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Thermodynamics Analysis of Refinery Sludge Gasification in Adiabatic Updraft Gasifier

机译:绝热上升气化炉精炼污泥气化的热力学分析。

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摘要

Limited information is available about the thermodynamic evaluation for biomass gasification process using updraft gasifier. Therefore, to minimize errors, the gasification of dry refinery sludge (DRS) is carried out in adiabatic system at atmospheric pressure under ambient air conditions. The objectives of this paper are to investigate the physical and chemical energy and exergy of product gas at different equivalent ratios (ER). It will also be used to determine whether the cold gas, exergy, and energy efficiencies of gases may be maximized by using secondary air injected to gasification zone under various ratios (0, 0.5, 1, and 1.5) at optimum ER of 0.195. From the results obtained, it is indicated that the chemical energy and exergy of producer gas are magnified by 5 and 10 times higher than their corresponding physical values, respectively. The cold gas, energy, and exergy efficiencies of DRS gasification are in the ranges of 22.9–55.5%, 43.7–72.4%, and 42.5–50.4%, respectively. Initially, all 3 efficiencies increase until they reach a maximum at the optimum ER of 0.195; thereafter, they decline with further increase in ER values. The injection of secondary air to gasification zone is also found to increase the cold gas, energy, and exergy efficiencies. A ratio of secondary air to primary air of 0.5 is found to be the optimum ratio for all 3 efficiencies to reach the maximum values.
机译:关于使用上浮式气化炉进行生物质气化过程的热力学评估的信息有限。因此,为了最大程度地减少误差,干法炼油厂污泥(DRS)的气化是在绝热系统中,在大气压下,环境空气条件下进行的。本文的目的是研究不同当量比(ER)下产品气的物理和化学能以及火用。它还将用于确定通过使用以各种比率(0、0.5、1和1.5),最佳ER为0.195注入气化区的二次空气,可以最大程度地提高气体的冷气,火用和能效。从获得的结果可以看出,生产气体的化学能和火用能分别比其相应的物理值高出5倍和10倍。 DRS气化的冷气效率,能源效率和火用效率分别在22.9-55.5%,43.7-72.4%和42.5-50.4%之间。最初,所有3个效率都会增加,直到在最佳ER为0.195时达到最大值为止。此后,它们随着ER值的进一步增加而下降。还发现将二次空气注入气化区可以增加冷气,能源和火用效率。发现二次空气与一次空气之比为0.5,这是所有三种效率均达到最大值的最佳比率。

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