CFD Investigation on Movement Features of Hydrogen Bubble under Microgravity Environment

被引:0
|
作者
Wang, Lei [1 ]
Sun, Peijie [2 ]
Li Yan [2 ]
Shi Shangguan [1 ]
Qu, Miao [1 ]
Li, Yanzhong [1 ]
机构
[1] Xi An Jiao Tong Univ, Inst Refrigerat & Cryogen Engn, Xian 710049, Peoples R China
[2] Shanghai Inst Aerosp Syst Engn, Shanghai 201109, Peoples R China
基金
中国国家自然科学基金;
关键词
liquid hydrogen; cryogenic upper stage; reorientation; two-phase flow; microgravity; NUMERICAL-SIMULATION; BEHAVIOR; FLOW;
D O I
10.3390/en15207528
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
A designed cryogenic upper stage adopted liquid hydrogen and liquid oxygen (LH2/LO2) as an aerospace propellant. During a zero-gravity coast period in space, the wall heat leakage into the delivery tube could induce liquid propellant evaporation and two-phase flow phenomenon, so that a bubble discharge operation must be employed prior to engine restart. In this study, a CFD approach was utilized to numerically study the bubble discharge behaviors inside the LH2 delivery tube of the upper stage. The bubble motion properties under two different schemes, including positive acceleration effect and circulation flow operation, were analyzed and discussed. The results showed that the boiled hydrogen bubbles could increase to the size of the tube inner diameter and distribute randomly within the entire tube volume, and that, in order for the bubble to spill upward under the acceleration effect, a higher acceleration level than the needed value of acquiring liquid-vapor separation inside the propellant tank should be provided. When creating an acceleration level of 10(-3) g(0), most of the bubbles could spill upward within 700 s. Significantly, the bubbles could not be completely expelled in the created acceleration condition since a number of small bubbles always stagnate in the bulk liquid region. In the circulation flow operation, the gas volume reduction was mainly attributed to two mechanisms: the vapor condensation effect; and bubble discharge effect. For the case with a circulation flow rate of 0.2 kg/s, a complete bubble discharge purpose was reached within 820 s, while a large bubble stagnation in the spherical distributor occupied a remarkable proportion of the total time. In addition, both the liquid flow rate and liquid subcooling exert important effects on bubble performance. When applying a high circulation flow, the gas volume reduction is mainly due to the inertial effect of liquid flow, but the bubble stagnation in the spherical distributor still affects the total discharge time. The liquid subcooling influence on the gas volume reduction is more significant in smaller circulation flow cases. Generally, the present study provides valuable conclusions on bubble motions inside a LH2 delivery tube in microgravity, and the results could be beneficial to the sequence design of engine restart for the cryogenic upper stage.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Investigation of bubble structure in a microchannel under microgravity conditions: Effects of discontinuous wettability with dynamic contact angle
    Mousavi, S. Mahmood
    Lee, Bok Jik
    ACTA ASTRONAUTICA, 2022, 201 : 394 - 400
  • [32] Investigation on the Boiling Bubble Departure Behavior of Cryogenic Fluid in Microgravity
    Ma Y.
    Sun P.
    Li P.
    Wang L.
    Li Y.
    2018, Xi'an Jiaotong University (52): : 89 - 94
  • [33] Investigation on no-vent filling process of liquid hydrogen tank under microgravity condition
    Ma, Yuan
    Li, Yanzhong
    Zhu, Kang
    Wang, Ying
    Wang, Lei
    Tan, Hongbo
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (12) : 8264 - 8277
  • [34] CFD simulation of heat transfer and phase change characteristics of the cryogenic liquid hydrogen tank under microgravity conditions
    Jiang, Yaobin
    Yu, Yusong
    Wang, Zheng
    Zhang, Shurui
    Cao, Jie
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (19) : 7026 - 7037
  • [35] Preliminary study on bubble departure in flow boiling under microgravity
    Lu, Chengdao
    Li, Fojin
    Cheng, Shangmo
    Huazhong Ligong Daxue Xuebao/Journal Huazhong (Central China) University of Science and Technology, 1998, 26 (06): : 53 - 55
  • [36] Interfacial Phenomena of Bubble Evolution in Water Electrolysis under Microgravity
    Sakuma, Go
    Matsushima, Hisayoshi
    Fukunaka, Yasuhiro
    INTERNATIONAL JOURNAL OF MICROGRAVITY SCIENCE AND APPLICATION, 2008, 25 (03):
  • [37] Effect of centrifugal force on bubble breakage time under microgravity
    Ohira, Y
    Kuga, Y
    Idogawa, K
    Ando, K
    JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 2001, 34 (09) : 1131 - 1135
  • [38] The Effects of Forced Vibration on the Motion of a Large Bubble Under Microgravity
    Kawaji, M.
    Lyubimov, D.
    Ichikawa, N.
    Lyubimova, T.
    Kariyasaki, A.
    Tryggvason, B.
    MICROGRAVITY SCIENCE AND TECHNOLOGY, 2021, 33 (05)
  • [39] Bubble migration in containers with interior corners under microgravity conditions
    Joshua McCraney
    Joshua Bostwick
    Mark Weislogel
    Paul Steen
    Experiments in Fluids, 2023, 64
  • [40] BUBBLE DYNAMICS DURING POOL BOILING UNDER MICROGRAVITY CONDITIONS
    Dhir, Vijay K.
    Warrier, Gopinath R.
    Aktinol, Eduardo
    COMPUTATIONAL THERMAL SCIENCES, 2012, 4 (06): : 525 - 538