Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy
High-energy ball milling and powder metallurgy methods were used to produce a partially alloyed nickel and molybdenum of γ-Ni₃Mo composition (Ni-25at.%Mo). Milled powders were cold-compacted, sintered/solutionized at 1300°C for 100h sintering followed by quenching. Three transformation studies were...
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ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-780582021-11-02T05:35:01Z Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy Khalfallah, Ibrahim Materials Science and Engineering Aning, Alexander O. Reynolds, William T. Jr. Suchicital, Carlos T. A. Ni3Mo Alloy Age Hardening Reverse Peritectoid Bulk Processing High-energy ball milling and powder metallurgy methods were used to produce a partially alloyed nickel and molybdenum of γ-Ni₃Mo composition (Ni-25at.%Mo). Milled powders were cold-compacted, sintered/solutionized at 1300°C for 100h sintering followed by quenching. Three transformation studies were performed. First, the intermetallic γ-Ni₃Mo was formed from the supersaturated solution at temperatures ranging between 600°C and 900°C for up to 100h. The 100% stable γ-Ni₃Mo phase was formed at 600°C after 100h, while aging at temperatures ranging between 650°C and 850°C for 25h was not sufficient to complete the transformation. The δ-NiMo phase was observed only at 900°C as cellular and basket strands precipitates. Second, the reversed peritectoid transformation from γ-Ni₃Mo to α-Ni and δ-NiMo was performed. Supersaturated solid solution samples were first aged at 600C for 100h followed by quenching to form the equilibrium γ-Ni₃Mo phase. After that, the samples were heat treated between 910°C and 1050°C for up to 10h followed by quenching. Regardless of heat-treatment temperature, samples heat-treated for shorter times exhibited small precipitates of δ-NiMo along and within grain boundaries of α-Ni phase, and it coarsened with time. Third, the transformation from the supersaturated solution α-Ni to the peritectoid two-phase region was performed. The samples were aged between 910°C and 1050°C for up to 10h followed by quenching. Precipitates of δ-NiMo were observed in the α-Ni matrix as small particles and then coarsened with aging time. In all three cases, hardness values increased and peaked in a way similar to that of traditional aging, except that the peak occurred much rapidly in the second and third cases. In the first case, hardness increased by about 113.6% due to the development of the new phases, while the hardness increased by 90.5% and 77.2% in the second and third cases, respectively. Master of Science 2017-06-13T19:43:39Z 2017-06-13T19:43:39Z 2016-12-07 2016-12-14 2017-02-03 2017-02-03 Thesis Text etd-12142016-092226 http://hdl.handle.net/10919/78058 http://scholar.lib.vt.edu/theses/available/etd-12142016-092226/ en_US In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech |
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Ni3Mo Alloy Age Hardening Reverse Peritectoid Bulk Processing Khalfallah, Ibrahim Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy |
description |
High-energy ball milling and powder metallurgy methods were used to produce a partially alloyed nickel and molybdenum of γ-Ni₃Mo composition (Ni-25at.%Mo). Milled powders were cold-compacted, sintered/solutionized at 1300°C for 100h sintering followed by quenching. Three transformation studies were performed. First, the intermetallic γ-Ni₃Mo was formed from the supersaturated solution at temperatures ranging between 600°C and 900°C for up to 100h. The 100% stable γ-Ni₃Mo phase was formed at 600°C after 100h, while aging at temperatures ranging between 650°C and 850°C for 25h was not sufficient to complete the transformation. The δ-NiMo phase was observed only at 900°C as cellular and basket strands precipitates.
Second, the reversed peritectoid transformation from γ-Ni₃Mo to α-Ni and δ-NiMo was performed. Supersaturated solid solution samples were first aged at 600C for 100h followed by quenching to form the equilibrium γ-Ni₃Mo phase. After that, the samples were heat treated between 910°C and 1050°C for up to 10h followed by quenching. Regardless of heat-treatment temperature, samples heat-treated for shorter times exhibited small precipitates of δ-NiMo along and within grain boundaries of α-Ni phase, and it coarsened with time. Third, the transformation from the supersaturated solution α-Ni to the peritectoid two-phase region was performed. The samples were aged between 910°C and 1050°C for up to 10h followed by quenching. Precipitates of δ-NiMo were observed in the α-Ni matrix as small particles and then coarsened with aging time. In all three cases, hardness values increased and peaked in a way similar to that of traditional aging, except that the peak occurred much rapidly in the second and third cases. In the first case, hardness increased by about 113.6% due to the development of the new phases, while the hardness increased by 90.5% and 77.2% in the second and third cases, respectively. === Master of Science |
author2 |
Materials Science and Engineering |
author_facet |
Materials Science and Engineering Khalfallah, Ibrahim |
author |
Khalfallah, Ibrahim |
author_sort |
Khalfallah, Ibrahim |
title |
Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy |
title_short |
Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy |
title_full |
Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy |
title_fullStr |
Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy |
title_full_unstemmed |
Designing Microstructure through Reverse Peritectoid Phase Transformation in Ni₃Mo Alloy |
title_sort |
designing microstructure through reverse peritectoid phase transformation in ni₃mo alloy |
publisher |
Virginia Tech |
publishDate |
2017 |
url |
http://hdl.handle.net/10919/78058 http://scholar.lib.vt.edu/theses/available/etd-12142016-092226/ |
work_keys_str_mv |
AT khalfallahibrahim designingmicrostructurethroughreverseperitectoidphasetransformationinni3moalloy |
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1719492239615328256 |