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Low-frequency damping behavior of closed-cell Mg alloy foams reinforced with SiC particles
The damping properties of an Mg alloy foam and its composite foams were investigated using a dynamic mechanical thermal analyzer. The results show that the loss factors of both the Mg alloy and its composite foams are insensitive to temperature and loading frequency when the temperature is less than...
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Published in: | International journal of minerals, metallurgy and materials metallurgy and materials, 2017-06, Vol.24 (6), p.701-707 |
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description | The damping properties of an Mg alloy foam and its composite foams were investigated using a dynamic mechanical thermal analyzer. The results show that the loss factors of both the Mg alloy and its composite foams are insensitive to temperature and loading frequency when the temperature is less than a critical temperature Tcrit. However, it increases when the temperature exceeds the Tcrit values, which are 200 and 250°C for the Mg alloy foam and the Mg alloy/SiCp composite foams, respectively. The Mg alloy/SiCp composite foams exhibit a higher damping capacity than the Mg alloy foam when the temperature is below 200°C. By contrast, the Mg alloy foam exhibits a better damping capacity when the temperature exceeds 250°C. The variation in the damping capacity is attributed to differences in the internal friction sources, such as the characteristics of the matrix material, abundant interfaces, and interfacial slipping caused by SiC particles, as well as to macrodefects in the Mg alloy and its composite foams. |
doi_str_mv | 10.1007/s12613-017-1453-y |
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The results show that the loss factors of both the Mg alloy and its composite foams are insensitive to temperature and loading frequency when the temperature is less than a critical temperature Tcrit. However, it increases when the temperature exceeds the Tcrit values, which are 200 and 250°C for the Mg alloy foam and the Mg alloy/SiCp composite foams, respectively. The Mg alloy/SiCp composite foams exhibit a higher damping capacity than the Mg alloy foam when the temperature is below 200°C. By contrast, the Mg alloy foam exhibits a better damping capacity when the temperature exceeds 250°C. The variation in the damping capacity is attributed to differences in the internal friction sources, such as the characteristics of the matrix material, abundant interfaces, and interfacial slipping caused by SiC particles, as well as to macrodefects in the Mg alloy and its composite foams.</description><identifier>ISSN: 1674-4799</identifier><identifier>EISSN: 1869-103X</identifier><identifier>DOI: 10.1007/s12613-017-1453-y</identifier><language>eng</language><publisher>Beijing: University of Science and Technology Beijing</publisher><subject>Alloys ; Aluminum ; Ceramics ; Characterization and Evaluation of Materials ; Chemistry and Materials Science ; Composites ; Corrosion and Coatings ; Critical temperature ; Damping capacity ; Foamed metals ; Friction ; Glass ; Internal friction ; Investigations ; Magnesium base alloys ; Materials Science ; Metallic Materials ; Metallurgy ; Natural Materials ; Porous materials ; Silicon carbide ; Surfaces and Interfaces ; Thin Films ; Tribology</subject><ispartof>International journal of minerals, metallurgy and materials, 2017-06, Vol.24 (6), p.701-707</ispartof><rights>University of Science and Technology Beijing and Springer-Verlag Berlin Heidelberg 2017</rights><rights>University of Science and Technology Beijing and Springer-Verlag Berlin Heidelberg 2017.</rights><rights>Copyright © Wanfang Data Co. 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All Rights Reserved.</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c396t-aec9442929b0a0f4937cb5d33f1ba6f256318a045254a824aa7bc0647da3a26a3</citedby><cites>FETCH-LOGICAL-c396t-aec9442929b0a0f4937cb5d33f1ba6f256318a045254a824aa7bc0647da3a26a3</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Uhttp://image.cqvip.com/vip1000/qk/85313A/85313A.jpg</thumbnail><link.rule.ids>314,780,784,27924,27925</link.rule.ids></links><search><creatorcontrib>Huang, Wen-zhan</creatorcontrib><creatorcontrib>Luo, Hong-jie</creatorcontrib><creatorcontrib>Mu, Yong-liang</creatorcontrib><creatorcontrib>Lin, Hao</creatorcontrib><creatorcontrib>Du, Hao</creatorcontrib><title>Low-frequency damping behavior of closed-cell Mg alloy foams reinforced with SiC particles</title><title>International journal of minerals, metallurgy and materials</title><addtitle>Int J Miner Metall Mater</addtitle><addtitle>International Journal of Minerals Metallurgy and Materials</addtitle><description>The damping properties of an Mg alloy foam and its composite foams were investigated using a dynamic mechanical thermal analyzer. The results show that the loss factors of both the Mg alloy and its composite foams are insensitive to temperature and loading frequency when the temperature is less than a critical temperature Tcrit. However, it increases when the temperature exceeds the Tcrit values, which are 200 and 250°C for the Mg alloy foam and the Mg alloy/SiCp composite foams, respectively. The Mg alloy/SiCp composite foams exhibit a higher damping capacity than the Mg alloy foam when the temperature is below 200°C. By contrast, the Mg alloy foam exhibits a better damping capacity when the temperature exceeds 250°C. The variation in the damping capacity is attributed to differences in the internal friction sources, such as the characteristics of the matrix material, abundant interfaces, and interfacial slipping caused by SiC particles, as well as to macrodefects in the Mg alloy and its composite foams.