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Performance analysis of a novel stratospheric airship concept based on gas-liquid phase change

机译:基于气液相变的新型平流层飞艇概念性能分析

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This paper presents a new concept of a stratospheric airship with a triple-gasbag configuration to reduce the super pressure caused by the superheat during the day-night station-keeping operation. First, it introduces the concept design of a triple-gasbag airship that can regulate the differential pressure by means of gas-liquid phase change. According to a comparative analysis, ammonia is identified as the optimal working gas for this phase change. To investigate the capability of this method, a steady state model is built. Steady state performance analyses show that a conventional airship cannot effectively reduce the super-pressure caused by the superheat, whereas the triple-gasbag airship is theoretically effective in reducing the super-pressure by over 45% through regulating the volume ratio of ammonia from 10% to 0 at a constant altitude during the diurnal cycle. Considering the rapid increase in the temperature and pressure of gases inside the airship at sunrise, a coupled dynamic model is built, which can describe the transient behavior of the thermodynamic and kinetic parameters of the triple-gasbag airship. Further dynamic analyses demonstrate that even though the gas temperature significantly increases at sunrise, the phase-change method based on appropriate operational planning can also substantially reduce the super-pressure by over 45%. A few problems that require further investigations in the future are discussed.
机译:本文介绍了一个带有三重气囊配置的平流层飞艇的新概念,以减少日夜站保持操作中超热引起的超压力。首先,介绍了一种通过气液相变的三重气囊飞艇的概念设计,可以通过气液相变。根据比较分析,氨被鉴定为该相变的最佳工作气体。为了研究该方法的能力,构建了稳态模型。稳态性能分析表明,传统的飞艇不能有效地降低过热引起的超压力,而三重气囊飞艇通过调节氨的体积比从10%的体积比降低超过45%,从而降低了45%以上的超压力在昼夜周期期间在恒定的海拔地区进行0。考虑到日出时飞艇内部气体温度和压力的快速增加,建立了一种耦合的动态模型,可以描述三重气囊飞艇热力学和动力学参数的瞬态行为。进一步的动态分析表明,即使气温在日出时显着增加,基于适当运营规划的相变法也可以基本上将超压力降低超过45%。讨论了未来未来进一步调查的一些问题。

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