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A Flume Experiment on the Adjustment of the Mean and Turbulent Statistics to a Transition from Short to Tall Sparse Canopies

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Abstract

Water-flume experiments are conducted to study the structure of turbulent flow within and above a sparse model canopy consisting of two rigid canopies of different heights. This difference in height specifies a two-dimensional step change from a rough to a rougher surface, as opposed to a smooth-to-rough transition. Despite the fact that the flow is in transition from a rough to a rougher surface, the thickness of the internal boundary layer scales as x 4/5, consistent with smooth-to-rough boundary layer adjustment studies, where x is the downstream distance from the step change. However, the analogy with smooth-to-rough transitions no longer holds when the flow inside the canopy and near the canopy top is considered. Results show that the step change in surface roughness significantly increases turbulence intensities and shear stress. In particular, there is an adjustment of the mean horizontal velocity and shear stress as the flow passes over the rougher canopy, so that their vertical profiles adjust to give maximum values at the top of this canopy. We also observe that the magnitude and shape of the inflection in the mean horizontal velocity profile is significantly affected by the transition. The horizontal and vertical turbulence spectra compare well with Kolmogorov’s theory, although a small deviation at high frequencies is observed in the horizontal spectrum within the canopy. Here, for relatively low leaf area index, shear is found to be a more effective mechanism for momentum transfer through the canopy structure than vortex shedding.

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References

  • Antonia RA, Luxton RE (1971) The response of a turbulent boundary layer to a step change in surface roughness. Part I. Smooth to rough. J Fluid Mech 48: 721–761

    Article  Google Scholar 

  • Arya SPS (1988) Introduction to micrometeorology. Academic Press, New York, p 307

    Google Scholar 

  • Belcher SE, Xu DP, Hunt JCR (1990) The response of a turbulent boundary layer to arbitrarily distributed two-dimensional roughness changes. Quart J Roy Meteorol Soc 116: 611–635

    Article  Google Scholar 

  • Belcher SE, Jerram N, Hunt JCR (2003) Adjustment of a turbulent boundary layer to a canopy of roughness elements. J Fluid Mech 488: 369–398

    Article  Google Scholar 

  • Bergen JD (1975) Air movement in a forest clearing as indicated by smoke drift. Agric Meteorol 15: 165–179

    Article  Google Scholar 

  • Bradley EF (1968) A micrometeorological study of velocity profiles and surface drag in the region modified by a change in surface roughness. Quart J Roy Meteorol Soc 94: 361–379

    Article  Google Scholar 

  • Brunet Y, Finnigan JJ, Raupach MR (1994) A wind tunnel study of air flow in waving wheat: single-point velocity statistics. Boundary-Layer Meteorol 70: 95–132

    Article  Google Scholar 

  • Cassiani M, Katul GG, Albertson JD (2008) The effects of canopy leaf area index on airflow across forest edges: large-eddy simulations and analytical results. Boundary-Layer Meteorol 126: 433–460

    Article  Google Scholar 

  • Cava D, Katul GG (2008) Spectral short-circuiting and wake production within the canopy trunk space of an Alpine hardwood forest. Boundary-Layer Meteorol 126: 415–431

    Article  Google Scholar 

  • Counihan J (1969) An improved method of simulating an atmospheric boundary layer in a wind tunnel. Atmos Environ 3: 197–214

    Article  Google Scholar 

  • Dupont S, Brunet Y (2008) Impact of forest edge shape on tree stability: a large-eddy simulation study. Forestry. doi:10.1093/forestry/cpn006

  • Finnigan J (2000) Turbulence in plant canopies. Annu Rev Fluid Mech 32: 519–571

    Article  Google Scholar 

  • Finnigan J, Brunet Y (1995) Turbulent airflow in forests on flat and hilly terrain. In: Coutts MP, Grace J (eds) Wind and Trees. Cambridge University Press, Cambridge, pp 3–40

    Google Scholar 

  • Flesch TK, Wilson JD (1999) Wind and remnant tree sway in forest cutblocks. I. Measured winds in experimental cutblocks. Agric For Meteorol 93: 229–242

    Article  Google Scholar 

  • Folkard AM (2005) Hydrodynamics of model Posidonia oceanica patches in shallow water. Limnol Oceanogr 50: 1592–1600

    Google Scholar 

  • Garratt JR (1990) The internal boundary layer—a review. Boundary-Layer Meteorol 50: 171–203

    Article  Google Scholar 

  • Ghisalberti M, Nepf H (2006) The structure of the shear layer in flows over rigid and flexible canopies. Environ Fluid Mech 6: 277–301

    Article  Google Scholar 

  • Hsieh CI, Katul GG (1997) Dissipation methods, Taylor’s hypothesis, and stability correction functions in the atmospheric surface layer. J Geophys Res 102: 16391–16405

    Article  Google Scholar 

  • Irvine MR, Gardiner BA, Hill MK (1997) The evolution of turbulence across a forest edge. Boundary-Layer Meteorol 84: 467–496

