期刊文献+

Numerical Calculation of Thermal Effect on Cavitation in Cryogenic Fluids 被引量:5

Numerical Calculation of Thermal Effect on Cavitation in Cryogenic Fluids
下载PDF
导出
摘要 A key design issue related to the turbopump of the rocket engine is that cavitation occurs in cryogenic fluids when the fluid pressure is lower than the vapor pressure at a local thermodynamic state. Cavitation in cryogenic fluids generates substantial thermal effects and strong variations in fluid properties, which in turn alter the cavity characteristics. To date, fewer investigate the thermal effect on cavitation in cryogenic fluids clearly by the numerical methods due to the difficulty of the heat transfer in the phase change process. In order to study the thermal effect on cavitation in cryogenic fluid, computations are conducted around a 2D quarter caliber hydrofoil in liquid nitrogen and hydrogen respectively by implementing modified Merkle cavitation model, which accounts for the energy balance and variable thermodynamic properties of the fluid. The numerical results show that with the thermal effect, the vapour content in constant location decreases, the cavity becomes more porous and the interface becomes less distinct which shows increased spreading while getting shorter in length. In the cavity region, the temperature around the cavity depresses due to absorb the evaporation latent heat and the saturation pressure drops. When the vapour volume fraction is higher, the temperature depression and pressure depression becomes larger. It is also observed that a slight temperature rise is found above the reference fluid temperature at the cavity rear end attributed to the release of latent heat during the condensation process. When the fluid is operating close to its critical temperature, thermal effects on cavitation are more obviously in both the liquid nitrogen and hydrogen. The thermal effect on cavitation in liquid hydrogen is more distinctly compared with that in liquid nitrogen due to the density ratio, vapour pressure and other variable properties of the fluid. The investigation provides aid for the design of the cryogenic pump of the liquid rocket. A key design issue related to the turbopump of the rocket engine is that cavitation occurs in cryogenic fluids when the fluid pressure is lower than the vapor pressure at a local thermodynamic state. Cavitation in cryogenic fluids generates substantial thermal effects and strong variations in fluid properties, which in turn alter the cavity characteristics. To date, fewer investigate the thermal effect on cavitation in cryogenic fluids clearly by the numerical methods due to the difficulty of the heat transfer in the phase change process. In order to study the thermal effect on cavitation in cryogenic fluid, computations are conducted around a 2D quarter caliber hydrofoil in liquid nitrogen and hydrogen respectively by implementing modified Merkle cavitation model, which accounts for the energy balance and variable thermodynamic properties of the fluid. The numerical results show that with the thermal effect, the vapour content in constant location decreases, the cavity becomes more porous and the interface becomes less distinct which shows increased spreading while getting shorter in length. In the cavity region, the temperature around the cavity depresses due to absorb the evaporation latent heat and the saturation pressure drops. When the vapour volume fraction is higher, the temperature depression and pressure depression becomes larger. It is also observed that a slight temperature rise is found above the reference fluid temperature at the cavity rear end attributed to the release of latent heat during the condensation process. When the fluid is operating close to its critical temperature, thermal effects on cavitation are more obviously in both the liquid nitrogen and hydrogen. The thermal effect on cavitation in liquid hydrogen is more distinctly compared with that in liquid nitrogen due to the density ratio, vapour pressure and other variable properties of the fluid. The investigation provides aid for the design of the cryogenic pump of the liquid rocket.
出处 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2012年第6期1176-1183,共8页 中国机械工程学报(英文版)
基金 supported by National Natural Science Foundation of China(Grant No. 50979004) Doctor Reserch Fund of Univercity of China(Grant No. 20080070027)
关键词 thermal effect CAVITATION cryogenic fluid numerical simulation thermal effect, cavitation, cryogenic fluid, numerical simulation
  • 相关文献

