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Technical Review on Thermochemical Conversion Based on Decoupling for Solid Carbonaceous Fuels

机译:基于固体碳质燃料去耦的热化学转化技术综述

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The thermochemical conversion process of solid fuels is explicitly shown as the processes of pyrolysis (including coking and carbonization), gasification, and combustion. These processes actually involve a similar complex reaction network The so-called "decoupling" refers to the optimization approach of process performance through controlling the interactions between or among the involved individual reactions. Our previous article in Energy & Fuels (2010, 24, 6223—6232) has analyzed how the approach of decoupling applies to the gasification technologies and justified the realized effects from decoupling. This successive report is devoted to understanding the applications of decoupling to the other types of thermochemical conversion technologies (mainly including pyrolysis and combustion) so as to generalize the "decoupling" methodology for innovations of thermochemical conversion technologies. After a reiteration of the principle and implementation approaches (isolating and staging) for decoupling, reanalysis of the process design principle and its consequent technical superiorities based on decoupling is performed for a few well-known or emerging novel conversion technologies developed in the world. The concrete technologies exemplified and their realized beneficial effects include the high-efficiency advanced coal coking processes with moisture control or gentle pyrolysis of feedstock in advance, coal pyrolysis in multiple countercurrent reactors for producing high-quality tar, gasification of caking coal in fluidized bed through adopting jetting preoxidation of coal, low-NO_x decoupling combustion of coal by developing the in-bed NO_x reduction capabilities of pyrolysis gas and char, and coal topping combustion for the coproduction of tar and heat. These highlights further justified that the decoupling would be a viable technical choice for achieving one or more of the technical advantages among polygeneration, high efficiency, high product quality, wide fuel adaptability, low pollutant emissions in thermochemical conversions of solid carbonaceous fuels.
机译:固体燃料的热化学转化过程明确地显示为热解(包括焦化和碳化),气化和燃烧过程。这些过程实际上涉及类似的复杂反应网络,所谓的“去耦”是指通过控制所涉及的个体反应之间的相互作用来过程性能的优化方法。我们之前的能源和燃料(2010,24,6223-6232)分析了去耦方法如何适用于气化技术,并证明了解耦的实现效果。这一连续报告致力于了解去耦对其他类型的热化学转换技术(主要包括热解和燃烧)的应用,以概括热化学转换技术的创新的“去耦”方法。在重新开始原理和实施方法(隔离和分期)后进行去耦,对过程设计原理的再分析及其基于去耦的后果技术优势对于世界上发展的一些众所周知的或新兴的新型转换技术进行了。具体实施的具体技术及其实现的有益效果包括预先使用水分控制或原料的水分控制或柔和热解的高效先进煤焦化过程,多次逆流反应器中的煤热解,用于生产高质量的焦油,通过流化床在流化床中的粘结煤气化采用煤的喷射预氧化,通过开发热解气和焦炭的床上NO_X降低能力,以及用于焦油和热量的煤气顶部燃烧。这些亮点进一步证明了解耦将是实现多元化,高效率,高产品质量,宽燃料适应性宽燃料适应性,较低的燃料燃料的高燃料适应性,低污染物排放中的一种或多种可行技术选择。

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