Visualization of Movement and Expansion of Coal Reaction Zone by Acoustic Emission Monitoring in Underground Coal Gasification System

Eng Pub Date : 2023-11-30 DOI:10.3390/eng4040166
Rika Iriguchi, Yuma Ishii, A. Hamanaka, Faqiang Su, Ken-ichi Itakura, Jun-ichi Kodama, T. Sasaoka, H. Shimada, G. Deguchi
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Abstract

Underground coal gasification (UCG) is the process of directly recovering energy as combustible gases such as hydrogen and carbon monoxide by combusting unmined coal resources in situ. The UCG process is an invisible phenomenon, in which fracturing activity at high temperature (>1000 °C) in coal seams expands the gasification zone and increases the combustible components of the product gas. However, excessive expansion of the gasification zone may cause environmental problems such as gas leakage, deformation of the surrounding ground, and groundwater pollution. Therefore, visualization of the gasification zone of UCG is required for both improving gasification efficiency and developing UCG systems with low environmental impact. In this study, the large-scale model UCG experiments conducted on a laboratory scale (size: 625 mm × 650 mm × 2792 mm (H × W × L)) were carried out to discuss the visualization of the gasification reaction zone of coal in UCG by Acoustic Emission (AE) technique with uniaxial and triaxial acceleration transducers. As the results of temperature monitoring and AE source location analysis show, AE sources are located near the high-temperature zone (>1000 °C). In addition, the located AE sources move and expand with the movement and expansion of the high-temperature zone. AE measurement can be a useful technique for monitoring the progress of the UCG reaction zone. AE measurement with triaxial sensors is also useful to predict a high-temperature zone though the measurable range, which has to be considered.
通过声发射监测可视化地下煤气化系统中煤炭反应区的移动和扩展
地下煤气化(UCG)是通过就地燃烧未开采的煤炭资源,以氢气和一氧化碳等可燃气体的形式直接回收能源的过程。地下煤气化过程是一种无形现象,煤层中高温(>1000 °C)的压裂活动扩大了气化区,增加了产品气体中的可燃成分。然而,气化区的过度扩张可能会造成环境问题,如气体泄漏、周围地面变形和地下水污染。因此,为了提高气化效率和开发对环境影响小的联合煤气系统,需要对联合煤气的气化区进行可视化。本研究在实验室尺度(尺寸:625 毫米 × 650 毫米 × 2792 毫米(高 × 宽 × 长))上进行了大型 UCG 模型试验,讨论了利用单轴和三轴加速度传感器的声发射(AE)技术实现 UCG 中煤炭气化反应区的可视化。温度监测和声发射源位置分析结果表明,声发射源位于高温区(>1000 °C)附近。此外,所定位的 AE 源会随着高温区的移动和扩大而移动和扩大。AE 测量是监测 UCG 反应区进展情况的有用技术。使用三轴传感器进行 AE 测量也有助于预测高温区的可测量范围,这一点必须予以考虑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Eng
Eng
CiteScore
2.10
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0.00%
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