D.V. Lyubimov, T.P. Lyubimova, S. Meradji, B. Roux
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Analysis focuses on the vibrational conditions used in experiments with the two-phase system SF<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\"http://www.w3.org/1999/xlink\" mime-subtype=\"png\" xlink:href=\"S002211202400541X_inline1.png\"/> <jats:tex-math>$_6$</jats:tex-math> </jats:alternatives> </jats:inline-formula> in the MIR space station and with the two-phase system para-Hydrogen (p-H<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\"http://www.w3.org/1999/xlink\" mime-subtype=\"png\" xlink:href=\"S002211202400541X_inline2.png\"/> <jats:tex-math>$_2$</jats:tex-math> </jats:alternatives> </jats:inline-formula>) under magnetic compensation of Earth's gravity. These conditions correspond to small-amplitude high-frequency vibrations. Under vibrations, additionally to the forced oscillations, an average displacement of the bubble to the wall is observed due to an average vibrational attraction force related to the Bernoulli effect. Vibrational conditions for SF<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\"http://www.w3.org/1999/xlink\" mime-subtype=\"png\" xlink:href=\"S002211202400541X_inline3.png\"/> <jats:tex-math>$_6$</jats:tex-math> </jats:alternatives> </jats:inline-formula> correspond to much smaller average vibrational force (weak vibrations) than for p-H<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\"http://www.w3.org/1999/xlink\" mime-subtype=\"png\" xlink:href=\"S002211202400541X_inline4.png\"/> <jats:tex-math>$_2$</jats:tex-math> </jats:alternatives> </jats:inline-formula> (strong vibrations). For weak vibrations, the role of the initial vibration phase is crucial. The difference in the behaviour at different initial phases is explained using a simple mechanical model. For strong vibrations, the average displacement to the wall stops when the bubble reaches a quasi-equilibrium position where the resulting average force is zero. At large vibration velocity amplitudes this position is near the wall where the bubble performs only forced oscillations. At moderate vibration velocity amplitudes the bubble average displacement stops at a finite distance from the wall, then large-scale damped oscillations around this position accompanied by forced oscillations are observed. Bubble shape oscillations and the parametric resonance of forced oscillations are also studied.","PeriodicalId":15853,"journal":{"name":"Journal of Fluid Mechanics","volume":"242 1","pages":""},"PeriodicalIF":3.6000,"publicationDate":"2024-08-27","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Vibration-induced wall–bubble interactions under zero-gravity conditions\",\"authors\":\"D.V. Lyubimov, T.P. Lyubimova, S. Meradji, B. Roux\",\"doi\":\"10.1017/jfm.2024.541\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"This work is devoted to a theoretical and numerical study of the dynamics of a two-phase system vapour bubble in equilibrium with its liquid phase under translational vibrations in the absence of gravity. The bubble is initially located in the container centre. The liquid and vapour phases are considered as viscous and incompressible. Analysis focuses on the vibrational conditions used in experiments with the two-phase system SF<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\\\"http://www.w3.org/1999/xlink\\\" mime-subtype=\\\"png\\\" xlink:href=\\\"S002211202400541X_inline1.png\\\"/> <jats:tex-math>$_6$</jats:tex-math> </jats:alternatives> </jats:inline-formula> in the MIR space station and with the two-phase system para-Hydrogen (p-H<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\\\"http://www.w3.org/1999/xlink\\\" mime-subtype=\\\"png\\\" xlink:href=\\\"S002211202400541X_inline2.png\\\"/> <jats:tex-math>$_2$</jats:tex-math> </jats:alternatives> </jats:inline-formula>) under magnetic compensation of Earth's gravity. These conditions correspond to small-amplitude high-frequency vibrations. Under vibrations, additionally to the forced oscillations, an average displacement of the bubble to the wall is observed due to an average vibrational attraction force related to the Bernoulli effect. Vibrational conditions for