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Determination of the pressurising period for stored cryogenic fluids

机译:确定储存的低温流体的加压时间

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摘要

It is a normal operating condition for a lot of cryogenic storage vessels that no boil-off gas is vented over long periods, which leads to a simultaneous pressure increase of the stored fluid. One main reason therefore is to avoid product losses during transport or between withdrawals. At transport conditions the mixing of the fluid can be assumed to be ideally, which results in a maximum reachable pressurising period. At stationary conditions the pressurising period is expected to be shorter, because a stratification is rising up, so that the heat capacity of the stored fluid cannot be used completely. In a thermodynamic view, an isochore change of state takes place and the heat flux into the vessel rises the internal energy of the fluid. For the representation of the isochore change of state a new developed SIGMA u/v-- > v-v -diagram with the 1 x 10~5 Pa reference as a basis line is introduced. The basis line is linear for the filling rate and functionally connected with the specific volume. For the fluids He and H_2 e.g., SIGMA u/v-- > v-v -diagrams are pointed out, using the u- and i-values on the saturation lines for the two phase region and those of some isobar lines for the region above the critical pressure.
机译:对于许多低温存储容器来说,正常的工作条件是长时间不排放蒸发气体,这导致所存储流体的压力同时升高。因此,一个主要原因是要避免在运输过程中或提取之间损失产品。在运输条件下,可以假设流体的混合是理想的,这导致了最大的加压时间。在静态条件下,由于分层上升,因此预计加压时间会更短,因此无法完全利用所存储流体的热容量。在热力学视图中,状态发生了等时线变化,进入容器的热通量提高了流体的内能。为了表示等时线状态的变化,引入了一个新开发的SIGMA u / v--> v-v图表,以1 x 10〜5 Pa基准为基准线。基线对于填充率是线性的,并且在功能上与特定体积相关。对于流体He和H_2,例如SIGMA u / v--> vv曲线图被指出,使用两相区域的饱和线上的u值和i值,以及高于该区域的一些等压线的u值和i值。临界压力。

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