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Computational Analyses of Pressurization in Cryogenic Tanks

机译:低温储罐中压力的计算分析

摘要

A) Advanced Gas/Liquid Framework with Real Fluids Property Routines: I. A multi-fluid formulation in the preconditioned CRUNCH CFD(Registered TradeMark) code developed where a mixture of liquid and gases can be specified: a) Various options for Equation of state specification available (from simplified ideal fluid mixtures, to real fluid EOS such as SRK or BWR models). b) Vaporization of liquids driven by pressure value relative to vapor pressure and combustion of vapors allowed. c) Extensive validation has been undertaken. II. Currently working on developing primary break-up models and surface tension effects for more rigorous phase-change modeling and interfacial dynamics B) Framework Applied to Run-time Tanks at Ground Test Facilities C) Framework Used For J-2 Upper Stage Tank Modeling: 1) NASA MSFC tank pressurization: a) Hydrogen and oxygen tank pre-press, repress and draining being modeled at NASA MSFC. 2) NASA AMES tank safety effort a) liquid hydrogen and oxygen are separated by a baffle in the J-2 tank. We are modeling pressure rise and possible combustion if a hole develops in the baffle and liquid hydrogen leaks into the oxygen tank. Tank pressure rise rates simulated and risk of combustion evaluated.
机译:A)具有实际流体属性例程的高级气体/液体框架:I.在预处理的CRUNCH CFD(注册商标)代码中开发了多流体配方,其中可以指定液体和气体的混合物:a)状态方程的各种选择可用的规格(从简化的理想流体混合物到实际的流体EOS,例如SRK或BWR模型)。 b)由相对于蒸气压的压力值驱动的液体汽化和允许的蒸气燃烧。 c)已经进行了广泛的验证。二。目前正致力于开发主要分解模型和表面张力效应,以进行更严格的相变建模和界面动力学B)应用于地面测试设施运行时储罐的框架C)用于J-2上层储罐建模的框架:1 )NASA MSFC储罐增压:a)氢气和氧气储罐的预压,再压和排放均以NASA MSFC为模型。 2)NASA AMES储罐的安全性a)液态氢和氧气由J-2储罐中的挡板隔开。如果挡板上出现孔且液氢泄漏到氧气罐中,我们将模拟压力升高和可能的燃烧。模拟油箱压力上升率并评估燃烧风险。

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