Investigation of the 3-D actinic flux field in mountainous terrain

被引:7
|
作者
Wagner, J. E. [1 ]
Angelini, F. [2 ]
Blumthaler, M. [3 ]
Fitzka, M. [1 ]
Gobbi, G. P. [2 ]
Kift, R. [4 ]
Kreuter, A. [3 ]
Rieder, H. E. [5 ]
Simic, S. [1 ]
Webb, A. [4 ]
Weihs, P. [1 ]
机构
[1] Univ Nat Resources & Life Sci, Inst Meteorol, A-1190 Vienna, Austria
[2] Inst Atmospher Sci & Climate, Rome, Italy
[3] Innsbruck Med Univ, Div Biomed Phys, Innsbruck, Austria
[4] Univ Manchester, Sch Earth Atmospher & Environm Sci, Manchester, Lancs, England
[5] ETH, Inst Atmospher & Climate Sci, Zurich, Switzerland
关键词
Actinic flux; Radiative transfer; Monte Carlo Model; UV radiation; Surface albedo; Spectroradiometry; Photolysis frequencies; INHOMOGENEOUS SURFACE ALBEDO; RADIATIVE-TRANSFER; UV-RADIATION; PHOTOLYSIS FREQUENCIES; LOWER TROPOSPHERE; ULTRAVIOLET; IRRADIANCE; OZONE; CLOUD; ATMOSPHERE;
D O I
10.1016/j.atmosres.2011.07.008
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
During three field campaigns spectral actinic flux was measured from 290-500 nm under clear sky conditions in Alpine terrain and the associated O3- and NO2-photolysis frequencies were calculated and the measurement products were then compared with 1-D- and 3-D-model calculations. To do this 3-D-radiative transfer model was adapted for actinic flux calculations in mountainous terrain and the maps of the actinic flux field at the surface, calculated with the 3-D-radiative transfer model, are given. The differences between the 3-D- and 1-D-model results for selected days during the campaigns are shown, together with the ratios of the modeled actinic flux values to the measurements. In many cases the 1-D-model overestimates actinic flux by more than the measurement uncertainty of 10%. The results of using a 3-D-model generally show significantly lower values, and can underestimate the actinic flux by up to 30%. This case study attempts to quantify the impact of snow cover in combination with topography on spectral actinic flux. The impact of snow cover on the actinic flux was similar to 25% in narrow snow covered valleys, but for snow free areas there were no significant changes due snow cover in the surrounding area and it is found that the effect snow-cover at distances over 5 km from the point of interest was below 5%. Overall the 3-D-model can calculate actinic flux to the same accuracy as the 1-D-model for single points, but gives a much more realistic view of the surface actinic flux field in mountains as topography and obstruction of the horizon are taken into account. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:300 / 310
页数:11
相关论文
共 50 条
  • [31] Wind tunnel investigation on wind characteristics of flat and mountainous terrain
    Li, Jiawu
    Wang, Jun
    Yang, Shucheng
    Wang, Feng
    Zhao, Guohui
    WIND AND STRUCTURES, 2022, 35 (04) : 229 - 242
  • [32] 3-D Analytical Model of Magnetic Field for Axial-Flux Permanent Magnet Couplings
    Liu, Ronghui
    Han, Hailong
    Zhang, Junda
    Sun, Gaiping
    Lin, Shunfu
    IEEE TRANSACTIONS ON MAGNETICS, 2024, 60 (10)
  • [33] 3-D Analytical Magnetic Field Analysis of Axial Flux Permanent-Magnet Machine
    Ping Jin
    Yue Yuan
    Jin Minyi
    Fang Shuhua
    Lin Heyun
    Hui Yang
    Ho, S. L.
    IEEE TRANSACTIONS ON MAGNETICS, 2014, 50 (11)
  • [34] Visualization of 3-D digital elevation model for landslide assessment and prediction in mountainous terrain: A case study of Chandmari landslide, Sikkim, eastern Himalayas
    Chandra Shekhar Dubey
    Manoj Chaudhry
    Braj Kishore Sharma
    Arvind Chandra Pandey
    Bhoop Singh
    Geosciences Journal, 2005, 9 : 363 - 373
  • [35] Taking a 3-D field trip
    Lubick, N
    GEOTIMES, 2005, 50 (10): : 44 - 45
  • [36] Scalar-Flux Similarity in the Layer Near the Surface Over Mountainous Terrain
    Eleni Sfyri
    Mathias W. Rotach
    Ivana Stiperski
    Fred C. Bosveld
    Manuela Lehner
    Friedrich Obleitner
    Boundary-Layer Meteorology, 2018, 169 : 11 - 46
  • [37] 3-D magnetohydrodynamics simulation of the solar emerging flux
    Nozawa, Satoshi
    NEW SOLAR PHYSICS WITH SOLAR-B MISSION, 2007, 369 : 371 - 375
  • [38] Visualization of 3-D field of explosion
    Sun, Juan
    Ning, Jian-Guo
    Journal of Beijing Institute of Technology (English Edition), 2002, 11 (04): : 397 - 400
  • [39] Scalar-Flux Similarity in the Layer Near the Surface Over Mountainous Terrain
    Sfyri, Eleni
    Rotach, Mathias W.
    Stiperski, Ivana
    Bosveld, Fred C.
    Lehner, Manuela
    Obleitner, Friedrich
    BOUNDARY-LAYER METEOROLOGY, 2018, 169 (01) : 11 - 46
  • [40] Study on downburst wind field characteristics under mountainous terrain
    Shi, Haitao
    Wu, Yuanze
    Yi, Sun
    Ji, Baifeng
    ADVANCES IN CIVIL AND INDUSTRIAL ENGINEERING IV, 2014, 580-583 : 2954 - 2957