</description><subject>Alloys</subject><subject>Aluminum</subject><subject>Ceramics</subject><subject>Characterization and Evaluation of Materials</subject><subject>Chemistry and Materials Science</subject><subject>Composites</subject><subject>Corrosion and Coatings</subject><subject>Critical temperature</subject><subject>Damping capacity</subject><subject>Foamed metals</subject><subject>Friction</subject><subject>Glass</subject><subject>Internal friction</subject><subject>Investigations</subject><subject>Magnesium base alloys</subject><subject>Materials Science</subject><subject>Metallic Materials</subject><subject>Metallurgy</subject><subject>Natural Materials</subject><subject>Porous materials</subject><subject>Silicon carbide</subject><subject>Surfaces and Interfaces</subject><subject>Thin Films</subject><subject>Tribology</subject><issn>1674-4799</issn><issn>1869-103X</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2017</creationdate><recordtype>article</recordtype><recordid>eNp9kU9v1DAQxSMEEqXwAbhZ4ogM4__xEa2gIC3iAEiIizVx7GyWbLy1t2zz7XFJRW-cZg6_9974uWleMnjDAMzbwrhmggIzlEkl6PKouWCttpSB-PG47tpIKo21T5tnpewBtDFgLpqf23SmMYfrmzD7hfR4OI7zQLqww99jyiRF4qdUQk99mCbyeSA4TWkhMeGhkBzGOabsQ0_O42lHvo4bcsR8Gv0UyvPmScSphBf387L5_uH9t81Huv1y9Wnzbku9sPpEMXgrJbfcdoAQpRXGd6oXIrIOdeRKC9YiSMWVxJZLRNN50NL0KJBrFJfN69X3jHPEeXD7dJPnmui6_a99f3vbucBrMaCB8Uq_WuljTvXR5fSA1xuAt1pZqBRbKZ9TKTlEd8zjAfPiGLi7wt1auKu-7q5wt1QNXzWlsvMQ8oPz_0TiPmiX5uG66v4l6fplRrVWgWylVUq2Sv7dQPwB4AeSYw</recordid><startdate>20170601</startdate><enddate>20170601</enddate><creator>Huang, Wen-zhan</creator><creator>Luo, Hong-jie</creator><creator>Mu, Yong-liang</creator><creator>Lin, Hao</creator><creator>Du, Hao</creator><general>University of Science and Technology Beijing</general><general>Springer Nature B.V</general><general>School of Metallurgy,Northeastern University,Shenyang 110819,China</general><general>Engineering Research Center of the Ministry of Education for Advanced Materials Preparation Technology,Shenyang 110819,China%Institute of Metal Research,Chinese Academy of Sciences,Shenyang 110016,China</general><scope>2RA</scope><scope>92L</scope><scope>CQIGP</scope><scope>~WA</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>8FE</scope><scope>8FG</scope><scope>ABJCF</scope><scope>AFKRA</scope><scope>BENPR</scope><scope>BGLVJ</scope><scope>BHPHI</scope><scope>BKSAR</scope><scope>CCPQU</scope><scope>D1I</scope><scope>DWQXO</scope><scope>HCIFZ</scope><scope>KB.</scope><scope>PCBAR</scope><scope>PDBOC</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>2B.</scope><scope>4A8</scope><scope>92I</scope><scope>93N</scope><scope>PSX</scope><scope>TCJ</scope></search><sort><creationdate>20170601</creationdate><title>Low-frequency damping behavior of closed-cell Mg alloy foams reinforced with SiC particles</title><author>Huang, Wen-zhan ; 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The results show that the loss factors of both the Mg alloy and its composite foams are insensitive to temperature and loading frequency when the temperature is less than a critical temperature Tcrit. However, it increases when the temperature exceeds the Tcrit values, which are 200 and 250°C for the Mg alloy foam and the Mg alloy/SiCp composite foams, respectively. The Mg alloy/SiCp composite foams exhibit a higher damping capacity than the Mg alloy foam when the temperature is below 200°C. By contrast, the Mg alloy foam exhibits a better damping capacity when the temperature exceeds 250°C. The variation in the damping capacity is attributed to differences in the internal friction sources, such as the characteristics of the matrix material, abundant interfaces, and interfacial slipping caused by SiC particles, as well as to macrodefects in the Mg alloy and its composite foams.</abstract><cop>Beijing</cop><pub>University of Science and Technology Beijing</pub><doi>10.1007/s12613-017-1453-y</doi><tpages>7</tpages></addata></record> |
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subjects | Alloys Aluminum Ceramics Characterization and Evaluation of Materials Chemistry and Materials Science Composites Corrosion and Coatings Critical temperature Damping capacity Foamed metals Friction Glass Internal friction Investigations Magnesium base alloys Materials Science Metallic Materials Metallurgy Natural Materials Porous materials Silicon carbide Surfaces and Interfaces Thin Films Tribology |
title | Low-frequency damping behavior of closed-cell Mg alloy foams reinforced with SiC particles |
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