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Arsenic Interactions During Co-combustion Processes Based On Thermodynamic Equilibrium Calculations

机译:基于热力学平衡计算的共燃过程中的砷相互作用

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Arsenic emissions are currently considered to be one of foremost importance. Arsenic volatility is higher than most of trace elements, but its vaporization behaviour is strongly dependent on the atmosphere composition. In this sense, thermodynamic equilibrium calculations, using HSC-Chemistry 5.0 software, were performed to evaluate the influence of different compounds in the distribution and mode of occurrence of arsenic in co-combustion processes. The influence of different parameters influencing arsenic behaviour, such as temperature, pressure, trace element concentration and flue gas composition on equilibrium composition were also evaluated. Predicting arsenic species, based on combustion conditions and fuel composition, will be useful to choose the best available control technology to reduce arsenic emissions. Finally, the possible interactions between arsenic and different trace elements (TE), mercury, cadmium and antimony, relevant from an environmental point of view, have also been studied; these interactions are not usually considered in thermodynamic studies; however, TE's interactions affects the behaviour of a single TE, not only as a result of the formation of new species, but also, because of the different reactivity of TEs towards different elements which may affect TE's volatilization behaviours. From results obtained in this study it may be concluded that in most cases, arsenic is mainly captured in ashes as a result of the formation of thermally stable species both from interactions with bulk ash and TE's interactions. Nevertheless, the presence of some compounds (silicon, chlorine and sulphur) may enhance arsenic volatilization.
机译:目前认为砷的排放是最重要的。砷的挥发性高于大多数微量元素,但其汽化行为在很大程度上取决于大气成分。从这个意义上讲,使用HSC-Chemistry 5.0软件进行了热力学平衡计算,以评估不同化合物对共燃烧过程中砷的分布和发生方式的影响。还评估了影响砷行为的不同参数,例如温度,压力,微量元素浓度和烟气组成对平衡组成的影响。根据燃烧条件和燃料成分预测砷的种类,对于选择最佳的控制技术以减少砷的排放非常有用。最后,还从环境的角度研究了砷与不同微量元素(TE),汞,镉和锑之间可能的相互作用;在热力学研究中通常不考虑这些相互作用。但是,TE的相互作用不仅会影响新TE的形成,而且还会影响TE的行为,这不仅是因为新物种的形成,而且还因为TE对不同元素的反应性不同,这可能会影响TE的挥发行为。从这项研究中获得的结果可以得出结论,在大多数情况下,由于与大量灰分的相互作用和TE的相互作用形成了热稳定物质,砷主要被捕集在灰烬中。但是,某些化合物(硅,氯和硫)的存在可能会增加砷的挥发。

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