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Non-Linear Analysis of the NASA Super Pressure Balloons: Whole Flight Simulations

机译:NASA超高压气球的非线性分析:整个飞行模拟

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Tensys have a long-established background in the shape generation and load analysis of architectural stressed membrane structures. Founded upon their inTENS finite element analysis suite, these activities have broadened to encompass 'lighter than air' structures such as aerostats, airships, hybrid air vehicles and stratospheric balloons. Tensys have acted as consultants to the NASA Super Pressure Balloon (SPB) Program since 2004. Previous papers have focussed upon the application of inTENS to the overall structural and stability analysis of pumpkin type balloons as used in the SPB Program. Particular emphasis has been placed upon the ability to study both stress and stability at all stages of a flight. As the program has developed, increasing modelling fidelity has been introduced as design refinement has moved emphasis from the overall shape to the performance of individual details. Examples include the introduction of a contact capability into inTENS to better represent the separate cap layer of film. Localised investigations have considered the consequence of local geometric anomalies introduced during fabrication and the effects of debonding of the PBO tendon within its sleeve. Analysis to date has used a material model for the polyethylene shell film developed by Dr Rand of Winzen Engineering, supported by a program of fine resolution material tests at the Balloon Research and Development Laboratory (BRDL) at the GSFC Wallops Island Facility. Based upon work first reported by Schapery, this model has been incorporated into so-called 'snapshot' analyses within inTENS. For a given elapsed time point and temperature distribution, non-linear material properties are iteratively updated for the current stress state in each individual element until changes in those material properties are insignificant. This process has to be iterative as the film stresses and material properties are interdependent. Attempts to derive a time-stepping incremental viscoelastic capability using the Schapery Rand model encountered problems when dealing with the varying temperatures associated with balloon deployment, pressurisation and diurnal behaviour. An alternative approach has been developed by Pellegrino et al at Caltech, again with support from the NASA Balloon Program Office. This is a large strain non-linear viscoelastic model that includes film out-of-plane mechanical and thermal effects. Working from a unified base, this model can be utilised for time-stepping analyses in both a modulus or compliance mode, or a combination of both. This new capability is intended to enhance the current NASA balloon design process. This paper presents the implementation of the Caltech model into a specialist finite element suite, inTENS and its application to whole flight simulations.
机译:Tensys在建筑应力膜结构的形状生成和载荷分析方面拥有悠久的背景。这些活动建立在其INTENS有限元分析套件的基础上,现已扩展到涵盖“比空气轻”的结构,例如浮空器,飞艇,混合动力飞行器和平流层气球。 Tensys自2004年以来一直担任NASA超压气球(SPB)计划的顾问。以前的论文集中于将INTENS用于SPB计划中的南瓜形气球的整体结构和稳定性分析。特别强调了在飞行的各个阶段研究压力和稳定性的能力。随着程序的发展,随着设计改进将重点从整体形状转移到单个细节的性能,引入了越来越高的建模逼真度。实例包括将接触能力引入INTENS中,以更好地代表单独的薄膜覆盖层。局部调查已考虑了制造过程中引入的局部几何异常的后果,以及PBO肌腱在其套管内脱粘的影响。迄今为止,分析已使用Winzen Engineering的Rand博士开发的聚乙烯壳膜材料模型,并在GSFC Wallops岛工厂的气球研究与开发实验室(BRDL)进行了高分辨率材料测试程序的支持。根据Schapery首次报告的工作,该模型已被整合到INTENS中的所谓“快照”分析中。对于给定的经过时间点和温度分布,针对每个单独元素中的当前应力状态迭代更新非线性材料属性,直到这些材料属性的变化不明显为止。由于薄膜应力和材料特性是相互依赖的,因此该过程必须是迭代的。在处理与气球展开,加压和昼夜行为相关的温度变化时,尝试使用Schapery Rand模型推导时间增量粘弹性能力时遇到了问题。加州理工学院的Pellegrino等人在美国国家航空航天局气球计划办公室的支持下,又开发了一种替代方法。这是一个大应变非线性粘弹性模型,其中包括膜面外机械和热效应。在统一的基础上工作,该模型可用于模量或顺应性模式或两者的组合中的时间步分析。这项新功能旨在增强当前的NASA气球设计流程。本文将Caltech模型的实现展示为一个专业的有限元套件,即INTENS及其在整个飞行模拟中的应用。

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