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Structural models of faceted-faceted eutectic system vanillin-acenaphthene

机译:多面共晶系统香兰素-ena的结构模型

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Thermodynamic model for the eutectic system vanillin-acenaphthene has been developed by analysing the excess functions computed from its experimentally determined solidus-liquidus equilibrium data. Spontaneous nucleation model has been explored from the maximum limit of undercooling of the system and verified by the experimental evidences of dislocation mechanism governing the anisotropic velocity of crystallisation determined at different undercoolings. Viscosity measurements of eutectic and non-eutectic melts at different temperatures revealed the essence of peculiar structural changes and specific energy interactions in the eutectic melt in the temperature range near its melting temperature. The rheological activation energy, E_(vis) for eutectic and non-eutectic melts is found to be a function of temperature. Crystalline faceted structure of the system has been furnished with morphological evidences obtained from microscopic studies at different growth rates, whereas whisker reinforced structural model has been accomplished with mechanical properties computed for both isotropic and anisotropic modes of growth. Of greater interest is the special reference of moderate anisotropic growth, since experimental confirmation was obtained for the theoretical shape of parabolic variation in the mechanical properties of eutectic composite material with growth velocity. Direct evidence of three- to four-fold increase in strength properties of the eutectic material at its moderate anisotropic growth velocity (3.11 x 10~(-7) m~3 s~(-1)) in comparison with its isotropic growth in an ice bath (~273 K), confirms a complete composite microstructure with whiskers in equilibrium with the matrix, embedded parallel to the growth direction.
机译:共晶体系香兰素-ena的热力学模型是通过分析由其实验确定的固相-液相平衡数据计算出的过量函数而开发的。从系统过冷的最大极限出发探索了自发成核模型,并通过位错机制控制在不同过冷条件下确定的各向异性结晶速度的实验证据进行了验证。在不同温度下共晶和非共晶熔体的粘度测量结果揭示了在接近其熔融温度的温度范围内,共晶熔体具有特殊的结构变化和比能相互作用的本质。共熔和非共熔熔体的流变活化能E_(vis)被发现是温度的函数。该系统的晶体刻面结构已提供了从微观研究中以不同的生长速率获得的形态学证据,而晶须增强的结构模型已通过针对各向同性和各向异性生长模式计算的机械性能完成。由于各向异性生长的共晶复合材料力学性能的抛物线变化的理论形状得到了实验证实,因此中等各向异性生长的特殊参考引起了人们的极大兴趣。直接证据表明,共晶材料在中等各向异性生长速度(3.11 x 10〜(-7)m〜3 s〜(-1))下的强度特性比在各向异性环境中增长了三到四倍。冰浴(〜273 K)证实了完整的复合微结构,晶须与基质平衡,平行于生长方向嵌入。

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