An energy model of droplet impingement on an inclined wall under isothermal and non-isothermal environments

被引:10
作者
Zhai, Jiachen [1 ]
Lee, Seong-Young [1 ]
Ahuja, Nitisha [1 ]
Zhao, Le [1 ]
Zhu, Xiucheng [1 ]
机构
[1] Michigan Technol Univ, Dept Mech Engn Engn Mech, 1400 Townsend Dr, Houghton, MI 49931 USA
关键词
Droplet-wall impingement; Inclined angle; Temperature; Energy conservation; Spreading length; CONTACT ANGLES; HOT SURFACE; IMPACT; LIQUID; TEMPERATURE; DYNAMICS;
D O I
10.1016/j.ijheatmasstransfer.2020.119892
中图分类号
O414.1 [热力学];
学科分类号
摘要
The study of spray-wall interaction is of great importance to understand the dynamics that occur during fuel impingement onto the chamber wall or piston surfaces in internal combustion engines. It is found that the maximum spreading length of an impinged droplet can provide a quantitative estimation of heat transfer and energy transformation for spray-wall interaction. Furthermore, it influences the air-fuel mixing and hydrocarbon and particle emissions at combusting conditions. In this paper, an analytical model of different droplet-wall impingement conditions is developed in terms of beta(m) (dimensionless maximum spreading length, the ratio of maximum spreading length to initial droplet diameter) to understand the detailed impinging dynamic process. These conditions are grouped as: a single diesel droplet impinging on the wall with different inclined angles (alpha); cold wall - heated droplet and heated wall - cold droplet impingement when inclined angle of the wall is 0 degrees, respectively. The analytical model is built up based on the energy conservation that considers kinetic energy, gravitation energy, and surface energy before impingement, as well as viscous dissipation, gravitation energy, adhesion energy, deformation energy, and heat energy after impingement. The experimental work of diesel droplet impinging on an inclined wall is performed at a certain range of the Weber number (We of 33 to 420) with various inclined angles (alpha of 0 degrees to 45 degrees), while for inclined angle is 0 degrees, droplet and wall temperature are varied from 25 degrees C to 150 degrees C to study the effects of the inclined angle and temperature on the temporal evolution of the post-impingement characteristics (i.e. droplet spreading length, dynamic contact angle). The analytical model is validated and evaluated at the aforementioned experimental operating points. The validated model can be employed to predict maximum spreading length of the droplet impinged on the wall. It is further utilized to determine the transition from capillary regime to kinetic regime, then to viscous regime at different inclined angle of the wall. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:14
相关论文
共 39 条
  • [11] Contact angles and interface behavior during rapid evaporation of liquid on a heated surface
    Kandlikar, SG
    Steinke, ME
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2002, 45 (18) : 3771 - 3780
  • [12] Kim J, 2019, INT SYMP ELECTR ELEC, P146, DOI [10.1109/ISEE2.2019.8921092, 10.1109/isee2.2019.8921092]
  • [13] Drops down the hill: Theoretical study of limiting contact angles and the hysteresis range on a tilted plate
    Krasovitski, B
    Marmur, A
    [J]. LANGMUIR, 2005, 21 (09) : 3881 - 3885
  • [14] Experimental investigation of spray impingement hydrodynamic on a hot surface at high flow rates using phase Doppler analysis and infrared thermography
    Labergue, A.
    Gradeck, M.
    Lemoine, F.
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 100 : 65 - 78
  • [15] Boiling from liquid drops impact on a heated wall
    Liang, Gangtao
    Shen, Shengqiang
    Guo, Yali
    Zhang, Jili
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 100 : 48 - 57
  • [16] Lindagren R., SAE Technical Paper 2004, DOI DOI 10.4271/2004-01-1951
  • [17] Mundo C, 1994, EXPT STUDIES DEPOSIT
  • [18] Ohnesorge W.v., 1936, Z ANGEW MATH MECH, V16, P355, DOI [10.1002/zamm.19360160611, DOI 10.1002/ZAMM.19360160611, DOI 10.26153/TSW/3391]
  • [19] Capillary effects during droplet impact on a solid surface
    PasandidehFard, M
    Qiao, YM
    Chandra, S
    Mostaghimi, J
    [J]. PHYSICS OF FLUIDS, 1996, 8 (03) : 650 - 659
  • [20] Potham S., 2017, SAE Technical Paper, DOI [DOI 10.4271/2017-01-0852, 10.4271/2017-01-0852]