基于不同排放清单的长三角人为CO_(2)排放模拟  被引量:5

Simulation of Anthropogenic CO_(2) Emissions in the Yangtze River Delta Based on Different Emission Inventories

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作  者:马心怡 黄文晶 胡凝[1,2] 肖薇[1,2] 胡诚 张弥[1] 曹畅[1] 赵佳玉[1] MA Xin-yi;HUANG Wen-jing;HU Ning;XIAO Wei;HU Cheng;ZHANG Mi;CAO Chang;ZHAO Jia-yu(Center on Atmospheric Environment,International Joint Laboratory on Climate and Environment Change,Nanjing University of Information Science&Technology,Nanjing 210044,China;Jiangsu Key Laboratory of Agricultural Meteorology,Nanjing University of Information Science&Technology,Nanjing 210044,China;College of Biology and the Environment,Nanjing Forestry University,Nanjing 210018,China)

机构地区:[1]南京信息工程大学气候与环境变化国际合作联合实验室大气环境中心,南京210044 [2]南京信息工程大学江苏省农业气象重点实验室,南京210044 [3]南京林业大学生物与环境学院,南京210018

出  处:《环境科学》2023年第4期2009-2021,共13页Environmental Science

基  金:国家重点研发计划项目(2020YFA0607501);江苏省杰出青年基金项目(BK20220055);江苏省自然科学基金项目(BK20180796)。

摘  要:目前基于排放清单估算的区域和城市尺度上的人为CO_(2)排放不确定性较大.为了我国实现碳达峰和碳中和的目标,亟需对我国的区域尺度,特别是大城市群的人为CO_(2)排放进行准确估算.分别利用两种先验人为CO_(2)排放数据(EDGAR v6.0清单和EDGAR v6.0联合GCG v1.0的改进清单)作为输入数据,采用WRF-STILT大气传输模型模拟长三角地区2017年12月至2018年2月大气CO_(2)摩尔分数,再以安徽全椒高塔观测的大气CO_(2)摩尔分数作为参考值,通过贝叶斯反演方法得到的比例因子改进了模拟结果,并实现了长三角人为CO_(2)排放通量的估算.结果表明:(1)在冬季,相对于基于EDGAR v6.0模拟的大气CO_(2)摩尔分数值而言,基于改进清单模拟的大气CO_(2)摩尔分数与观测值更为一致;(2)模拟的大气CO_(2)摩尔分数在夜间高于观测值,白天则相反,主要因为排放清单的CO_(2)排放数据不能表征人为排放的日变化特征,以及夜间大气边界层高度偏低导致模拟高估了观测站点附近排放高度较高点源的贡献;(3)EDGAR中对观测站点浓度贡献较大网格点的排放误差将会很大程度上影响浓度模拟效果,表明EDGAR在排放的空间分配上的不确定性是影响模型模拟能力的主要原因;(4)基于EDGAR和改进清单估算的2017年12月至2018年2月长三角后验人为CO_(2)排放通量约为(0.184±0.006)mg·(m^(2)·s)^(-1)和(0.183±0.007)mg·(m^(2)·s)^(-1).研究认为应选择时间与空间分辨率更高、排放分配更准确的清单作为先验排放数据,才能对区域的人为CO_(2)排放有更准确的估算.Nowadays,great uncertainty still exists on the urban-and regional-scale anthropogenic CO_(2) emission estimation based on emission inventories.In order to achieve the carbon peaking and neutrality targets for China,it is urgent to accurately estimate anthropogenic CO_(2) emissions at regional scales,especially in large urban agglomerations.Using two inventories(EDGAR v6.0 inventory and a modified inventory combining EDGAR v6.0 with GCG v1.0)as prior anthropogenic CO_(2) emission datasets andtaking themas input data respectively,this study utilized the WRF-STILT atmospheric transport model to simulate atmospheric CO_(2) concentration in the Yangtze River Delta region from December 2017 to February 2018.The simulated atmospheric CO_(2) concentrations were further improved by referencing atmospheric CO_(2) concentration observation at a tall tower in Quanjiao County of Anhui Province and using the scaling factors obtained from the Bayesian inversion method.An estimation of anthropogenic CO_(2) emission flux in the Yangtze River Delta regionwas finally accomplished.The results indicated that:①in winter,in comparison to the atmospheric CO_(2) concentration simulated based on EDGAR v6.0,the atmospheric CO_(2) concentration simulated based on the modified inventory was more consistent with observed values.②The simulated atmospheric CO_(2) concentration was higher than observation at night and lower than observation during the daytime.The CO_(2) emission data of emission inventories could not fully reflect the diurnal variation in anthropogenic emissions,andtheoverestimation,caused by the simulated low-atmospheric boundary layer height at night,of the contribution from point sources with higher emission height near the observation station were the main reasons.③The simulation performance on atmospheric CO_(2) concentration was greatly affected by the emission bias of the EDGAR grid points that significantly contributed to concentrations of the observation station,and this indicated that the uncertainty in the spati

关 键 词:人为CO_(2)排放 排放清单 WRF-STILT模型 大气CO_(2)摩尔分数 长三角地区 

分 类 号:X16[环境科学与工程—环境科学]

 

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