Dynamic deformation behavior and constitutive model of a Zr–W alloy
In this paper, a Zr–5W alloy was fabricated via casting. In order to obtain the mechanical properties of the material, quasi-static compression tests at room temperature and split Hopkinson pressure bar tests at various temperatures were carried out. The x-ray diffraction result showed that the main...
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description | In this paper, a Zr–5W alloy was fabricated via casting. In order to obtain the mechanical properties of the material, quasi-static compression tests at room temperature and split Hopkinson pressure bar tests at various temperatures were carried out. The x-ray diffraction result showed that the main components of the alloy were αZr and W2Zr, where αZr is the matrix and W2Zr is the reinforcement. The metallographic characterization results showed that there were two main forms of W2Zr in the material, namely, large particle boundary and small diffuse submicrometer precipitates. The reinforcements of both distributions have the effect of increasing the strength of the material, but the small submicrometer W2Zr precipitates would cause microcrack nucleation during the late plastic deformation stage, resulting in damage softening. In order to make theoretical calculations of the mechanical properties of materials, the Johnson–Cook (JC) constitutive model and Zerilli–Armstrong (ZAM) constitutive model of the material were obtained. It was found that the JC constitutive model had poor consistency in describing material properties. Although the consistency of the ZAM constitutive model was higher than that of the JC constitutive model, it still had obvious shortcomings. Combined with the deformation mechanism of the alloy, a modified constitutive relation was established by adding damage softening terms based on the hexagonal close-packed metal constitutive model inferred by the kinetics of heat-activated dislocations. The relative error results of all working conditions show that the correlation consistency of the improved constitutive model in this paper is significantly better than that of JC constitutive and ZAM constitutive. |
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In order to obtain the mechanical properties of the material, quasi-static compression tests at room temperature and split Hopkinson pressure bar tests at various temperatures were carried out. The x-ray diffraction result showed that the main components of the alloy were αZr and W2Zr, where αZr is the matrix and W2Zr is the reinforcement. The metallographic characterization results showed that there were two main forms of W2Zr in the material, namely, large particle boundary and small diffuse submicrometer precipitates. The reinforcements of both distributions have the effect of increasing the strength of the material, but the small submicrometer W2Zr precipitates would cause microcrack nucleation during the late plastic deformation stage, resulting in damage softening. In order to make theoretical calculations of the mechanical properties of materials, the Johnson–Cook (JC) constitutive model and Zerilli–Armstrong (ZAM) constitutive model of the material were obtained. It was found that the JC constitutive model had poor consistency in describing material properties. Although the consistency of the ZAM constitutive model was higher than that of the JC constitutive model, it still had obvious shortcomings. Combined with the deformation mechanism of the alloy, a modified constitutive relation was established by adding damage softening terms based on the hexagonal close-packed metal constitutive model inferred by the kinetics of heat-activated dislocations. The relative error results of all working conditions show that the correlation consistency of the improved constitutive model in this paper is significantly better than that of JC constitutive and ZAM constitutive.</description><identifier>ISSN: 0021-8979</identifier><identifier>EISSN: 1089-7550</identifier><identifier>DOI: 10.1063/5.0155224</identifier><identifier>CODEN: JAPIAU</identifier><language>eng</language><publisher>Melville: American Institute of Physics</publisher><subject>Applied physics ; Compression tests ; Consistency ; Constitutive models ; Constitutive relationships ; Damage ; Deformation ; Deformation mechanisms ; HCP metals ; Material properties ; Mathematical models ; Mechanical properties ; Microcracks ; Nucleation ; Plastic deformation ; Precipitates ; Room temperature ; Softening ; Split Hopkinson pressure bars ; Zirconium base alloys</subject><ispartof>Journal of applied physics, 2023-11, Vol.134 (17)</ispartof><rights>Author(s)</rights><rights>2023 Author(s). Published under an exclusive license by AIP Publishing.