NUMERICAL PREDICTIONS OF CAVITATING FLOW WITHIN A LIQUID HYDROGEN INDUCER

被引:0
|
作者
Blumenthal, Robert F. [1 ]
Kelecy, Franklyn J. [2 ]
机构
[1] ANSYS Inc, Berkeley, CA 94705 USA
[2] ANSYS Inc, Boulder, CO USA
关键词
turbomachinery; cryogenic; cavitation;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
With the recent interest in using liquid hydrogen as a fuel source for energy production and transportation, predicting the performance of pumping systems which handle hydrogen has become an important issue. Liquid hydrogen is a cryogenic fluid which exists at extremely low temperatures and presents a myriad of design challenges to ensure a safe, efficient, and robust fuel delivery system. In addition, the typical operating conditions for pumps handling liquid hydrogen are such that vapor formation due to cavitation is present in the flow even when the head rise is relatively unaffected. Cavitation can cause severe damage to pump components and lead to shortened life and eventual failure, especially at the temperatures associated with liquid hydrogen. The present work was focused on validating CFD methods for accurately predicting cavitating flow in a pump inducer handling cryogenic hydrogen. The CFD code used in this study was Ansys CFX, which is a general-purpose commercial solver with models available for simulating cryogenic cavitation in turbomachinery. The specific model employed for cavitation utilized a Rayleigh-Plesset based multiphase formulation in conjunction with thermodynamic property tables appropriate for cryogenic liquid hydrogen. Adjustments to cavitation model parameters were introduced as a function of fluid temperature to account for the thermal suppression head effects that are present at cryogenic thermal conditions.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Modeling liquid hydrogen cavitating flow with the full cavitation model
    Zhang, X. B.
    Qiu, L. M.
    Qi, H.
    Zhang, X. J.
    Gan, Z. H.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (23) : 7197 - 7206
  • [32] Numerical simulation of cavitating flow in 2D and 3D inducer geometries
    Coutier-Delgosha, O
    Fortes-Patella, R
    Reboud, JL
    Hakimi, N
    Hirsch, C
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2005, 48 (02) : 135 - 167
  • [33] Effects of inlet flow modification on cavitating inducer performance
    Del Valle, J.
    Braisted, D.M.
    Brennen, C.E.
    Journal of Turbomachinery, 1992, 114 (02): : 360 - 365
  • [34] Numerical study on flow separation and force evolution in liquid nitrogen cavitating flow
    Liu, Yi
    Zhang, JinLing
    Sun, Lilong
    An, LiLi
    Wang, XunMing
    Cai, Jie
    Zhang, Wei
    Chen, Feng
    FRONTIERS IN ENERGY RESEARCH, 2023, 11
  • [35] THE EFFECTS OF INLET FLOW MODIFICATION ON CAVITATING INDUCER PERFORMANCE
    DELVALLE, J
    BRAISTED, DM
    BRENNEN, CE
    JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 1992, 114 (02): : 360 - 365
  • [36] Numerical simulation of cavitating flow in liquid Nitrogen through a convergent nozzle
    Adibi, Pouyan
    Bagheri, Reza
    Hosseini, Mohammad
    HELIYON, 2024, 10 (16)
  • [37] Numerical investigation of cavitating flow
    Schnerr, GH
    Lanzenberger, K
    Schulz, R
    ZEITSCHRIFT FUR ANGEWANDTE MATHEMATIK UND MECHANIK, 1996, 76 : 523 - 524
  • [38] Implicit LES Predictions of the Cavitating Flow on a Propeller
    Bensow, Rickard E.
    Bark, Goeran
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2010, 132 (04): : 0413021 - 04130210
  • [39] Numerical Predictions of Cavitating Flow around Model Scale Propellers by CFD and Advanced Model Calibration
    Morgut, Mitja
    Nobile, Enrico
    INTERNATIONAL JOURNAL OF ROTATING MACHINERY, 2012, 2012 (2012)
  • [40] Numerical study of liquid nitrogen cavitating flow through nozzles of various shapes
    Xue, Rong
    Ruan, Yixiao
    Liu, Xiufang
    Chen, Liang
    Hou, Yu
    CRYOGENICS, 2018, 94 : 62 - 78