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Properties and Developments of Combustion and Gasification of Coal and Char in a CO2-Rich and Recycled Flue Gases Atmosphere by Rapid Heating

机译:快速加热的富CO2和循环烟气气氛中煤和焦炭的燃烧和气化特性及发展

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Combustion and gasification properties of pulverized coal and char have been investigated experimentally under the conditions of high temperature gradient of order 200°C·s−1by a CO2gas laser beam and CO2-rich atmospheres with 5% and 10% O2. The laser heating makes a more ideal experimental condition compared with previous studies with a TG-DTA, because it is able to minimize effects of coal oxidation and combustion by rapid heating process like radiative heat transfer condition. The experimental results indicated that coal weight reduction ratio to gases followed the Arrhenius equation with increasing coal temperature; further which were increased around 5% with adding H2O in CO2-rich atmosphere. In addition, coal-water mixtures with different water/coal mass ratio were used in order to investigate roles of water vapor in the process of coal gasification and combustion. Furthermore, char-water mixtures with different water/char mass ratio were also measured in order to discuss the generation ratio of CO/CO2, and specified that the source of Hydrocarbons is volatile matter from coal. Moreover, it was confirmed that generations of CO and Hydrocarbons gases are mainly dependent on coal temperature and O2concentration, and they are stimulated at temperature over 1000°C in the CO2-rich atmosphere.
机译:在200℃·s-1的高温梯度条件下,通过CO2气体激光束和富含5%和10%O2的富含CO2的气氛,对粉煤和焦炭的燃烧和气化特性进行了实验研究。与以前的TG-DTA研究相比,激光加热使实验条件更为理想,因为它能够通过辐射加热条件之类的快速加热过程使煤的氧化和燃烧影响最小化。实验结果表明,随着煤温的升高,煤与煤的重量减少比符合Arrhenius方程。在富含CO2的气氛中,通过添加H2O将其增加约5%。另外,为了研究水蒸气在煤气化和燃烧过程中的作用,使用了具有不同水/煤质量比的煤-水混合物。此外,还测量了水/炭质量比不同的炭水混合物,以讨论CO / CO2的生成比例,并指出烃的来源是煤中的挥发性物质。此外,已经证实,CO和碳氢化合物气体的产生主要取决于煤的温度和O 2浓度,并且它们在富含CO 2的气氛中在超过1000℃的温度下被激发。

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