Prediction of the vertical profile of ozone based on ground-level ozone observations and cloud cover

被引:1
|
作者
Kim, GD [1 ]
Davis, WT [1 ]
Miller, TL [1 ]
机构
[1] Univ Tennessee, Dept Civil & Environm Engn, Knoxville, TN 37996 USA
关键词
D O I
10.1080/10473289.2004.10470914
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A number of statistical techniques have been used to develop models to predict high-elevation ozone (O-3) concentrations for each discrete hour of day as a function of elevation based on ground-level O-3 observations. The analyses evaluated the effect of exclusion/inclusion of cloud cover as a variable. It was found that a simple model, using the current maximum ground-level O-3 concentration and no effect of cloud cover provided a reasonable prediction of the vertical profile of O-3 based on data analyzed from O-3 sites located in North Carolina and Tennessee. The simple model provided an approach that estimates the concentration of O-3 as a function of elevation (up to 1800 in) based on the statistical results with a +/- 13.5 ppb prediction error, an R-2 of 0.56, and an index of agreement, d(1), of 0.66. The inclusion of cloud cover resulted in a slight improvement in the model over the simple regression model. The developed models, which consist of two matrices of 24 equations (one for each hour of day for clear to partly cloudy conditions and one for cloudy conditions), can be used to estimate the vertical O-3 profile based on the inputs of the current day's 1-hr maximum ground-level O-3. concentration and the level of cloud cover.
引用
收藏
页码:483 / 494
页数:12
相关论文
共 50 条
  • [41] Ground-level ozone over time: An observation-based global overview
    Sicard, Pierre
    CURRENT OPINION IN ENVIRONMENTAL SCIENCE & HEALTH, 2021, 19
  • [42] A WSN for Ground-level Ozone Monitoring based on Plant Electrical Activity Analysis
    Morosi, S.
    Dolfi, M.
    Del Re, E.
    Masi, E.
    Colzi, I.
    Mancuso, S.
    Francini, F.
    Magliacani, R.
    Valgimigli, A.
    Masini, L.
    2015 INTERNATIONAL WIRELESS COMMUNICATIONS & MOBILE COMPUTING CONFERENCE (IWCMC), 2015, : 715 - 720
  • [43] Observations of Ground-level Ozone and NO2 in Northernmost Sweden, Including the Scandian Mountain Range
    Klingberg, Jenny
    Bjoekman, Mats P.
    Karlsson, Gunilla Pihl
    Pleijel, Hakan
    AMBIO, 2009, 38 (08) : 448 - 451
  • [44] Measurement report: Observations of ground-level ozone concentration gradients perpendicular to the Lake Ontario shoreline
    Huang, Yao Yan
    Donaldson, D. James
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2024, 24 (04) : 2387 - 2398
  • [45] Effects of ship emissions on European ground-level ozone in 2020
    Jonson, Jan Eiof
    Tarrason, Leonor
    Klein, Heiko
    Vestreng, Vigdis
    Cofala, Januz
    Whall, Chris
    INTERNATIONAL JOURNAL OF REMOTE SENSING, 2009, 30 (15-16) : 4099 - 4110
  • [46] Cars and ground-level ozone: how do fuels compare?
    Eric Johnson
    European Transport Research Review, 2017, 9
  • [47] A rigorous inter-comparison of ground-level ozone predictions
    Schlink, U
    Dorling, S
    Pelikan, E
    Nunnari, G
    Cawley, G
    Junninen, H
    Greig, A
    Foxall, R
    Eben, K
    Chatterton, T
    Vondracek, J
    Richter, M
    Dostal, M
    Bertucco, L
    Kolehmainen, M
    Doyle, M
    ATMOSPHERIC ENVIRONMENT, 2003, 37 (23) : 3237 - 3253
  • [48] GROUND-LEVEL OZONE AND REGIONAL TRANSPORT OF AIR-POLLUTANTS
    CHUNG, YS
    JOURNAL OF APPLIED METEOROLOGY, 1977, 16 (11): : 1127 - 1136
  • [49] Ground-Level Ozone-A Risk for Crops and Food Security?
    Weigel, Hans-Joachim
    Bender, Juergen
    GESUNDE PFLANZEN, 2012, 64 (02): : 79 - 87
  • [50] Precursor reductions and ground-level ozone in the Continental United States
    Hidy, George M.
    Blanchard, Charles L.
    JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2015, 65 (10) : 1261 - 1282