Aerostructural optimization of a morphing wing for airborne wind energy applications
Airborne wind energy (AWE) vehicles maximize energy production by constantly operating at extreme wing loading, permitted by high flight speeds. Additionally, the wide range of wind speeds and the presence of flow inhomogeneities and gusts create a complex and demanding flight environment for AWE sy...
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Veröffentlicht in: | Smart materials and structures 2017-09, Vol.26 (9), p.95043 |
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description | Airborne wind energy (AWE) vehicles maximize energy production by constantly operating at extreme wing loading, permitted by high flight speeds. Additionally, the wide range of wind speeds and the presence of flow inhomogeneities and gusts create a complex and demanding flight environment for AWE systems. Adaptation to different flow conditions is normally achieved by conventional wing control surfaces and, in case of ground generator-based systems, by varying the reel-out speed. These control degrees of freedom enable to remain within the operational envelope, but cause significant penalties in terms of energy output. A significantly greater adaptability is offered by shape-morphing wings, which have the potential to achieve optimal performance at different flight conditions by tailoring their airfoil shape and lift distribution at different levels along the wingspan. Hence, the application of compliant structures for AWE wings is very promising. Furthermore, active gust load alleviation can be achieved through morphing, which leads to a lower weight and an expanded flight envelope, thus increasing the power production of the AWE system. This work presents a procedure to concurrently optimize the aerodynamic shape, compliant structure, and composite layup of a morphing wing for AWE applications. The morphing concept is based on distributed compliance ribs, actuated by electromechanical linear actuators, guiding the deformation of the flexible-yet load-carrying-composite skin. The goal of the aerostructural optimization is formulated as a high-level requirement, namely to maximize the average annual power production per wing area of an AWE system by tailoring the shape of the wing, and to extend the flight envelope of the wing by actively alleviating gust loads. The results of the concurrent multidisciplinary optimization show a 50.7% increase of extracted power with respect to a sequentially optimized design, highlighting the benefits of morphing and the potential of the proposed approach. |
doi_str_mv | 10.1088/1361-665X/aa7c87 |
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Additionally, the wide range of wind speeds and the presence of flow inhomogeneities and gusts create a complex and demanding flight environment for AWE systems. Adaptation to different flow conditions is normally achieved by conventional wing control surfaces and, in case of ground generator-based systems, by varying the reel-out speed. These control degrees of freedom enable to remain within the operational envelope, but cause significant penalties in terms of energy output. A significantly greater adaptability is offered by shape-morphing wings, which have the potential to achieve optimal performance at different flight conditions by tailoring their airfoil shape and lift distribution at different levels along the wingspan. Hence, the application of compliant structures for AWE wings is very promising. Furthermore, active gust load alleviation can be achieved through morphing, which leads to a lower weight and an expanded flight envelope, thus increasing the power production of the AWE system. This work presents a procedure to concurrently optimize the aerodynamic shape, compliant structure, and composite layup of a morphing wing for AWE applications. The morphing concept is based on distributed compliance ribs, actuated by electromechanical linear actuators, guiding the deformation of the flexible-yet load-carrying-composite skin. The goal of the aerostructural optimization is formulated as a high-level requirement, namely to maximize the average annual power production per wing area of an AWE system by tailoring the shape of the wing, and to extend the flight envelope of the wing by actively alleviating gust loads. The results of the concurrent multidisciplinary optimization show a 50.7% increase of extracted power with respect to a sequentially optimized design, highlighting the benefits of morphing and the potential of the proposed approach.</description><identifier>ISSN: 0964-1726</identifier><identifier>EISSN: 1361-665X</identifier><identifier>DOI: 10.1088/1361-665X/aa7c87</identifier><identifier>CODEN: SMSTER</identifier><language>eng</language><publisher>IOP Publishing</publisher><subject>airborne wind energy ; compliant structures ; morphing wings ; multidisciplinary optimization</subject><ispartof>Smart materials and structures, 2017-09, Vol.26 (9), p.95043</ispartof><rights>2017 IOP Publishing Ltd</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c351t-57ad8239dcb0e036983009fe8a35abb6bf63a00f2b81753767f0ea6f801ae47b3</citedby><cites>FETCH-LOGICAL-c351t-57ad8239dcb0e036983009fe8a35abb6bf63a00f2b81753767f0ea6f801ae47b3</cites><orcidid>0000-0003-0158-3845</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktopdf>$$Uhttps://iopscience.iop.org/article/10.1088/1361-665X/aa7c87/pdf$$EPDF$$P50$$Giop$$H</linktopdf><link.rule.ids>314,776,780,27901,27902,53821,53868</link.rule.ids></links><search><creatorcontrib>Fasel, U</creatorcontrib><creatorcontrib>Keidel, D</creatorcontrib><creatorcontrib>Molinari, G</creatorcontrib><creatorcontrib>Ermanni, P</creatorcontrib><title>Aerostructural optimization of a morphing wing for airborne wind energy applications</title><title>Smart materials and structures</title><addtitle>SMS</addtitle><addtitle>Smart Mater. Struct</addtitle><description>Airborne wind energy (AWE) vehicles maximize energy production by constantly operating at extreme wing loading, permitted by high flight speeds. Additionally, the wide range of wind speeds and the presence of flow inhomogeneities and gusts create a complex and demanding flight environment for AWE systems. Adaptation to different flow conditions is normally achieved by conventional wing control surfaces and, in case of ground generator-based systems, by varying the reel-out speed. These