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Particulate-Matter Emission Estimates from Agricultural Spring-Tillage Operations Using LIDAR and Inverse Modeling

机译:使用LIDAR和逆模型的农业春季耕作操作中的颗粒物排放估算

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摘要

Particulate-matter (PM) emissions from a typical spring agricultural tillage sequence and a strip–till conservation tillage sequence in California’s San Joaquin Valley were estimated to calculate the emissions control efficiency (η) of the strip–till conservation management practice (CMP). Filter-based PM samplers, PM-calibrated optical particle counters (OPCs), and a PM-calibrated light detection and ranging (LIDAR) system were used to monitored upwind and downwind PM concentrations during May and June 2008. Emission rates were estimated through inverse modeling coupled with the filter and OPC measurements and through applying a mass balance to the PM concentrations derived from LIDAR data. Sampling irregularities and errors prevented the estimation of emissions from 42% of the sample periods based on filter samples. OPC and LIDAR datasets were sufficiently complete to estimate emissions and the strip–till CMP η, which were ∼90% for all size fractions in both datasets. Tillage time was also reduced by 84%. Calculated emissions for some operations were within the range of values found in published studies, while other estimates were significantly higher than literature values. The results demonstrate that both PM emissions and tillage time may be reduced by an order of magnitude through the use of a strip–till conservation tillage CMP when compared to spring tillage activities.
机译:估算了加利福尼亚圣华金河谷典型春季农业耕作序列和剥离耕作保护性耕作序列中的颗粒物(PM)排放量,以计算剥离耕作保护性管理实践(CMP)的排放控制效率(η)。基于过滤器的PM采样器,PM校准的光学粒子计数器(OPC)和PM校准的光检测与测距(LIDAR)系统用于监测2008年5月和6月的迎风和顺风PM浓度。排放量通过逆估算建模,过滤器和OPC测量,以及对LIDAR数据得出的PM浓度进行质量平衡。采样不规则和错误阻止了基于过滤器采样的42%采样周期内的排放估算。 OPC和LIDAR数据集足够完整,可以估算出排放量和剥离耕种CMPη,这两个数据集中所有大小分数的均约为90%。耕作时间也减少了84%。某些作业的计算排放量在已发表研究的值范围内,而其他估算值则明显高于文献值。结果表明,与春季耕作活动相比,通过使用剥离耕作保护耕作CMP可以将PM排放量和耕作时间减少一个数量级。

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