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首页> 外文期刊>Atmospheric chemistry and physics >Separation of biospheric and fossil fuel fluxes of CO2 by atmospheric inversion of CO2 and (CO2)-C-14 measurements: Observation System Simulations
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Separation of biospheric and fossil fuel fluxes of CO2 by atmospheric inversion of CO2 and (CO2)-C-14 measurements: Observation System Simulations

机译:通过大气CO2反演和(CO2)-C-14测量分离生物圈和化石燃料通量的CO2:观测系统模拟

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摘要

National annual total CO2 emissions from combustion of fossil fuels are likely known to within 5-10aEuro-% for most developed countries. However, uncertainties are inevitably larger (by unknown amounts) for emission estimates at regional and monthly scales, or for developing countries. Given recent international efforts to establish emission reduction targets, independent determination and verification of regional and national scale fossil fuel CO2 emissions are likely to become increasingly important. Here, we take advantage of the fact that precise measurements of C-14 in CO2 provide a largely unbiased tracer for recently added fossil-fuel-derived CO2 in the atmosphere and present an atmospheric inversion technique to jointly assimilate observations of CO2 and (CO2)-C-14 in order to simultaneously estimate fossil fuel emissions and biospheric exchange fluxes of CO2. Using this method in a set of Observation System Simulation Experiments (OSSEs), we show that given the coverage of (CO2)-C-14 measurements available in 2010 (969 over North America, 1063 globally), we can recover the US national total fossil fuel emission to better than 1aEuro-% for the year and to within 5aEuro-% for most months. Increasing the number of (CO2)-C-14 observations to similar to 5000 per year over North America, as recently recommended by the National Academy of Science (NAS) (Pacala et al., 2010), we recover monthly emissions to within 5aEuro-% for all months for the US as a whole and also for smaller, highly emissive regions over which the specified data coverage is relatively dense, such as for the New England states or the NY-NJ-PA tri-state area. This result suggests that, given continued improvement in state-of-the art transport models, a measurement program similar in scale to that recommended by the NAS can provide for independent verification of bottom-up inventories of fossil fuel CO2 at the regional and national scale. In addition, we show that the dual tracer inversion framework can detect and minimize biases in estimates of the biospheric flux that would otherwise arise in a traditional CO2-only inversion when prescribing fixed but inaccurate fossil fuel fluxes.
机译:对于大多数发达国家来说,化石燃料燃烧产生的全国年度二氧化碳总排放量可能在5-10aEuro%之内。但是,区域和月度规模的排放估算或发展中国家的不确定性不可避免地更大(不确定数量)。考虑到最近国际上为确定减排目标所做的努力,对地区和国家规模的化石燃料CO2排放量进行独立确定和验证可能变得越来越重要。在这里,我们利用了以下事实:对二氧化碳中C-14的精确测量为大气中最近添加的化石燃料衍生的二氧化碳提供了一种基本无偏的示踪剂,并提出了一种大气反演技术来共同吸收二氧化碳和(CO2)的观测值-C-14,以便同时估算化石燃料的排放量和生物圈的二氧化碳交换通量。使用此方法在一组观测系统模拟实验(OSSE)中,我们显示,鉴于2010年可用的(CO2)-C-14测量值的覆盖范围(北美为969,全球为1063),我们可以恢复美国的总排放量全年的化石燃料排放量要高于1aEuro%,大多数月份要低于5aEuro%。根据美国国家科学院(NAS)最近的建议(Pacala et al。,2010),北美地区(CO2)-C-14观测值的数量每年增加到类似于每年5000个,我们将每月排放量恢复到5aEuro以内-%表示整个美国以及指定数据覆盖范围相对密集的较小的高发射区域的所有月份的百分比,例如新英格兰州或NY-NJ-PA三州区域。该结果表明,随着最先进的运输模型的不断改进,与NAS建议的规模类似的测量程序可以在区域和国家范围内独立验证自下而上的化石燃料CO2清单。 。此外,我们表明,双重示踪剂反演框架可以在规定固定但不准确的化石燃料通量时,检测和最小化生物圈通量估计值中的偏差,否则这些偏差会在传统的仅CO2反演中出现。

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