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低温煤氧化过程中气体生成的定量计算。

Quantitative calculation of gases generation during low-temperature oxidation of coal.

机构信息

Key Laboratory of Safe and Effective Coal Mining, Anhui University of Science and Technology, Ministry of Education, Huainan, 232001, People's Republic of China.

College of Safety and Engineering, Anhui University of Science and Technology, Huainan, 232001, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2023 Nov;30(53):113774-113789. doi: 10.1007/s11356-023-30219-y. Epub 2023 Oct 18.

Abstract

The gases evolution during the low-temperature oxidation of coal is an essential parameter used to assess the state of coal oxidation and to estimate the gaseous pollutants. However, the current semi-quantitative method, which employs gas concentration as the measurement standard, is flawed. This paper presents a quantitative calculation method for gas products during coal oxidation. N is used as the tracer gas in the experiment, because nitrogen is an inert gas that will not participate in the reaction, and the amount of matter will not change in the reaction. According to the formula [Formula: see text], the corresponding mass flow rates of each gases component were calculated, and the gas yields during the reaction period were determined by comprehensive calculation. To this end, experiments were conducted on the low-temperature oxidation of coal using a flow reactor. After undergoing quantitative calculations, the main gas products' mass flow rates, yields, and energies, including CO, CO, CH, CH, CH, CH, and CH between 30 and 180 °C were obtained. The findings showed that CO > CO > CH was generated in all the coal samples. The amount of gases produced in the low-temperature oxidation of coal is proportional to the level of oxygen concentration. When the oxygen concentration ranges from 0 to 21%, the gaseous production of MTH coal ranges from 381.44 g/ton to 8562.80 g/ton. The results of gaseous energy calculations showed that the energy loss for low temperature oxidation of the four coal samples ranged from 4334.14~26,772.73 kJ/ton under air atmosphere. Energy loss is also significantly affected by the oxygen concentration, and the energy loss of MTH coal increases significantly from 520.52 kJ/ton at 0% oxygen concentration to 26,772.73 kJ/ton at 21% oxygen concentration, an increase of about 50 times. Significantly, this method not only reflects the real gas evolution during low-temperature oxidation of coal but also computes the gas emission and energy loss, which is crucial for studying the mechanism of coal spontaneous combustion and assessing gases pollutants.

摘要

煤低温氧化过程中气体的演化是评估煤氧化状态和估计气态污染物的重要参数。然而,当前使用气体浓度作为测量标准的半定量方法存在缺陷。本文提出了一种煤氧化过程中气体产物的定量计算方法。实验中使用 N 作为示踪气体,因为氮是一种惰性气体,不会参与反应,反应过程中物质的量不会发生变化。根据公式 [Formula: see text],计算了各气体组分的相应质量流率,并通过综合计算确定了反应期间的气体产率。为此,在流动反应器中进行了煤低温氧化实验。经过定量计算,得到了 30180°C 时 CO、CO、CH、CH、CH、CH 和 CH 等主要气体产物的质量流率、产率和能量。结果表明,所有煤样均生成 CO>CO>CH。煤低温氧化产生的气体量与氧浓度水平成正比。当氧浓度范围为 021%时,MTH 煤的气体产率范围为 381.44 g/吨8562.80 g/吨。气体能量计算结果表明,在空气气氛下,四种煤样的低温氧化能量损失范围为 4334.1426772.73 kJ/吨。能量损失也受到氧浓度的显著影响,MTH 煤的能量损失从 0%氧浓度时的 520.52 kJ/吨显著增加到 21%氧浓度时的 26772.73 kJ/吨,增加了约 50 倍。重要的是,该方法不仅反映了煤低温氧化过程中真实的气体演化,还计算了气体排放和能量损失,这对于研究煤自燃机制和评估气体污染物至关重要。

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