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A land use regression for predicting NO2 and PM10 concentrations in different seasons in Tianjin region,China
Authors:Li Chen  Zhipeng Bai  Shaofei Kong  Bin Han  Yan You  Xiao Ding  Shiyong Du  Aixia Liu
Institution:1. College of Environmental Science and Engineering,Nankai University,Tianjin 300071,China;State Environmental Protection Key Laboratory of Urban Ambient Air Particulate Matter Pollution and Control,Tianjin 300071,China;College of Urban and Environmental Science,Tianjin Normal University,Tianjin 300387,China
2. College of Environmental Science and Engineering,Nankai University,Tianjin 300071,China;State Environmental Protection Key Laboratory of Urban Ambient Air Particulate Matter Pollution and Control,Tianjin 300071,China
3. Jinan Institute of Environmental Sciences,Jinan 250014,China
4. Tianjin Institute of Meteorological Science,Tianjin 300074,China
Abstract:Land use regression(LUR)model was employed to predict the spatial concentration distribution of NO2 and PM10 in the Tianjin region based on the environmental air quality monitoring data.Four multiple linear regression(MLR)equations were established based on the most significant variables for NO2 in heating season(R2=0.74),and non-heating season(R2=0.61)in the whole study area;and PM10 in heating season(R2=0.72),and non-heating season(R2=0.49).Maps of spatial concentration distribution for NO2 and PM10 were obtained based on the MLR equations(resolution is 10 km).Intercepts of MLR equations were 0.050(NO2,heating season),0.035(NO2,non-heating season),0.068(PM10,heating season),and 0.092(PM10,non-heating season)in the whole study area.In the central area of Tianjin region,the intercepts were 0.042(NO2,heating season),0.043(NO2,non-heating season),0.087(PM10,heating season),and 0.096(PM10,non-heating season).These intercept values might imply an area's background concentrations.Predicted result derived from LUR model in the central area was better than that in the whole study area.R2 values increased 0.09(heating season)and 0.18(non-heating season)for NO2,and 0.08(heating season)and 0.04(non-heating season)for PM10.In terms of R2,LUR model performed more effectively in heating season than non-heating season in the study area and gave a better result for NO2 compared with PM10.
Keywords:land use regression  air pollution  Tianjin  background concentration  geographic information system
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