High-resolution turbulent scalar field measurements in an optically accessible internal combustion engine

被引:0
作者
Ben Petersen
Jaal Ghandhi
机构
[1] Sandia National Laboratories,
[2] University of Wisconsin–Madison,undefined
来源
Experiments in Fluids | 2011年 / 51卷
关键词
Engine Speed; Internal Combustion Engine; Scalar Dissipation; Integral Length Scale; Scalar Dissipation Rate;
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学科分类号
摘要
High-resolution planar laser-induced fluorescence (PLIF) measurements were performed in an optically accessible internal combustion engine to investigate the evolution of the turbulent mixing process during the intake and compression strokes. The PLIF measurements were used to analyze the important turbulent length scales, scalar energy and dissipation spectra, and mean scalar gradients. The fluorescence images had sufficient spatial resolution and integrity to resolve all of the fine-scale features of the flow, allowing for direct determination of the Batchelor length scale. The integral and Taylor scales were also determined from two-point spatial correlations of the fluctuating scalar field using an appropriately defined mean scalar value. The general morphology of the scalar field and the measured integral, Taylor and Batchelor length scales were found to be largely independent of engine speed and intake pressure, but increased as the engine cycle progressed through the intake and compression strokes. The measured Batchelor scales ranged from 22 to 54 μm; the integral scales ranged from 1.8 to 3.5 mm; and the Taylor microscales ranged from 0.6 to 1.2 mm. The Taylor and integral scale values were comparable to values reported in the literature from in-cylinder velocity measurements. The mean scalar gradient, a measure of the fine-scale mixing rate, monotonically decreased as the engine cycle advanced. High-resolution measurements of this type are important in the development and validation of future engine combustion models used in computer simulations.
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页码:1695 / 1708
页数:13
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  • [1] Antonia R(2009)Analogy between velocity and scalar fields in a turbulent channel flow J Fluid Mech 628 241-268
  • [2] Abe H(1959)Small-scale variation of convected quantities like temperature in turbulent fluid. Part 1. General discussion and the case of small conductivity J Fluid Mech 5 113-133
  • [3] Kawamura F(1989)Turbulent diffusion flames Ann Rev Fluid Mech 21 101-135
  • [4] Batchelor G(1996)Experimental study of the fine-scale structure of conserved scalar mixing in turbulent shear flows. Part 1. Sc ≫ 1 J Fluid Mech 317 21-71
  • [5] Bilger R(1998)Experimental study of the fine-scale structure of conserved scalar mixing in turbulent shear flows. Part 2. Sc ~ 1 J Fluid Mech 364 1-29
  • [6] Buch K(2009)Spectroscopic characterization of the fluorobenzene/DEMA tracer system for laser-induced exciplex fluorescence for the quantitative study of evaporating fuel sprays Appl Phys B 97 909-918
  • [7] Dahm W(2008)High-resolution imaging of dissipative structures in a turbulent jet flame with laser Rayleigh scattering Exp Fluids 44 221-233
  • [8] Buch K(2006)Spatial resolution and noise considerations in determining scalar dissipation rate from passive scalar image data Exp Fluids 40 577-588
  • [9] Dahm W(2007)Imaging of dissipative structures in the near field of a turbulent non-premixed jet flame Proc Comb Inst 31 1515-1523
  • [10] Düwel I(2011)The effects of laser-sheet thickness on dissipation measurements in turbulent non-reacting jets and jet flames Meas Sci Technol 22 045403-85