Online Embedded Impedance Measurement Using High-Power Battery Charger
This paper presents a new functionality for high-power battery chargers by incorporating an impedance measurement algorithm. The measurement of battery impedance can be performed by the battery charger to provide an accurate equivalent model for battery management purposes. In this paper, an extende...
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Veröffentlicht in: | IEEE transactions on industry applications 2015-01, Vol.51 (1), p.498-508 |
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description | This paper presents a new functionality for high-power battery chargers by incorporating an impedance measurement algorithm. The measurement of battery impedance can be performed by the battery charger to provide an accurate equivalent model for battery management purposes. In this paper, an extended control capability of the onboard battery charger for electric vehicles is used to measure the online impedance of the battery. The impedance of the battery is measured by the following: 1) injecting ac current ripple on top of the dc charging current; 2) transforming voltage and current signals using a virtual α-β stationary coordinate system, a d-q rotating coordinate system, and two filtering systems; 3) calculating ripple voltage and current values; and 4) calculating the angle and magnitude of the impedance. The contributions of this paper are the use of the d-q transformation to attain the battery impedance, theta, and its ripple power, as well as providing a controller design procedure which has impedance measurement capability. The online impedance information can be utilized for diverse applications such as the following: 1) a theta control for sinusoidal current charging; 2) the quantifying of reactive current and voltage; 3) ascertaining the state of charge; 4) determining the state of health; and 5) finding the optimized charging current. Therefore, the benefit of this method is that it can be deployed in already existing high-power chargers regardless of battery chemistry. Validations of the proposed approach were made by comparing measurement values by using a battery charger and a commercial frequency response analyzer. |
doi_str_mv | 10.1109/TIA.2014.2336979 |
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The measurement of battery impedance can be performed by the battery charger to provide an accurate equivalent model for battery management purposes. In this paper, an extended control capability of the onboard battery charger for electric vehicles is used to measure the online impedance of the battery. The impedance of the battery is measured by the following: 1) injecting ac current ripple on top of the dc charging current; 2) transforming voltage and current signals using a virtual α-β stationary coordinate system, a d-q rotating coordinate system, and two filtering systems; 3) calculating ripple voltage and current values; and 4) calculating the angle and magnitude of the impedance. The contributions of this paper are the use of the d-q transformation to attain the battery impedance, theta, and its ripple power, as well as providing a controller design procedure which has impedance measurement capability. The online impedance information can be utilized for diverse applications such as the following: 1) a theta control for sinusoidal current charging; 2) the quantifying of reactive current and voltage; 3) ascertaining the state of charge; 4) determining the state of health; and 5) finding the optimized charging current. Therefore, the benefit of this method is that it can be deployed in already existing high-power chargers regardless of battery chemistry. Validations of the proposed approach were made by comparing measurement values by using a battery charger and a commercial frequency response analyzer.</description><identifier>ISSN: 0093-9994</identifier><identifier>EISSN: 1939-9367</identifier><identifier>DOI: 10.1109/TIA.2014.2336979</identifier><identifier>CODEN: ITIACR</identifier><language>eng</language><publisher>IEEE</publisher><subject>Batteries ; Battery charge measurement ; Battery chargers ; Equivalent circuits ; Impedance ; Impedance measurement ; Integrated circuit modeling</subject><ispartof>IEEE transactions on industry applications, 2015-01, Vol.51 (1), p.498-508</ispartof><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c263t-404879f183a525e0b850176f707871632b9d5363f98141b5915b4681e8ff58eb3</citedby><cites>FETCH-LOGICAL-c263t-404879f183a525e0b850176f707871632b9d5363f98141b5915b4681e8ff58eb3</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://ieeexplore.ieee.org/document/6856173$$EHTML$$P50$$Gieee$$H</linktohtml><link.rule.ids>315,781,785,797,27928,27929,54762</link.rule.ids><linktorsrc>$$Uhttps://ieeexplore.ieee.org/document/6856173$$EView_record_in_IEEE$$FView_record_in_$$GIEEE</linktorsrc></links><search><creatorcontrib>Lee, Yong-Duk</creatorcontrib><creatorcontrib>Park, Sung-Yeul</creatorcontrib><creatorcontrib>Han, Soo-Bin</creatorcontrib><title>Online Embedded Impedance Measurement Using High-Power Battery Charger</title><title>IEEE transactions on industry applications</title><addtitle>TIA</addtitle><description>This paper presents a new functionality for high-power battery chargers by incorporating an impedance measurement algorithm. The measurement of battery impedance can be performed by the battery charger to provide an accurate equivalent model for battery management purposes. In this paper, an extended control capability of the onboard battery charger for electric vehicles is used to measure the online impedance of the battery. The impedance of the battery is measured by the following: 1) injecting ac current ripple on top of the dc charging current; 2) transforming voltage and current signals using