SF<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\\\"http://www.w3.org/1999/xlink\\\" mime-subtype=\\\"png\\\" xlink:href=\\\"S002211202400541X_inline3.png\\\"/> <jats:tex-math>$_6$</jats:tex-math> </jats:alternatives> </jats:inline-formula> correspond to much smaller average vibrational force (weak vibrations) than for p-H<jats:inline-formula> <jats:alternatives> <jats:inline-graphic xmlns:xlink=\\\"http://www.w3.org/1999/xlink\\\" mime-subtype=\\\"png\\\" xlink:href=\\\"S002211202400541X_inline4.png\\\"/> <jats:tex-math>$_2$</jats:tex-math> </jats:alternatives> </jats:inline-formula> (strong vibrations). For weak vibrations, the role of the initial vibration phase is crucial. The difference in the behaviour at different initial phases is explained using a simple mechanical model. For strong vibrations, the average displacement to the wall stops when the bubble reaches a quasi-equilibrium position where the resulting average force is zero. At large vibration velocity amplitudes this position is near the wall where the bubble performs only forced oscillations. At moderate vibration velocity amplitudes the bubble average displacement stops at a finite distance from the wall, then large-scale damped oscillations around this position accompanied by forced oscillations are observed. 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引用次数: 0
摘要
这项研究致力于在无重力条件下,对处于与液相平衡状态的两相系统汽泡在平移振动下的动力学进行理论和数值研究。气泡最初位于容器中心。液相和汽相被认为是粘性和不可压缩的。分析的重点是在 MIR 空间站中两相体系 SF $_6$ 的实验中使用的振动条件,以及在地球引力的磁补偿下两相体系对位氢(p-H $_2$ )的实验中使用的振动条件。这些条件对应于小振幅高频振动。在振动条件下,除了受迫振荡之外,由于与伯努利效应有关的平均振动吸引力,还观察到气泡向壁面的平均位移。SF_6$ 的振动条件对应的平均振动力(弱振动)要比 p-H_2$ 的小得多(强振动)。对于弱振动,初始振动阶段的作用至关重要。我们可以用一个简单的机械模型来解释不同初始阶段的行为差异。对于强振动,当气泡达到所产生的平均力为零的准平衡位置时,气泡壁的平均位移就会停止。在振动速度振幅较大时,该位置靠近气泡仅进行受迫振荡的壁面。在中等振动速度振幅下,气泡的平均位移停止在离壁的有限距离处,然后在该位置附近观察到大规模的阻尼振荡,并伴有受迫振荡。此外,还研究了气泡形状振荡和受迫振荡的参数共振。
Vibration-induced wall–bubble interactions under zero-gravity conditions
This work is devoted to a theoretical and numerical study of the dynamics of a two-phase system vapour bubble in equilibrium with its liquid phase under translational vibrations in the absence of gravity. The bubble is initially located in the container centre. The liquid and vapour phases are considered as viscous and incompressible. Analysis focuses on the vibrational conditions used in experiments with the two-phase system SF$_6$ in the MIR space station and with the two-phase system para-Hydrogen (p-H$_2$) under magnetic compensation of Earth's gravity. These conditions correspond to small-amplitude high-frequency vibrations. Under vibrations, additionally to the forced oscillations, an average displacement of the bubble to the wall is observed due to an average vibrational attraction force related to the Bernoulli effect. Vibrational conditions for SF$_6$ correspond to much smaller average vibrational force (weak vibrations) than for p-H$_2$ (strong vibrations). For weak vibrations, the role of the initial vibration phase is crucial. The difference in the behaviour at different initial phases is explained using a simple mechanical model. For strong vibrations, the average displacement to the wall stops when the bubble reaches a quasi-equilibrium position where the resulting average force is zero. At large vibration velocity amplitudes this position is near the wall where the bubble performs only forced oscillations. At moderate vibration velocity amplitudes the bubble average displacement stops at a finite distance from the wall, then large-scale damped oscillations around this position accompanied by forced oscillations are observed. Bubble shape oscillations and the parametric resonance of forced oscillations are also studied.
期刊介绍:
Journal of Fluid Mechanics is the leading international journal in the field and is essential reading for all those concerned with developments in fluid mechanics. It publishes authoritative articles covering theoretical, computational and experimental investigations of all aspects of the mechanics of fluids. Each issue contains papers on both the fundamental aspects of fluid mechanics, and their applications to other fields such as aeronautics, astrophysics, biology, chemical and mechanical engineering, hydraulics, meteorology, oceanography, geology, acoustics and combustion.