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A DISCUSSION OF THE TEMPERATURE MAXIMUM FOR SULFUR CAPTURE EFFICIENCY IN FLUIDIZED BED COMBUSTION SYSTEMS

机译:流化床燃烧系统中硫捕获效率的温度最大值探讨

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For over 20 years, it has been known that there is a sulfur capture maximum around 850°C for limestone sorbents in FBC systems, albeit that this maximum appears to depend both on the characteristics of the FBC unit and the sorbent itself. Numerous explanations have been given for the temperature maximum at higher temperatures, including reducing reaction of CaSO_4 with CO, sintering of sorbent particles which results in lower porosity and surface area. Other explanations include equilibrium between SO_2 and SO_3 with higher temperatures reducing the availability of SO_3 for reaction with CaO, blocked sorbent pores at higher temperatures, and depletion of oxygen in the dense phase of the bed at higher temperatures. The most plausible explanation is that the temperature maximum results from a competition between sulfation and reduction of the sorbent, with reduction becoming more important at higher temperatures. Clear elucidation of the factors that affect the temperature dependence and an explicit relationship for the temperature maximum ought to permit improvements in sulfur capture efficiency to be achieved. Currently, no explicit relation appears to exist, and hence we provide an analysis for the temperature maximum based on the competition between sulfation and reduction, and derive an expression for the sulfur capture efficiency as a function of gas composition, sorbent residence time and apparent reaction rate coefficients, all of which are dependent on temperature. The expression relates operation conditions and sorbent activity to the temperature maximum, and may serve as a stepping-stone for future studies in this area.
机译:超过20年,已知在FBC系统中的石灰石吸附剂存在硫捕获大约850℃,尽管该最大值似乎取决于FBC单元和吸附剂本身的特性。在较高温度下的温度最大值提供了许多解释,包括降低CasO_4与CO的反应,吸附剂颗粒的烧结,这导致较低的孔隙率和表面积。其他解释包括SO_2和SO_3之间的平衡,其温度较高,降低了与CaO的含量的可用性,在较高温度下阻塞的吸附剂孔,并且在较高温度下在床的致密集相中耗尽氧气。最合理的解释是,温度的最大值来自硫化和吸附剂的减少之间的竞争,随着在较高温度下变得更加重要。清除影响温度最大值和明确关系的因素应该允许改进硫捕获效率。目前,没有显式关系似乎存在,因此我们基于硫化和减少之间的竞争提供了对温度最大值的分析,并导致硫捕获效率的表达作为气体成分,吸附剂停留时间和表观反应的函数速率系数,所有这些都依赖于温度。该表达将运算条件和吸附剂活性涉及温度最大值,并且可以作为该区域未来研究的踩踏石。

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