</rights><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c327t-ba7958dad923eb9992f60e4ade62e9bfe81530e96680975755deb49b2630468d3</citedby><cites>FETCH-LOGICAL-c327t-ba7958dad923eb9992f60e4ade62e9bfe81530e96680975755deb49b2630468d3</cites><orcidid>0009-0002-4993-1319 ; 0009-0005-9067-2031 ; 0009-0006-5770-1969 ; 0009-0000-3932-107X ; 0000-0003-3006-9896 ; 0000-0001-6955-0383 ; 0000-0002-8094-9659</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://pubs.aip.org/jap/article-lookup/doi/10.1063/5.0155224$$EHTML$$P50$$Gscitation$$H</linktohtml><link.rule.ids>315,782,786,796,4514,27931,27932,76392</link.rule.ids></links><search><creatorcontrib>Ma, Yue</creatorcontrib><creatorcontrib>Wang, Chuanting</creatorcontrib><creatorcontrib>Guo, Zhiping</creatorcontrib><creatorcontrib>Chen, Ying</creatorcontrib><creatorcontrib>Gao, Hongyin</creatorcontrib><creatorcontrib>Meng, Yuanpei</creatorcontrib><creatorcontrib>Yang, Yansong</creatorcontrib><creatorcontrib>He, Yuan</creatorcontrib><creatorcontrib>Guo, Lei</creatorcontrib><creatorcontrib>He, Yong</creatorcontrib><title>Dynamic deformation behavior and constitutive model of a Zr–W alloy</title><title>Journal of applied physics</title><description>In this paper, a Zr–5W alloy was fabricated via casting. In order to obtain the mechanical properties of the material, quasi-static compression tests at room temperature and split Hopkinson pressure bar tests at various temperatures were carried out. The x-ray diffraction result showed that the main components of the alloy were αZr and W2Zr, where αZr is the matrix and W2Zr is the reinforcement. The metallographic characterization results showed that there were two main forms of W2Zr in the material, namely, large particle boundary and small diffuse submicrometer precipitates. The reinforcements of both distributions have the effect of increasing the strength of the material, but the small submicrometer W2Zr precipitates would cause microcrack nucleation during the late plastic deformation stage, resulting in damage softening. In order to make theoretical calculations of the mechanical properties of materials, the Johnson–Cook (JC) constitutive model and Zerilli–Armstrong (ZAM) constitutive model of the material were obtained. It was found that the JC constitutive model had poor consistency in describing material properties. Although the consistency of the ZAM constitutive model was higher than that of the JC constitutive model, it still had obvious shortcomings. Combined with the deformation mechanism of the alloy, a modified constitutive relation was established by adding damage softening terms based on the hexagonal close-packed metal constitutive model inferred by the kinetics of heat-activated dislocations. The relative error results of all working conditions show that the correlation consistency of the improved constitutive model in this paper is significantly better than that of JC constitutive and ZAM constitutive.</description><subject>Applied physics</subject><subject>Compression tests</subject><subject>Consistency</subject><subject>Constitutive models</subject><subject>Constitutive relationships</subject><subject>Damage</subject><subject>Deformation</subject><subject>Deformation mechanisms</subject><subject>HCP metals</subject><subject>Material properties</subject><subject>Mathematical models</subject><subject>Mechanical properties</subject><subject>Microcracks</subject><subject>Nucleation</subject><subject>Plastic deformation</subject><subject>Precipitates</subject><subject>Room temperature</subject><subject>Softening</subject><subject>Split Hopkinson pressure bars</subject><subject>Zirconium base alloys</subject><issn>0021-8979</issn><issn>1089-7550</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2023</creationdate><recordtype>article</recordtype><recordid>eNp90MtKxDAUBuAgCo6jC98g4EqhYy5NmixlHC8w4EYR3IS0OcUObTMm6cDsfAff0CexOrN2dTYf5z_nR-ickhklkl-LGaFCMJYfoAklSmeFEOQQTQhhNFO60MfoJMYVIZQqridocbvtbddU2EHtQ2dT43tcwrvdND5g2ztc-T6mJg2p2QDuvIMW-xpb_Ba-P79esW1bvz1FR7VtI5zt5xS93C2e5w_Z8un-cX6zzCrOipSVttBCOes041BqrVktCeTWgWSgyxoUFZyAllIRXYjxdAdlrksmOcmlcnyKLnZ718F_DBCTWfkh9GOkYUoJKSnlclSXO1UFH2OA2qxD09mwNZSY35aMMPuWRnu1s7Fq0t_3_-AfwQJmhw</recordid><startdate>20231107</startdate><enddate>20231107</enddate><creator>Ma, Yue</creator><creator>Wang, Chuanting</creator><creator>Guo, Zhiping</creator><creator>Chen, Ying</creator><creator>Gao, Hongyin</creator><creator>Meng, Yuanpei</creator><creator>Yang, Yansong</creator><creator>He, Yuan</creator><creator>Guo, Lei</creator><creator>He, Yong</creator><general>American Institute of Physics</general><scope>AAYXX</scope><scope>CITATION</scope><scope>8FD</scope><scope>H8D</scope><scope>L7M</scope><orcidid>https://orcid.org/0009-0002-4993-1319</orcidid><orcidid>https://orcid.org/0009-0005-9067-2031</orcidid><orcidid>https://orcid.org/0009-0006-5770-1969</orcidid><orcidid>https://orcid.org/0009-0000-3932-107X</orcidid><orcidid>https://orcid.org/0000-0003-3006-9896</orcidid><orcidid>https://orcid.org/0000-0001-6955-0383</orcidid><orcidid>https://orcid.org/0000-0002-8094-9659</orcidid></search><sort><creationdate>20231107</creationdate><title>Dynamic deformation behavior and constitutive model of a Zr–W alloy</title><author>Ma, Yue ; Wang, Chuanting ; Guo, Zhiping ; Chen, Ying ; Gao, Hongyin ; Meng, Yuanpei ; Yang, Yansong ; He, Yuan ; Guo, Lei ; He, Yong</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c327t-ba7958dad923eb9992f60e4ade62e9bfe81530e96680975755deb49b2630468d3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2023</creationdate><topic>Applied physics</topic><topic>Compression tests</topic><topic>Consistency</topic><topic>Constitutive models</topic><topic>Constitutive relationships</topic><topic>Damage</topic><topic>Deformation</topic><topic>Deformation mechanisms</topic><topic>HCP metals</topic><topic>Material properties</topic><topic>Mathematical models</topic><topic>Mechanical properties</topic><topic>Microcracks</topic><topic>Nucleation</topic><topic>Plastic deformation</topic><topic>Precipitates</topic><topic>Room temperature</topic><topic>Softening</topic><topic>Split Hopkinson pressure bars</topic><topic>Zirconium base alloys</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Ma, Yue</creatorcontrib><creatorcontrib>Wang, Chuanting</creatorcontrib><creatorcontrib>Guo, Zhiping</creatorcontrib><creatorcontrib>Chen, Ying</creatorcontrib><creatorcontrib>Gao, Hongyin</creatorcontrib><creatorcontrib>Meng, Yuanpei</creatorcontrib><creatorcontrib>Yang, Yansong</creatorcontrib><creatorcontrib>He, Yuan</creatorcontrib><creatorcontrib>Guo, Lei</creatorcontrib><creatorcontrib>He, Yong</creatorcontrib><collection>CrossRef</collection><collection>Technology Research Database</collection><collection>Aerospace Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Journal of applied physics</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Ma, Yue</au><au>Wang, Chuanting</au><au>Guo, Zhiping</au><au>Chen, Ying</au><au>Gao, Hongyin</au><au>Meng, Yuanpei</au><au>Yang, Yansong</au><au>He, Yuan</au><au>Guo, Lei</au><au>He, Yong</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Dynamic deformation behavior and constitutive model of a Zr–W alloy</atitle><jtitle>Journal of applied physics</jtitle><date>2023-11-07</date><risdate>2023</risdate><volume>134</volume><issue>17</issue><issn>0021-8979</issn><eissn>1089-7550</eissn><coden>JAPIAU</coden><abstract>In this paper, a Zr–5W alloy was fabricated via casting. In order to obtain the mechanical properties of the material, quasi-static compression tests at room temperature and split Hopkinson pressure bar tests at various temperatures were carried out. The x-ray diffraction result showed that the main components of the alloy were αZr and W2Zr, where αZr is the matrix and W2Zr is the reinforcement. The metallographic characterization results showed that there were two main forms of W2Zr in the material, namely, large particle boundary and small diffuse submicrometer precipitates. The reinforcements of both distributions have the effect of increasing the strength of the material, but the small submicrometer W2Zr precipitates would cause microcrack nucleation during the late plastic deformation stage, resulting in damage softening. In order to make theoretical calculations of the mechanical properties of materials, the Johnson–Cook (JC) constitutive model and Zerilli–Armstrong (ZAM) constitutive model of the material were obtained. It was found that the JC constitutive model had poor consistency in describing material properties. Although the consistency of the ZAM constitutive model was higher than that of the JC constitutive model, it still had obvious shortcomings. Combined with the deformation mechanism of the alloy, a modified constitutive relation was established by adding damage softening terms based on the hexagonal close-packed metal constitutive model inferred by the kinetics of heat-activated dislocations. The relative error results of all working conditions show that the correlation consistency of the improved constitutive model in this paper is significantly better than that of JC constitutive and ZAM constitutive.</abstract><cop>Melville</cop><pub>American Institute of Physics</pub><doi>10.1063/5.0155224</doi><tpages>19</tpages><orcidid>https://orcid.org/0009-0002-4993-1319</orcidid><orcidid>https://orcid.org/0009-0005-9067-2031</orcidid><orcidid>https://orcid.org/0009-0006-5770-1969</orcidid><orcidid>https://orcid.org/0009-0000-3932-107X</orcidid><orcidid>https://orcid.org/0000-0003-3006-9896</orcidid><orcidid>https://orcid.org/0000-0001-6955-0383</orcidid><orcidid>https://orcid.org/0000-0002-8094-9659</orcidid><oa>free_for_read</oa></addata></record> |
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subjects | Applied physics Compression tests Consistency Constitutive models Constitutive relationships Damage Deformation Deformation mechanisms HCP metals Material properties Mathematical models Mechanical properties Microcracks Nucleation Plastic deformation Precipitates Room temperature Softening Split Hopkinson pressure bars Zirconium base alloys |
title | Dynamic deformation behavior and constitutive model of a Zr–W alloy |
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