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Liquid Pre-Freezing Percolation Transition to Equilibrium Crystal-in-Liquid Mesophase
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作者 Leslie V. Woodcock 《Natural Science》 2018年第7期247-262,共16页
Pre-freezing anomalies are explained by a percolation transition that delineates the existence of a pure equilibrium liquid state above the temperature of 1st-order freezing to the stable crystal phase. The precursor ... Pre-freezing anomalies are explained by a percolation transition that delineates the existence of a pure equilibrium liquid state above the temperature of 1st-order freezing to the stable crystal phase. The precursor to percolation transitions are hetero-phase fluctuations that give rise to molecular clusters of an otherwise unstable state in the stable host phase. In-keeping with the Ostwald’s step rule, clusters of a crystalline state, closest in stability to the liquid, are the predominant structures in pre-freezing hetero-phase fluctuations. Evidence from changes in properties that depend upon density and energy fluctuations suggests embryonic nano-crystallites diverge in size and space at a percolation threshold, whence a colloidal-like equilibrium is stabilized by negative surface tension. Below this transition temperature, both crystal and liquid states percolate the phase volume in an equilibrium state of dispersed coexistence. We obtain a preliminary estimate of the prefreezing percolation line for water determined from higher-order discontinuities in Gibbs energy that derivatives the isothermal rigidity [(dp/dρ)T] and isochoric heat capacity [(dU/dT)v] respectively. The percolation temperature varies only slightly with pressure from 51.5°C at 0.1 MPa to around 60°C at 100 MPa. We conjecture that the predominant dispersed crystal structure is a tetrahedral ice, which is the closest of the higher-density ices (II to XV) to liquid water in configurational energy. Inspection of thermodynamic and transport properties of liquid argon also indicate the existence of a similar prefreezing percolation transition at ambient pressures (0.1 MPa) around 90 K, ~6% above the triple point (84 K). These findings account for many anomalous properties of equilibrium and supercooled liquids generally, and also explain Kauzmann’s “paradox” at a “glass” transition. 展开更多
关键词 LIQUID State PERCOLATION Phase Transition pre-freezing MESOPHASE
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Drying Characteristics and Drying Schedule Establishment of Eucalyptus pellita Wood
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作者 Long Chuanwen 《Chinese Forestry Science and Technology》 2012年第3期72-72,共1页
By adopting the 100℃drying test method,the drying characteristics and drying schedule of the pre-frozen and unfrozen Eucalyptus pellita wood were studied.The results show that the pre-freezing treatment reduced the i... By adopting the 100℃drying test method,the drying characteristics and drying schedule of the pre-frozen and unfrozen Eucalyptus pellita wood were studied.The results show that the pre-freezing treatment reduced the initial crack, inner crack and cross section deformation of wood, and the drying quality for the frozen wood was superior to that for the control. 展开更多
关键词 EUCALYPTUS pellita DRYING characteristics DRYING SCHEDULE 100℃drying test pre-freezing treatment
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