control degrees of freedom enable to remain within the operational envelope, but cause significant penalties in terms of energy output. A significantly greater adaptability is offered by shape-morphing wings, which have the potential to achieve optimal performance at different flight conditions by tailoring their airfoil shape and lift distribution at different levels along the wingspan. Hence, the application of compliant structures for AWE wings is very promising. Furthermore, active gust load alleviation can be achieved through morphing, which leads to a lower weight and an expanded flight envelope, thus increasing the power production of the AWE system. This work presents a procedure to concurrently optimize the aerodynamic shape, compliant structure, and composite layup of a morphing wing for AWE applications. The morphing concept is based on distributed compliance ribs, actuated by electromechanical linear actuators, guiding the deformation of the flexible-yet load-carrying-composite skin. The goal of the aerostructural optimization is formulated as a high-level requirement, namely to maximize the average annual power production per wing area of an AWE system by tailoring the shape of the wing, and to extend the flight envelope of the wing by actively alleviating gust loads. The results of the concurrent multidisciplinary optimization show a 50.7% increase of extracted power with respect to a sequentially optimized design, highlighting the benefits of morphing and the potential of the proposed approach.</description><subject>airborne wind energy</subject><subject>compliant structures</subject><subject>morphing wings</subject><subject>multidisciplinary optimization</subject><issn>0964-1726</issn><issn>1361-665X</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2017</creationdate><recordtype>article</recordtype><recordid>eNp1kM1LAzEQxYMoWKt3j7l5ce1k002yx1L8goKXCt7CZDepKd3NkmyR-te7a8WTXmbg8d5j5kfINYM7BkrNGBcsE6J4myHKSskTMvmVTskESjHPmMzFOblIaQvAmOJsQtYLG0Pq477q9xF3NHS9b_wn9j60NDiKtAmxe_fthn6Mw4VI0UcTYmtHpaa2tXFzoNh1O19959IlOXO4S_bqZ0_J68P9evmUrV4en5eLVVbxgvVZIbFWOS_ryoAFLkrFAUpnFfICjRHGCY4ALjeKyYJLIR1YFE4BQzuXhk8JHHur4YcUrdNd9A3Gg2agRyp6RKBHBPpIZYjcHCM-dHob9rEdDtSpSToXutRQFjDnuqvd4Lz9w_lv8ReDGnMN</recordid><startdate>20170901</startdate><enddate>20170901</enddate><creator>Fasel, U</creator><creator>Keidel, D</creator><creator>Molinari, G</creator><creator>Ermanni, P</creator><general>IOP Publishing</general><scope>AAYXX</scope><scope>CITATION</scope><orcidid>https://orcid.org/0000-0003-0158-3845</orcidid></search><sort><creationdate>20170901</creationdate><title>Aerostructural optimization of a morphing wing for airborne wind energy applications</title><author>Fasel, U ; Keidel, D ; Molinari, G ; Ermanni, P</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c351t-57ad8239dcb0e036983009fe8a35abb6bf63a00f2b81753767f0ea6f801ae47b3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2017</creationdate><topic>airborne wind energy</topic><topic>compliant structures</topic><topic>morphing wings</topic><topic>multidisciplinary optimization</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Fasel, U</creatorcontrib><creatorcontrib>Keidel, D</creatorcontrib><creatorcontrib>Molinari, G</creatorcontrib><creatorcontrib>Ermanni, P</creatorcontrib><collection>CrossRef</collection><jtitle>Smart materials and structures</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Fasel, U</au><au>Keidel, D</au><au>Molinari, G</au><au>Ermanni, P</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Aerostructural optimization of a morphing wing for airborne wind energy applications</atitle><jtitle>Smart materials and structures</jtitle><stitle>SMS</stitle><addtitle>Smart Mater. Struct</addtitle><date>2017-09-01</date><risdate>2017</risdate><volume>26</volume><issue>9</issue><spage>95043</spage><pages>95043-</pages><issn>0964-1726</issn><eissn>1361-665X</eissn><coden>SMSTER</coden><abstract>Airborne wind energy (AWE) vehicles maximize energy production by constantly operating at extreme wing loading, permitted by high flight speeds. Additionally, the wide range of wind speeds and the presence of flow inhomogeneities and gusts create a complex and demanding flight environment for AWE systems. Adaptation to different flow conditions is normally achieved by conventional wing control surfaces and, in case of ground generator-based systems, by varying the reel-out speed. These control degrees of freedom enable to remain within the operational envelope, but cause significant penalties in terms of energy output. A significantly greater adaptability is offered by shape-morphing wings, which have the potential to achieve optimal performance at different flight conditions by tailoring their airfoil shape and lift distribution at different levels along the wingspan. Hence, the application of compliant structures for AWE wings is very promising. Furthermore, active gust load alleviation can be achieved through morphing, which leads to a lower weight and an expanded flight envelope, thus increasing the power production of the AWE system. This work presents a procedure to concurrently optimize the aerodynamic shape, compliant structure, and composite layup of a morphing wing for AWE applications. The morphing concept is based on distributed compliance ribs, actuated by electromechanical linear actuators, guiding the deformation of the flexible-yet load-carrying-composite skin. The goal of the aerostructural optimization is formulated as a high-level requirement, namely to maximize the average annual power production per wing area of an AWE system by tailoring the shape of the wing, and to extend the flight envelope of the wing by actively alleviating gust loads. The results of the concurrent multidisciplinary optimization show a 50.7% increase of extracted power with respect to a sequentially optimized design, highlighting the benefits of morphing and the potential of the proposed approach.</abstract><pub>IOP Publishing</pub><doi>10.1088/1361-665X/aa7c87</doi><tpages>11</tpages><orcidid>https://orcid.org/0000-0003-0158-3845</orcidid></addata></record> |
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subjects | airborne wind energy compliant structures morphing wings multidisciplinary optimization |
title | Aerostructural optimization of a morphing wing for airborne wind energy applications |
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