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Mizuki Nishiwaki

Publications and source records attributed to Mizuki Nishiwaki.

2 recordsLinked to original sources

Surface tension estimation of bubble nuclei in magma using spinodal pressure and nonclassical nucleation theory

Efforts to estimate the magma decompression rate from the vesicular texture of volcanic products have progressed through the development of theoretical models and laboratory experiments. The theoretical model is based on nucleation theory, with the surface tension between the melt and bubble nucleus being the parameter that most strongly governs nucleation. Since direct measurement of surface tension is difficult, it has been calculated by inverting the bubble number density from experimental samples using classical or nonclassical nucleation theory formulas. However, in the nonclassical case, which accounts for the supersaturation dependence of surface tension, the pressure at the spinodal limit (where surface tension becomes zero) was previously unknown, necessitating complex mathematical operations. In this study, the spinodal pressure determined from the Gibbs energy curve was substituted into the nonclassical formula by approximating the water-saturated silicate melt as a two-component symmetric regular solution composed of silicate and water. This approach allowed for a more straightforward estimation of surface tension using data from past decompression experiments. Nevertheless, the resulting surface tension values were more scattered than those obtained using the classical formula, suggesting that applying the nonclassical formula to magma vesiculation is not valid at present. Resolving this issue will likely require an integrated understanding of the dependence of surface tension on both supersaturation and bubble radius. Such understanding would enable more accurate estimation of surface tension and contribute to reconciling the discrepancy between theoretical and experimental bubble number density values.

physics.geo-ph↗

Can spinodal decomposition occur during decompression-induced vesiculation of magma?

Volcanic eruptions are driven by decompression-induced vesiculation of supersaturated volatile components in magma. The initial phase of this phenomenon has long been described as nucleation and growth. Recently, it was proposed that spinodal decomposition (an energetically spontaneous phase separation that does not require the formation of a distinct interface) may occur during decompression-induced magma vesiculation. This suggestion has attracted attention, but is currently based only on textural observations of decompression experiment products (e.g., independence of bubble number density on decompression rate and homogeneous spatial distribution of bubbles). In this study, I used a simple thermodynamic approach to investigate whether spinodal decomposition can occur during decompression-induced vesiculation of magma. I plotted binodal and spinodal curves on the chemical composition-pressure plane by approximating hydrous magmas under several temperature and compositional conditions as two-component symmetric regular solutions of silicate and water, using experimentally determined water solubility values. The spinodal curve was consistently much lower than the binodal curve at pressures sufficiently below the second critical endpoint. In addition, the final pressure of all decompression experiments performed to date fell between these two curves. This suggests that spinodal decomposition is unlikely to occur in the pressure range of magmatic processes in the continental crust, and that decompression-induced vesiculation results from nucleation and subsequent growth, as previously considered. Furthermore, by substituting the determined spinodal pressure into the formula of non-classical nucleation theory, the surface tension between silicate melt and bubble nucleus can be estimated.

physics.geo-ph↗