<p>Magmas contain crystals exhibiting diverse shapes and sizes, yet the relationship between crystal shape (specifically aspect ratio) and undercooling (<InlineEquation ID="IEq1"> <EquationSource Format="TEX">\(\Delta T\)</EquationSource> </InlineEquation>), the driving force for crystallization, remains poorly constrained. Crystal shape should correlate with undercooling because undercooling governs the growth regime (interface-controlled versus diffusion-controlled) and thus the resulting crystal form. Prior experiments confirm that large nominal undercoolings drive transitions from polyhedral to hopper, skeletal, or dendritic forms. Large undercoolings reflect rapid decompression or cooling, differing from slower cooling rates typical of magmatic intrusions and storage systems. In such slowly cooled environments, crystals remain polyhedral, exhibiting subtle shape variations. Accurately quantifying crystal shape evolution at relatively low undercoolings could provide critical insights into crystallization histories, improving interpretations of the timescales and processes governing magma storage and eruption dynamics. Experimental verification of correlations between aspect ratios of polyhedral crystals and cooling rates remains inconclusive, possibly because nominal undercooling neglects the dynamic evolution of undercooling throughout crystallization. To address this, we introduce <i>average instantaneous undercooling</i> (<InlineEquation ID="IEq2"> <EquationSource Format="TEX">\(\overline{{\Delta T_{I} }}\)</EquationSource> </InlineEquation>), a metric capturing dynamic undercooling history during crystallization. Through controlled cooling experiments and numerical modelling, we demonstrate that higher <InlineEquation ID="IEq3"> <EquationSource Format="TEX">\(\overline{{\Delta T_{I} }}\)</EquationSource> </InlineEquation> histories produce tabular, high aspect ratio plagioclase crystals, whereas lower <InlineEquation ID="IEq4"> <EquationSource Format="TEX">\(\overline{{\Delta T_{I} }}\)</EquationSource> </InlineEquation> produces more prismatic crystals with lower aspect ratios. These variations in shape reflect undercooling-driven shifts in the predominant growth mechanism operating on different crystal faces. By quantitatively linking crystal shape to <InlineEquation ID="IEq5"> <EquationSource Format="TEX">\(\overline{{\Delta T_{I} }}\)</EquationSource> </InlineEquation>, our study provides a new approach for reconstructing crystallization histories in magmas under varying <i>pH2O-T-t</i> conditions.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Linking crystal shape and dynamic undercooling: a new framework for inferring magmatic crystallization histories

  • Amanda Lindoo,
  • Madeleine C. S. Humphreys,
  • Charlotte Gordon,
  • Martin F. Mangler,
  • Edward W. Llewellin,
  • Richard A. Brooker,
  • Fabian B. Wadsworth,
  • Eshbal Geifman

摘要

Magmas contain crystals exhibiting diverse shapes and sizes, yet the relationship between crystal shape (specifically aspect ratio) and undercooling ( \(\Delta T\) ), the driving force for crystallization, remains poorly constrained. Crystal shape should correlate with undercooling because undercooling governs the growth regime (interface-controlled versus diffusion-controlled) and thus the resulting crystal form. Prior experiments confirm that large nominal undercoolings drive transitions from polyhedral to hopper, skeletal, or dendritic forms. Large undercoolings reflect rapid decompression or cooling, differing from slower cooling rates typical of magmatic intrusions and storage systems. In such slowly cooled environments, crystals remain polyhedral, exhibiting subtle shape variations. Accurately quantifying crystal shape evolution at relatively low undercoolings could provide critical insights into crystallization histories, improving interpretations of the timescales and processes governing magma storage and eruption dynamics. Experimental verification of correlations between aspect ratios of polyhedral crystals and cooling rates remains inconclusive, possibly because nominal undercooling neglects the dynamic evolution of undercooling throughout crystallization. To address this, we introduce average instantaneous undercooling ( \(\overline{{\Delta T_{I} }}\) ), a metric capturing dynamic undercooling history during crystallization. Through controlled cooling experiments and numerical modelling, we demonstrate that higher \(\overline{{\Delta T_{I} }}\) histories produce tabular, high aspect ratio plagioclase crystals, whereas lower \(\overline{{\Delta T_{I} }}\) produces more prismatic crystals with lower aspect ratios. These variations in shape reflect undercooling-driven shifts in the predominant growth mechanism operating on different crystal faces. By quantitatively linking crystal shape to \(\overline{{\Delta T_{I} }}\) , our study provides a new approach for reconstructing crystallization histories in magmas under varying pH2O-T-t conditions.