Effects of the spacing between plasma channels on the fracture behavior of red sandstone under high-voltage pulse discharge

IF 3.9 2区 工程技术 Q3 ENERGY & FUELS Geomechanics and Geophysics for Geo-Energy and Geo-Resources Pub Date : 2024-04-13 DOI:10.1007/s40948-024-00786-6
Jianyu Peng, Yuanhang Zhou, Fengpeng Zhang, Jiaqiang Li, Guangliang Yan
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Abstract

In rock engineering, high-voltage pulse technology has attracted attention because it offers environmental protection, controllable energy, and repeatable discharge. It is necessary to study the fracture behavior of rock under high-voltage pulse discharge (HVPD) for the parametric design of rock breaking thereby. HVPD experiments were conducted in red sandstone samples with the plasma channel spacing ranging from 26 to 66 mm at intervals of 10 mm. The stress wave generated by HVPD was obtained from the current waveform measured by Rogowski coils. In combination with numerical simulations, the distribution characteristics, propagation process, and formation mechanism of fractures were analyzed. The results showed that after two applications of HVPD at different positions, the sample was both broken down and two plasma channels and radial fractures centered around them were formed within. The stress wave decays exponentially with the increase of the distance from the plasma channel. When the spacing between plasma channels is less than or equal to 46 mm, fracture coalescence occurs between the two plasma channels; thereafter, the fractures formed by the second HVPD face resistance to propagation towards the fracture area formed by the first HVPD. In addition, numerical simulation results indicate that the second HVPD will generate significant tensile stress in the middle region of the two plasma channels, leading to near-horizontal fracture coalescence. When the spacing between plasma channels increases to 56 mm and 66 mm, the tensile stress induced by the second HVPD in the middle region of the sample is small, and it is difficult to form fracture coalescence between the two channels.

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等离子体通道间距对高压脉冲放电下红色砂岩断裂行为的影响
在岩石工程领域,高压脉冲技术因其环保、能量可控和可重复放电而备受关注。有必要研究岩石在高压脉冲放电(HVPD)作用下的断裂行为,从而对岩石破碎进行参数化设计。高压脉冲放电实验在红色砂岩样品中进行,等离子体通道间距从 26 毫米到 66 毫米不等,间隔为 10 毫米。HVPD 产生的应力波是通过罗戈夫斯基线圈测量的电流波形获得的。结合数值模拟,分析了裂缝的分布特征、传播过程和形成机制。结果表明,在不同位置施加两次 HVPD 后,样品既被击碎,又在内部形成了两个等离子通道和以其为中心的径向裂缝。应力波随着等离子通道距离的增加呈指数衰减。当等离子体通道之间的间距小于或等于 46 毫米时,两个等离子体通道之间会发生断裂凝聚;此后,第二个 HVPD 形成的断裂在向第一个 HVPD 形成的断裂区域传播时会遇到阻力。此外,数值模拟结果表明,第二个 HVPD 会在两个等离子通道的中间区域产生巨大的拉伸应力,导致近乎水平的断口凝聚。当等离子体通道之间的间距增加到 56 毫米和 66 毫米时,第二个 HVPD 在样品中间区域引起的拉应力较小,很难在两个通道之间形成断口凝聚。
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来源期刊
Geomechanics and Geophysics for Geo-Energy and Geo-Resources
Geomechanics and Geophysics for Geo-Energy and Geo-Resources Earth and Planetary Sciences-Geophysics
CiteScore
6.40
自引率
16.00%
发文量
163
期刊介绍: This journal offers original research, new developments, and case studies in geomechanics and geophysics, focused on energy and resources in Earth’s subsurface. Covers theory, experimental results, numerical methods, modeling, engineering, technology and more.
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