水压和氯盐侵蚀耦合作用下胶结煤矸石-粉煤灰回填土的力学性能

IF 3.7 2区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING
Zong-xu Li, Da-wei Yin, Hui-min Liu, Yi Tan, Xue-long Li
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引用次数: 0

摘要

在糊状回填采矿中,胶结煤矸石-粉煤灰回填(CGFB)可有效控制地表沉降。煤矸石-粉煤灰回填层在煤层中会受到水压和氯离子的侵蚀。因此,更好地了解水压和氯盐侵蚀对 CGFB 性能的影响对于实现有效的绿色开采至关重要。本研究将 CGFB 样品在 0、0.5、1.5 或 3.0 MPa 的 NaCl 溶液中浸泡 15 d,并使用单轴压缩试验、声发射试验、数字斑点应变测量、扫描电子显微镜和 X 射线衍射研究了样品的力学性能和劣化机制。结果表明,随着浸泡压力的增加,单轴抗压强度(UCS)先增大后减小。当浸泡压力从 0 增加到 1.5 兆帕时,平均单轴抗压强度增加了 43.5%。然后,当浸泡压力从 1.5 兆帕增加到 3.0 兆帕时,平均 UCS 下降了 18.9%。此外,水压会促进氯离子进入 CGFB 内部并产生弗里德尔盐。更高的水压-氯盐侵蚀耦合会增加 CGFB 的孔隙率,3.0 兆帕的样品比 0 兆帕的样品孔隙率增加了 8.2%。因此,内部孔隙裂缝发展并渗透到样品中,从而降低了样品的机械性能,降低了样品的强度和密实度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical properties of cemented coal gangue–flyash backfill under coupled effects of water pressure and chloride salt erosion

In paste backfill mining, cemented coal gangue-flyash backfills (CGFB) can effectively control surface subsidence. CGFBs are subjected to water pressure and chloride ion erosion in the gob. Therefore, an improved understanding of the influence of pressurized water and chloride salt erosion on the performance of CGFB is crucial for realizing effective green mining. In this study, CGFB samples were soaked in a NaCl solution at 0, 0.5, 1.5, or 3.0 MPa for 15 d. The mechanical properties of the samples and deterioration mechanisms were investigated using uniaxial compression tests, acoustic emission tests, digital speckle strain measurements, scanning electron microscopy, and X-ray diffraction. The results show that the uniaxial compressive strength (UCS) increased and then decreased with the increase of soaking pressure. When the soaking pressure increased from 0 to 1.5 MPa, the average UCS increased by 43.5%. Then, when the soaking pressure increased from 1.5 to 3.0 MPa, the average UCS decreased by 18.9%. Moreover, water pressure promotes chloride ions into the interior of CGFB and the production of Friedel’s salt. Higher water pressures-chloride salt erosion coupling increases the porosity of CGFB, with the 3.0 MPa sample showing an 8.2% increase in porosity compared to the 0 MPa sample. Thus, internal pore cracks developed and penetrated the samples, which degraded their mechanical properties and reduced their strength and compactness.

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来源期刊
Journal of Central South University
Journal of Central South University METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
6.10
自引率
6.80%
发文量
242
审稿时长
2-4 weeks
期刊介绍: Focuses on the latest research achievements in mining and metallurgy Coverage spans across materials science and engineering, metallurgical science and engineering, mineral processing, geology and mining, chemical engineering, and mechanical, electronic and information engineering
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