参考文献15

  • 1UTTURKAR Y, WU J Y, WANG G Y, et al. Recent progress in modeling of cryogenic cavitation for liquid rocket propulsion[J]. Progress in Aerospace Sciences, 2005, 41: 558-608.
  • 2HORD J. Cavitation in liquid cryogens, II-Hydrofoil[R]. NASA Contractor Report, 1973a, NASA CR - 2156.
  • 3HORD J. Cavitation in liquid cryogens, llI-Ogives[R]. NASA Contractor Report, 1973b, NASA CR - 2242.
  • 4FRANC J P, REBATTET C, COUKON A. An experimental investigation of thermal effects in a cavitating inducer[J]. ASMEJournal of Fluids Engineering, 2004, 126(5): 716-723.
  • 5YOSHIDA Y, KIKUTA K, WATANABE M, et al. Thermodynamic effect on cavitation performances and cavitation instabilities in an inducer[C]//Proc, of 6th International Symposium on Cavitations, Wageningen, The Netherland, 2006, 38: 1-9.
  • 6STAHL H, STEPANOFF A. Thermodynamic aspects of cavitation in centrifugal pumps[J]. Journal of Basic Engineering, 1956, 78: 1 691-1 693.
  • 7RUGGERI R S, MOORE R D. Method of prediction of pump cavitation performance for various liquids, liquid temperatures and rotation speeds[R]. NASA Technical Note, 1969, NASA TN D-5292.
  • 8DESHPANDE M, FENG J Z, MERKLE C L. Numerical modelin of the thermodynamic effects of cavitation[J], d. Fluids Eng-Tram ASME, 1997, 119(2): 420-427.
  • 9TOKUMASU T, SEKINO Y, KAMIJO K. The numerical analysis of the effect of flow properties on the thermodynamic effect of cavitation[J]. Trans. Japan Soc. Aeron. Space Sci., 2004, 47(156): 146-152.
  • 10HOSANGADI A, AHUJA V. Numerical study of cavitation in cryogenic fluids[J]. Journal of Fluids Engineering, 2005, 127: 267-.281.

同被引文献38

  • 1严春吉,解茂昭,殷佩海.液体射流在旋转气体中分裂破碎机理研究[J].大连理工大学学报,2004,44(5):657-661. 被引量:3
  • 2PAYRI R, GARCIAJ M, SALVADOR FJ, et al. Using spray momentum flux measurements to understand the influence of diesel nozzle geometry on spray characteristics[J]. Fuel, 2005, 84: 551-561.
  • 3SARRE C V K, KONG S C, REITZ R D. Modeling the effects of injector nozzle geometry on diesel sprays[C]//SAE Paper, Melbourne, Australia,Jan 1, 1999: 1375-1388.
  • 4HE Z X, ZHONG WJ, WANG Q, et al. An investigation of transient nature of the cavitating flow in injector nozzles[J]. Applied Thermal Engineering, 2013, 54(1): 56-64.
  • 5SOU A, HOSOKA WA S, TOMIY A WA A. Effects of cavitation in a nozzle on liquidJet atomization[J]. InternationalJournal of Heat and Mass Transfer, 2007, 50fl7-18): 3 575-3 582.
  • 6GIORGI M G, FICARELLA A, TARANTINO M. Evaluating cavitation regimes in an internal orifice at different temperatures using frequency analysis and visualization[J]. InternationalJournal of Heat and Fluid Flow, 2013, 39: 160-172.
  • 7BLESSING M, KONIG G, KRUGER C, et al. Analysis of flow and cavitation phenomena in diesel injection nozzles and its effects on spray and mixture formation[C]IISAE Paper, Madison, Wisconsin, USA,Jan 1,2003-01-1358.
  • 8T AMAKI N. Effects of cavitation in a nozzle hole on atomization of spray and development of high-efficiency atomization enhancement nozzle[C]llllth Triennial International Annual Conference on Liquid Atomization and Spray Systems, Vail, Colorado, USA,July, 2009.
  • 9SAFARI S D. Effects of cavitation on high-pressure atomization[D]. California: University of California, Irvine, 2009.
  • 10PAYRI R, SALVADOR FJ, GIMENOJ, et al. Study of cavitation phenomena based on a technique for visualizing bubbles in a liquid pressurized charnberJ J]. InternationalJournal of Heat and Fluid Flow, 2009, 30: 768-777.

引证文献5

二级引证文献8

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部