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CFD Fuel Slosh Modeling of Fluid-Structure Interaction in Spacecraft Propellant Tanks with Diaphragms

机译:带有膜片的航天器推进剂容器中流固耦合的CFD燃油晃动建模

摘要

Liquid sloshing within spacecraft propellant tanks causes rapid energy dissipation at resonant modes, which can result in attitude destabilization of the vehicle. Identifying resonant slosh modes currently requires experimental testing and mechanical pendulum analogs to characterize the slosh dynamics. Computational Fluid Dynamics (CFD) techniques have recently been validated as an effective tool for simulating fuel slosh within free-surface propellant tanks. Propellant tanks often incorporate an internal flexible diaphragm to separate ullage and propellant which increases modeling complexity. A coupled fluid-structure CFD model is required to capture the damping effects of a flexible diaphragm on the propellant. ANSYS multidisciplinary engineering software employs a coupled solver for analyzing two-way Fluid Structure Interaction (FSI) cases such as the diaphragm propellant tank system. Slosh models generated by ANSYS software are validated by experimental lateral slosh test results. Accurate data correlation would produce an innovative technique for modeling fuel slosh within diaphragm tanks and provide an accurate and efficient tool for identifying resonant modes and the slosh dynamic response.
机译:航天器推进剂储罐内的液体晃动会导致共振模式下的快速能量耗散,这可能导致飞行器的姿态不稳定。识别共振晃荡模式目前需要进行实验测试和机械摆类似物来表征晃荡动力学。计算流体动力学(CFD)技术最近已被验证为模拟自由表面推进剂油箱内燃料晃荡的有效工具。推进剂储罐通常装有内部挠性膜片,以将料浆和推进剂分开,这增加了建模的复杂性。需要使用耦合的流体结构CFD模型来捕获柔性隔膜对推进剂的阻尼作用。 ANSYS多学科工程软件采用耦合求解器来分析双向流体结构相互作用(FSI)情况,例如隔膜推进剂储罐系统。 ANSYS软件生成的晃荡模型通过实验横向晃荡测试结果进行验证。准确的数据关联将产生一种创新的技术,用于对隔膜油箱内的燃油晃荡进行建模,并提供一种准确有效的工具来识别共振模式和晃荡动态响应。

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