Low-energy self-organization of coherent structures in non-equilibrium crystallization
DOI:
https://doi.org/10.55287/22275398_2026_58_109Keywords:
metasilicates, sikam, petro-slag ceramics, mineral raw materials, autointerference, vibrational modes, kinetics, nonequilibrium processes, spinodal decomposition, isomorphismAbstract
Relevance. Various attempts to explain the crystallization of viscous silicate melts under varying degrees of stationarity are driven by the growing need for new materials to support technological progress. It is currently accepted that the entire diversity of solid materials is encompassed by several phase states with crystal structures obeying Fedorov space groups. The unit cell possesses parameters, translating which allows for the construction of a fairly realistic description of crystals, determined by the Gibbs phase. Experimental mineralogy data often diverge from traditional concepts, particularly when describing anomalous diffusion kinetics and phase transformations in crystallizing glasses and glass-ceramics.
The goal of this work is to develop a method for describing crystals that takes into account forces of at least equal magnitude, somehow related to internal properties and vibrational modes. To this end, we used our holographic model of matter, in which these interactions can form their own coherent structures with their own types of resonant lattices.
The following problems were solved: structural ordering factors determined by spatiotemporal coherence were identified; a resonance model of dynamic structures was substantiated that adequately describes the kinetics of low-energy phase transformations; and a classification of materials by the nature of bonds and types of coherence was developed.
Methods. The model of a generalized approach to assessing multi-scale processes and phenomena is based on the results of fundamental experimental research and their analysis, taking into account well-known concepts of electrodynamics and wave mechanics.
Results. For the first time, a model of spatially closed dynamic structures of real matter was developed, describing objects and interactions at the micro-, meso-, and macro-levels as a set of self-interference of a closed wave process. Interaction between regions of constructive interference occurs at the beat frequencies of the main wave process, generating a spatial lattice of the next hierarchical level.
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