Experimental Study on the Dynamics of a Thin Liquid Film under Shearing Force

  • WANG Ke ,
  • YE Jing ,
  • GONG Shengjie ,
  • MA Weimin
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  • 1. College of Mechanical and Transportation Engineering, China University of Petroleum, Beijing 102249;
    2. Beijing Key Laboratory of Process Fluid Filtration and Separation, Beijing 102249;
    3. Division of Nuclear Power Safety, Royal Institute of Technology(KTH), Stockholm 10693, Sweden;
    4. Shanghai Marine Diesel Engine Research Institute, Shanghai 201108;
    5. School of Nuclear Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240

Received date: 2017-01-07

  Revised date: 2017-09-04

  Online published: 2014-01-02

Abstract

The "scales-separation" phenomenon indicates that high heat-flux boiling and boiling crisis is dominated by micro-hydrodynamics of liquid microlayer on the heater surface. The techniques for liquid film measurement such as acoustic methods, nucleonic techniques, electrical methods, and optical methods are discussed in detail. Accordingly, a confocal optical sensor system is used to detect the dynamics of liquid film sheared by the co-flowing air from above in a horizontal aluminum channel. The impact of the gas shearing on film behaviors is analyzed and the integrity of liquid film is discussed in detail. The results indicate that the liquid film thickness decreases due to the entrainment and shows a linear or nonlinear variation under different flow conditions. Additionally, for a specific surface, the critical film thickness for an integral film is found to have no relation with the gas and liquid flow rates but the fluctuation of the liquid film increases with the increasing gas velocity.

Cite this article

WANG Ke , YE Jing , GONG Shengjie , MA Weimin . Experimental Study on the Dynamics of a Thin Liquid Film under Shearing Force[J]. Journal of Mechanical Engineering, 2017 , 53(24) : 70 -76 . DOI: 10.3901/JME.2017.24.070