    Article  Google Scholar 

  • Judd MJ, Raupach MR, Finnigan JJ (1996) A wind tunnel study of turbulent flow around single and multiple windbreaks. Part I: Velocity fields. Boundary-Layer Meteorol 80: 127–165

    Article  Google Scholar 

  • Kaimal JC, Finnigan JJ (1994) Atmospheric boundary layer flows: their structure and measurement. Oxford University Press, Oxford, p 289

    Google Scholar 

  • Morse AP, Gardiner BA, Marshall BJ (2002) Mechanisms controlling turbulence development across a forest edge. Boundary-Layer Meteorol 103: 227–251

    Article  Google Scholar 

  • Panofsky HA, Dutton JA (1984) Atmospheric Turbulence: Models and Methods for Engineering applications. Wiley, New York, p 397

    Google Scholar 

  • Peterson CH, Luettich RA Jr, Michell F, Skilleter GA (2004) Attenuation of water flow inside seagrass canopies of differing structure. Mar Ecol Prog Ser 268: 81–92

    Article  Google Scholar 

  • Poggi D, Katul GG (2006) Two-dimensional scalar spectra in the deeper layers of a dense and uniform model canopy. Boundary-Layer Meteorol 121: 267–281

    Article  Google Scholar 

  • Poggi D, Katul GG, Albertson JD (2004a) A note on the contribution of dispersive fluxes to momentum transfer within canopies. Boundary-Layer Meteorol 111: 615–621

    Article  Google Scholar 

  • Poggi D, Porporato A, Ridolfi L, Albertson JD, Katul GG (2004b) The effect of vegetation density on canopy sub-layer turbulence. Boundary-Layer Meteorol 111: 565–587

    Article  Google Scholar 

  • Poggi D, Katul GG, Albertson JD, Ridolfi L (2007) An experimental investigation of turbulent flows over a hilly surface. Phys Fluids 19, 036601: 1–12

    Google Scholar 

  • Py C, de Langre E, Moulia B (2006) A frequency lock-in mechanism in the interaction between wind and crop canopies. J Fluid Mech 568: 425–449

    Article  Google Scholar 

  • Rao KS, Wyngaard JC, Cote OR (1974) The structure of two-dimensional internal boundary layer over a sudden change of surface roughness. J Atmos Sci 31: 738–746

    Article  Google Scholar 

  • Raupach MR, Thom AS (1981) Turbulence in and above plant canopies. Annu Rev Fluid Mech 13: 97–129

    Article  Google Scholar 

  • Raupach MR, Bradley EF, Ghadiri H (1987a) A wind tunnel investigation into the aerodynamic effects of forest clearings on the nesting of Abbot’s Booby on Christmas Island. Internal Report to Australian National Parks and Wildlife Service, CSIRO Division of Environmental Mechanics

  • Raupach MR, Thom AS, Edwards I (1987b) A wind tunnel study of turbulent flow close to regularly arrayed rough surfaces. Boundary-Layer Meteorol 18: 373–397

    Article  Google Scholar 

  • Raupach MR, Finnigan JJ, Brunet Y (1996) Coherent eddies and turbulence in vegetation canopies: the mixing layer analogy. Boundary-Layer Meteorol 78: 351–382

    Article  Google Scholar 

  • Shaw RH, den Hartog G, King KM, Thurtell GW (1974a) Measurements of mean wind flow and three-dimensional turbulence within a mature corn crop. Agric Meteorol 13: 419–425

    Article  Google Scholar 

  • Shaw RH, Silversides RH, Thurtell GW (1974b) Some observations of turbulence and turbulent transport within and above plant canopies. Boundary-Layer Meteorol 5: 429–449

    Article  Google Scholar 

  • Shaw RH, Schumann U (1992) Large-eddy simulation of turbulent flow above and within a forest. Boundary-Layer Meteorol 61: 47–64

    Article  Google Scholar 

  • Yang B, Morse A, Shaw RH, Paw U KT (2006a) Large-eddy simulation of turbulent flow across a forest edge. Part II: Momentum and turbulent kinetic energy budget. Boundary-Layer Meteorol 121: 433–457

    Article  Google Scholar 

  • Yang B, Raupach MR, Shaw RH, Paw U KT, Morse A (2006b) Large-eddy simulation of turbulent flow across a forest edge. Part I: flow statistics. Boundary-Layer Meteorol 120: 377–412

    Article  Google Scholar 

  • Zhu W, van Hout R, Luznik L, Kang HS, Katz J, Meneveau C (2006) A comparison of PIV measurements of canopy turbulence performed in the field and in a wind tunnel model. Exp Fluids 41: 309–318

    Article  Google Scholar 

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Correspondence to Philippe Guyenne.

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Seraphin, A., Guyenne, P. A Flume Experiment on the Adjustment of the Mean and Turbulent Statistics to a Transition from Short to Tall Sparse Canopies. Boundary-Layer Meteorol 129, 47–64 (2008). https://doi.org/10.1007/s10546-008-9309-7

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  • DOI: https://doi.org/10.1007/s10546-008-9309-7

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