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Experimental measurements of sidebranching in thermal dendrites under terrestrial-gravity and microgravity conditions

机译:地心引力和微重力条件下热枝晶侧支化的实验测量

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We perform sidebranch measurements on pure succinonitrile dendrites grown in both microgravity and terrestrial-gravity conditions for a set of supercoolings within the range 0.1-1.0 K. Two distinct types of sidebranch regions, uniform and coarsening, exist, and are characterized by the distance from the tip at which the region began, D-i, and the average spacing of sidebranches within that region, lambda(i). There does not appear to be any significant dependence on either gravity level or supercooling when D-i or lambda(i) are normalized with respect to the radius of curvature of the tip, R. The apparently constant normalized proportionality factor between D-i, lambda(i), and R, regardless of the relative importance of diffusion and convective heat transport, demonstrates self-similarity between dendrites of different length scales propagating under various heat transfer conditions. However, when the form of the sidebranch envelope is defined by a power law relating the amplitude and relative positions of the sidebranches normalized to the radius of the tip, the form is seen to have significant variations with supercooling between the terrestrial gravity and microgravity growth dendrites. Furthermore, both the amplitude coefficient and exponent from the power-law regressions of the microgravity data are statistically different (95% confidence level) than their terrestrial counterparts. [S1063-651X(99)11612-X]. [References: 24]
机译:我们对在0.1-1.0 K范围内的一组过冷情况下在微重力和陆地重力条件下生长的纯丁二腈树枝状晶体进行侧枝测量。存在两种不同类型的侧枝区域(均匀和粗化),其特征在于与区域开始的尖端Di以及该区域内分支的平均间距lambda(i)。当将Di或lambda(i)相对于尖端的曲率半径R归一化时,似乎对重力水平或过冷都没有任何显着依赖。Di,lambda(i)之间的表观恒定的归一化比例因子R和R不管扩散和对流传热的相对重要性如何,都证明了在各种传热条件下传播的不同长度尺度的枝晶之间的自相似性。但是,当通过幂律定义侧支包膜的形式时,幂律将归一化到尖端半径的侧支的振幅和相对位置相关联,可以看出该形式在陆地重力和微重力生长枝晶之间具有过冷的显着变化。 。此外,微重力数据的幂系数回归的幅度系数和指数在统计上均不同于其地面对应物(95%置信度)。 [S1063-651X(99)11612-X]。 [参考:24]

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