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首页> 外文期刊>Journal of Hazardous Materials >Formation of PCDD/F in municipal solid waste incinerators: laboratory and modeling studies
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Formation of PCDD/F in municipal solid waste incinerators: laboratory and modeling studies

机译:城市固体废物焚化炉中PCDD / F的形成:实验室和模型研究

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Recent laboratory results on the formation of polychlorinated dibenzo-p-dioxins and diben-zofurans (PCDD/F) are reviewed, with emphasis on heterogeneous, fly ash-mediated reactions. The well-studied de novo synthesis yields PCDD/PCDF ratios less than one, a value frequently found in municipal solid waste incinerators. Its apparent rate cannot, however, explain PCDD/F-formation in incinerators during flue gas residence times. Reactions of chlorophenols yield PCDD, either in the solid or gas phase, and are much faster, but generally lead to PCDD/PCDF 1 at comparable temperatures. PCDF-yields from chlorobenzenes are much lower under comparable conditions, but increase at higher temperatures. Different experimental combustion systems have proven that PCDD/F can form rapidly at rates comparable to apparent incinerator rates, i.e., formation during flue gas passage from the furnace through the air pollution control device. The properties of fly ash play an important role in determining rates and yields, but there is at present hardly a quantitative link between fly ash physical/chemical properties and chemical reactivity. Some success has been achieved in applying a modified four-step model of PCDD-formation to incinerator data. The concept of active and superactive sites on fly ash is introduced, it may be useful in future experimental designs. For future control approaches that are not add-on oriented a better understanding of the time/temperature history of fly ash formation and the intrinsic kinetics of precursor reactions is required.
机译:综述了近期关于多氯二苯并-对-二恶英和苯二唑-呋喃(PCDD / F)形成的实验室结果,重点是异质粉煤灰介导的反应。经过充分研究的从头合成技术可以使PCDD / PCDF比率小于1,这在城市固体废物焚化炉中经常发现。但是,其表观速率不能解释烟道气停留时间内焚化炉中PCDD / F的形成。氯酚的反应可在固相或气相中生成PCDD,且速度更快,但通常在相当的温度下会导致PCDD / PCDF 1。在可比的条件下,氯苯的PCDF收率要低得多,但在较高的温度下收率会提高。不同的实验燃烧系统已证明,PCDD / F可以以与表观焚化炉速率相当的速率快速形成,即烟道气从炉中通过空气污染控制装置时形成。粉煤灰的性质在确定速率和产率中起重要作用,但是目前在粉煤灰的物理/化学性质和化学反应性之间几乎没有定量联系。将改进的PCDD形成的四步模型应用于焚烧炉数据已经取得了一些成功。介绍了粉煤灰中活性和超活性部位的概念,这可能对将来的实验设计有用。对于未来的非附加控制方法,需要对粉煤灰形成的时间/温度历史以及前体反应的内在动力学有更好的了解。

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