References

[1] 林宗虎. 气液两相流和沸腾传热[M]. 西安:西安交通大学出版社, 2003. LIN Zonghu. Two-phase flow and boiling heat transfer[M]. Xi'an:Xi'an Jiaotong University Press, 2003.
[2] COLLIER J G, THOME J R. Convective boiling and condensation[M]. Oxford:Oxford University Press, 1994.
[3] DHILLON N S. Critical heat flux maxima during boiling crisis on textured surfaces[J]. Nature Communications, 2015, 6:8247.
[4] KHARANGATE C R, KONISHI C, MUDAWAR I. Consolidated methodology to predicting flow boiling critical heat flux for inclined channels in Earth gravity and for microgravity[J]. International Journal of Heat and Mass Transfer, 2015, 92:467-482.
[5] LEE J S, LEE J S. Critical heat flux enhancement of pool boiling with adaptive fraction control of patterned wettability[J]. International Journal of Heat & Mass Transfer, 2016,96:504-512.
[6] WANG K, BAI B, MA W. An improved liquid film model to predict the CHF based on the influence of churn flow[J]. Applied Thermal Engineering, 2014, 64(1-2):422-429.
[7] WEISMAN J, PEI B S. Prediction of critical heat flux in flow boiling at low qualities[J]. International Journal of Heat & Mass Transfer, 1983, 26(10):1463-1477.
[8] LEE C H, MUDAWWAR I. A mechanistic critical heat flux model for subcooled flow boiling based on local bulk flow conditions[J]. International Journal of Multiphase Flow, 1988, 14(6):711-728.
[9] GALLOWAY J E, MUDAWAR I. CHF mechanism in flow boiling from a short heated wall-Ⅱ. Theoretical CHF model[J]. International Journal of Heat & Mass Transfer, 1993, 36(10):2527-2540.
[10] THEOFANOUS T G, TU J P, DINH A T, et al. The boiling crisis phenomenon. Part I:Nucleation and nucleate boiling heat transfer[J]. Experimental Thermal and Fluid Science, 2002, 26:775-792.
[11] THEOFANOUS T G, TU J P, DINH A T, et al. The boiling crisis phenomenon. Part Ⅱ:Dryout dynamics and burnout[J]. Experimental Thermal and Fluid Science, 2002, 26:793-810.
[12] THEOFANOUS T G, DINH T N. High heat flux boiling and burnout as microphysical phenomena:mounting evidence and opportunities[J]. Environmental Science and Technology, 2006, 18(3):251-276.
[13] DHIR V K. Mechanistic prediction of nucleate boiling heat transfer-achievable or a hopeless task?[J]. Journal of Heat Transfer, 2006, 128(1):1-12.
[14] STEPHAN P, KERN J. Evaluation of heat and mass transfer phenomena in nucleate boiling[J]. International Journal of Heat Fluid Flow, 2004, 25:140-148.
[15] ORON A, DAVIS S H, BANKOFF S G. Long-scale evolution of thin liquid films[J]. Review of Modern Physics, 1997, 69(69):931-980.
[16] CRASTER R V, MATAR O K. Dynamics and stability of thin liquid films[J]. Review of Modern Physics, 2009, 81(3):1131-1198.
[17] DINH T N, TU J P. The micro-hydrodynamics that govern critical heat flux in pool boiling[C]//International Conference on Multiphase Flow, ICMF 2007, Leipzig, July 9-13, 2007.
[18] TIBIRIÇÁ C B, DO NASCIMENTO F J, RIBATSKI G. Film thickness measurement techniques applied to micro-scale two-phase flow systems[J]. Experimental Thermal and Fluid Science, 2010, 34(4):463-473.
[19] LU Q, SURYANARAYANA N V, CHRISTODOULU C. Film thickness measurement with an ultrasonic transducer[J]. Experimental Thermal and Fluid Science, 1993, 7(4):354-361.
[20] YE J, GUO L J, ZHOU H L. Study on performance of double helical capacitance probe for water fraction measurement in multiphase flow[C]//AIP Conference Proceedings, New York, 2012, 1428(1):120-127.
[21] JONG P D, GABRIEL K S. A preliminary study of two -phase annular flow at microgravity:experimental data of film thickness[J]. International Journal of Multiphase Flow, 2003, 29(8):1203-1220.
[22] GSTOEHL D, ROQUES J F, CRISINEL P, et al. Measurement of falling film thickness around a horizontal tube using a laser measurement technique[J]. Heat Transfer Engineering, 2004, 8:28-34.
[23] LIU A H, WAYNER P C J, PLAWSKY J L. Image scanning ellipsometry for measuring the transient film thickness profiles of draining liquids[J]. Physics of Fluids, 1994, 6(6):1963-1971.
[24] LAN H, FRIEDRICH M, ARMALY B F, et al. Simulation and measurement of 3D shear-driven thin liquid film flow in a duct[J]. International Journal of Heat and Fluid Flow, 2008, 29(2):449-459.
[25] GONG S J, MA W M, DINH T N. An experimental study of rupture dynamics of evaporating liquid films on different heater surfaces[J]. International Journal of Heat and Mass Transfer, 2011(54):1538-1547.
[26] GONG S J, MA W M, DINH T N. Simulation and validation of the dynamics of liquid films evaporating on horizontal heater surfaces[J]. Applied Thermal Engineering, 2012, 48(48):486-494.
[27] GONG S J, MA W M, WANG C, et al. An investigation on dynamic thickness of a boiling liquid film[J]. International Journal of Heat and Mass Transfer, 2015(90):636-644.
[28] GONG S J, MA W M, DINH T N. Diagnostic techniques for the dynamics of a thin liquid film under forced flow and evaporating conditions[J]. Microfluidics and Nanofluidics, 2010, 9(6):1077-1089.
[29] SCHIEBENER P, STRAUB J, LEVELT SENGERS J M H, et al. Refractive index of water and steam as function of wavelength, temperature and density[J]. Journal of Physical & Chemical Reference Data, 1990, 19(3):677-717.
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