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Microgravity/microscale double-helical fluid containment

机译:微重力/微尺度双螺旋流体密闭

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摘要

Double-helical containment is a novel approach to open containment in microgravity ( or at microscale). In contrast to axisymmetric containers, there is no length restriction on properly designed double-helical containers. Use of a double helix permits drainage to zero volume, an uncommon feature in microgravity; near-complete drainage is a key feature for any practically useful container. The fact that double-helical containers are open and tubular makes possible a broad range of applications that rely on accessible fluids. The double-helical fluid containment and the stability of such volumes are examined in detail. Helical supports permit filamentary containers of infinite extent, but only double-helical containers are stable down to zero volume. The base case of symmetric supports ( separation angle 1808) is considered in terms of symmetric volumes as well as asymmetric helicatenoid volumes. The distinct symmetric and asymmetric cases are then related by perturbing the angle of separation between the supports. The helicatenoid volumes may combine to form a dual helicatenoid volume. The dual helicatenoid is interesting in that it permits multiphase tube-like geometries. Double-helical behaviours such as drainability are found to vanish at a critical separation angle 246.48 degrees. With larger separation angles, double-helical containers behave like single-helical containers ( 3608), due to the dominance of the longer-span interface. A second shift in behaviour occurs at the limit angle 209.12 degrees, where the regions of stability including the cylinder and the helicatenoids become more connected. The common structures of DNA appear to coincide with the limiting geometry at 209.12 degrees. The most robust double-helical containers are therefore those with separation angles between approximately 2108 and 240 degrees. Experimental results roughly verify the volume maximum for near-symmetry, and more importantly verify stability to zero volume.
机译:双螺旋密闭是在微重力(或微尺度)下开放密闭的一种新颖方法。与轴对称容器相反,对正确设计的双螺旋容器没有长度限制。双螺旋的使用可将水排至零体积,这是微重力的不常见特征。几乎完全排水是任何实用容器的关键特征。双螺旋形容器是敞开的和管状的,这使得依靠可接触液体的广泛应用成为可能。详细检查了双螺旋流体的密闭性和这种体积的稳定性。螺旋支撑允许无限长的丝状容器,但是只有双螺旋容器才能稳定到零体积。就对称体积以及不对称螺旋体体积而言,考虑对称支撑的基本情况(分离角1808)。然后通过扰动支撑件之间的分离角度来使不同的对称和不对称情况相关。螺旋体体积可以结合以形成双螺旋体体积。双螺旋类化合物的有趣之处在于它允许多相管状的几何形状。发现双螺旋行为(如排水性)在临界分离角246.48度时消失。在较大的分离角度下,由于较长跨度的界面的优势,双螺旋容器的行为类似于单螺旋容器(3608)。在极限角209.12度处发生第二个行为变化,其中包括圆柱体和类胡萝卜素的稳定区域之间的连接更加紧密。 DNA的共同结构似乎与209.12度的极限几何形状一致。因此,最坚固的双螺旋容器是分隔角约为2108至240度的容器。实验结果大致验证了近似对称的最大体积,更重要的是验证了零体积的稳定性。

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