a virtual α-β stationary coordinate system, a d-q rotating coordinate system, and two filtering systems; 3) calculating ripple voltage and current values; and 4) calculating the angle and magnitude of the impedance. The contributions of this paper are the use of the d-q transformation to attain the battery impedance, theta, and its ripple power, as well as providing a controller design procedure which has impedance measurement capability. The online impedance information can be utilized for diverse applications such as the following: 1) a theta control for sinusoidal current charging; 2) the quantifying of reactive current and voltage; 3) ascertaining the state of charge; 4) determining the state of health; and 5) finding the optimized charging current. Therefore, the benefit of this method is that it can be deployed in already existing high-power chargers regardless of battery chemistry. Validations of the proposed approach were made by comparing measurement values by using a battery charger and a commercial frequency response analyzer.</description><subject>Batteries</subject><subject>Battery charge measurement</subject><subject>Battery chargers</subject><subject>Equivalent circuits</subject><subject>Impedance</subject><subject>Impedance measurement</subject><subject>Integrated circuit modeling</subject><issn>0093-9994</issn><issn>1939-9367</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2015</creationdate><recordtype>article</recordtype><sourceid>RIE</sourceid><recordid>eNo9kEtPwkAURidGExHdm7iZP1Cc23neJRJeCQYXsG6m9A7U0EJmagz_XgjE1bc551scxl5BDAAEvq_mw0EuQA1yKQ1avGM9QIkZSmPvWU8IlBkiqkf2lNK3OJMaVI9Nlu2-bomPm5Kqiio-b45U-XZD_JN8-onUUNvxdarbLZ_V2132dfilyD9811E88dHOxy3FZ_YQ_D7Ry237bD0Zr0azbLGczkfDRbbJjewyJZSzGMBJr3NNonRagDXBCussGJmXWGlpZEAHCkqNoEtlHJALQTsqZZ-J6-8mHlKKFIpjrBsfTwWI4tKhOHcoLh2KW4ez8nZVaiL6x43TBqyUfwI9V3c</recordid><startdate>201501</startdate><enddate>201501</enddate><creator>Lee, Yong-Duk</creator><creator>Park, Sung-Yeul</creator><creator>Han, Soo-Bin</creator><general>IEEE</general><scope>97E</scope><scope>RIA</scope><scope>RIE</scope><scope>AAYXX</scope><scope>CITATION</scope></search><sort><creationdate>201501</creationdate><title>Online Embedded Impedance Measurement Using High-Power Battery Charger</title><author>Lee, Yong-Duk ; Park, Sung-Yeul ; Han, Soo-Bin</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c263t-404879f183a525e0b850176f707871632b9d5363f98141b5915b4681e8ff58eb3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2015</creationdate><topic>Batteries</topic><topic>Battery charge measurement</topic><topic>Battery chargers</topic><topic>Equivalent circuits</topic><topic>Impedance</topic><topic>Impedance measurement</topic><topic>Integrated circuit modeling</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Lee, Yong-Duk</creatorcontrib><creatorcontrib>Park, Sung-Yeul</creatorcontrib><creatorcontrib>Han, Soo-Bin</creatorcontrib><collection>IEEE All-Society Periodicals Package (ASPP) 2005-present</collection><collection>IEEE All-Society Periodicals Package (ASPP) 1998-Present</collection><collection>IEEE Electronic Library (IEL)</collection><collection>CrossRef</collection><jtitle>IEEE transactions on industry applications</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>Lee, Yong-Duk</au><au>Park, Sung-Yeul</au><au>Han, Soo-Bin</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Online Embedded Impedance Measurement Using High-Power Battery Charger</atitle><jtitle>IEEE transactions on industry applications</jtitle><stitle>TIA</stitle><date>2015-01</date><risdate>2015</risdate><volume>51</volume><issue>1</issue><spage>498</spage><epage>508</epage><pages>498-508</pages><issn>0093-9994</issn><eissn>1939-9367</eissn><coden>ITIACR</coden><abstract>This paper presents a new functionality for high-power battery chargers by incorporating an impedance measurement algorithm. The measurement of battery impedance can be performed by the battery charger to provide an accurate equivalent model for battery management purposes. In this paper, an extended control capability of the onboard battery charger for electric vehicles is used to measure the online impedance of the battery. The impedance of the battery is measured by the following: 1) injecting ac current ripple on top of the dc charging current; 2) transforming voltage and current signals using a virtual α-β stationary coordinate system, a d-q rotating coordinate system, and two filtering systems; 3) calculating ripple voltage and current values; and 4) calculating the angle and magnitude of the impedance. The contributions of this paper are the use of the d-q transformation to attain the battery impedance, theta, and its ripple power, as well as providing a controller design procedure which has impedance measurement capability. The online impedance information can be utilized for diverse applications such as the following: 1) a theta control for sinusoidal current charging; 2) the quantifying of reactive current and voltage; 3) ascertaining the state of charge; 4) determining the state of health; and 5) finding the optimized charging current. Therefore, the benefit of this method is that it can be deployed in already existing high-power chargers regardless of battery chemistry. Validations of the proposed approach were made by comparing measurement values by using a battery charger and a commercial frequency response analyzer.</abstract><pub>IEEE</pub><doi>10.1109/TIA.2014.2336979</doi><tpages>11</tpages></addata></record> |
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subjects | Batteries Battery charge measurement Battery chargers Equivalent circuits Impedance Impedance measurement Integrated circuit modeling |
title | Online Embedded Impedance Measurement Using High-Power Battery Charger |
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