Zinc Isotope Variability in Three Coal-Fired Power Plants: A Predictive Model for Determining Isotopic Fractionation during Combustion

质量无关分馏 分馏 同位素 同位素分馏 化学 平衡分馏 稳定同位素比值 环境化学 粉煤灰 燃烧 锌同位素 同位素分析 碳同位素 泥炭 煤燃烧产物 同位素特征 同位素地球化学 同位素比值质谱法 氮同位素 环境科学 放射化学 矿物学 生物量(生态学) 分数(化学) 质谱法
作者
Raquel Ochoa-González,Dominik Weiß
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:49 (20): 12560-12567 被引量:59
标识
DOI:10.1021/acs.est.5b02402
摘要

The zinc (Zn) isotope compositions of feed materials and combustion byproducts were investigated in three different coal-fired power plants, and the results were used to develop a generalized model that can account for Zn isotopic fractionation during coal combustion. The isotope signatures in the coal (δ(66)ZnIRMM) ranged between +0.73 and +1.18‰, values that fall well within those previously determined for peat (+0.6 ±2.0‰). We therefore propose that the speciation of Zn in peat determines the isotope fingerprint in coal. All of the bottom ashes collected in these power plants were isotopically depleted in the heavy isotopes relative to the coals, with δ(66)ZnIRMM values ranging between +0.26‰ and +0.64‰. This suggests that the heavy isotopes, possibly associated with the organic matter of the coal, may be preferentially released into the vapor phase. The fly ash in all of these power plants was, in contrast, enriched in the heavy isotopes relative to coal. The signatures in the fly ash can be accounted for using a simple unidirectional fractionation model with isotope fractionation factors (αsolid-vapor) ranging between 1.0003 and 1.0007, and we suggest that condensation is the controlling process. The model proposed allows, once the isotope composition of the feed coal is known, the constraining of the Zn signatures in the byproducts. This will now enable the integration of Zn isotopes as a quantitative tool for the source apportionment of this metal from coal combustion in the atmosphere.
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