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Characteristic Analysis and Risk Control of Syngas Explosion during Underground Coal Gasification

机译:地下煤气化过程中合成气爆炸特性分析与风险控制

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摘要

Gas explosion is one of the main accident risks during underground coal gasification (UCG). There are significant differences in the gas composition and explosive environment between UCG syngas and other gases. Previous research on the explosion characteristics of UCG syngas is not comprehensive enough, especially without considering the influence of the initial temperature on various characteristic parameters. A set of calculation methods for explosion characteristic parameters of UCG syngas based on existing research was proposed, which was applied to analyze explosion characteristics of syngas produced by different gasifying processes in the Huating UCG industrial test. The results showed that with the initial temperature improving, the maximum temperature and upper explosion limit of different gases increased, while the maximum pressure, lower explosion limit, and oxygen content safety limit decreased. However, the explosion thermal effect, pressure rise rate, and explosion characteristic values showed small changes. When the initial temperature increased from 298 to 1473 K, the explosion temperature of different gas explosions increased from 1645–2286 to 2652–3238 K, the maximum pressure dropped from 0.59–0.81 MPa (absolute pressure) to 0.19–0.23 MPa, the lower explosion limit dropped from 12.34–29.79% to 0.58–1.77%, the upper explosion limit increased from 55.68–83.35% to 70.89–93.73%, and the safety limit of oxygen content dropped from 4.86–6.37% to 0.26–0.34%. In addition, the gas calorific value also affected the values of various explosion characteristic parameters, among which the explosive thermal effect, maximum temperature, maximum pressure, pressure rise rate, explosion characteristic value, and safety limit of oxygen content in the syngas were all proportional to the calorific value of gas, while the lower and upper limits of explosion were inversely proportional to it. Based on the above research, syngas explosion-prone stages and causes of each potential risk area in the Huating UCG project were analyzed, the explosion characteristic parameters were determined, and targeted prevention and control measures were proposed accordingly. This study can lay a theoretical foundation for the study of syngas explosion characteristics and risk control for the UCG project.
机译:瓦斯爆炸是地下煤气化 (UCG) 过程中的主要事故风险之一。UCG 合成气与其他气体在气体成分和爆炸性环境方面存在显著差异。以往对 UCG 合成气爆炸特性的研究不够全面,特别是没有考虑初始温度对各种特性参数的影响。在现有研究的基础上,提出了一套UCG合成气爆炸特性参数的计算方法,应用于华定UCG工业试验中不同气化工艺产生的合成气爆炸特性分析。结果表明:随着初始温度的升高,不同气体的最高温度和爆炸上限增加,而最大压力、爆炸下限和氧含量安全极限降低。然而,爆炸热效应、压力上升速率和爆炸特性值的变化很小。当初始温度从298 K升高到1473 K时,不同气体爆炸的爆炸温度从1645—2286 K增加到2652—3238 K,最大压力从0.59—0.81 MPa(绝对压力)下降到0.19—0.23 MPa,爆炸下限从12.34—29.79%下降到0.58—1.77%,爆炸上限从55.68—83.35%提高到70.89—93.73%。 氧含量的安全限值从 4.86-6.37% 下降到 0.26-0.34%。此外,气体热值还影响各种爆炸特性参数的取值,其中合成气中爆炸热效应、最高温度、最大压力、压力上升速率、爆炸特性值、氧含量安全极限均与气体的热值成正比,而爆炸的下限和上限则与之成反比。基于上述研究,分析了华亭 UCG 项目中各潜在风险区域的合成气易爆阶段和原因,确定了爆炸特性参数,并据此提出了有针对性的防控措施。该研究可为 UCG 项目的合成气爆炸特性和风险控制研究奠定理论基础。

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