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首页> 外文期刊>Journal of thermal analysis and calorimetry >Apricot kernel shells pyrolysis controlled by non-isothermal simultaneous thermal analysis (STA)
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Apricot kernel shells pyrolysis controlled by non-isothermal simultaneous thermal analysis (STA)

机译:杏仁壳热解通过非等温同时热分析(STA)控制

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摘要

In order to clarify relationship between apricot kernel shell biomass slow pyrolysis mechanism and its main constituents (viz. hemicelluloses, cellulose and lignin), the reactivity effects of main constituents on pyrolysis characteristics were determined by the non-isothermal simultaneous thermal analysis. It was found that four-step (parallel) reaction model is suitable for studying the slow pyrolysis process, within the semi-global model which excludes the strong interaction between biomass constituents (pseudo-components). The application of the proposed model was allowed by the results obtained from KAS iterative isoconversional (model-free) approach. The valorization of the model was confirmed by the process optimization. The complex (cumulative) apricot kernel shell pyrolysis rate curves at different heating rates are successfully resolved into the individual decomposition rate curves (arising from thermal conversion of hemicelluloses, cellulose, and primary/secondary lignin fragments) by four-parameter Fraser-Suzuki function. Besides hemicelluloses and cellulose pyrolyses, the proposed model distinguishes primary and secondary lignin reactions, which enhance the gaseous products releasing (primarily CO and CO(2)gases) and charification of the solid residue (increased the bio-char yield).
机译:为了澄清杏仁壳生物质缓慢热解机理及其主要成分(纤维素,纤维素和木质素)之间的关系,通过非等温同时热分析测定主要成分对热解特性的反应性效应。发现四步(并行)反应模型适用于在半全局模型内研究缓慢热解过程,该模型排除生物质成分(伪组分)之间的强相互作用。通过从KAS迭代异组(无模型)方法获得的结果允许拟议模型的应用。通过过程优化确认了模型的算命。通过四参数Fraser-Suzuki功能成功地将不同加热速率的复合物(累积)杏壳热解率曲线成功地分解成各个分解速率曲线(由半纤维素,纤维素和初级/次生木质素片段的热转化产生)。除了半纤维素和纤维素纤维素之外,所提出的模型还区分了初级和次生木质素反应,其增强了释放的气态产物(主要是CO和CO(2)气体)和固体残余物的氧化(增加生物炭产率)。

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