Coal Strength with Dewatering and Coal Seam Gas Depletion

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Li, Jimmy Xuekai, Flottmann, Thomas, Millen, Max, Chen, Shuai, Huang, Yixiao, Chen, Zhongwei
Format: Preprint
Veröffentlicht: 2025
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866909533537828864
author Li, Jimmy Xuekai
Flottmann, Thomas
Millen, Max
Chen, Shuai
Huang, Yixiao
Chen, Zhongwei
author_facet Li, Jimmy Xuekai
Flottmann, Thomas
Millen, Max
Chen, Shuai
Huang, Yixiao
Chen, Zhongwei
contents Understanding the response of coal mechanical properties to dewatering and gas depletion is critical for estimating borehole stability and designing infill coal seam gas (CSG) wells. Despite its importance, the full impact of these processes on coal strength remains little explored. This study aims to quantify these effects through a combination of results from micro-CT imaging, sonic testing, and mechanical testing on coal samples. Micro-CT imaging provides insights into coal's internal structure by focusing on parameters such as fracture porosity and fracture intensity (P32 factor). Sonic testing measures dynamic properties, including P-wave, S-wave velocities (Vp and Vs) and dynamic Young's modulus (Ed), under both dry and wet conditions. Mechanical testing with acoustic emission (AE) monitoring evaluates static properties like Young's modulus (Es) and uniaxial compressive strength (UCS). The key findings are: (i) Micro-CT imaging shows a strong correlation between coal fracture porosity and P32, offering detailed insights into the coal micro-structure; (ii) mechanical testing reveals that dry samples exhibit a 10% higher Es and 31% greater UCS than wet samples, suggesting that dewatering increases coal strength but potentially also promotes embrittlement; and (iii) wet samples show higher Vp and Ed in sonic tests, indicating water saturation significantly influences sonic measurements. These findings improve the understanding of dewatering and gas depletion effects, laying the groundwork for more advanced geomechanical models in coal seam gas (CSG) operations.
format Preprint
id arxiv_https___arxiv_org_abs_2503_06561
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Coal Strength with Dewatering and Coal Seam Gas Depletion
Li, Jimmy Xuekai
Flottmann, Thomas
Millen, Max
Chen, Shuai
Huang, Yixiao
Chen, Zhongwei
Geophysics
Understanding the response of coal mechanical properties to dewatering and gas depletion is critical for estimating borehole stability and designing infill coal seam gas (CSG) wells. Despite its importance, the full impact of these processes on coal strength remains little explored. This study aims to quantify these effects through a combination of results from micro-CT imaging, sonic testing, and mechanical testing on coal samples. Micro-CT imaging provides insights into coal's internal structure by focusing on parameters such as fracture porosity and fracture intensity (P32 factor). Sonic testing measures dynamic properties, including P-wave, S-wave velocities (Vp and Vs) and dynamic Young's modulus (Ed), under both dry and wet conditions. Mechanical testing with acoustic emission (AE) monitoring evaluates static properties like Young's modulus (Es) and uniaxial compressive strength (UCS). The key findings are: (i) Micro-CT imaging shows a strong correlation between coal fracture porosity and P32, offering detailed insights into the coal micro-structure; (ii) mechanical testing reveals that dry samples exhibit a 10% higher Es and 31% greater UCS than wet samples, suggesting that dewatering increases coal strength but potentially also promotes embrittlement; and (iii) wet samples show higher Vp and Ed in sonic tests, indicating water saturation significantly influences sonic measurements. These findings improve the understanding of dewatering and gas depletion effects, laying the groundwork for more advanced geomechanical models in coal seam gas (CSG) operations.
title Coal Strength with Dewatering and Coal Seam Gas Depletion
topic Geophysics
url https://arxiv.org/abs/2503.06561