engineering 2024, Vol.106 (4), p.4115-4125 |
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description | DC microgrid is a leading technology that enables the integration of distributed generation (DG) units and avoids extreme complexity within the power system. One of the main challenges associated with islanded microgrids is the limited primary resources and variation of DGs' output power. For this reason, in some cases, the microgrid may face an imbalance in the amount of power generation and consumption, which, if it exceeds the standard limit, would lead to severe voltage collapse and power system failure. In fact, when demand surpasses the available power generation, in cases where the imbalance is not too extreme, it results in a decrease in voltage; in more severe instances, it can cause a breakdown in the system's stability. In such scenarios, the emergency control and protective unit of the microgrid becomes active and initiates a process of disconnecting non-essential loads, known as load shedding process. Hence, a load shedding strategy is necessary for such circumstances. In this paper, by sampling the bus voltage to which the sensitive loads are connected and calculating the voltage curve fitting, the emergency control system can estimate the maximum voltage drop caused by the imbalance and optimally shed the non-critical loads. Three different scenarios are defined. The simulation results verify the accurate performance of the proposed load shedding method. |
doi_str_mv | 10.1007/s00202-023-02139-0 |
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One of the main challenges associated with islanded microgrids is the limited primary resources and variation of DGs' output power. For this reason, in some cases, the microgrid may face an imbalance in the amount of power generation and consumption, which, if it exceeds the standard limit, would lead to severe voltage collapse and power system failure. In fact, when demand surpasses the available power generation, in cases where the imbalance is not too extreme, it results in a decrease in voltage; in more severe instances, it can cause a breakdown in the system's stability. In such scenarios, the emergency control and protective unit of the microgrid becomes active and initiates a process of disconnecting non-essential loads, known as load shedding process. Hence, a load shedding strategy is necessary for such circumstances. In this paper, by sampling the bus voltage to which the sensitive loads are connected and calculating the voltage curve fitting, the emergency control system can estimate the maximum voltage drop caused by the imbalance and optimally shed the non-critical loads. Three different scenarios are defined. 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In this paper, by sampling the bus voltage to which the sensitive loads are connected and calculating the voltage curve fitting, the emergency control system can estimate the maximum voltage drop caused by the imbalance and optimally shed the non-critical loads. Three different scenarios are defined. The simulation results verify the accurate performance of the proposed load shedding method.</description><subject>Control systems</subject><subject>Curve fitting</subject><subject>Data buses</subject><subject>Distributed generation</subject><subject>Economics and Management</subject><subject>Electric power generation</subject><subject>Electric power systems</subject><subject>Electrical Engineering</subject><subject>Electrical loads</subject><subject>Electrical Machines and Networks</subject><subject>Energy Policy</subject><subject>Engineering</subject><subject>Extreme values</subject><subject>Load shedding</subject><subject>Original Paper</subject><subject>Power Electronics</subject><subject>Voltage collapse</subject><subject>Voltage drop</subject><issn>0948-7921</issn><issn>1432-0487</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><recordid>eNp9UEtPAyEQJkYTa_UPeCLxvDosy7IcTX0mTbyoV0KBbWl2ocJuE_-91G3izQNhBr7HzIfQNYFbAsDvEkAJZQElzYdQUcAJmpGK5qeq4adoBqJqCi5Kco4uUtoCAGWimqH4GbpBrS3exdC6zmLX52pve-sH7Dx2qVPeWIMfFrh3OoZ1dAaPyfk17oIyOG2sMYeut8MmGLxSKaODPxBWY8L7o75Ng-vV4IK_RGet6pK9Ot5z9PH0-L54KZZvz6-L-2WhKRFDoVXNDKvbumkYNNTqXFFe5k8tCGHCcmO4EiA01xRaVlFag6GaQU2M5S2do5tJNy_0NWZ_uQ1j9NlSUhCMMAKCZlQ5ofJuKUXbyl3Mg8ZvSUAespVTtjJnK3-zlZBJdCKlDPZrG_-k_2H9ACv2fJ0</recordid><startdate>2024</startdate><enddate>2024</enddate><creator>Basati, Saeed</creator><creator>Moradi, Hassan</creator><creator>Karimi, Shahram</creator><general>Springer Berlin Heidelberg</general><general>Springer Nature B.V</general><scope>AAYXX</scope><scope>CITATION</scope></search><sort><creationdate>2024</creationdate><title>Voltage profile improvement in islanded DC microgrid using load shedding method based on DC bus voltage estimation</title><author>Basati, Saeed ; Moradi, Hassan ; Karimi, Shahram</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c319t-ca65d56f6885083ecf68372c31c91159e7dd7a909c7c30f543360d3c5061de7f3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2024</creationdate><topic>Control systems</topic><topic>Curve fitting</topic><topic>Data buses</topic><topic>Distributed generation</topic><topic>Economics and Management</topic><topic>Electric power generation</topic><topic>Electric power systems</topic><topic>Electrical Engineering</topic><topic>Electrical loads</topic><topic>Electrical Machines and Networks</topic><topic>Energy Policy</topic><topic>Engineering</topic><topic>Extreme values</topic><topic>Load shedding</topic><topic>Original Paper</topic><topic>Power Electronics</topic><topic>Voltage collapse</topic><topic>Voltage drop</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Basati, Saeed</creatorcontrib><creatorcontrib>Moradi, Hassan</creatorcontrib><creatorcontrib>Karimi, Shahram</creatorcontrib><collection>CrossRef</collection><jtitle>Electrical engineering</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Basati, Saeed</au><au>Moradi, Hassan</au><au>Karimi, Shahram</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Voltage profile improvement in islanded DC microgrid using load shedding method based on DC bus voltage estimation</atitle><jtitle>Electrical engineering</jtitle><stitle>Electr Eng</stitle><date>2024</date><risdate>2024</risdate><volume>106</volume><issue>4</issue><spage>4115</spage><epage>4125</epage><pages>4115-4125</pages><issn>0948-7921</issn><eissn>1432-0487</eissn><abstract>DC microgrid is a leading technology that enables the integration of distributed generation (DG) units and avoids extreme complexity within the power system. One of the main challenges associated with islanded microgrids is the limited primary resources and variation of DGs' output power. For this reason, in some cases, the microgrid may face an imbalance in the amount of power generation and consumption, which, if it exceeds the standard limit, would lead to severe voltage collapse and power system failure. In fact, when demand surpasses the available power generation, in cases where the imbalance is not too extreme, it results in a decrease in voltage; in more severe instances, it can cause a breakdown in the system's stability. In such scenarios, the emergency control and protective unit of the microgrid becomes active and initiates a process of disconnecting non-essential loads, known as load shedding process. Hence, a load shedding strategy is necessary for such circumstances. In this paper, by sampling the bus voltage to which the sensitive loads are connected and calculating the voltage curve fitting, the emergency control system can estimate the maximum voltage drop caused by the imbalance and optimally shed the non-critical loads. Three different scenarios are defined. The simulation results verify the accurate performance of the proposed load shedding method.</abstract><cop>Berlin/Heidelberg</cop><pub>Springer Berlin Heidelberg</pub><doi>10.1007/s00202-023-02139-0</doi><tpages>11</tpages></addata></record> |
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subjects | Control systems Curve fitting Data buses Distributed generation Economics and Management Electric power generation Electric power systems Electrical Engineering Electrical loads Electrical Machines and Networks Energy Policy Engineering Extreme values Load shedding Original Paper Power Electronics Voltage collapse Voltage drop |
title | Voltage profile improvement in islanded DC microgrid using load shedding method based on DC bus voltage estimation |
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