Volume 39 Issue 12
Dec.  2024
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WANG Ye, YANG Guang, JIN Xin, et al. Cryogenic experimental study on the phase separation performance of screen channel liquid acquisition device[J]. Journal of Aerospace Power, 2024, 39(12):20220304 doi: 10.13224/j.cnki.jasp.20220304
Citation: WANG Ye, YANG Guang, JIN Xin, et al. Cryogenic experimental study on the phase separation performance of screen channel liquid acquisition device[J]. Journal of Aerospace Power, 2024, 39(12):20220304 doi: 10.13224/j.cnki.jasp.20220304

Cryogenic experimental study on the phase separation performance of screen channel liquid acquisition device

doi: 10.13224/j.cnki.jasp.20220304
  • Received Date: 2022-05-03
    Available Online: 2024-08-02
  • Gas-free liquid delivery experiments for liquid nitrogen were conducted to evaluate the performance of the screen channel liquid acquisition devices. The phase separation capability of the screen channel was investigated in detail under successful separation conditions and critical separation failure conditions. The influences of the total channel flow resistance and liquid flow rate of the channel under different screen specifications and the exposed length of the channel to gas phase were obtained, while the critical breakthrough failure pressure and the maximum achievable flow rate were analyzed. Experimental results indicated that the total pressure loss in the screen channel increased with the trend of 203×1600 screen, 130×1100 screen, and 325×2300 screen. This trend of the channel flow resistance was similar to the trend of the screen pressure drop. The bubble point pressure tested for the porous screen can be directly applied to the dynamic separation processes of the screen channel. Moreover, experimental results indicated that there was a best choice of the screen specifications to balance between the flow resistance and the breakthrough failure threshold. The influence of the gravity on the separation performance was reflected on the caused static pressure loss and the gas coverage ration on the screen channel. The cryogenic experimental results may provide a guidance for practical application of the screen channel liquid acquisition devices.

     

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