Experimental Studies on the Effect of Destructive Reagents on Metal Structural Elements
Experimental studies were conducted to refine the theoretical provisions concerning the mechanism and kinetics of penetration for a metal melt consisting of destructive reagents, such as gallium, indium, tin, and zinc (destructive composition), along the grain boundaries in unstressed metal samples....
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| Veröffentlicht in: | Powder metallurgy and metal ceramics Jg. 63; H. 1-2; S. 117 - 122 |
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| Sprache: | Englisch |
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01.05.2024
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| Abstract | Experimental studies were conducted to refine the theoretical provisions concerning the mechanism and kinetics of penetration for a metal melt consisting of destructive reagents, such as gallium, indium, tin, and zinc (destructive composition), along the grain boundaries in unstressed metal samples. It was experimentally confirmed that the penetration rate of the destructive composition was limited by processes at the liquid phase front, including dissolution of intergranular boundary areas, recrystallization to form solid solution crystals, and opening of new crack areas under the pressure of growing crystals. The experimental findings indicated a significant decrease in the strength of aluminum alloys resulting from the effect of the destructive composition. Analytical dependences and corresponding empirical coefficients characterizing the effects of the destructive composition on structural aluminum alloy elements under tensile loads were derived. These empirical coefficients enable the determination of conditions under which aluminum alloy structures fail under the influence of destructive compounds, considering the tensile stresses. The effect of the destructive alloy on the onset of fatigue damage and the durability of aluminum alloy structures under asymmetric cyclic stresses was examined. Significant reduction in the fatigue strength of aluminum structures under the influence of the destructive composition was experimentally confirmed. |
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| AbstractList | Experimental studies were conducted to refine the theoretical provisions concerning the mechanism and kinetics of penetration for a metal melt consisting of destructive reagents, such as gallium, indium, tin, and zinc (destructive composition), along the grain boundaries in unstressed metal samples. It was experimentally confirmed that the penetration rate of the destructive composition was limited by processes at the liquid phase front, including dissolution of intergranular boundary areas, recrystallization to form solid solution crystals, and opening of new crack areas under the pressure of growing crystals. The experimental findings indicated a significant decrease in the strength of aluminum alloys resulting from the effect of the destructive composition. Analytical dependences and corresponding empirical coefficients characterizing the effects of the destructive composition on structural aluminum alloy elements under tensile loads were derived. These empirical coefficients enable the determination of conditions under which aluminum alloy structures fail under the influence of destructive compounds, considering the tensile stresses. The effect of the destructive alloy on the onset of fatigue damage and the durability of aluminum alloy structures under asymmetric cyclic stresses was examined. Significant reduction in the fatigue strength of aluminum structures under the influence of the destructive composition was experimentally confirmed. |
| Audience | Academic |
| Author | Zvershkhovskiy, I.V. Andriyenko, A.M. Zirka, M.V. Lapitsky, S.V. Kuchinskiy, A.V. Oliarnik, B.O. Kuchinska, O.B. Dokuchaev, O.V. Hurnovich, A.V. Chepkov, I.B. |
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| Cites_doi | 10.1007/s11106-019-00100-0 10.1520/STP27387S |
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| Copyright | Springer Science+Business Media, LLC, part of Springer Nature 2024. Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law. COPYRIGHT 2024 Springer |
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| Keywords | fluidity destructive effect strength metal melt composition capillary and diffuse penetration destructive composition destruction |
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| References | Chepkov, Lapitsky, Kuchinskiy, Maystrenko, Oliyarnik (CR1) 2019; 58 Ukraintsev (CR8) 1976 Gliner (CR10) 1956 Regel, Slutsker, Tomashevskii (CR5) 1974 CR3 Goryunov (CR4) 1983 CR6 CR7 CR9 (CR2) 1983 443_CR6 443_CR3 443_CR9 443_CR7 YuV Goryunov (443_CR4) 1983 Atomistics of Fracture (443_CR2) 1983 VR Regel (443_CR5) 1974 GV Ukraintsev (443_CR8) 1976 I Chepkov (443_CR1) 2019; 58 BM Gliner (443_CR10) 1956 |
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| SubjectTerms | Aluminum Aluminum alloys Ceramics Characterization and Evaluation of Materials Chemical tests and reagents Chemistry and Materials Science Composites Glass Grain boundaries Materials Science Metallic Materials Natural Materials Powder Metallurgy Industry and Managerial Economics |
| Title | Experimental Studies on the Effect of Destructive Reagents on Metal Structural Elements |
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