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http://hdl.handle.net/10603/431728
Title: | Co continuous microstructures through spinodal decomposition in ternary systems A phase field study |
Researcher: | Kumar, Naveen |
Guide(s): | Abinandanan, T A |
Keywords: | Engineering and Technology Material Science Materials Science Multidisciplinary |
University: | Indian Institute of Science Bangalore |
Completed Date: | 2019 |
Abstract: | We have studied spinodal decomposition which leads to a three-phase microstructure in ternary alloys using computer simulations based on the ternary Cahn-Hilliard equations. All the alloys we have studied are in the same ternary phase diagram in which each of its constituent binaries is a regular solution, with all the regular solution constants being the same. In particular, we have focused our research on the ability of ternary systems to produce tricontinuous microstructures, by undertaking a systematic study of microstructure formation in in systems as a function of phase fractions (i.e., alloy composition), relative energies of the three interfaces, and relative mobilities of the three species. Spinodal decomposition in the most symmetric alloy in the most symmetric system (in which the three interfacial energies are equal, and the three species mobilities are equal) takes place through a simultaneous separation of each of the three species with equal ease. Thus, it leads naturally to a tricontinuous microstructure, just as SD in an equimolar binary alloy produces a bicontinuous microstructure. Such tricontinuous microstructures are also produced in this alloy under a variety of conditions employed in our study; they are also produced in alloys if their compositions are close to being equimolar. In off-symmetric alloys or in symmetric alloys under off-symmetric conditions in interfacial energies and / or species mobilities, the formation of microstructure may be rationalized using a framework of a two-stage sequence of decomposition. We have identified two such sequences: in one, the first stage produces regions which are richer and poorer in one of the species (say, C), and the second stage involves separation of species A and B within the formerly C-poor regions. In the other sequence, the first stage involves separation of the alloy to produce A-rich and Brich regions, followed by the second stage in which species C separates to the interfaces between the A-rich and B-rich regions. This framework has... |
Pagination: | xxviii, 162p. |
URI: | http://hdl.handle.net/10603/431728 |
Appears in Departments: | Materials Engineering |
Files in This Item:
File | Description | Size | Format | |
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01_title.pdf | Attached File | 202.65 kB | Adobe PDF | View/Open |
02_prelim pages.pdf | 53.25 kB | Adobe PDF | View/Open | |
03_table of content.pdf | 69.75 kB | Adobe PDF | View/Open | |
04_abstract.pdf | 60.17 kB | Adobe PDF | View/Open | |
05_chapter 1.pdf | 788.77 kB | Adobe PDF | View/Open | |
06_chapter 2.pdf | 85.5 kB | Adobe PDF | View/Open | |
07_chapter 3.pdf | 681.62 kB | Adobe PDF | View/Open | |
08_chapter 4.pdf | 13.58 MB | Adobe PDF | View/Open | |
09_chapter 5.pdf | 25.24 MB | Adobe PDF | View/Open | |
10_chapter 6.pdf | 22.47 MB | Adobe PDF | View/Open | |
11_chapter 7.pdf | 10.73 MB | Adobe PDF | View/Open | |
12_annexure.pdf | 915.31 kB | Adobe PDF | View/Open | |
80_recommendation.pdf | 277.89 kB | Adobe PDF | View/Open |
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