Interparticle interactions and lacunarity of mechano-chemically activated fly ash

dc.contributor.authorPatil, A.G.
dc.contributor.authorShanmugharaj, A.M.
dc.contributor.authorAnandhan, S.
dc.date.accessioned2026-02-05T09:33:51Z
dc.date.issued2015
dc.description.abstractA class F fly ash was subjected to high-energy ball milling-induced mechano-chemical activation aided by a surfactant. The resultant nanostructured fly ash was characterized by various techniques. X-ray fluorescence results showed that the amount of iron oxide was reduced from 4.39% to 2.75% after pre-treatment of fly ash by magnetic separation. Ethyl acetate as the milling medium, a ball to powder ratio of 12:1 and 2wt% of surfactant reduced the average particle size of fly ash to 329nm and led to a specific surface area of 8.73m2/g. The decrease in crystallite size of mechano-chemically activated fly ash was confirmed from a reduction in peak intensity with a broadened amorphous phase by X-ray diffraction studies. X-ray photoelectron spectroscopic characterization illustrated that peak area of major elements (O, Si and Al) increased after milling. Morphological and FTIR studies revealed that the smooth and inert surface of the fly ash was converted to a rough and more reactive one after mechano-chemical activation. The surface modification of fly ash with the surfactant was determined from FTIR spectroscopy. Also, a fractal approach was used to characterize the lacunarity of the agglomerates in the nanostructured fly ash. © 2014 Elsevier B.V.
dc.identifier.citationPowder Technology, 2015, 272, , pp. 241-249
dc.identifier.issn325910
dc.identifier.urihttps://doi.org/10.1016/j.powtec.2014.12.006
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/26331
dc.publisherElsevier
dc.subjectAssociation reactions
dc.subjectBall milling
dc.subjectCrystallite size
dc.subjectFluorine
dc.subjectFly ash
dc.subjectFourier transform infrared spectroscopy
dc.subjectFractals
dc.subjectMagnetic separation
dc.subjectMechanical alloying
dc.subjectMilling (machining)
dc.subjectParticle size
dc.subjectSurface active agents
dc.subjectX ray diffraction
dc.subjectX ray photoelectron spectroscopy
dc.subjectChemically activated fly ash
dc.subjectEnergy milling
dc.subjectHigh-energy ball milling
dc.subjectInter-particle interaction
dc.subjectLacunarity
dc.subjectMechano-chemical activation
dc.subjectSpectroscopic characterization
dc.subjectX-ray diffraction studies
dc.subjectChemical activation
dc.subjectacetic acid ethyl ester
dc.subjectaluminum
dc.subjectiron oxide
dc.subjectnanomaterial
dc.subjectoxygen
dc.subjectsilicon
dc.subjectsurfactant
dc.subjectArticle
dc.subjectchemical analysis
dc.subjectchemical interaction
dc.subjectchemical modification
dc.subjectchemical phenomena
dc.subjectcontrolled study
dc.subjectfly ash
dc.subjectinfrared spectroscopy
dc.subjectlacunarity
dc.subjectmagnetic separation
dc.subjectmechanochemical activation
dc.subjectparticle size
dc.subjectsurface property
dc.subjectX ray fluorescence
dc.titleInterparticle interactions and lacunarity of mechano-chemically activated fly ash

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